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Tag: Lifecycle stage: B (all modules)

B-29 Building services

Aspect B-29 Building services
Description
Should building services (e.g. energy service companies, landlords, etc.) and energy performance contracting be considered in LCA and, if so, how?

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions Relevant for LCA studies are the upstream energy supply mechanisms, which need to be adequately reflected, and the energy demand of a building. Any business models of how the energy is provided are only of relevance if the technical energy supply is affected.
Rules from:

EN 15978

7.4.4 Boundaries of the use stage (Modules B1–B7)

7.4.4.1 General

EN 15804

6.2.4 B1–B5, Use stage, information modules related to the building fabric

6.2.5 B6-B7, Use stage, information modules related to the operation of the building

Guidance
Different economic models, e.g. of energy supply and its technical consequences, could be assessed by means of scenario analysis. For an LCA study, it is not the economic model behind an operation that is not the decisive point, but the technical consequences of different economic models.

B-30 Transport of the users of the building

Aspect B-30 Transport of the users of the building
Description
For building LCA, the environmental impacts of transportation of people during the use stage may influence the decision between alternative construction sites (e.g. is the building located near public transport services?), or between alternative projects for the same site. Generally speaking, if the transport of building occupants is included within the system boundaries,  it can have a significant impact on the results of the use stage. However, it is not always relevant for inclusion in LCA studies.When and how should the transport of people be included for building LCA?

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions The transport of people may be taken into account if it is relevant for the goal and scope of the building LCA study (e.g. during the early design of a building, when a construction site needs to be chosen). If included, all relevant results should be documented separately, and the results should be subject to sensitivity analyses.
Rules from:

EN 15978

No provisions
Guidance
Generally speaking, when LCA is used during the design process of a building, this aspect is not relevant when the construction site has already been defined. Conversely, in the early design stages of the building project, assessment of the transport of people may be relevant if the goal and scope is to assess different options for the construction site (e.g. choosing between a site in the suburbs, in the countryside or in the city centre). In this case, the share of this aspect in building LCA results may be significant.In specific cases during the stages of the building project, this aspect may also be included if LCA practitioner needs to focus on it (e.g. for assessment in urban structures, or in large retail buildings).If the transport of people is included, the practitioner should identify the key parameters to calculate this contributor outside the scope of the EN 15978 standard, or otherwise use existing calculation rules within the building LCA software used. Such parameters may include:

  • the type of building (e.g. detached houses or office buildings);
  • the location of the building (e.g. in the countryside, in the suburbs, or in the city centre);
  • the number of people who commute to the workplace every working day, and for other activities if relevant (e.g. shopping, leisure etc.);
  • the mode of transport (e.g. bicycle, public transport including tramway, trains, autobus, individual car etc.);
  • the transportation distances between the building site and the workplace, and the distances from the public transport network.

Assessment of the transport of people then needs both default values and scenarios to be defined, particularly for:

  • the different modes of transport (e.g. bicycle, public transport including tramway, trains, autobus or individual car);
  • the transportation distances (e.g. below 10 km, between 10 and 100 km etc.) and the respective fuel consumption (if relevant);
  • the number of people in the building.

The LCA data on transportation processes should be taken from existing generic LCA databases (e.g. Ecoinvent, ELCD, ESUCO). The reference flow of the functional unit of the generic data of transportation processes is generally expressed as tons*km or persons*km. The data usually include a default scenario for fuel consumption and the average load (e.g. an average load of 2.5 persons in a car with a maximum capacity of 5 persons can be assumed in some generic LCA data). As the load factor may influence the results, a sensitivity analysis is needed on this parameter if the corresponding mode of transport significantly influences the results.

B-31 (Buildings) / B-11 (Products) Distinction between Modules B2, B3, B4 and B5

Aspect B-31 (Buildings) / B-11 (Products) Distinction between Modules B2, B3, B4 and B5
Description
Modules B2 to B5 cover the impacts related to the service life of building and building parts, whether it is a light modification, such as a small maintenance operation or an important retrofit (rehabilitation).It is sometimes difficult to determine which module a specific operation should be attributed to. The present aspect proposes a common definition of these modules, plus recommendations on how to use them at the product and building scale.

