Securitron M32 Magnalock EPD
Open the original PDF document
View PDFENVIRONMENTAL PRODUCT DECLARATION
HANCHETT ENTRY SYSTEMS, INC
SECURITRON M32MAGNALOCK
Magnetic lock providing 600lbs of holding force: fully sealed electronics are protected from water and dust, surface mounted with minimal tools, mounted using steel machine screws into finishing nuts, ten feet [3.05m] of jacketed, stranded conductor, operates with 12 or 24V DC power
ASSA ABLOY is committed to providing products and services that are environmentally sound throughout the entire production process and the product lifecycle. Our unconditional aim is to make sustainability a central part of our business philosophy and culture, but even more important is the job of integrating sustainability into our business strategy. The employment of EPDs will help architects, designers and LEED-APs select environmentally preferable door openings. The Securitron M32 Magnalock EPD provides detailed requirements with which to evaluate the environmental and human health impacts related to producing our door openings. ASSA ABLOY will continue our efforts to protect the environment and health of our customers/end users and will utilize the EPD as one means to document those efforts.
Securitron M32 Magnalock
According to EN 15804 and ISO 14025 Dual Recognition by UL Environment and Institut Bauen und Umwelt e.V.
This declaration is an environmental product declaration (EPD) in accordance w ith ISO 14025. EPDs rely on Life Cycle Assessment (LCA) to provide information on a number of environmental impacts of products over their life cycle. Exclusions: EPDs do not indicate that any environmental or social performance benchmarks are met, and there may be impacts that they do not encompass. LCAs do not typically address the site-specific environmental impacts of raw material extraction, nor are they meant to assess human health toxicity. EPDs can complement but cannot replace tools and certifications that are designed to address these impacts and/or set performance thresholds – e.g. Type 1 certifications, health assessments and declarations, environmental impact assessments, etc. Accuracy of Results: EPDs regularly rely on estimations of impacts, and the level of accuracy in estimation of effect differs for any particular product line and reported impact. Comparability: EPDs are not comparative assertions and are either not comparable or have limited comparability w hen they cover different life cycle stages, are based on different product category rules or are missing relevant environmental impacts. EPDs from different programs may not be comparable.
| PROGRAM OPERATOR | UL Environment | ||||||
|---|---|---|---|---|---|---|---|
| DECLARATION HOLDER | ASSA ABLOY / Hanchett Entry Systems, Inc / Securitron | ||||||
|
ULE DECLARATION NUMBER
4786545067.137.1 |
|||||||
| IBU DECLRATION NUMBER | EPD-ASA-20150135-IBA1-EN | ||||||
| DECLARED PRODUCT | Securitron M32 Magnalock | ||||||
| REFERENCE PCR | Locks and fittings, 07.2014 | ||||||
| DATE OF ISSUE | May 18, 2015 | ||||||
| PERIOD OF VALIDITY | 5 years | ||||||
|
General information
Product / Product description CONTENTS OF THE LCA calculation rules DECLARATION LCA scenarios and further technical information LCA results References |
|||||||
| The PCR review was conducted by: | IBU – Institut Bauen und Umwelt e.V. | ||||||
|
PCR was approved by the Independent Expert
Committee (SVA) |
|||||||
|
The CEN Norm EN 15804 serves as the core PCR. This declaration
was independently verified in accordance with ISO 14025 by Underwriters Laboratories |
|||||||
|
☐
INTERNAL |
☒
EXTERNAL |
Wade Stout | |||||
| with EN 15804 and the reference PCR by: | This life cycle assessment was independently verified in accordance | IBU – Institut Bauen und Umwelt e.V. | |||||
1. General Information
Hanchett Entry Systems, Inc Securitron M32 Magnalock
Programme holder
IBU - Institut Bauen und Umwelt e.V. Panoramastr. 1 10178 Berlin Germany
Declaration number
EPD-ASA-20150135-IBA1-EN
This Declaration is based on the Product Category Rules:
Locks and fittings , 07.2014 (PCR tested and approved by the independent expert committee (SVA))
Issue date
18.05.2015
Valid to
17.05.2020
Prof. Dr.-Ing. Horst J. Bossenmayer (President of Institut Bauen und Umwelt e.V.) internally x externally
Dr.-Ing. Burkhart Lehmann (Managing Director IBU)
Owner of the Declaration
Hanchett Entry Systems, Inc 10027 S 51st Street, Suite 102 Phoenix, AZ 85044
Declared product / Declared unit
The declaration represents 1 magnetic lock – Securitron M32 Magnalock consisting of the following items:
- Securitron M32 Magnetic Lock
- Strike
- Mounting Hardware
Scope:
This declaration and its LCA study are relevant to Securitron M32 Magnalock.
The primary manufacturing processes are made by external suppliers and the final manufacturing processes and assembly for occur at the manufacturing factory in Phoenix, Arizona, USA.
