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Environmental declaration

63 Motor … ABS 0.92 Acetal 0.26 Neodymium 0.0000159 Unit % % % % % % % % Steel is produced by combining iron with carbon as well as other elements depending on the desired characteristics. Components made of steel are formed by stamping or other types of mechanical processing. Stainless steel is produced by combining iron with chromium as well as other elements depending on the desired characteristics. Components made of steel are formed by stamping or other types of mechanical processing. Zamak is an alloy with a base metal of zinc and alloying elements of aluminium, magnesium, and copper. Components made of Zamak are die-cast. Motor, PCB are electronic components, which include copper wiring, etched copper sheets on non-conductive substrates, resistors, transistors, etc. ABS (acrylonitrile butadiene styrene) is a terpolymer polymer made by polymerizing styrene and acrylonitrile in the presence of polybutadiene. Components made of ABS are made by injection moulding or other thermal forming processes. Acetal, or polyoxymethylene (POM), is produced by polymerisation of anhydrous formaldehyde. Components made of Acetal are formed by injection moulding or other thermal … .2023) exceeding 0.1 percentage by mass: Certain components may contain small amounts of lead (CAS no. 7439-92-1) as an alloying element. 2) This product/article/at least one partial article contains other cancerogenic, mutagenic, reprotoxic (CMR) substances in categories 1A or 1B which are not on the ECHA candidate list, exceeding 0.1 percentage by mass: no. 3) Biocide products were added to this construction product or it has been treated with biocide products (this then concerns a treated product as defined by the (EU) Ordinance on Biocide Products No. 528/2012): no. … 0.63 - … kg of biogenic carbon is equivalent to 44/12 kg of CO2. Name Value Unit kg 0 C kg 0.0678 C Biogenic carbon content in product Biogenic carbon content in accompanying packaging The following information is the basis of the declared modules within the LCA in this EPD. Transport to the building site (A4) Name Litres of fuel Transport distance Capacity utilisation (including empty runs) Installation into the building (A5) Name Material loss Value Unit … l/100km 3500 km 36 % Value 0.00949 Reference service life Name Life Span according to the manufacturer Unit kg Value Unit 10 a The service life is not limited due to mechanical obsolescence but due to outdated electronic components/software. It is required that installation, as well as maintenance of the product, must be done in line with instructions provided by the manufacturer. Operational energy use (B6) Two alternatives are declared for the power supply: • B6_1: replacement of the battery every … 0.241 0.349 0.41 Unit kg kg kg kg It is assumed that a 16–32-ton truck is used to transport the product: - Transport to shredding facility for metal recovery: 150 km - Transport to municipal waste incineration plant: 50 km - Transport to landfill: 30 km Reuse, recovery and/or recycling potentials (D), relevant scenario information Module D contains the benefits and loads beyond the system boundary related to the recycling of metals, which result from the treatment of recycled materials from the point of end-ofwaste status to the point of substitution (as costs) and the substitution of primary resources (as benefits). According to EN 16710, clause … "Description of the system boundary", the declared modules are indicated with an "X"; all modules that are not declared within the EPD but where additional data are available are indicated with "MND". Those data can also be used for building assessment scenarios. The values are declared with three valid digits in exponential form. The set of characterisation factors EF3.0 has been used for the life cycle assessment. DESCRIPTION OF THE SYSTEM BOUNDARY (X = INCLUDED IN LCA; MND = MODULE OR INDICATOR NOT DECLARED; MNR = MODULE NOT RELEVANT) Benefits and Construction loads beyond Product stage Use stage End of life stage process stage the system boundaries A1 X A2 X A3 X A4 X A5 X B1 MND B2 MND B3 MNR B4 MNR B5 MNR B6 X B7 MND C1 X C2 X C3 X C4 X D X RESULTS OF THE LCA - ENVIRONMENTAL IMPACT according to EN 15804+A2: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 C3 C4 D GWP-total kg CO2 eq 1.18E+01 6.75E-01 3.14E-01 1.48E+00 2.03E+02 0 1.86E-02 1.86E-02 4.93E-02 4.85E-01 GWP-fossil kg CO2 eq 1.2E+01 6.74E-01 2.26E-02 1.47E+00 2.03E+02 0 1.86E-02 1.85E-02 4.93E-02 4.84E-01 GWPbiogenic kg CO2 eq -2.69E-01 0 2.92E-01 0 0 0 0 0 0 0 GWP-luluc kg CO2 eq 2.82E-02 2.7E-04 1.8E-06 2.69E-03 5.07E-01 0 7.44E-06 3.14E-05 3.75E-06 7.47E-04 ODP kg CFC11 eq 6.48E-07 1.56E-07 1.02E-09 1.15E-07 1.05E-05 0 4.31E-09 8.96E-10 1.52E-09 3.2E-08 AP mol H+ eq 3.08E-01 1.91E-03 1.95E-05 3.07E-02 1.11E+00 0 5.28E-05 2.03E-04 4.35E-05 2.35E-02 kg P eq 1.87E-03 4.81E-06 3.74E-08 1.66E-04 2.27E-02 0 1.33E-07 1.06E-06 8.24E-08 7.47E-05 kg N eq mol N eq 3.85E-02 2.8E-01 3.81E-04 4.24E-03 6.46E-06 6.99E-05 2.35E-03 2.81E-02 1.38E-01 1.6E+00 0 0 1.05E-05 1.17E-04 1.67E-05 1.85E-04 1.76E-05 1.7E-04 1.02E-03 1.4E-02 EPfreshwater EP-marine EP-terrestrial kg NMVOC eq kg Sb eq MJ POCP ADPE ADPF m3 world eq deprived WDP 7.77E-02 1.63E-03 2.03E-05 8.53E-03 4.4E-01 0 4.5E-05 5.78E-05 4.98E-05 4.23E-03 4.07E-03 1.29E+02 2.39E-06 1.02E+01 1.62E-08 6.85E-02 5.7E-04 1.93E+01 1.97E-03 4.27E+03 0 0 6.59E-08 2.82E-01 7.78E-07 2.38E-01 2.26E-08 1.11E-01 5.66E-04 6.82E+00 5.06E+00 3.11E-02 3.36E-04 8.35E-01 5.07E+01 0 8.58E-04 9.87E-03 -3.16E-04 4.14E-01 GWP = Global warming potential; ODP = Depletion potential of the stratospheric ozone layer; AP = Acidification potential of land and water; EP = Eutrophication potential; POCP = Formation potential of tropospheric ozone photochemical oxidants; ADPE = Abiotic depletion potential for non-fossil resources; ADPF = Abiotic depletion potential for fossil resources; WDP = Water (user) deprivation potential) RESULTS OF THE LCA - INDICATORS TO DESCRIBE RESOURCE USE according to EN 15804+A2: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 C3 C4 D PERE PERM PERT PENRE PENRM PENRT SM RSF NRSF MJ MJ MJ MJ MJ MJ kg MJ MJ 2.15E+01 2.35E+00 2.38E+01 1.31E+02 1.43E+00 1.33E+02 4.47E-01 0 0 1.44E-01 0 1.44E-01 1.02E+01 0 1.02E+01 0 0 0 -6.86E-01 -6.18E-01 -1.3E+00 2.17E-01 -1.48E-01 6.85E-02 0 0 0 2.56E+00 0 2.56E+00 1.93E+01 0 1.93E+01 0 0 0 9.42E+02 0 9.42E+02 4.32E+03 0 4.32E+03 0 0 0 0 0 0 0 0 0 0 0 0 3.96E-03 0 3.96E-03 2.82E-01 0 2.82E-01 0 0 0 9.18E-02 0 9.18E-02 2.39E-01 0 2.39E-01 0 0 0 6.71E-03 0 6.71E-03 1.11E-01 0 1.11E-01 0 0 0 1.33E+00 0 1.33E+00 6.85E+00 0 6.85E+00 0 0 0 FW m3 1.62E-01 1.08E-03 5.13E-05 1.88E-02 2.84E+00 0 2.99E-05 2.75E-04 2.23E-04 6.66E-03 PERE = Use of renewable primary energy excluding renewable primary energy resources used as raw materials; PERM = Use of renewable primary energy resources used as raw materials; PERT = Total use of renewable primary energy resources; PENRE = Use of non-renewable primary energy excluding non-renewable primary energy resources used as raw materials; PENRM = Use of non-renewable primary energy resources used as raw materials; PENRT = Total use of non-renewable primary energy resources; SM = Use of secondary material; RSF = Use of renewable secondary fuels; NRSF = Use of non-renewable secondary fuels; FW = Use of net fresh water RESULTS OF THE LCA – WASTE CATEGORIES AND OUTPUT FLOWS according to EN 15804+A2: … kg kg 1.47E-03 4.71E+00 2.67E-05 5.38E-01 2.49E-07 4.05E-03 7.99E-04 5.53E-01 3.41E-03 1.72E+01 0 0 7.36E-07 1.48E-02 4.47E-07 1.37E-02 C4 D 2.15E-07 3.8E-01 1.92E-04 1.71E-01 Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators RWD CRU MFR MER EEE EET kg kg kg kg MJ MJ 2.12E-03 0 2.89E-01 0 0 0 1.48E-04 0 0 0 0 0 9.43E-07 0 1.61E-01 0 0 0 9.02E-05 0 0 0 0 0 5.73E-02 0 0 0 0 0 0 0 0 0 0 0 4.08E-06 0 0 0 0 0 1.95E-06 0 6.72E-01 0 0 0 1.41E-06 0 0 0 0 0 5.49E-05 0 0 0 0 0 HWD = Hazardous waste disposed; NHWD = Non-hazardous waste disposed; RWD = Radioactive waste disposed; CRU = Components for re-use; MFR = Materials for recycling; MER = Materials for energy recovery; EEE = Exported electrical energy; EET = Exported thermal energy RESULTS OF THE LCA – additional impact categories according to EN 15804+A2-optional: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 PM IR ETP-fw HTP-c HTP-nc SQP Disease incidence kBq U235 eq CTUe CTUh CTUh SQP C3 C4 D 1.29E-06 5.42E-08 3.98E-10 1.34E-07 3.24E-06 0 1.49E-09 1.19E-09 1.05E-09 5.38E-08 7.95E-01 2.54E+03 6.79E-08 3.43E-06 1.14E+02 4.44E-02 8.02E+00 2.58E-10 8.11E-09 7.13E+00 2.85E-04 5.87E-02 3.64E-12 1.44E-10 4.58E-02 5.64E-02 2.18E+02 8.96E-09 3.53E-07 1.12E+01 3.89E+01 2.67E+03 8.58E-08 2.7E-06 8.22E+02 0 0 0 0 0 1.22E-03 2.21E-01 7.12E-12 2.24E-10 1.96E-01 1.32E-03 1.06E+00 2.13E-11 5.82E-10 7.52E-02 5.02E-04 5.48E+01 1.22E-11 3.96E-10 1.89E-01 3.51E-02 1.28E+02 5.6E-09 3.81E-07 8.77E+00 PM = Potential incidence of disease due to PM emissions; IR = Potential Human exposure efficiency relative to U235; ETP-fw = Potential comparative Toxic Unit for ecosystems; HTP-c = Potential comparative Toxic Unit for humans (cancerogenic); HTP-nc = Potential comparative Toxic Unit for humans (not cancerogenic); SQP = Potential soil quality index Disclaimer … Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators No testing results are required by the PCR part B. 8. References Product category rules of IBU IBU (2021) IBU (2021): General Instructions for the EPD Programme of the Institut Bauen und Umwelt e.V. (General Instructions for the IBU EPD Programme). Version 2.0, Institut Bauen und Umwelt, Berlin. IBU (2021) IBU (2021): PCR Part A: Calculation rules for the life cycle assessment and requirements on the project report according to EN 15804+A2. Version … 10117 Berlin Germany +49 (0)30 3087748- 0 info@ibu-epd.com www.ibu-epd.com Programme holder Institut Bauen und Umwelt e.V. Hegelplatz … 10117 Berlin Germany +49 (0)30 3087748- 0 info@ibu-epd.com www.ibu-epd.com Author of the Life Cycle Assessment Dr. Frank Werner - Umwelt & Entwicklung Kammelenbergstrasse 30 9011 St. Gallen Switzerland + 41 (0)44 241 39 06 frank@frankwerner.ch http://www.frankwerner.ch/ Owner of the Declaration ARGE – The European Federation of Locks and Building Hardware Manufacturers Offerstraße 12 42551 Velbert Germany 11 +49 (0)2051 9506 15 mail@arge.org www.arge.org Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators