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions Standards EN 15804 and EN 15978 provide definitions and examples of aspects B2 to B5. The LCA practitioner should refer to these standards.B2 – Maintenance encompasses all actions related to maintaining a product or building part – i.e. replacement or reparation of a used, damaged or worn part of the product (a part, but not the entire functional unit) in a state in which it can perform its functions [EN 15978]. According to EN 15978, this applies to planned actions, and should include:

  • preventive and regular maintenance operations;
  • cleaning operations.

Maintenance actions are part of the ‘intended use’ definition that should be provided with a product’s reference service life (see EN 15804, annex A and 7.3.3.2 Reference service life). The reference service life (RSL) is valid under a specific set of conditions, notably the in-use environment (e.g. UV, heat, humidity, etc.), and proper implementation and maintenance that comply with the producer’s recommendations and with state-of-the-art practices. The RSL should be used to calculate the number of replacements. See the aspects: ‘Definition of the service life of a building product’ and ‘replacement frequency’ for additional information.

B3 – Repair encompasses all actions related to returning a product or building part to an acceptable condition in which it can perform its required functional and technical performances [EN 15804], including:

  • corrective, responsive or reactive treatment of a construction product;
  • replacement of a broken component or part because of damage (replacement of a whole element should be assigned to replacement).

The example given in EN 15978 and EN 15804 is a window with a broken pane.

–> Although the distinction between the maintenance and repair modules is not straightforward, the example given for repair falls outside the scope of the intended use that defines reference service life.

B4 – Replacement covers the replacement of a whole construction element [EN 15804], including the production and installation of a new (and identical) construction element. Examples given in EN 15978 include replacement of a partition wall, and replacement of a boiler or heating system.

–> The replacement module is distinguished from the maintenance and repair modules by the fact that a complete component or part is replaced (maintenance include the replacement of subcomponents, and repair the replacement of damaged parts). Although this ultimately depends on the breakdown of the building into subcomponents, it seems reasonable to understand it as the replacement of a complete functional unit such as defined in the EPD.

B5 – Refurbishment covers concerted programmes of maintenance, repair and/or replacement activity across a significant part or whole section of the building [EN 15804]. Examples provided include: ‘a major change of the internal layout (partitioning)’, a ‘change of the technical system related to heating’ and ‘modification for the purpose of a […] change of use’ [EN 15978].

–> The refurbishment module addresses important modifications that would impact on several building components, and modify building performances and/or functions.

All these aspects are related to the notions of durability and service life planning, as described in the ISO 15686 series. Relations between the type of operations and performance of a given product or building part could be represented as follows:

Figure 18: Example of performance over time relation depending on operations [EN 15804]

This figure is shown only for explanation purpose, and many other cases are possible, such as:

  • performance stability over the reference study period;
  • overall decrease of performance despite maintenance operations;
  • failure at implementation.

Furthermore, “service life planning can only address foreseeable changes. Since service life planning is concerned with foreseeable risks, it is not applicable to the estimation of obsolescence […] or to defective performance resulting from unforeseeable events or processes” [ISO 15686-1, part B.8.2.].

In the case of sound statistical feedback on the replacement rate of a specific product for a given country or region, it is unlikely that a clear distinction between the causes of replacement could be easily made. In that specific case, replacement causes would naturally encompass all cases: i.e. premature failure, failure due to foreseeable ageing (i.e. RSL) and obsolescence. The figure below presents a hypothetical distribution of replacement rate according to the main causes of replacement (including building deconstruction).

Figure 19: Replacement rate [EN15804]

 

Rules from:

EN 15978

7.4.4.1 General
8.6.3 Scenarios for maintenance, repair, replacement

EN 15804

6.3.3. Reference service life
6.3.4.4.2  – B4 Replacement
Annex A
Guidance
As the distinction between Modules B2 to B5 is not straightforward, it is recommended that the following principles be applied when developing product and building LCA. These principles are based solely on the distinction between the causes of end of life:–> For end of life related to performance decrease over time (e.g. aging, decay, degradations, etc.):

  • causes related to foreseeable events (i.e. related to reference service life) in a defined set of conditions lead to maintenance and replacement scenarios;
  • causes related to unforeseeable events lead to repair scenarios.

–> For end of life related to modification of expectations regarding the building’s performance level or functionalities (e.g. obsolescence, such as modification of activities inside the building, modification of regulation, etc.):

  • causes lead to refurbishment scenarios.