The owner of the declaration shall be liable for the underlying information and evidence; the IBU shall not be liable with respect to manufacturer information, life cycle assessment data and evidences.
Verification
The CEN Standard EN 15804 serves as the core PCR Independent verification of the declaration according to ISO 14025
Dr. Wolfram Trinius (Independent verifier appointed by SVA)
2. Product
2.1 Product description
Product name: Securitron M32 Magnalock
Product characteristic: 600lb Magnetic Door Lock
- Magnetic lock providing 600lbs of holding force
- Fully sealed electronics are protected from water and dust
- Surface mounted with minimal tools
- Mounted using steel machine screws into finishing nuts
- Architectural brushed stainless steel finish (US32D/630)
- Ten feet [3.05m] of jacketed, stranded conductor
- Operates with 12 or 24V DC power
- UL Listed
2.2 Application
Securitron M32 Magnalocks are designed for: The Securitron M32 Magnalock can be used indoors or outdoors to secure high traffic, glass, wood or metal doors.
2.3 Technical Data
The table presents the technical properties of Securitron M32 Magnalock:
Technical data
| Parameter | Value | Unit |
|---|---|---|
| Holding Force | 600 | lbs. |
|
Current Draw and
Voltage |
300mA at
12VDC |
mA
and VDC |
|
Operating
Temperature |
-40 to +140 | °F |
| Shipping Weight | 6 | lbs. |
2.4 Placing on the market / Application rules
The standards that can be applied for Securitron M32 Magnalocks are:
- UL10C
- UL294
- ANSI/BHMA A156.23
2.5 Delivery status
Securitron M32 Magnalocks is delivered as in a box size - 380 mm x 185 mm x 26 mm
2.6 Base materials / Ancillary materials
The average composition for Securitron M32 Magnalocks is as following:
| Component | Percentage in mass (%) |
|---|---|
| Copper | 9.4 |
| Steel | 62.2 |
| Stainless steel | 7.6 |
| Zinc | 0.04 |
| Electronics | 0.8 |
| Electro mechanics | 0.2 |
| Urethane | 8.6 |
| Others | 11.1 |
| Total | 100.0 |
2.7 Manufacture
The primary manufacturing processes are made by Tier 1 suppliers and the final manufacturing processes occur at in factory Phoenix, Arizona.
The electronics and mechanics are produced in China, Mexico and USA. The components come from processes like stamped steel, turning, zinc and steel casting. Final assembly takes place in the United States.
The factory of Phoenix has a certification of Quality Management system in accordance with ISO 9001:2008
2.8 Environment and health during manufacturing
ASSA ABLOY is committed to producing and distributing door opening solutions with minimal environmental impact, where health & safety is the primary focus for all employees and associates.
- Environmental operations, GHG, energy, water, waste, VOC, surface treatment and H&S are being routinely monitored. Inspections, audits, and reviews are conducted periodically to ensure that applicable standards are met and environmental management program effectiveness is evaluated.
- Code of Conduct covers human rights, labor practices and decent work. Management of ASSA ABLOY is aware of their roles and responsibilities, providing appropriate training, supporting accountability and recognizing outstanding performance.
- Any waste metals during machining are separated and recycled. The waste from the water-based painting process is delivered to waste treatment plant.
2.9 Product processing/Installation
Securitron M32 Magnalocks are distributed through and installed by trained installation technicians, such as locksmiths, carpenters etc. adhering to local/national standards and requirements
2.10 Packaging
Securitron M32 Series Magnalocks are packed in a cardboard box with corrugated carton inlays. The packaging is fully recyclable. Separate lock case package with dimensions: 380 mm x 185 mm x 26 mm 80% of carton is made from recycled material 100% of packaging paper are made from recycled material.
| Material | Value (%) | |||||
|---|---|---|---|---|---|---|
| Cardboard/paper | 100.0 | |||||
| Total | 100.0 | |||||
2.11 Condition of use
To maintain a strong bond, dust debris and corrosion should be removed by cleaning with rubbing alcohol or a silicon based cleaner and a clean cloth. Cleaning once per year is usually sufficient.
2.12 Environment and health during use
There is no harmful emissive potential. No damage to health or impairment is expected under normal use corresponding to the intended use of the product.
2.13 Reference service life
Approved for 1,000,000 cycles under normal working conditions, 20 years depending on cycle frequency.
2.14 Extraordinary effects
Fire
Suitable for use in fire and smoke doors (EN 14846)
Water
Contain no substances that have any impact on water in case of flood. Electric operation of the device will be influenced negative.
Mechanical destruction
No danger to the environment can be anticipated during mechanical destruction.
2.15 Re-use phase
The majority, of components is steel, iron and copper which can be recycled. The magnalocks can be mechanically dissembled to separate the different materials. The plastic components can be used for energy recovery in an incineration plant.