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Environmental declaration

63 Motor … ABS 0.92 Acetal 0.26 Neodymium 0.0000159 Unit % % % % % % % % Steel is produced by combining iron with carbon as well as other elements depending on the desired characteristics. Components made of steel are formed by stamping or other types of mechanical processing. Stainless steel is produced by combining iron with chromium as well as other elements depending on the desired characteristics. Components made of steel are formed by stamping or other types of mechanical processing. Zamak is an alloy with a base metal of zinc and alloying elements of aluminium, magnesium, and copper. Components made of Zamak are die-cast. Motor, PCB are electronic components, which include copper wiring, etched copper sheets on non-conductive substrates, resistors, transistors, etc. ABS (acrylonitrile butadiene styrene) is a terpolymer polymer made by polymerizing styrene and acrylonitrile in the presence of polybutadiene. Components made of ABS are made by injection moulding or other thermal forming processes. Acetal, or polyoxymethylene (POM), is produced by polymerisation of anhydrous formaldehyde. Components made of Acetal are formed by injection moulding or other thermal … .2023) exceeding 0.1 percentage by mass: Certain components may contain small amounts of lead (CAS no. 7439-92-1) as an alloying element. 2) This product/article/at least one partial article contains other cancerogenic, mutagenic, reprotoxic (CMR) substances in categories 1A or 1B which are not on the ECHA candidate list, exceeding 0.1 percentage by mass: no. 3) Biocide products were added to this construction product or it has been treated with biocide products (this then concerns a treated product as defined by the (EU) Ordinance on Biocide Products No. 528/2012): no. … 0.63 - … kg of biogenic carbon is equivalent to 44/12 kg of CO2. Name Value Unit kg 0 C kg 0.0678 C Biogenic carbon content in product Biogenic carbon content in accompanying packaging The following information is the basis of the declared modules within the LCA in this EPD. Transport to the building site (A4) Name Litres of fuel Transport distance Capacity utilisation (including empty runs) Installation into the building (A5) Name Material loss Value Unit … l/100km 3500 km 36 % Value 0.00949 Reference service life Name Life Span according to the manufacturer Unit kg Value Unit 10 a The service life is not limited due to mechanical obsolescence but due to outdated electronic components/software. It is required that installation, as well as maintenance of the product, must be done in line with instructions provided by the manufacturer. Operational energy use (B6) Two alternatives are declared for the power supply: • B6_1: replacement of the battery every … 0.241 0.349 0.41 Unit kg kg kg kg It is assumed that a 16–32-ton truck is used to transport the product: - Transport to shredding facility for metal recovery: 150 km - Transport to municipal waste incineration plant: 50 km - Transport to landfill: 30 km Reuse, recovery and/or recycling potentials (D), relevant scenario information Module D contains the benefits and loads beyond the system boundary related to the recycling of metals, which result from the treatment of recycled materials from the point of end-ofwaste status to the point of substitution (as costs) and the substitution of primary resources (as benefits). According to EN 16710, clause … "Description of the system boundary", the declared modules are indicated with an "X"; all modules that are not declared within the EPD but where additional data are available are indicated with "MND". Those data can also be used for building assessment scenarios. The values are declared with three valid digits in exponential form. The set of characterisation factors EF3.0 has been used for the life cycle assessment. DESCRIPTION OF THE SYSTEM BOUNDARY (X = INCLUDED IN LCA; MND = MODULE OR INDICATOR NOT DECLARED; MNR = MODULE NOT RELEVANT) Benefits and Construction loads beyond Product stage Use stage End of life stage process stage the system boundaries A1 X A2 X A3 X A4 X A5 X B1 MND B2 MND B3 MNR B4 MNR B5 MNR B6 X B7 MND C1 X C2 X C3 X C4 X D X RESULTS OF THE LCA - ENVIRONMENTAL IMPACT according to EN 15804+A2: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 C3 C4 D GWP-total kg CO2 eq 1.18E+01 6.75E-01 3.14E-01 1.48E+00 2.03E+02 0 1.86E-02 1.86E-02 4.93E-02 4.85E-01 GWP-fossil kg CO2 eq 1.2E+01 6.74E-01 2.26E-02 1.47E+00 2.03E+02 0 1.86E-02 1.85E-02 4.93E-02 4.84E-01 GWPbiogenic kg CO2 eq -2.69E-01 0 2.92E-01 0 0 0 0 0 0 0 GWP-luluc kg CO2 eq 2.82E-02 2.7E-04 1.8E-06 2.69E-03 5.07E-01 0 7.44E-06 3.14E-05 3.75E-06 7.47E-04 ODP kg CFC11 eq 6.48E-07 1.56E-07 1.02E-09 1.15E-07 1.05E-05 0 4.31E-09 8.96E-10 1.52E-09 3.2E-08 AP mol H+ eq 3.08E-01 1.91E-03 1.95E-05 3.07E-02 1.11E+00 0 5.28E-05 2.03E-04 4.35E-05 2.35E-02 kg P eq 1.87E-03 4.81E-06 3.74E-08 1.66E-04 2.27E-02 0 1.33E-07 1.06E-06 8.24E-08 7.47E-05 kg N eq mol N eq 3.85E-02 2.8E-01 3.81E-04 4.24E-03 6.46E-06 6.99E-05 2.35E-03 2.81E-02 1.38E-01 1.6E+00 0 0 1.05E-05 1.17E-04 1.67E-05 1.85E-04 1.76E-05 1.7E-04 1.02E-03 1.4E-02 EPfreshwater EP-marine EP-terrestrial kg NMVOC eq kg Sb eq MJ POCP ADPE ADPF m3 world eq deprived WDP 7.77E-02 1.63E-03 2.03E-05 8.53E-03 4.4E-01 0 4.5E-05 5.78E-05 4.98E-05 4.23E-03 4.07E-03 1.29E+02 2.39E-06 1.02E+01 1.62E-08 6.85E-02 5.7E-04 1.93E+01 1.97E-03 4.27E+03 0 0 6.59E-08 2.82E-01 7.78E-07 2.38E-01 2.26E-08 1.11E-01 5.66E-04 6.82E+00 5.06E+00 3.11E-02 3.36E-04 8.35E-01 5.07E+01 0 8.58E-04 9.87E-03 -3.16E-04 4.14E-01 GWP = Global warming potential; ODP = Depletion potential of the stratospheric ozone layer; AP = Acidification potential of land and water; EP = Eutrophication potential; POCP = Formation potential of tropospheric ozone photochemical oxidants; ADPE = Abiotic depletion potential for non-fossil resources; ADPF = Abiotic depletion potential for fossil resources; WDP = Water (user) deprivation potential) RESULTS OF THE LCA - INDICATORS TO DESCRIBE RESOURCE USE according to EN 15804+A2: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 C3 C4 D PERE PERM PERT PENRE PENRM PENRT SM RSF NRSF MJ MJ MJ MJ MJ MJ kg MJ MJ 2.15E+01 2.35E+00 2.38E+01 1.31E+02 1.43E+00 1.33E+02 4.47E-01 0 0 1.44E-01 0 1.44E-01 1.02E+01 0 1.02E+01 0 0 0 -6.86E-01 -6.18E-01 -1.3E+00 2.17E-01 -1.48E-01 6.85E-02 0 0 0 2.56E+00 0 2.56E+00 1.93E+01 0 1.93E+01 0 0 0 9.42E+02 0 9.42E+02 4.32E+03 0 4.32E+03 0 0 0 0 0 0 0 0 0 0 0 0 3.96E-03 0 3.96E-03 2.82E-01 0 2.82E-01 0 0 0 9.18E-02 0 9.18E-02 2.39E-01 0 2.39E-01 0 0 0 6.71E-03 0 6.71E-03 1.11E-01 0 1.11E-01 0 0 0 1.33E+00 0 1.33E+00 6.85E+00 0 6.85E+00 0 0 0 FW m3 1.62E-01 1.08E-03 5.13E-05 1.88E-02 2.84E+00 0 2.99E-05 2.75E-04 2.23E-04 6.66E-03 PERE = Use of renewable primary energy excluding renewable primary energy resources used as raw materials; PERM = Use of renewable primary energy resources used as raw materials; PERT = Total use of renewable primary energy resources; PENRE = Use of non-renewable primary energy excluding non-renewable primary energy resources used as raw materials; PENRM = Use of non-renewable primary energy resources used as raw materials; PENRT = Total use of non-renewable primary energy resources; SM = Use of secondary material; RSF = Use of renewable secondary fuels; NRSF = Use of non-renewable secondary fuels; FW = Use of net fresh water RESULTS OF THE LCA – WASTE CATEGORIES AND OUTPUT FLOWS according to EN 15804+A2: … kg kg 1.47E-03 4.71E+00 2.67E-05 5.38E-01 2.49E-07 4.05E-03 7.99E-04 5.53E-01 3.41E-03 1.72E+01 0 0 7.36E-07 1.48E-02 4.47E-07 1.37E-02 C4 D 2.15E-07 3.8E-01 1.92E-04 1.71E-01 Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators RWD CRU MFR MER EEE EET kg kg kg kg MJ MJ 2.12E-03 0 2.89E-01 0 0 0 1.48E-04 0 0 0 0 0 9.43E-07 0 1.61E-01 0 0 0 9.02E-05 0 0 0 0 0 5.73E-02 0 0 0 0 0 0 0 0 0 0 0 4.08E-06 0 0 0 0 0 1.95E-06 0 6.72E-01 0 0 0 1.41E-06 0 0 0 0 0 5.49E-05 0 0 0 0 0 HWD = Hazardous waste disposed; NHWD = Non-hazardous waste disposed; RWD = Radioactive waste disposed; CRU = Components for re-use; MFR = Materials for recycling; MER = Materials for energy recovery; EEE = Exported electrical energy; EET = Exported thermal energy RESULTS OF THE LCA – additional impact categories according to EN 15804+A2-optional: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 PM IR ETP-fw HTP-c HTP-nc SQP Disease incidence kBq U235 eq CTUe CTUh CTUh SQP C3 C4 D 1.29E-06 5.42E-08 3.98E-10 1.34E-07 3.24E-06 0 1.49E-09 1.19E-09 1.05E-09 5.38E-08 7.95E-01 2.54E+03 6.79E-08 3.43E-06 1.14E+02 4.44E-02 8.02E+00 2.58E-10 8.11E-09 7.13E+00 2.85E-04 5.87E-02 3.64E-12 1.44E-10 4.58E-02 5.64E-02 2.18E+02 8.96E-09 3.53E-07 1.12E+01 3.89E+01 2.67E+03 8.58E-08 2.7E-06 8.22E+02 0 0 0 0 0 1.22E-03 2.21E-01 7.12E-12 2.24E-10 1.96E-01 1.32E-03 1.06E+00 2.13E-11 5.82E-10 7.52E-02 5.02E-04 5.48E+01 1.22E-11 3.96E-10 1.89E-01 3.51E-02 1.28E+02 5.6E-09 3.81E-07 8.77E+00 PM = Potential incidence of disease due to PM emissions; IR = Potential Human exposure efficiency relative to U235; ETP-fw = Potential comparative Toxic Unit for ecosystems; HTP-c = Potential comparative Toxic Unit for humans (cancerogenic); HTP-nc = Potential comparative Toxic Unit for humans (not cancerogenic); SQP = Potential soil quality index Disclaimer … Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators No testing results are required by the PCR part B. 8. References Product category rules of IBU IBU (2021) IBU (2021): General Instructions for the EPD Programme of the Institut Bauen und Umwelt e.V. (General Instructions for the IBU EPD Programme). Version 2.0, Institut Bauen und Umwelt, Berlin. IBU (2021) IBU (2021): PCR Part A: Calculation rules for the life cycle assessment and requirements on the project report according to EN 15804+A2. Version … 10117 Berlin Germany +49 (0)30 3087748- 0 info@ibu-epd.com www.ibu-epd.com Programme holder Institut Bauen und Umwelt e.V. Hegelplatz … 10117 Berlin Germany +49 (0)30 3087748- 0 info@ibu-epd.com www.ibu-epd.com Author of the Life Cycle Assessment Dr. Frank Werner - Umwelt & Entwicklung Kammelenbergstrasse 30 9011 St. Gallen Switzerland + 41 (0)44 241 39 06 frank@frankwerner.ch http://www.frankwerner.ch/ Owner of the Declaration ARGE – The European Federation of Locks and Building Hardware Manufacturers Offerstraße 12 42551 Velbert Germany 11 +49 (0)2051 9506 15 mail@arge.org www.arge.org Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators

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Environmental declaration

63 Motor … ABS 0.92 Acetal 0.26 Neodymium 0.0000159 Unit % % % % % % % % Steel is produced by combining iron with carbon as well as other elements depending on the desired characteristics. Components made of steel are formed by stamping or other types of mechanical processing. Stainless steel is produced by combining iron with chromium as well as other elements depending on the desired characteristics. Components made of steel are formed by stamping or other types of mechanical processing. Zamak is an alloy with a base metal of zinc and alloying elements of aluminium, magnesium, and copper. Components made of Zamak are die-cast. Motor, PCB are electronic components, which include copper wiring, etched copper sheets on non-conductive substrates, resistors, transistors, etc. ABS (acrylonitrile butadiene styrene) is a terpolymer polymer made by polymerizing styrene and acrylonitrile in the presence of polybutadiene. Components made of ABS are made by injection moulding or other thermal forming processes. Acetal, or polyoxymethylene (POM), is produced by polymerisation of anhydrous formaldehyde. Components made of Acetal are formed by injection moulding or other thermal … .2023) exceeding 0.1 percentage by mass: Certain components may contain small amounts of lead (CAS no. 7439-92-1) as an alloying element. 2) This product/article/at least one partial article contains other cancerogenic, mutagenic, reprotoxic (CMR) substances in categories 1A or 1B which are not on the ECHA candidate list, exceeding 0.1 percentage by mass: no. 3) Biocide products were added to this construction product or it has been treated with biocide products (this then concerns a treated product as defined by the (EU) Ordinance on Biocide Products No. 528/2012): no. … 0.63 - … kg of biogenic carbon is equivalent to 44/12 kg of CO2. Name Value Unit kg 0 C kg 0.0678 C Biogenic carbon content in product Biogenic carbon content in accompanying packaging The following information is the basis of the declared modules within the LCA in this EPD. Transport to the building site (A4) Name Litres of fuel Transport distance Capacity utilisation (including empty runs) Installation into the building (A5) Name Material loss Value Unit … l/100km 3500 km 36 % Value 0.00949 Reference service life Name Life Span according to the manufacturer Unit kg Value Unit 10 a The service life is not limited due to mechanical obsolescence but due to outdated electronic components/software. It is required that installation, as well as maintenance of the product, must be done in line with instructions provided by the manufacturer. Operational energy use (B6) Two alternatives are declared for the power supply: • B6_1: replacement of the battery every … 0.241 0.349 0.41 Unit kg kg kg kg It is assumed that a 16–32-ton truck is used to transport the product: - Transport to shredding facility for metal recovery: 150 km - Transport to municipal waste incineration plant: 50 km - Transport to landfill: 30 km Reuse, recovery and/or recycling potentials (D), relevant scenario information Module D contains the benefits and loads beyond the system boundary related to the recycling of metals, which result from the treatment of recycled materials from the point of end-ofwaste status to the point of substitution (as costs) and the substitution of primary resources (as benefits). According to EN 16710, clause … "Description of the system boundary", the declared modules are indicated with an "X"; all modules that are not declared within the EPD but where additional data are available are indicated with "MND". Those data can also be used for building assessment scenarios. The values are declared with three valid digits in exponential form. The set of characterisation factors EF3.0 has been used for the life cycle assessment. DESCRIPTION OF THE SYSTEM BOUNDARY (X = INCLUDED IN LCA; MND = MODULE OR INDICATOR NOT DECLARED; MNR = MODULE NOT RELEVANT) Benefits and Construction loads beyond Product stage Use stage End of life stage process stage the system boundaries A1 X A2 X A3 X A4 X A5 X B1 MND B2 MND B3 MNR B4 MNR B5 MNR B6 X B7 MND C1 X C2 X C3 X C4 X D X RESULTS OF THE LCA - ENVIRONMENTAL IMPACT according to EN 15804+A2: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 C3 C4 D GWP-total kg CO2 eq 1.18E+01 6.75E-01 3.14E-01 1.48E+00 2.03E+02 0 1.86E-02 1.86E-02 4.93E-02 4.85E-01 GWP-fossil kg CO2 eq 1.2E+01 6.74E-01 2.26E-02 1.47E+00 2.03E+02 0 1.86E-02 1.85E-02 4.93E-02 4.84E-01 GWPbiogenic kg CO2 eq -2.69E-01 0 2.92E-01 0 0 0 0 0 0 0 GWP-luluc kg CO2 eq 2.82E-02 2.7E-04 1.8E-06 2.69E-03 5.07E-01 0 7.44E-06 3.14E-05 3.75E-06 7.47E-04 ODP kg CFC11 eq 6.48E-07 1.56E-07 1.02E-09 1.15E-07 1.05E-05 0 4.31E-09 8.96E-10 1.52E-09 3.2E-08 AP mol H+ eq 3.08E-01 1.91E-03 1.95E-05 3.07E-02 1.11E+00 0 5.28E-05 2.03E-04 4.35E-05 2.35E-02 kg P eq 1.87E-03 4.81E-06 3.74E-08 1.66E-04 2.27E-02 0 1.33E-07 1.06E-06 8.24E-08 7.47E-05 kg N eq mol N eq 3.85E-02 2.8E-01 3.81E-04 4.24E-03 6.46E-06 6.99E-05 2.35E-03 2.81E-02 1.38E-01 1.6E+00 0 0 1.05E-05 1.17E-04 1.67E-05 1.85E-04 1.76E-05 1.7E-04 1.02E-03 1.4E-02 EPfreshwater EP-marine EP-terrestrial kg NMVOC eq kg Sb eq MJ POCP ADPE ADPF m3 world eq deprived WDP 7.77E-02 1.63E-03 2.03E-05 8.53E-03 4.4E-01 0 4.5E-05 5.78E-05 4.98E-05 4.23E-03 4.07E-03 1.29E+02 2.39E-06 1.02E+01 1.62E-08 6.85E-02 5.7E-04 1.93E+01 1.97E-03 4.27E+03 0 0 6.59E-08 2.82E-01 7.78E-07 2.38E-01 2.26E-08 1.11E-01 5.66E-04 6.82E+00 5.06E+00 3.11E-02 3.36E-04 8.35E-01 5.07E+01 0 8.58E-04 9.87E-03 -3.16E-04 4.14E-01 GWP = Global warming potential; ODP = Depletion potential of the stratospheric ozone layer; AP = Acidification potential of land and water; EP = Eutrophication potential; POCP = Formation potential of tropospheric ozone photochemical oxidants; ADPE = Abiotic depletion potential for non-fossil resources; ADPF = Abiotic depletion potential for fossil resources; WDP = Water (user) deprivation potential) RESULTS OF THE LCA - INDICATORS TO DESCRIBE RESOURCE USE according to EN 15804+A2: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 C3 C4 D PERE PERM PERT PENRE PENRM PENRT SM RSF NRSF MJ MJ MJ MJ MJ MJ kg MJ MJ 2.15E+01 2.35E+00 2.38E+01 1.31E+02 1.43E+00 1.33E+02 4.47E-01 0 0 1.44E-01 0 1.44E-01 1.02E+01 0 1.02E+01 0 0 0 -6.86E-01 -6.18E-01 -1.3E+00 2.17E-01 -1.48E-01 6.85E-02 0 0 0 2.56E+00 0 2.56E+00 1.93E+01 0 1.93E+01 0 0 0 9.42E+02 0 9.42E+02 4.32E+03 0 4.32E+03 0 0 0 0 0 0 0 0 0 0 0 0 3.96E-03 0 3.96E-03 2.82E-01 0 2.82E-01 0 0 0 9.18E-02 0 9.18E-02 2.39E-01 0 2.39E-01 0 0 0 6.71E-03 0 6.71E-03 1.11E-01 0 1.11E-01 0 0 0 1.33E+00 0 1.33E+00 6.85E+00 0 6.85E+00 0 0 0 FW m3 1.62E-01 1.08E-03 5.13E-05 1.88E-02 2.84E+00 0 2.99E-05 2.75E-04 2.23E-04 6.66E-03 PERE = Use of renewable primary energy excluding renewable primary energy resources used as raw materials; PERM = Use of renewable primary energy resources used as raw materials; PERT = Total use of renewable primary energy resources; PENRE = Use of non-renewable primary energy excluding non-renewable primary energy resources used as raw materials; PENRM = Use of non-renewable primary energy resources used as raw materials; PENRT = Total use of non-renewable primary energy resources; SM = Use of secondary material; RSF = Use of renewable secondary fuels; NRSF = Use of non-renewable secondary fuels; FW = Use of net fresh water RESULTS OF THE LCA – WASTE CATEGORIES AND OUTPUT FLOWS according to EN 15804+A2: … kg kg 1.47E-03 4.71E+00 2.67E-05 5.38E-01 2.49E-07 4.05E-03 7.99E-04 5.53E-01 3.41E-03 1.72E+01 0 0 7.36E-07 1.48E-02 4.47E-07 1.37E-02 C4 D 2.15E-07 3.8E-01 1.92E-04 1.71E-01 Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators RWD CRU MFR MER EEE EET kg kg kg kg MJ MJ 2.12E-03 0 2.89E-01 0 0 0 1.48E-04 0 0 0 0 0 9.43E-07 0 1.61E-01 0 0 0 9.02E-05 0 0 0 0 0 5.73E-02 0 0 0 0 0 0 0 0 0 0 0 4.08E-06 0 0 0 0 0 1.95E-06 0 6.72E-01 0 0 0 1.41E-06 0 0 0 0 0 5.49E-05 0 0 0 0 0 HWD = Hazardous waste disposed; NHWD = Non-hazardous waste disposed; RWD = Radioactive waste disposed; CRU = Components for re-use; MFR = Materials for recycling; MER = Materials for energy recovery; EEE = Exported electrical energy; EET = Exported thermal energy RESULTS OF THE LCA – additional impact categories according to EN 15804+A2-optional: … kg of electromechanical building hardware and swing door operators Parameter Unit A1-A3 A4 A5 B6/1 B6/2 C1 C2 PM IR ETP-fw HTP-c HTP-nc SQP Disease incidence kBq U235 eq CTUe CTUh CTUh SQP C3 C4 D 1.29E-06 5.42E-08 3.98E-10 1.34E-07 3.24E-06 0 1.49E-09 1.19E-09 1.05E-09 5.38E-08 7.95E-01 2.54E+03 6.79E-08 3.43E-06 1.14E+02 4.44E-02 8.02E+00 2.58E-10 8.11E-09 7.13E+00 2.85E-04 5.87E-02 3.64E-12 1.44E-10 4.58E-02 5.64E-02 2.18E+02 8.96E-09 3.53E-07 1.12E+01 3.89E+01 2.67E+03 8.58E-08 2.7E-06 8.22E+02 0 0 0 0 0 1.22E-03 2.21E-01 7.12E-12 2.24E-10 1.96E-01 1.32E-03 1.06E+00 2.13E-11 5.82E-10 7.52E-02 5.02E-04 5.48E+01 1.22E-11 3.96E-10 1.89E-01 3.51E-02 1.28E+02 5.6E-09 3.81E-07 8.77E+00 PM = Potential incidence of disease due to PM emissions; IR = Potential Human exposure efficiency relative to U235; ETP-fw = Potential comparative Toxic Unit for ecosystems; HTP-c = Potential comparative Toxic Unit for humans (cancerogenic); HTP-nc = Potential comparative Toxic Unit for humans (not cancerogenic); SQP = Potential soil quality index Disclaimer … Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators No testing results are required by the PCR part B. 8. References Product category rules of IBU IBU (2021) IBU (2021): General Instructions for the EPD Programme of the Institut Bauen und Umwelt e.V. (General Instructions for the IBU EPD Programme). Version 2.0, Institut Bauen und Umwelt, Berlin. IBU (2021) IBU (2021): PCR Part A: Calculation rules for the life cycle assessment and requirements on the project report according to EN 15804+A2. Version … 10117 Berlin Germany +49 (0)30 3087748- 0 info@ibu-epd.com www.ibu-epd.com Programme holder Institut Bauen und Umwelt e.V. Hegelplatz … 10117 Berlin Germany +49 (0)30 3087748- 0 info@ibu-epd.com www.ibu-epd.com Author of the Life Cycle Assessment Dr. Frank Werner - Umwelt & Entwicklung Kammelenbergstrasse 30 9011 St. Gallen Switzerland + 41 (0)44 241 39 06 frank@frankwerner.ch http://www.frankwerner.ch/ Owner of the Declaration ARGE – The European Federation of Locks and Building Hardware Manufacturers Offerstraße 12 42551 Velbert Germany 11 +49 (0)2051 9506 15 mail@arge.org www.arge.org Environmental Product Declaration - ARGE – The European Federation of Locks and Building Hardware Manufacturers - Electromechanical building hardware and swing door operators