B2 – Maintenance:

For product LCA, this module should cover all operations necessary to maintain the performance of products, or to return them to their original level, including scheduled replacement of parts and subcomponents. Example include: scheduled replacement of boiler parts; scheduled replacement of light bulbs from luminaires; repainting of a wall, door or window frame; replacement of small elements of roofing, such as tiles (e.g. a certain number of tile per 10 years per square metre), etc.

For building LCA, maintenance should take into account maintenance modules as provided within EPD, as well as additional information if needed (e.g. current or state-of-the-art practices, recommendations, etc.).

–> Maintenance should be understood as the set of operations performed under normal conditions. This applies in a given context (e.g. maintenance of a product could change, depending on the climate). Product modification and operations caused by accidents, improper installation or handling, unforeseeable events (such as flood), etc. should be covered by the repair module (see below).

–> Maintenance scenarios at the building scale should be consistent with the building’s physical structure: maintenance of a given component should take into account the influence of neighbouring components (e.g. accessibility).

B3 – Repair:

For product LCA, the repair module should not be included in the baseline scenario.

For building LCA, the repair module should not be included in the baseline scenario. The repair module may cover all operations related to product modification outside the scope of the maintenance module – that is, outside the scope of normal conditions, including improper use of a product, unforeseeable events such as flood or vandalism, etc.

–> For existing buildings, repair scenarios could be based on the history of the building (i.e. examples based on previous reparation);

–> For new buildings, repair scenarios could be used to assess the environmental impacts of a specific risk (e.g. the impact of reparation due to flood, the impact of improper installation that causes damage, etc.).

B4 – Replacement:

Replacement is necessarily related to the reference service life. Replacement occurs at the end of life of a product: that is, when it does not meet its initial performance requirements (modification of the requirements after product installation should be considered as obsolescence, and be covered by a specific scenario: see below). The number of replacements is further described in the aspect ‘Replacement frequency’.

–> It is recommended that replacement caused by events that are outside the scope of condition defined by the reference service life be treated as repair.

For product LCA, replacement covers the replacement of the whole functional unit by a new one after RSL. The boundaries of replacement include [EN 15978]:

  • production of the replaced component and ancillary products;
  • transportation of the replaced component and ancillary products, including production impacts and aspects of any losses of materials during transportation;
  • the process of replacing the components and ancillary products;
  • waste management of the removed component and of ancillary products;
  • the end-of-life stage of the removed component and of ancillary products.

Most of these may be similar to other modules for cradle-to-grave product LCA, for instance:

  • The transport scenario of the new component may be similar to A4 – Transport.
  • The replacement process may be similar to C1 – Deconstruction.

–> If no differences arises from a comparison between a replacement scenario and an installation scenario (including related production, transport, end of life, etc.) then a replacement scenario is not necessary. In any case, it should be clearly stated whether or not the assumptions regarding B4 modules are similar to those used for other modules (e.g. the replacement process is different from the initial implementation because of the building structure, etc.).

For building LCA, replacement should include:

  • replacement modules as described in cradle-to-grave EPDs (or cradle-to-gate EPD with corresponding option);
  • additional LCA data to cover components without EPD.

–> Replacement scenarios at the building scale should be consistent with the building physical structure. Replacement of a given component should take into account the influence of neighbouring components (e.g. accessibility, possible replacement of other components, etc.).

B5 – Refurbishment

For product LCA, no refurbishment module need be included in the baseline scenario, as this is highly dependent on information at the product scale.

For building LCA, the refurbishment module should not be included in the baseline scenario if the building service life is equivalent to the reference study period. Additional refurbishment scenarios may be developed. For example:

  • to assess the modification of building functions (e.g. switching from a commercial building to habitation);
  • to assess the effect of an expected regulation that would affect the buildings.

–> A refurbishment(or deconstruction/new construction) scenario should be developed if the service life of the building is less than the reference study period.

It is recommended that a refurbishment scenario be developed when long reference study periods (>100 years) are being considered, as modification of the building use is expected over such a period of time. Refurbishment scenarios could also be developed if the reference study period is longer than the reference service life of the load-bearing components and structural elements.