The product is possible to re-use during the reference service life and be moved to one door to another.
2.16 Disposal
The product can be mechanically dissembled to separate the different materials. 89% of the materials used are recyclable. The rest is disposed as a construction waste for landfill.
2.17 Further information
Hanchett Entry Systems, Inc. 10027 S. 51st St, Ste. 102 Phoenix, AZ 85044
Tel: 1-800-626-7590 http://www.securitron.com www.ASSAABLOYdss.com
3. LCA: Calculation rules
3.1 Declared Unit
The declaration refers to the functional unit of 1 piece of Securitron M32 Magnalock as specified in Part B requirements on the EPD for PCR Locks and fittings: (mechanical & electromechanical locks & fittings)
Declared unit
| Name | Value | Unit |
|---|---|---|
| Declared unit | 1 |
1 piece of
magnet |
|
Mass of product (without
packaging) |
2.45 | kg |
| Conversion factor to 1 kg | 0.408 | - |
3.2 System boundary
Type of the EPD: cradle to gate - with Options The following life cycle phases were considered:
Production stage:
- A1 Raw material extraction and processing
- A2 Transport to the manufacturer and
- A3 Manufacturing
Construction stage:
- A4 Transport from the gate to the site
- A5 Packaging waste processing
The use stage:
B2 - Maintenance (cleaning of the locks)
Use stage related to the operation of the building includes:
B6 – Operational energy use
End-of-life stage:
- C2 Transport to waste processing
- C3 Waste processing for recycling
- C4 Disposal (landfill)
This includes provision of all materials, products and energy, packaging processing and its transport, as well as waste processing up to the end-of waste state or disposal of final residues.
D - Declaration of all benefits or recycling potential from EOL and A5.
3.3 Estimates and assumptions
Use Phase:
For the use phase, it is assumed that the electric strike is used in the United States of America, thus an US electricity grid mix is considered within this stage.
EoL:
In the End-of-Life phase, for all the materials which can be recycled, a recycling scenario with 100% collection rate was assumed
3.4 Cut-off criteria
In the assessment, all available data from the production process are considered, i.e. all raw materials used, auxiliary materials (e.g. lubricants),
thermal energy consumption and electric power consumption - including material and energy flows contributing less than 1% of mass or energy (if available). In case a specific flow contributing less than 1% in mass or energy is not available, worst case assumption proxies are selected to represent the respective environmental impacts.
Impacts relating to the production of machines and facilities required during production are out of the scope of this assessment.
3.5 Background data
For life cycle modeling of the considered products, the GaBi 6 Software System for Life Cycle Engineering, developed by PE INTERNATIONAL AG, is used /GaBi 6 2013/. The GaBi-database contains consistent and documented datasets which are documented in the online GaBi-documentation /GaBi 6 2013D/.
To ensure comparability of results in the LCA, the basic data of GaBi database were used for energy, transportation and auxiliary materials.
3.6 Data quality
The requirements for data quality and background data correspond to the specifications of the /IBU PCR PART A/.
PE INTERNATIONAL performed a variety of tests and validations during the commission of the present study in order to ensure its quality of the present document and results. This obviously includes an extensive review of project-specific LCA models as well as the background data used.
The technological background of the collected data reflects the physical reality of the declared products. The datasets are complete and conform to the system boundaries and the criteria for the exclusion of inputs and outputs.
All relevant background datasets are taken from the GaBi 6 software database. The last revision of the used background data has taken place not longer than 10 years ago.
3.7 Period under review
The period under review is 2013/14 (12 month average).
3.8 Allocation
Regarding incineration, the software model for the waste incineration plant (WIP) is adapted according to the material composition and heating value of the combusted material. In this EPD, the following specific life cycle inventories for the WIP are considered for:
- Waste incineration of plastic
- Waste incineration of paper
- Waste incineration of electronic scrap
Regarding the recycling material of metals, the metal parts in the EoL are declared as end-of-waste status. Thus, these materials are considered in module D. Specific information on allocation within the background data is given in the GaBi dataset documentation.
3.9 Comparability
Basically, a comparison or an evaluation of EPD data is only possible if all the data sets to be compared
were created according to /EN 15804/ and the building context, respectively the product-specific characteristics of performance, are taken into account.
4. LCA: Scenarios and additional technical information
The following technical information is a basis for the declared modules or can be used for developing specific scenarios in the context of a building assessment if modules are not declared (MND).