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0.4 second cycle. LED … „Normalbetrieb“ blinken im 0,4 Sekunden-Takt gleichzeitig. X Release the reset button when the LEDs start to flash. X Wenn die LEDs blinken „Reset-Button“ loslassen. X To return the device to operating mode, switch the voltage supply off and on again. X Um das Gerät in den Betriebsmodus zurückzusetzen, Spannungsversorgung aus- und wieder einschalten. …  GEZE IO 420 A BACnet MS/TP network requires one active network-bias. The “BACnet” terminating resistor built inside the device must be switched on at the beginning and end of the bus using the respective DIP switch. Maximum 32 MS/TP devices can be connected in one segment. The wiring must meet or exceed the BACnet and MS/TP EIA-485 network standard and be specified as follows: à Shielded cable, pair-wise twisted. à Impedance 100-130 Ohm. à Capacity between the wires < 100 pF/m (30 pF/ft). à Capacity between the wire and the shield < 200 pF/m (60 pF/ft). à The maximum length of any individual segment is 900 m (AWG18 cable; wire cross-section 0.82 mm²). With large cable lengths, an amplifier may have to be integrated in the bus to guarantee function. Standard setting of the interface: à à à à Baud rate: … and 90. Die erste Parametrierung des IO 420 sollte grundsätzlich mit Hilfe des GEZE Serviceterminals ST 220 erfolgen. Einmal eingestellt kann die Konfigurationsdatei „IO420_V1.CON“ auf eine microSD-Card kopiert und gegebenenfalls Changing the object name am PC weiter angepasst werden. Das so erstellte Profil kann dann mittels microSD-Card auf ein anderes IO 420 mit change gleicherisFirmware geladen werden. This carried out by editing the name file “IO420.BAC” at the PC (microSD card). diefor LED für microSD-Card blinkt, darf die microSD-Card nicht dem herausgenommen IfWenn the LED microSD card is flashing, the microSD card must not be aus taken outSlot of the slot. The IO 420 werden. must Zum Entfernen und Einstecken microSD-Card dasand IO 420 spannungslos schalten. be de-energised for the microSDder card to be removed inserted. der Modifizierung derbeen Konfigurationsdatei am PC sind folgende Punktemust zu beachten: XBei After the name file has edited and entered, the following function be carried out in the service à menu Der Parametername „=“ Zeichen darf --> nicht geändertSD werden. Das „=“ fungiert hier als for the changeseinschließlich to be applied:dem “Parameter SD-Card” “BAC-Name -> IO420”. Trennzeichen zwischen Titelteil und Wert. of BACnet object à Title Der Parameter-Wert darfName nur Zahlen enthalten. à 0.Device Die in den Klammern Angegebenen min./max. Werte beachten. object =BAC-PR47-232; 1.binary input … =not_used; 0.CAN_ADDR1(0~63) = 1; CAN-Adresse für Tür #1 4.binary input … =not_used; 1.CAN_ADDR2(0~63) = 0; CAN-Adresse für Tür #2 5.Multistate value … =module_type; 2.CAN_ADDR3(0~63) = 0; CAN-Adresse für Tür #3 6.Multistate value … =GEZE047AE1E2EL32A106000801; 3.CAN_ADDR4(0~63) = 0; CAN-Adresse für Tür #4 7.Multistate value … =TZ320_state; 4.BACNET_MACADR(0~127) = 1; BACnet MAC-Adresse 8.Multistate value … =alarm_details; 6.BACNET_BAUDRATE(0~6) = 5; 0 = nicht aktiv 2= 19,2 kB 4= 57,6 kB 6= 115,2 kB 10.Multistate value … =not_used; 8.VALUE_UTC_OFFSET(0~780) = 60; UTC-Zeit offset in Minuten; Betragswert ohne Vorzeichen; (z. B. DE = 60 Min.) 13.Multistate value … =not_used; 9.SIGN_UTC_OFFSET(1:-/0:+) = 1; Vorzeichen für UTC-Offset. … : negativer Offset 14.Multistate value 10 =not_used; 0: positiver Offset 15.Multistate value 11 =not_used; Offset = [UTC] - [local time], daher hat Deutschland einen negativen Wert. 16.Multistate value 12 =not_used; 10.CONF_OUTPUT3(0~4) = 0; Konfiguration von Ausgang … bei Türlösung 17.Multistate value 13 =not_used; 11.CONF_OUTPUT4(0~4) = 0; 0: Ausgang inaktiv 3: Geschlossen 18.Multistate value 14 =not_used; 1: Alarm 4: Verriegelt und Geschlossen. 19.Multistate value 15 =not_used; 2: Verriegelt 21.Notification class =xxxyyy; Der gültige Wertbereich für den jeweiligen Eingang ist je nach Modultyp anders. 12.INPUT1_TYPE(0~10) = 10; END OF FILE … Die folgende Liste dient zu Entschlüsselung der Nummern. Die Änderung der 13.INPUT2_TYPE(0~10) = 10; 14.INPUT3_TYPE(0~12) = 10; Eingänge muss über das GEZE Serviceterminal ST 220 erfolgen. 15.INPUT4_TYPE(0~12) = 10; inaktiv 7: Standflügel geschlossen The title part including the “=” sign must not0:be changed. The “=” has the function of separating the title and 1: Gangflügel entriegelt 8: KZF-GF (Befehl) BACnet name. The name of the individual BACnet devices may be changed. Care must be taken that the line ends 2: Gangflügel-entriegeln (Befehl) 9: ZSU-Master with a semicolon „;“ and the name does not3:contain 32 characters. Special characters may not be used, KZF-GF more und SFthan (Befehle) 10: Schalter-Funktion with the exception of space, underscore, hyphen, full stop and comma. 4: Gangflügel geschlossen 11: BMA für Universalmodul (Schließer) 5: BMA (Öffner) 12: RWA für Universalmodul (Schließer) 6: RWA (Öffner) 16.KZF1_ABORT(0/1) = 0; 17.KZF1_AFTERTRG(0/1) = 0; 18.KZF1_TIME(3~30) 19.KZF2_ABORT(0/1) = = 10; 0; 0: Kurzzeitfreigabe Tür #1 ist nicht unterbrechbar 1: Kurzzeitfreigabe Tür #1 ist unterbrechbar 0: Kurzzeitfreigabe Tür #1 kann nicht nachgetriggert werden 1: Kurzzeitfreigabe Tür #1 kann nachgetriggert werden Kurzzeitfreigabezeit Tür #1 (3 bis 30 Sekunden) 0: Kurzzeitfreigabe Tür #2 ist nicht unterbrechbar 1: Kurzzeitfreigabe Tür #2 ist unterbrechbar … 10 Wert Description Beschreibung Value 0.CAN_ADDR1(0~63) 0.CAN_ADDR1(0~63) 1.CAN_ADDR2(0~63) 1.CAN_ADDR2(0~63) 2.CAN_ADDR3(0~63) 2.CAN_ADDR3(0~63) 3.CAN_ADDR4(0~63) 3.CAN_ADDR4(0~63) 4.BACNET_MACADR(0~127) 4.BACNET_MACADR(0~127) 5.BACNET_DEVICEID(1~4194303) 5.BACNET_DEVICEID(1~4194303) 6.BACNET_BAUDRATE(0~6) 6.BACNET_BAUDRATE(0~6) == == == == == == == 1;1; 0;0; 0;0; 0;0; 1;1; 1;1; 5;5; 7.BACNET_NOTIFYCLASS(1~90) 7.BACNET_NOTIFYCLASS(1~90) 8.VALUE_UTC_OFFSET(0~780) 8.VALUE_UTC_OFFSET(0~780) 9.SIGN_UTC_OFFSET(1:-/0:+) 9.SIGN_UTC_OFFSET(1:-/0:+) 50; == 50; 60; == 60; == 1;1; 10.CONF_OUTPUT3(0~4) 10.CONF_OUTPUT3(0~4) 11.CONF_OUTPUT4(0~4) 11.CONF_OUTPUT4(0~4) == 0;0; == 0;0; 12.INPUT1_TYPE(0~10) 12.INPUT1_TYPE(0~10) 13.INPUT2_TYPE(0~10) 13.INPUT2_TYPE(0~10) 14.INPUT3_TYPE(0~12) 14.INPUT3_TYPE(0~12) 15.INPUT4_TYPE(0~12) 15.INPUT4_TYPE(0~12) == == == == 10; 10; 10; 10; 10; 10; 10; 10; 16.KZF1_ABORT(0/1) = 0; 16.KZF1_ABORT(0/1) 17.KZF1_AFTERTRG(0/1) == 0;0; 17.KZF1_AFTERTRG(0/1) 18.KZF1_TIME(3~30) 19.KZF2_ABORT(0/1) 18.KZF1_TIME(3~30) 19.KZF2_ABORT(0/1) == 0;10; = 0; = 10; = 0; 20.KZF2_AFTERTRG.(0/1) = 0; 21.KZF2_TIME(3~30) 22.KZF3_ABORT(0/1) = = 10; 0; CAN-Adresse fürdoor Tür #1 CAN address for CAN-Adresse fürdoor Tür #2 CAN address for CAN-Adresse fürdoor Tür #3 CAN address for CAN-Adresse fürdoor Tür #4 CAN address for BACnetMAC MAC-Adresse BACnet address BACnetDEVICE-ID DEVICE -ID BACnet nicht aktiv 2= … 76,8kB kB 1= 3= 5= Instanznummer Notification class object. Instance number des of the notification class object. UTC-Zeit offsetin inminutes; Minuten;amount Betragswert ohne Vorzeichen; (z.EN B. DE = min.) 60 Min.) UTC time offset shown without sign (e.g. = 60 Vorzeichen UTC-Offset. Sign for UTC für offset. : negativer Offset 11: negative offset positiver Offset 0:0:positive offset Offset==[UTC] [UTC]- -[local [localtime], time],which daherishat Deutschland einen negativen Wert. Offset why Germany has a negative value. Konfigurationofvon Ausgang bei Türlösung Configuration output … and3 4und for 4door solution Ausgang inaktiv Geschlossen 0:0:Output inactive 3:3:Closed Alarm Verriegelt Geschlossen. 1:1:Alarm 4:4:Locked andund closed. Verriegelt 2:2:Locked Dervalid gültige Wertbereich für respective den jeweiligen ist je nach Modultyp anders. The value range for the inputEingang varies depending on the module Die folgende Liste dient zu Entschlüsselung der Nummern. Die Änderung der type. Eingänge muss dasto GEZE Serviceterminal ST 220 erfolgen. The following listüber is used decipher the numbers. Changes to the inputs must be made using the GEZE service terminal ST 220. 0: inaktiv 7: Standflügel geschlossen Gangflügel entriegelt KZF-GFleaf (Befehl) 0:1:inactive 7:8:Passive closed Gangflügel-entriegeln (Befehl) ZSU-Master 1:2:Active leaf unlocked 8:9:KZF-AL (command) KZF-GFactive und SF (Befehle) Schalter-Funktion 2:3:Unlock leaf (command) 9:10: Time switch (ZSU) master Gangflügelrelease geschlossen 11:Switch BMA für Universalmodul (Schließer) 3:4:Short-term (KZF) active leaf 10: function 5: BMA 12:Fire RWA für Universalmodul (Schließer) (AL) and (Öffner) passive leaf (IL) (commands) 11: alarm system for universal module RWA (Öffner) 4:6:Active leaf closed (closer) 5:0:Fire alarm system (electric 12: RWA for universal module (closer) Kurzzeitfreigabe Tür #1 iststrike) nicht unterbrechbar 6:1:RWA (electric strike) Kurzzeitfreigabe Tür #1 ist unterbrechbar 0:0:Short-term releaseTür door notnicht interruptible Kurzzeitfreigabe #1#1 kann nachgetriggert werden 1:1:Short-term releaseTür door interruptible Kurzzeitfreigabe #1#1 kann nachgetriggert werden 0:Kurzzeitfreigabezeit Short-term release door #1(3 cannot triggered later Tür #1 bis 30be Sekunden) 1: Short-term release door #1 can be triggered later 0: Kurzzeitfreigabe Tür #2 ist nicht unterbrechbar Short-term release time (3 to 30 seconds) 1: Kurzzeitfreigabe Tür door #2 ist #1 unterbrechbar 0: Short-term release door #2 not interruptible 1: Short-term release door #2 interruptible 0: Short-term release door #2 cannot be triggered later 1: Short-term release door #2 can be triggered later Short-term release time door #2 (3 to 30 seconds) 0: Short-term release door #3 not interruptible 1: Short-term release door #3 interruptible GEZE IO 420  23.KZF3_AFTERTRG.(0/1) = 0; 24.KZF3_TIME(3~30) 25.KZF4_ABORT(0/1) = = 10; 0; 26.KZF4_AFTERTRG.(0/1) = 0; 27.KZF4_TIME(3~30) 28. ADJ_DAY_LIGHT_SAVING (0/1) = = 10; 1; 29.not_used = 0; 30.AL_SUPPR_DUR(0~250) 31.AL_DELAY_TIME(0~250) 32.MODULETYPE(0~15) = = = 50; 100; 10; 33.LOGFILE_LEVEL(0~2) = 0; 34.ZSUMASTER1_ACTIVITY(0/1) = 0; 35.ZSUMASTER1_SUNDAY(0/1) 36.ZSUMASTER1_MONDAY(0/1) 37.ZSUMASTER1_TUESDAY(0/1) 38.ZSUMASTER1_WEDNESDA(0/1) 39.ZSUMASTER1_THURSDAY(0/1) 40.ZSUMASTER1_FRIDAY(0/1) 41.ZSUMASTER1_SATURDAY(0/1) 42.ZSUMASTER1_START_HH(0~23) 43.ZSUMASTER1_START_MM(0~59) 44.ZSUMASTER1_END_HH(0~23) 45.ZSUMASTER1_END_MM(0~59) 46.ZSUMASTER2_ACTIVITY(0/1) = = = = = = = = = = = = 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; = = = = = = = 54.ZSUMASTER2_START_HH(0~23) = 55.ZSUMASTER2_START_MM(0~59) = 56.ZSUMASTER2_END_HH(0~23) = 57.ZSUMASTER2_END_MM(0~59) = 58.ZSUMASTER3_ACTIVITY(0/1) = 0; 0; 0; 0; 0; 0; 0; 0; 0; 59.ZSUMASTER3_SUNDAY(0/1) 60.ZSUMASTER3_MONDAY(0/1) 61.ZSUMASTER3_TUESDAY(0/1) 62.ZSUMASTER3_WEDNESDAY(0/1) 63.ZSUMASTER3_THURSDAY(0/1) 64.ZSUMASTER3_FRIDAY(0/1) 65.ZSUMASTER3_SATURDAY(0/1) 66.ZSUMASTER3_START_HH(0~23) 67.ZSUMASTER3_START_MM(0~59) 68.ZSUMASTER3_END_HH(0~23) 69.ZSUMASTER3_END_MM(0~59) 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 47.ZSUMASTER2_SUNDAY(0/1) 48.ZSUMASTER2_MONDAY(0/1) 49.ZSUMASTER2_TUESDAY(0/1) 50.ZSUMASTER2_WEDNESDAY(0/1) 51.ZSUMASTER2_THURSDAY(0/1) 52.ZSUMASTER2_FRIDAY(0/1) 53.ZSUMASTER2_SATURDAY(0/1) = = = = = = = = = = = 0; 0; 0; 0: Short-term release door #3 cannot be triggered later 1: Short-term release door #3 can be triggered later Short-term release time door #3 (3 to 30 seconds) 0: Short-term release door #4 not interruptible 1: Short-term release door #4 interruptible 0: Short-term release door #4 cannot be triggered later 1: Short-term release door #4 can be triggered later Short-term release time door #4 (3 to 30 seconds) 0: automatic switch over between summer and winter time is disabled. 1: automatic switch over between summer and winter time is enabled. Duration of the alarm suppression with “watchdog” module type in seconds Duration of the alarm delay with “watchdog” module type in seconds 1: Watchdog 9: Window 2: One-door solution 10: Universal 3: Two-door solution 11: RWS + KL400 4: Four-door solution 12: DCU 1, … + RWS + KL400 version 2) 15: MBZ300 smoke and heat extraction 7: Automatic stat. system 8: Automatic 4Sec 0: Level 0. No protocol is written in the log file 1: Level 1. Alarm messages are written in the log file 2: Level 2. Alarm messages and actions are written in the log file 0: as “ZSU master group 1” not active 1: as “ZSU master group 1” active Day configuration “ZSU master group 1” 0: as “ZSU master group 1” inactive on this day of the week 1: as “ZSU master group 1” active on this day of the week Start time “ZSU master group 1” Specification of “hours” 0-23; specification of “minutes” 0-59 End time “ZSU master group 1” Specification of “hours” 0-23; specification of “minutes” 0-59 0: as “ZSU master group 2” not active. 1: as “ZSU master group 2” active. Day configuration “ZSU master group 2”. 0: as “ZSU master group 2” inactive on this day of the week 1: as “ZSU master group 2” active on this day of the week Start time “ZSU master group 2” Specification of “hours” 0-23; specification of “minutes” 0-59 End time “ZSU master group 2” Specification of “hours” 0-23; specification of “minutes” 0-59 0: as “ZSU master group 3” not active. 1: as “ZSU master group 3” active. Day configuration “ZSU master group 3”. 0: as “ZSU master group 3” inactive on this day of the week 1: as “ZSU master group 3” active on this day of the week Start time “ZSU master group 3” Specification of “hours” 0-23; specification of “minutes” 0-59 End time “ZSU master group 3” Specification of “hours” 0-23; specification of “minutes” 0-59 11  GEZE IO 420 70.ZSUMASTER4_ACTIVITY(0/1) = 0; 71.ZSUMASTER4_SUNDAY(0/1) 72.ZSUMASTER4_MONDAY(0/1) 73.ZSUMASTER4_TUESDAY(0/1) 74.ZSUMASTER4_WEDNESDAY(0/1) 75.ZSUMASTER4_THURSDAY(0/1) 76.ZSUMASTER4_FRIDAY(0/1) 77.ZSUMASTER4_SATURDAY(0/1) 78.ZSUMASTER4_START_HH(0~23) 79.ZSUMASTER4_START_MM(0~59) 80.ZSUMASTER4_END_HH(0~23) 81.ZSUMASTER4_END_MM(0~59) 82.ZSUMASTER5_ACTIVITY(0/1) = = = = = = = = = = = = 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 83.ZSUMASTER5_SUNDAY(0/1) 84.ZSUMASTER5_MONDAY(0/1) 85.ZSUMASTER5_TUESDAY(0/1) 86.ZSUMASTER5_WEDNESDAY(0/1) 87.ZSUMASTER5_THURSDAY(0/1) 88.ZSUMASTER5_FRIDAY(0/1) 89.ZSUMASTER5_SATURDAY(0/1) 90.ZSUMASTER5_START_HH(0~23) 91.ZSUMASTER5_START_MM(0~59) 92.ZSUMASTER5_END_HH(0~23) 93.ZSUMASTER5_END_MM(0~59) 94.DOOR1_SLAVEZSU_GR1(0/1) 95.DOOR1_SLAVEZSU_GR2(0/1) 96.DOOR1_SLAVEZSU_GR3(0/1) 97.DOOR1_SLAVEZSU_GR4(0/1) 98.DOOR1_SLAVEZSU_GR5(0/1) = = = = = = = = = = = = = = = = 99.DOOR1_SLAVEZSU_ABORT(0/1) = 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 0; 100.DOOR2_SLAVEZSU_GR1(0/1) 101.DOOR2_SLAVEZSU_GR2(0/1) 102.DOOR2_SLAVEZSU_GR3(0/1) 103.DOOR2_SLAVEZSU_GR4(0/1) 104.DOOR2_SLAVEZSU_GR5(0/1) 105.DOOR2_SLAVEZSU_ABORT(0/1) = = = = = = 0; 0; 0; 0; 0; 0; 106.DOOR3_SLAVEZSU_GR1(0/1) 107.DOOR3_SLAVEZSU_GR2(0/1) 108.DOOR3_SLAVEZSU_GR3(0/1) 109.DOOR3_SLAVEZSU_GR4(0/1) 110.DOOR3_SLAVEZSU_GR5(0/1) 111.DOOR3_SLAVEZSU_ABORT(0/1) = = = = = 0; 0; 0; 0; 0; = 0; 112.DOOR4_SLAVEZSU_GR1(0/1) 113.DOOR4_SLAVEZSU_GR2(0/1) 114.DOOR4_SLAVEZSU_GR3(0/1) 115.DOOR4_SLAVEZSU_GR4(0/1) 116.DOOR4_SLAVEZSU_GR5(0/1) 117.DOOR4_SLAVEZSU_ABORT(0/1) = = = = = = 0; 0; 0; 0; 0; 0; 118.TYPE OF CP(0~3) = 0; END OF FILE … 12 0: as “ZSU master group 4” not active. 