Installation into the building (A5)
| Name | Value | Unit |
|---|---|---|
|
Output substances following waste
treatment on site (Paper packaging) |
0.07 | kg |
Maintenance (B2)
| Name |
Value
Unit |
||||||
|---|---|---|---|---|---|---|---|
| Water for cleaning | 0.5 | kg/a | |||||
Reference service life
| Name | Value | Unit |
|---|---|---|
| Reference service life | 20 | a |
Operational energy use (B6)
| Name | Value | Unit |
|---|---|---|
| Electricity consumption | 604 | kWh |
| Days per year in use | 365 | d |
| Hours per day in on mode | 23 | h |
| Power consumption per mode in W | 3.6 | W |
End of life (C1-C4)
| Name | Value | Unit |
|---|---|---|
| Collected separately Copper, stainless | ||
| steel, steel. zinc, electronics, electro | 2.45 | kg |
| mechanics, urethane | ||
| Collected as mixed construction waste | 0.27 | kg |
| – construction waste for landfilling | ||
| Reuse Plastics / Urethane | 0.21 | kg |
| Recycling Copper, stainless steel, | ||
| steel. zinc, electronics, electro | 2.24 | kg |
| mechanics | ||
| Landfilling - Construction waste for | 0.21 | kg |
| landfilling |
Reuse, recovery and/or recycling potentials (D), relevant scenario information
| Name | Value | Unit |
|---|---|---|
| Collected separately waste type | ||
| (including packaging) | 2.25 | kg |
| Recycling Copper | 9.1 | % |
| Recycling Stainless steel | 7.4 | % |
| Recycling Steel | 60.6 | % |
| Recycling Zinc | 0.04 | % |
| Recycling Electronics | 0.8 | % |
| Recycling Electro mechanics | 0.2 | % |
| Reuse Plastics / urethane | 8.3 | % |
| Reuse Paper packaging (from A5) | 2.7 | % |
|
Loss Construction waste for landfilling
(no recycling potential) |
10.8 | % |
5. LCA: Results
Results shown below were calculated using CML 2001 – Apr. 2013 Methodology.
| DESC | RIPT | ON O | F THE | SYST | EM E | 30L | JND | ARY | X = IN | CLUDE | DI | N LCA | : MND = | = MODI | JLE N | OT D | ECLA | RED) | ||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| CRIPTION OF THE SYSTEM BOUNDARY (X = INCLUDED IN LCA; MN | , | FITS AND | ||||||||||||||||||
| TRUCTI | OADS | |||||||||||||||||||
| PROD | OUCT S | TAGE | ON PR | OCESS | USE STAGE | ND OF LII | OND THE | |||||||||||||
| STA | AGE | /STEM | ||||||||||||||||||
| BOU | NDARYS | |||||||||||||||||||
| e . | _ | Operational energy | . | | _ | p | |||||||||||||||
|
|
Manufacturing | ransport from the | ĕ | Replacement 1) | r_ | ĕ | ä | ļ. ē _ | Sir | |||||||||||
| eri | ort | uri | no s | JU. | . _ | Jer | ne | e | | ≤ | 달 | 1 5 | es | g | 4 | جَ ۾ ھ | |||||
| p d | sp | ıct | |‡ † | Ē | Use | มร | ba | eπ | ř | ag g | iona |
nstri
nolit |
ds | 8 | 80 | ) Sr | Sil Sil | |||
|
Raw material
supply |
Transport | ufa | 호 호 | Assembly | Š | Maintenance | Repair | ac | bis | [0] | : [2] |
use
-constructi demolition |
Transport | д | Disposal | Reuse- |
Recovery-
Recycling- potential |
|||
|
a
8 |
Ļ | an |
sp
te |
As | ai | g | Ţ. | ä | ā | 무우 | Ë | ię. | ۱ ۴ ر | 8 8 g | ||||||
| ∝ | Σ | Transport from the gate to the site | 2 | A A | Refurbishment 1) | je. |
Use
Operational water |
De-construction demolition | Waste processing | |||||||||||
| F | _ | ō | 0 | > | ||||||||||||||||
| A1 | A2 | А3 | A4 | A5 | B1 | E | 32 | В3 | В4 | B5 | В6 | B7 | C1 | C2 | C3 | C4 | D | |||
| Х | Х | Х | Х | Х | MND | X | MND | MND | MND | Х | MNI | D MND | Х | Х | Х | Χ | ||||
| _ ^ _ | ^ | |||||||||||||||||||
| RESU | LIS | OF TH | IE LUP | 4 - EN | /IRO | INIVI | ENI | AL IN | IPACT | One | orec | e or S |
ecuritro
| |
n W32 | Magn | aloci | ||||
| Param eter | Para | meter | U | nit | A | 1 - A3 | A4 | A5 | B2 | В6 | C2 | C | 3 | C4 | D | |||||
| GWP | Glo | hal warr | ming pote | ential | Ika C | ) 2 -F | n 11 ( | 96F+01 | 1 44F-0 | 1 9 63F | .02 9 | 26F-02 | 4.06E+02 | 1 44F-0 | 1 3 26F | -03 7 | 62F-01 | - | ||
| otential o | [kg C | 1 | - | 8.35E+00 | ||||||||||||||||
| ODP | ic ozone | q.] | 2. | 80E-09 | 6.88E-1 | 3 4.41E | 13 3 | 3.66E-13 | 1.40E-07 | 6.88E-1 | 3 2.23E | -12 2 | .29E-12 | -7.94E-10 | ||||||
| AP | Acidific | land and | íka Sí | Ο 2 -Ει | a.l 1.i | 34E-01 | 6.57E-0 | 4 2.20E | 05 1 | .28E-04 | 1.37E+00 | 6.57E-0 | 4 1.54E | -05 1 | .97E-04 | -5.93E-02 | ||||
| ater | - | - | ||||||||||||||||||
| EP | utrophication potential 9.34E-03 1.50E-04 3.83E-06 9.05E-05 | 7.33E-02 | 1.50E-0 | 4 8.66E | -07 1 | .57E-05 | -3.79E-03 | |||||||||||||
| POCP | tition potential of tropospheric kg.] [kg Ethen e photochemical oxidants kg.] 8.89E-03 -2.12E-04 1.56E-06 7.53E-06 | 8.39E-02 | -2.12E-0 | 4 9.14E | -07 9 | .69E-06 | -4.05E-03 | |||||||||||||
| ADPE | depletio | letion potential for non [kg Sh Eg ] 4 96E-03 5 41E | 5.41E-0 | 9 1.74E-09 2.50E-08 5 | 5.36E-05 | 5.36E-05 5.41E-09 4.51E-10 | .30E-08 | -3.45E-03 | ||||||||||||
| Abiotic o |
esources
notentia |
1 | _ | - | + | |||||||||||||||
| ADPF | resources | | epletion potential for fossil | [MJ] | 2.42E+02 | 1.98E+00 | 2.70E-02 | 1.53E-01 | 4.68E+03 | 1.98E | 3.70E-02 3.26E-01 | |||||||||||||||||
| RESU | LTS ( | OF TH | IE LCA | 4 - RES | SOUF | RCE | US | E: Or | ne piec | e of Se | cur | itron N | И32 Ма с | gnaloci | ( | |||||
| Paramer er | et | Parameter | Unit | A1 | - A3 | A4 | A5 | B2 | В6 | C2 | СЗ | C4 | D | |||||||
| PERE | Re | y energy | as | [MJ] | 1.79 | E+01 | - | - | - | - | - | ١. | - | - | ||||||
| energy carrier | ||||||||||||||||||||
| PERM | res | urces as material utilization [MJ] 0.00E+00 - urces as material utilization al use of renewable primary | - | - | - | - | - | - | |||||||||||||
| PERT | 10 | rgy reso | iary | [MJ] | 1.79 | E+01 7 | 7.81E-02 | 2.52E-0 | 3 1.2 | 22E-02 | 4.58E+02 | 8E+02 7.81E-02 | 7.81E-02 1.06F | -02 2. | 44E-02 | -4.22E+00 | ||||
| PENRI | Non | ble prima | ary ener | gy as | [MJ] | 2.63 | E+02 | - | - | - | - | - | - | - | - | |||||
| PENRI | Non | renewa | ble prim | ary ener | gy as | [M,I1 | 0.00 | E+00 | _ | + | _ | - | _ | - | - | |||||
| Total |
erial utiliz
non rene |
zation
ewable pr |
rimon | 005.00 | 2.105.0 | 2 4 6 | SOE 04 | E 02E : 00 | 1.005 : 00 | F 00F | 02.2 | 625.04 | 0.005 : 04 | |||||||
| PENR. | · . | ene | rgy reso | urces | -9.80E+01 | |||||||||||||||
| RSF |
y materia
condary |
0.00E+00
0.00E+00 |
||||||||||||||||||
| NRSF | Llco | ole secon | doni | _ | 0.00E+00 | |||||||||||||||
| Hac : | fuels | h wat | - | |||||||||||||||||
| FW | I TC- | f net fres | _ |
2.08E+00|
S: One |
-3.22E-02 | |||||||||||||||
| Magn | E LUP |
|
TPU | FFL | -O VI | IS AIN | D WAS | TE C | (TE | JURIE | .s. One | piece ( | or sec | uritr | OH WIS | 2 | ||||
| Param | ||||||||||||||||||||
| er | Р | aramete | er | Unit | A' | 1 - A3 | A4 | A5 | B2 | В6 | C2 | C3 | C4 | D | ||||||
| HWD | _ | dispose | [kg] | 4.62E-03 | ||||||||||||||||
| NHWI | te dispos | [kg] | 1.10E+00 | |||||||||||||||||
| RWD | dispose | [kg] | _ | _ | _ | -1.78E-03 | ||||||||||||||
| CRU |
nents for
als for re |
[kg]
[kg] |
0.00E+00
0.00E+00 |
|||||||||||||||||
| MED | או וטו פוב | CVUIIIU | 1 | լՒցյ | ||||||||||||||||
|
MFR
MFR |
rv | [kal | 0.0 | 0F+00 | 0 00F+ | വിവ | 00F+00 | 0.00E + 0.0 | വവ വെട | +0010 | 00F+00 | _ | ||||||||
|
MFR
MER EEE |
Ma | terials f | or energ |
y recove
al energy |
[kg]
[MJ] |
0.00E+00
0.00E+00 |
||||||||||||||
| MER |
Ma
E |
terials f
xported |
or energ | y recove | ′ | 0.0 | 0E+00 | 0.00E+00 | 1.22E- | 01 0. | 00E+00 | 0.00E+0 | 0.00E | +00 1. | 44E+00 | - | ||||
6. LCA: Interpretation
This chapter contains an interpretation of the Life Cycle Impact Assessment categories. Stated percentages in the whole interpretation are related to the overall life cycle, excluding credits (module D).