1: as “ZSU master group 4” active. Day configuration “ZSU master group 4” 0: as “ZSU master group 4” inactive on this day of the week 1: as “ZSU master group 4” active on this day of the week Start time “ZSU master group 4” Specification of “hours” 0-23; specification of “minutes” 0-59 End time “ZSU master group 4” Specification of “hours” 0-23; specification of “minutes” 0-59 0: as “ZSU master group 5” not active. 1: as “ZSU master group 5” active. Day configuration “ZSU master group 5” 0: as “ZSU master group 5” inactive on this day of the week 1: as “ZSU master group 5” active on this day of the week Start time “ZSU master group 5” Specification of “hours” 0-23; specification of “minutes” 0-59 End time “ZSU master group 5” Specification of “hours” 0-23; specification of “minutes” 0-59 Slave assignment of door #1 to “ZSU master group” … 0: Door #1 is not part of this ZSU group 1: Door #1 is part of this ZSU group 0: Time switch function for door #1 not interruptible 1: Time switch function for door #1 interruptible Slave assignment of door #2 to “ZSU master group” … 0: Door #1 is not part of this ZSU group 1: Door #1 is part of this ZSU group 0: Time switch function for door #2 not interruptible 1: Time switch function for door #2 interruptible Slave assignment of door #3 to “ZSU master group” … 0: Door #3 is not part of this ZSU group 1: Door #3 is part of this ZSU group 0: Time switch function for door #3 not interruptible 1: Time switch function for door #3 interruptible Slave assignment of door #4 to “ZSU master group” … 0: Door #4 is not part of this ZSU group 1: Door #4 is part of this ZSU group 0: Time switch function for door #4 not interruptible 1: Time switch function for door #4 interruptible 0: no CP 3: Pin “+24V” and “DET” of the connection “CP” are short-circuited together. 1: one CP “CP” are short-circuited together. 2: two CPs GEZE IO 420 … „Normalbetrieb“ blinken im 0,4 Sekunden-Takt gleichzeitig. Command DCU “shopund closed” X Wenn die LEDs blinken „Reset-Button“ loslassen. Command to DCU “automatic” X Um das Gerät in den Betriebsmodus zurückzusetzen, Spannungsversorgung aus- und wieder Command to DCU “permanently open” einschalten. Tab. 5: Pin assignment of module type “automatic” 16 … 0.CAN_ADDR1(0~63) = 1; CAN-Adresse für Tür #1 Relais_open_win2. This relay is enabled if window … 1.CAN_ADDR2(0~63) = 0; CAN-Adresse für Tür #2 Relais_close_win2.=This0;relay isCAN-Adresse enabled if window … 2.CAN_ADDR3(0~63) für Tür 2#3is to be closed. 3.CAN_ADDR4(0~63) = 0; CAN-Adresse für Tür #4 Tab. 6: Pin assignment of module type 4.BACNET_MACADR(0~127) = “window” 1; BACnet MAC-Adresse … 18 5.BACNET_DEVICEID(1~4194303) 6.BACNET_BAUDRATE(0~6) current state – current state = = 1; 5; stop 7.BACNET_NOTIFYCLASS(1~90) all outputs are disabled. 8.VALUE_UTC_OFFSET(0~780) 9.SIGN_UTC_OFFSET(1:-/0:+) = = = 50; 60; 1; closing 10.CONF_OUTPUT3(0~4) Output … is enabled. 11.CONF_OUTPUT4(0~4) = = 0; 0; 12.INPUT1_TYPE(0~10) 13.INPUT2_TYPE(0~10) 14.INPUT3_TYPE(0~12) opening 15.INPUT4_TYPE(0~12) Output … is enabled. = = = = 10; 10; 10; 10; 16.KZF1_ABORT(0/1) = 0; 17.KZF1_AFTERTRG(0/1) = 0; 18.KZF1_TIME(3~30) 19.KZF2_ABORT(0/1) = = 10; 0; BACnet DEVICE -ID 0 State = nicht aktiv to 2= 19,2 kB 4= 57,6 kBchanges with 6= 115,2 kB changes State 1= 9,6 kB 3= 38,4 kB 5= 76,8 kB opening à rising flank from input … 1 : negativer Offset à BACnet command “close window” 0: positiver Offset à CAN command “close window” Offset = [UTC] - [local time], daher hat Deutschland einen negativen Wert. opening à rising flank from input … bei Türlösung à BACnet command “open window” à CAN command “open window” 0: Ausgang inaktiv 3: Geschlossen 1:stop Alarm 4: Verriegelt und Geschlossen. à rising flank from input … à BACnet command “close window” 0: inaktiv 7: Standflügel geschlossen à CAN command “close window” 1: Gangflügel entriegelt 8: KZF-GF (Befehl) 2:stop Gangflügel-entriegeln (Befehl) 9: ZSU-Master à rising flank from input … 3: KZF-GF und SF (Befehle) 10: Schalter-Funktion à if the time of 90 sec has expired. 4: Gangflügel geschlossen 11: BMA für Universalmodul (Schließer) à BACnet command “stop” 5: BMA (Öffner) 12: RWA für Universalmodul (Schließer) à CAN command “stop” 6: RWA (Öffner) 0: Kurzzeitfreigabe Tür #1 ist nicht unterbrechbar 1: Kurzzeitfreigabe Tür #1 ist unterbrechbar 0: Kurzzeitfreigabe Tür #1 kann nicht nachgetriggert werden 1: Kurzzeitfreigabe Tür #1 kann nachgetriggert werden Kurzzeitfreigabezeit Tür #1 (3 bis 30 Sekunden) 0: Kurzzeitfreigabe Tür #2 ist nicht unterbrechbar 1: Kurzzeitfreigabe Tür #2 ist unterbrechbar GEZE IO 420 … „Normalbetrieb“ blinken im 0,4 Sekunden-Takt gleichzeitig. GF_locked (feedback) X Wenn die LEDs blinken „Reset-Button“ loslassen. à Release_AL factory setting) X Um das (command, Gerät in den Betriebsmodus zurückzusetzen, Spannungsversorgung aus- und wieder à KZF_AL_IL (command), triggered with rising flank. einschalten. à KZF_AL_IL (command, factory setting), triggered with rising flank. à AL_closed (feedback) à BMA (evaluated as electric strike) à RWA (evaluated as electric strike) à BMA (factory setting, electric strike) à RWA (electric strike) à IL_closed (feedback) à KZF_AL (command), triggered with rising flank. Release for IQ Lock EL Day/night for IQ Lock EL Feedback relay active when GF is locked Feedback relay active when GF is locked Tab. 8: Pin assignment of module type “IQ lock” 20 … „Normalbetrieb“ blinken im 0,4 Sekunden-Takt gleichzeitig. Command Ready Open Close Stop X Wenn die LEDs blinken „Reset-Button“ loslassen. Value … summarises various messages in binary code) Bit 0 (X-1) BUS fault Bit … (X-1) Alarm 25  GEZE IO 420 Information about the state of a fire section The points state_slot_x_CM/SM and alarm_slot_x_CM/SM provide information about the state of the control or sensor module. Value X (state CM / SM) State 1, 9, 33, 41, 65, OK 73, 97, 105 All other values GEZE IO 420Bit 0 (X-1) Bit … summarises various messages in binary code) Bit 0 (X-1) PM voltage, rechargeable battery, safety fuse F1 OK Schnittstellen / GEZE IOrechargeable 420 Bit … (X-1) Charge 0 à ST 220: verwendet für ST 220, IQ-Aut Standflügel. Bit … summarises various in binary Bit 0 (X-1) Rechargeable battery fault GEZE-Bus: DIP-Schalter Abschlusswiderstand „GEZE-Bus“ 120 Ohm X fuse Bit … is entered in IO 420 under “Buskonf.” “Konf. CAN” microSD “CAN-Adr”. (MBZ 300 = n, IO 420 MBZ = (n-1) ) microSD-Card If MBZ 300 IO 420 MBZ Die microSD-Card (SDHC) wird im FAT16/32-Fileformat geschrieben und gelesen. Andere Formate Parameter Value werden nicht unterstützt. Die Dateien des IO 420 können auf eine microSD-Card kopiert werden. Bus Hierfür address wird das ST 1220 .. 