The production phase (modules A1-A3) contributes between 2% and 11% to the overall results for all the environmental impact assessment categories hereby considered, except for the abiotic depletion potential (ADPE), for which the contribution from the production phase accounts for app. 99% - this
impact category describes the reduction of the global amount of non-renewable raw materials, therefore, as expected, it is mainly related with the extraction of raw materials (A1).
Within the production phase, the main contribution for all the impact categories is the production of steel, with app. 97%, mainly due to the energy consumption on this process. Steel accounts with app. 62% to the overall mass of the product,
therefore, the impacts are in line with the mass composition of the product. The environmental impacts for the transport (A2) have a negligible impact within this stage.
To reflect the use phase (module B6), the energy consumption was included and it has a major contribution for all the impact assessment categories considered - between 88% and 98%, with the exception of ADPE (1%). This is a result of 23 hours of operation in on mode per day and per 365 days in a year.
In the end-of-life phase, there are loads and benefits (module D, negative values) considered. The benefits are considered beyond the system boundaries and are declared for the recycling potential of the metals and for the credits from the incineration process (energy substitution).
7. Requisite evidence
Not applicable in this EPD.
8. References
Institut Bauen und Umwelt
Institut Bauen und Umwelt e.V., Berlin (pub.): Generation of Environmental Product Declarations (EPDs);
General principles
for the EPD range of Institut Bauen und Umwelt e.V. (IBU), 2013-04 www.bau-umwelt.de
PCR Part A
Institut Bauen und Umwelt e.V., Berlin (pub.): Product Category Rules for Construction Products from the range of Environmental Product Declarations of Institut Bauen und Umwelt (IBU), Part A: Calculation Rules for the Life Cycle Assessment and Requirements on the Background Report. April 2013 www.bau-umwelt.de
IBU PCR Part B
IBU PCR Part B: PCR Guidance-Texts for Building-Related Products and Services. From the range of Environmental Product Declarations of Institute Construction and Environment e.V. (IBU). Part B: Requirements on the EPD for Locks and fittings. www.bau-umwelt.com
ISO 14025
DIN EN ISO 14025:2011-10: Environmental labels and declarations — Type III environmental declarations — Principles and procedures
EN 15804
EN 15804: 2012+A1:2014: Sustainability of construction works — Environmental Product Declarations — Core rules for the product category of construction products
GaBi 6 2013
GaBi 6 2013: Software-System and Database for Life Cycle Engineering. Copyright, TM. Stuttgart, Leinfelden-Echterdingen, 1992-2013.
GaBi 6 2013D
GaBi 6 2013D: Documentation of GaBi 6: Software-System and Database for Life Cycle Engineering. Copyright, TM. Stuttgart, Leinfelden-Echterdingen, 1992-2013. http://documentation.gabi-software.com/
ISO 14001
Environmental management systems - Requirements with guidance for use (ISO 14001:2004 + Cor. 1:2009)
ISO 9001:2008
ISO 9001:2008: Quality management systems - Requirements (ISO 9001:2008).
UL10C
Positive Pressure Fire Tests of Door Assemblies
UL294
.