64benötigt. Gegebenenfalls können die Daten am PC weiter angepasst werden Bus (Parametrierung address 0 (MBZ-1) der BACnet-Namen). Das Profil kann dann mittels microSD-Card auf oder.. 63 Änderung ein anderes IO 420 mit gleicher Firmware geladen werden. Folgende Dateien werden auf der Karte300! erstellt: à Do not use any vent groups and runtime mode in MBZ à Namensdatei BACnet-Namen: „IO420_V1.BAC“; à If IO 420 MBZ firmware has beenfür reloaded to a IO 420, the IO 420 must then be reset to factory settings (see à Konfigurationsdatei: „IO420_V1.CON“; beinhaltet alle Parameter des IO 420. chapter 7). à Log-Datei: „IO420_00.LOG“ à The current MBZ module configuration mustbis be„IO420_39.LOG“; configured under “Modulkonf.”. Je nach Einstellung werden Alarmmeldungen und Aktionen in die Log-Datei geschrieben. LED für microSD-Card blinkt, MBZ darf die microSD-Card nichtisaus dem Slot herausgenommen werden. If theWenn CAN die address is changed, the current module configuration lost. Zum Entfernen und Einstecken der microSD-Card das IO 420 spannungslos schalten. … GEZE IO 420 Servicemenü Level 0 Level … RWS + KL400 BusConf. Conf.BACnet MAC-Addr. 0~100 … Device-ID 0~4194303 … 2nd CAN-address: 1~63 0 3rd CAN-address: (with 4-door sol.) 4th CAN-address: (with 4-door sol.) Enable ZSU1 1~63 0 1~63 0 Yes/no No 0~23 0~59 0~23 0~59 Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no 0 0 0 0 No No No No No No No ZSU1 start time ZSU1 end time ZSU1 weekday 38 … ZSU3 end time ZSU3 Weekdays ZSU4 end time ZSU4 Weekdays ZSU5 end time ZSU5 Weekdays Change date Change time 0~23 0~59 0~23 0~59 Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no 0 0 0 0 No No No No No No No No ZSU4 start hour ZSU4 start minute ZSU4 end hour ZSU4 end minute ZSU4 Sunday ZSU4 Monday ZSU4 Tuesday ZSU4 Wednesday ZSU4 Thursday ZSU4 Friday ZSU4 Saturday 0~23 0~59 0~23 0~59 Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no 0 0 0 0 No No No No No No No No ZSU5 start hour ZSU5 start minute ZSU5 end hour ZSU5 end minute ZSU5 Sunday ZSU5 Monday ZSU5 Tuesday ZSU5 Wednesday ZSU5 Thursday ZSU5 Friday ZSU5 Saturday 0~23 0~59 0~23 0~59 Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no 0 0 0 0 No No No No No No No 10~99 1~12 1~31 0~23 0~59 0~59 Yes/no 12 … 22 11 57 0 Yes German/English/ French Level 0 to level … German Local time Change year Change month Change day Hour Minute Second Conf. summer time Conf. language Conf. log file System info Factory setting ZSU3 start hour ZSU3 start minute ZSU3 end hour ZSU3 end minute ZSU3 Sunday ZSU3 Monday ZSU3 Tuesday ZSU3 Wednesday ZSU3 Thursday ZSU3 Friday ZSU3 Saturday Enable ZSU5 ZSU5 start time Device conf. Date/time display 0 0 0 0 No No No No No No No No Enable ZSU4 ZSU4 start time ZSU master size … No 0~23 0~59 0~23 0~59 Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Yes/no Enable ZSU3 ZSU3 start time ZSU master size … Yes/no ZSU2 start hour ZSU2 start minute ZSU2 end hour ZSU2 end minute ZSU2 Sunday ZSU2 Monday ZSU2 Tuesday ZSU2 Wednesday ZSU2 Thursday ZSU2 Friday ZSU2 Saturday Level 0 HW ver.: SW ver. : Ser.no. : Sys.err : Reset parameter Reset BAC name Reset BAC description Reset all 39  GEZE IO 420 watchdog Parameters SD card Conf. door … KZF1 duration 3~90 KZF1 abort Yes/ No KZF1 retrigger Yes/ No Alarm suppression 0 ~ 250 50 Alarm delay 0~250 100 Param. IO420 -> SD Param. SD->IO420 BAC-Name IO420 -> SD BAC-Name SD>IO420 … „Normalbetrieb“ blinken im 0,4 Sekunden-Takt gleichzeitig. Firmware updates are LED provided by GEZE electronic form. X Wenn die LEDs blinken „Reset-Button“ loslassen. Copy the .hex file to the directory “../FlashData/IO420”. X Um das Gerät in den Betriebsmodus zurückzusetzen, Spannungsversorgung aus- und wieder X Open “IO420_Flasher.bat” using the text editor. einschalten. If the files reference is “IO420_V1.hex”, it must be changed to “IO420_V1”. CORRECT: “..\Flasher\STM32\ProgSTM32Pfs.bat 11 ..\FlashData\IO420\IO420_V1” X Save file. X Switch off the voltage supply for the IO 420. X Connect the adapter cable (mat. no.: 130829) to the IO 420. … ..\FlashData\IO420\IO420_V1 Fig. 7: COM port setting in the device manager X Execute “IO420_Flasher.bat” file again. The update progress is displayed in the window. The process takes several minutes. Fig. 8: Firmware update in progress. X Switch off the voltage supply, unplug the cable. X Re-boot IO 420. X After the firmware update the IO 420 must be reset to factory settings. 42 GEZE IO 420  43 Germany GEZE GmbH Niederlassung Süd-West Tel. +49 (0) 7152 203 594 E-Mail: leonberg.de@geze.com China GEZE Industries (Tianjin) Co., Ltd. E-Mail: chinasales@geze.com.cn www.geze.com.cn Korea GEZE Korea Ltd. E-Mail: info.kr@geze.com www.geze.com GEZE Industries (Tianjin) Co., Ltd. Branch Office Shanghai E-Mail: chinasales@geze.com.cn www.geze.com.cn Poland GEZE Polska Sp.z o.o. E-Mail: geze.pl@geze.com www.geze.pl GEZE Industries (Tianjin) Co., Ltd. Branch Office Guangzhou E-Mail: chinasales@geze.com.cn www.geze.com.cn Romania GEZE Romania S.R.L. E-Mail: office-romania@geze.com www.geze.ro GEZE Industries (Tianjin) Co., Ltd. Branch Office Beijing E-Mail: chinasales@geze.com.cn www.geze.com.cn Russia OOO GEZE RUS E-Mail: office-russia@geze.com www.geze.ru France GEZE France S.A.R.L. E-Mail: france.fr@geze.com www.geze.fr Scandinavia – Estonia GEZE Scandinavia AB eesti filial E-Mail: estonia@geze.com www.geze.ee Hungary GEZE Hungary Kft. E-Mail: office-hungary@geze.com www.geze.hu Scandinavia – Finland GEZE Scandinavia AB Filial Finland E-Mail: finland@geze.com www.geze.fi GEZE Service GmbH Tel. +49 (0) 1802 923392 E-Mail: service-info.de@geze.com Iberia GEZE Iberia S.R.L. E-Mail: info.es@geze.com www.geze.es Scandinavia – Latvia GEZE Scandinavia AB Latvijas filiāle E-Mail: latvia@geze.com www.geze.lv Austria GEZE Austria E-Mail: austria.at@geze.com www.geze.at India GEZE India Private Ltd. E-Mail: office-india@geze.com www.geze.in Scandinavia – Lithuania GEZE Scandinavia AB Filial Lietu. E-Mail: lithuania@geze.com www.geze.lt Benelux GEZE Benelux B.V. E-Mail: benelux.nl@geze.com www.geze.be www.geze.nl Italy GEZE Italia S.r.l. Unipersonale E-Mail: italia.it@geze.com www.geze.it Scandinavia – Sweden GEZE Scandinavia AB E-Mail: sverige.se@geze.com www.geze.se GEZE Engineering Roma S.r.l E-Mail: italia.it@geze.com www.geze.it Scandinavia – Norway GEZE Scandinavia AB avd. Norge E-Mail: norge.se@geze.com www.geze.no GEZE GmbH Niederlassung Süd-Ost Tel. +49 (0) 7152 203 6440 E-Mail: muenchen.de@geze.com GEZE GmbH Niederlassung Ost Tel. +49 (0) 7152 203 6840 E-Mail: berlin.de@geze.com GEZE GmbH Niederlassung Mitte/Luxemburg Tel. +49 (0) 7152 203 6888 E-Mail: frankfurt.de@geze.com GEZE GmbH Niederlassung West Tel. +49 (0) 7152 203 6770 E-Mail: duesseldorf.de@geze.com GEZE GmbH Niederlassung Nord Tel. +49 (0) 7152 203 6600 E-Mail: hamburg.de@geze.com Bulgaria GEZE Bulgaria - Trade E-Mail: office-bulgaria@geze.com www.geze.bg GEZE GmbH Reinhold-Vöster-Straße 21–29 71229 Leonberg Germany Tel.: 0049 7152 203 0 Fax.: 0049 7152 203 310 info@geze.com ∙ www.geze.com Scandinavia – Denmark GEZE Danmark E-Mail: danmark.se@geze.com www.geze.dk Singapore GEZE (Asia Pacific) Pte, Ltd. E-Mail: gezesea@geze.com.sg www.geze.com South Africa GEZE South Africa (Pty) Ltd. E-Mail: info@gezesa.co.za www.geze.co.za Switzerland GEZE Schweiz AG E-Mail: schweiz.ch@geze.com www.geze.ch Türkiye GEZE Kapı ve Pencere Sistemleri E-Mail: office-turkey@geze.com www.geze.com Ukraine LLC GEZE Ukraine E-Mail: office-ukraine@geze.com www.geze.ua United Arab Emirates/GCC GEZE Middle East E-Mail: gezeme@geze.com www.geze.ae United Kingdom GEZE UK Ltd. E-Mail: info.uk@geze.com www.geze.com

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Installation instructions

63 GEZE Glass Fittings PT 63, PT 84, PT 90 PT 63 PT 90 PT 90 PT 90 PT 90 PT 84 PT 90 177996-00 PT 63 PT 84 PT 90 … ESG 12 mm PT 63 … 5 mm PT 63 … GEZE GmbH Reinhold-Vöster-Strasse 21–29 71229 Leonberg Germany PT 90 PT 84 PT 63 click Tel.: 0049 7152 203-0 Fax: 0049 7152 203-310 www.geze.com

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Product data sheet

63 AREAS OF APPLICATION For fixed toughened glass assemblies For glass thicknesses 10 and 12 mm For internal and external systems Glass Fitting fanlight and connector fitting with end stop AREAS OF APPLICATION For fixed toughened glass assemblies For glass thicknesses 10 and 12 mm For internal and external systems GEZE GmbH Reinhold-Vöster-Straße 21–29 D-71229 Leonberg TEL +49 7152 203-0 2026-08-15T02:26:36Z WEB www.geze.de Mail info.de@geze.com Product data sheet | Page … PT 63 PRODUCT FEATURES Elegant cover caps made of polished or brushed stainless steel Problem-free adjustment to glass thicknesses of 10 – 12 mm TECHNICAL DATA Productname PT 63 Dimensions 105 x 32 x 105 mm Width 32 mm Length 105 mm Height 105 mm Glass thickness (min.) 10 mm Glass thickness (max.) 12 mm Type of installation Glass installation VARIANTS / ORDER INFO Designation Description Ident-No. EAN Colour GEZE Glass Fitting PT 63 Bracket/corner connecting fitting with end stop 169768 4042938697682 Satin stainless steel 105 x 32 x 105 mm GEZE Glass Fitting PT 63 Bracket/corner connecting fitting with end stop 180484 4042938804844 Polished stainless steel GEZE GmbH Reinhold-Vöster-Straße 21–29 D-71229 Leonberg TEL +49 7152 203-0 2026-08-15T02:26:36Z WEB www.geze.de Dimensions 105 x 32 x 105 mm Mail info.de@geze.com

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Installation instructions

63 63 zweiter Antrieb RSZ 24V 62 62 RSZ 24V RSZ GND 61 61 RSZ GND ALARM NO 12 ALARM COM 11 ALARM NC 10 Eingang RS … Siehe Zulassung EMD F/R Mat. Nr. 142194 Ä-St. 0 Beiblatt EMD F und EMD F-IS mit integriertem Rauchschalter ORS141 1/4 *) Türantrieb EMD F mit integriertem Rauchschalter Steuerung DCU2-F DCU201 Integrierter RS ORS141 JP2 61 RSZ GND 63 zweiter Antrieb 62 RSZ 24V 61 RSZ GND ALARM NO 12 ALARM COM 11 ALARM NC 10 Eingang RS … Siehe Zulassung EMD F/R Mat. Nr. 142194 Ä-St. 0 Beiblatt EMD F und EMD F-IS mit integriertem Rauchschalter ORS141 2/4 Connection of smoke switch ORS141 to control unit DCU2-F • Observe the wiring diagram Slimdrive EMD, EMD F Abbreviations GF SF RSZ 24V RSZ GND RS • • • Active leaf drive Fixed leaf drive Input, hold-open + Input, hold-open – Smoke switch Remove Jumper JP1 (black) if circuit breaker is connected Remove Jumper JP2 (red) if additional smoke switches are connected For additional information, see wiring diagram, chapter Smoke switch control unit Door drive EMD F-IS with integrated smoke switch *) GF control unit DCU2-F DCU201 Integrated RS ORS141 ALARM NO 12 JP2 JP1 SF control unit DCU2-F DCU201 RSZ GND 61 61 RSZ GND Second drive 63 63 Second drive RSZ 24V 62 62 RSZ 24V RSZ GND 61 61 RSZ GND ALARM COM 11 ALARM NC 10 Input RS … *) See approval EMD F/R Mat. No. 142194 State of change 0 Max. … Supplementary sheet EMD F and EMD F-IS with integrated smoke switch ORS141 3/4 Door drive EMD F with integrated smoke switch *) Control unit DCU2-F DCU201 Integrated RS ORS141 JP2 JP1 61 RSZ GND 63 Second drive 62 RSZ 24V 61 RSZ GND ALARM NO 12 ALARM COM 11 ALARM NC 10 Input RS … See approval EMD F/R Mat. No. 142194 State of change 0 Supplementary sheet EMD F and EMD F-IS with integrated smoke switch ORS141 4/4

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Installation instructions

0 mm M5 x L (Form SK) Ø 4,0 mm Ø 3,0 mm 390 63 44 148263-00 195 V1 V2 H min. H min. 200 400 mm 200 400 mm 400 600 mm 400 400 mm … 4 Klick! Klick! GEZE GmbH P.O.Box 1363 71229 Leonberg Germany Tel.: 0049 7152 203-0 Fax: 0049 7152 203-310 www.geze.com 148263-00

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Installation instructions

63 B A … mm 53 /63 click 53/ 63 … DL-RD DL-FL 10 Nm GEZE GmbH Reinhold-Vöster-Strasse 21–29 71229 Leonberg Germany Tel.: 0049 7152 203-0 Fax: 0049 7152 203-310 www.geze.com

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Installation instructions

63,5 a/2 20 a … 2 20 a 63,5 B 526,5 Ø12 85 (4) (4)14/20 20 286,5 478,5 a … (32,5) 11,5 11,5 63,5 20 20 1573 … 63,5 1600 273,5 (32,5) … 1053 1573 1600 436,5 Ø12 63,5 85 35 20 176,5 35 11,5 … GEZE GmbH Reinhold-Vöster-Strasse 21–29 71229 Leonberg Germany Tel.: 0049 7152 203-0 Fax: 0049 7152 203-310 www.geze.com s

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