Access Control System Units
ANSI/BHMA A156.23
This Standard establishes requirements for electromagnetic locks and includes cyclical, dynamic, operational, strength and finish tests
9. Annex
Results shown below were calculated using TRACI Methodology.
| DESC | DESCRIPTION OF THE SYSTEM BOUNDARY (X = INCLUDED IN LCA; MND = MODULE NOT DECLARED) | RED) | |||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| CONO | FDLICTI | BENEFITS AND | |||||||||||||||||
| PROD | DUCT | STAGE | l l |
TRUCTI
OCESS |
USE STAGE | ID OF LIF |
LOADS
BEYOND THE |
||||||||||||
| STAGE | _ | _ | SYSTEM | ||||||||||||||||
| BOL | INDARYS | ||||||||||||||||||
| _ | D | ransport from the gate to the site | 5 | f_ | į | D | ٦ | ing | |||||||||||
|
Raw material
supply |
Ħ | i.E |
om
sit |
> | Maintenance | ent | je | nal | Se |
ס
≥ |
S G | 둫 | SSS | _ | _ | - g - | ||||
| nate | sbc | ਼ | ਜੂ | t fro | gue | Use | - Jua | Repair | em | shr | i i | D S | use | Str. | sbc | 900 |
esr
rse |
clin | ||
| w mater | Transport | | Jul | pg 5 | Assembly | inte | Re | lac | rbis | Operational | energy use |
-constructi
demolition |
Transport | D o |
Disposal
Reuse- |
Recovery-
Recycling- potential |
||||
| Ra | - | Manufacturing | ansport from the | < | ■ | Replacement 1) | Refurbishment 1) | ŏ | energy use | ֝֟֝֟֝֟֝֟֝֟֝֟֓֓֓֓֓֓֓֓֓֓֓֓֓֓֓֓֓֓֡֓֓֓֓֓֓֓֡֓֡֓֡֓֡ | De-construction demolition | | - | | Waste processing | _ | ' | צ ב נו | ||||
| _ | |||||||||||||||||||
| A1 | A2 | 2 A3 |
A4
X |
A5 | B1 | B4 | B5 | В |
B7
MND |
C1 |
C2
X |
C3 | C4 |
D
X |
|||||
| X | MNI | MND | MND | Х | Χ | ||||||||||||||
| RESU | LT | S OF TH | HE LC | 4 - ENV | /IRC | NME | VTAL IN | IPACT: | ce of | r Se | curitro | n 14132 1 | l lagnald | OCK | |||||
| Parame | eter | P | aramete | r | Unit | A1-3 | A4 | A | .5 | B2 | 2 | В6 | C2 | C3 | C4 | D | |||
| GWF | > | Global v | varming p | otential | [kg | CO 2 -Eq. | ] 1.96E+0 - | 1.44E-0 | 1 9.63 | E-02 | 9.26E | E-02 | 4.06E+02 | 1.44E-01 | 3.26E-0 | 7.62E-01 |
-
8.35E+00 |
||
| ODF | , |
n potentia
heric ozoi |
[kg |
CFC11-
Eq.] |
2.99E-09 | 7.31E-1 | 3 4.69 | E-13 | 3.89E | ≣-13 | 1.49E-07 | 7.31E-13 | 2.37E-1 | 2.44E-12 | -8.67E-10 | ||||
| AP | Acidificati | ial of land | [kg | ] 1.31E-01 | 8.59E-0 | 4 2.66 | E-05 | 1.94E | E-04 | 1.28E+00 | 8.59E-04 | 1.46E-0 | 5 2.31E-04 | -5.75E-02 | |||||
| EP | nication po | [kç | g N-eq.] | 1.24E-02 | 6.07E-0 | 5 1.53 | E-06 | 2.03E | -04 | 6.30E-02 | 6.07E-05 | 6.20E-0 | 7 7.39E-06 | -1.82E-03 | |||||
| Smo | g | Ground-le | evel smog | formation | [kg | J O₃-eq.] | 1.60E+00 | 1.77E-0 | 2 6.21 | E-04 | 3.39E | E-03 | 1.09E+01 | 1.77E-02 | 1.32E-0 | 1.98E-03 | -6.77E-01 | ||
| Resour | ces | potertia | [MJ] 1.74E+01 2.85E-01 3.17E-03 1.56 | 1.56E | E-02 | 2.76E+02 | 2.76E+02 2.85E-01 2.64 | 3.35E-02 |
-
4.71E+00 |
||||||||||
| RFSU | II TS | S OF TI | HF I CA | A - RES | OU | RCF I | JSE: On | e piece | e of S | ecu | ritro | n M | 32 Mag | nalock | H.7 1E 100 | ||||
| Param | Parameter | Unit | A1-3 | A4 | A5 | B2 B6 | C2 | C3 | C4 | D | |||||||||
| PER | · E | Renewa | ble prima | ary energy as [MJ] 1.79E+01 - | 11 | _ | |||||||||||||
| · L | energy carrier | a) / | [IVIO] | 1.732+0 | - | - | _ | _ | |||||||||||
| PER | М | Renewable primary energy resources as material | у | [MJ] | 0.00E+0 | - 0 | - | - | - | - | - | - | - | - | |||||
| utilization | |||||||||||||||||||
| PER | RT. | 1 |
e of renev
nergy res |
vable prin
ources |
nary | (MJ) 1.79E+01 7.81E-02 | 02 2.52 | 2.52E-03 1.22 | 1.22E-02 4.58 | 7.81E-02 | 1.06E-0 | 2.44E-02 |
-
4.22E+00 |
||||||
| PEN | RE | Non rene | ewable pr | vable primary energy [M.I] 2 63F+02 | 12 - | _ | _ | ||||||||||||
| PENF | No | ewable pr |
carrier
imary en |
ergy | [MJ] | 0.00E+0 |
|
||||||||||||
| FEINE | X IVI | naterial u | ala. | [IVIJ] | _ | - | - | - | - | - | |||||||||
| PENI | RT | 1 |
renewat
resource |
[MJ] | 2.63E+0 | 2 1.99E+ | 00 3.16 | 6E-02 | 1.69 | E-01 | 5.93E+03 | 1.99E+0 | 5.80E-0 | 2 3.63E-01 | 9.80E+01 | ||||
| SN | 1 | Use of | seconda | ıry materi | al | [kg] | 0.00E+00 | ||||||||||||
| RSI | F | Use of |
enewable
fuels |
e second | ary | [MJ] | 0.00E+0 | 0.00E+ | 00.00 | E+0( | 0.00 | E+00 | 0.00E+00 | 0.00E+0 | 0.00E+0 | 0.00E+00 | 0.00E+00 | ||
| NRS | 3F | of non re |
enewable
r fuels |
[MJ] | 0.00E+0 | 0.00E+ | 00 0.00 | E+0( | 0.00E | E+00 | 0.00E+00 | 0.00E+0 | 0.00E+0 | 0.00E+00 | 0.00E+00 | ||||
| FW | / | sh water | [m³] | 9.72E-0 | 2 5.51E- | 05 2.80 | DE-04 | 6.41 | E-04 | 2.08E+00 | 5.51E-0 | 5 2.62E-0 | 5 1.89E-03 | -3.22E-02 | |||||
| HE LC | 4 – OU | TPU | JT FLC | OWS AN | D WAS | TE C | ATE | EGOI | RIES | S: One | piece c | f Secu | itron M3 | 32 | |||||
| Magn | alo | CK | |||||||||||||||||
| Parame | eter | Paramet | er | Unit | A1-3 | A4 | A5 | 5 | B2 | В6 | C2 | C3 | C4 | D | |||||
| HWE | ) | Hazardo | ous waste | dispose | d | [kg] | 8.51E-03 | 4.53E-06 | 2.18E | -06 | 1.63E- | -05 4 | 4.62E-03 | 4.53E-06 | 8.04E-06 | 2.65E-05 | 1.24E-03 | ||
| NHW | D N | Non hazar | dous was | ste dispos | sed | [kg] | 2.92E+00 | 2.50E-04 | 2.42E | :-03 | 3.01E- | -02 1 | .89E+00 | 2.50E-04 | 1.87E-05 | 7.23E-02 |
-
1.10E+00 |
||
| RWE | ) | Radioac | tive waste | e dispose | d | [kg] | 8.40E-03 | 2.60E-06 | 1.85E | -06 | 6.45E- | -06 4 | 4.88E-01 | 2.60E-06 | 8.36E-06 | 1.47E-05 | -1.78E-03 | ||
| CRL | Comp | onents fo | or re-use | 0.00E+00 | - | ||||||||||||||
| MFR | ials for re | _ | - | 0.00E+00 | - | ||||||||||||||
| MER | Materials | - | 0.00E+00 | - | |||||||||||||||
| EEE | + | al energy | 0.00E+00 | 1.44E+00 | - | ||||||||||||||
| EET | Lynort | ad therms | al energy | [MJ] | 0.00E+00 | U.UUE+00 | 1|3.44E | :-01 | υ.00E+ | +00|0 | 0.00E+00 | ∪.00E+00 | |U.UUE+00 | 3.94E+00 | - | ||||
Publisher
Institut Bauen und Umwelt e.V. Panoramastr. 1 10178 Berlin Germany Tel +49 (0)30 3087748- 0 Fax +49 (0)30 3087748- 29 Mail info@bau-umwelt.com Web www.bau-umwelt.com
Programme holder
Institut Bauen und Umwelt e.V. Panoramastr 1 10178 Berlin Germany Tel +49 (0)30 - 3087748- 0 Fax +49 (0)30 – 3087748 - 29 Mail info@bau-umwelt.com Web www.bau-umwelt.com
Author of the Life Cycle Assessment
PE INTERNATIONAL AG Hauptstraße 111-113 70771 Leinfelden-Echterdingen Germany Tel +49 (0)711 341817-0 Fax +49 (0)711 341817-25 Mail info@pe-international.com Web www.pe-international.com
Owner of the Declaration
Hanchett Entry Systems, Inc 10027 S 51st Street, Suite 102 Phoenix, AZ 85044
Tel 1-800-626-7590
Web www.securitron.com www.ASSAABLOYdss.com