Additional recommendations:

The progressive loss of performance of some components will have an impact on the overall performance of the building (e.g. loss of performance of insulation may lead to an increase of energy demand for heating). If sufficient data are available, these aspects should be addressed using a sensitivity analysis.

According to NEN 15804 (Annex A), Reference service life “could be based on empirical, probabilistic or statistical data and shall always taking into account the intended use (description of use) as described in ISO 15686-1, -2, -7 and -8” [EN 15804, Annex A].

B-12 Robustness of data (LCA, service life) to model the life cycle of a building product

Aspect B-12 Robustness of data (LCA, service life) to model the life cycle of a building product
Description
How representative is a production process for a product?

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions In line with harmonized standards or technical approvals.
Rules from:

EN 15804

6.3.3 Reference service life (RSL)
7.3.3.2 Reference service life
8.2 LCA-related elements of the project report

Annex A Requirements and guidance on the reference service life

ISO 15686 Pt 1

7.1.4 Taking account of variability and reliability
Guidance
LCA studies may be conducted on a specific manufacturer’s product, in which case the use phase for that specific product can be considered, and service life data be generated in line with the relevant parts of ISO 15686.Where an LCA for an average product is being developed, the use phase may be harder to define robustly, owing to the variation in the use scenarios and application in the building, as well as in the products. It may be relevant to determine different use phase scenarios based on performance criteria for the products, although if this is associated with different manufacturing impacts (±10% for key environmental indicators), the product types should not be considered as a single average group.EN 15804 requires that, where an EPD is produced from more than one product’s data, the variance from the mean data reported in the EPD should be described in the project report for the verifier. Variance could be reported using the coefficient of variation or the standard deviation.

Some EPD programmes may have specific rules limiting the variance from the mean LCIA results for EPD covering a range of products, meaning that results must be reported for smaller groups of products with similar performance.

For simplified and screening LCAs, generic service life data can be used. For complete LCA, the service life for the specific product should be considered. Generic service life data are provided in various sources, including e.g. the national databases of different countries. It is recommended that practitioners refer to the service life data used in the context of the respective LCA study.

B- 08. “Repair with complete LCA”

Aspect B- 08. “Repair with complete LCA”
Description
Repair module covers all corrective, responsive or reactive treatment of a construction product or construction works to return it to a condition in which it can perform its required functional and technical performance. It covers only the partial replacements of components and building parts (in case of failure), and shall be distinguished from the replacement module that is related to the complete replacement of component and building parts. This aspect of EEB Guide also addresses the distinction between Repair, Maintenance and Replacements.

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions The reparation procedure refers only to corrective, responsive or reactive actions in response to losses of performances of a building component or building part.Repair is distinguishable from Maintenance and Replacements by the following aspects [EN 15804]:

  • Maintenance is a planed (proactive) action that maintain components performances whereas Repair is a corrective (reactive) action in response to damage;
  • Replacement covers the complete replacement of a component whereas Repair covers only replacement of sub-components.

It should be noted that:

  • EPD containing information about the reference service life of a product shall comply to the ISO 15686 series [EN 15804];
  • RSL shall be declared with a description of use that should (normally) encompass maintenance (proactive actions), according notably to ISO 15868-8;
  • Manufacturer cannot be held responsible for the actual design of the building and the use and application of the product, environment, workmanship or use [EN 15804].

It is thus to be expected that few information related to the repair module will be included in cradle to grave EPDs (or cradle to gate with corresponding options). Instead, most information would probably be divided between the maintenance module (necessary operations to maintain product performances, including sub-component replacement, in a given set of in use conditions) and Replacement module (replacement at the end of life of the component).

Consequently, the Repair module is considered optional in the context of the present guide.

According to EN 15978, the boundary for repair shall include:

  • the production of the repaired part of component and ancillary products;
  • the transportation of the repaired part of component and ancillary products, including production impacts
  • and aspects of any losses of materials during transportation;
  • the repair process of the repaired part of component and ancillary products;
  • waste management of the removed part of the component and of ancillary products;
  • the end of life stage of the removed part of the component and of ancillary products

Water and energy usage related to the repair process should always be included.

Rules from:
EN 15978:7.4.4.1 General7.4.4.4 Boundary for repair (module B3)8.3 Time related characteristics8.6.3 Scenarios for maintenance, repair, replacement

EN 15804:

6.3.3. Reference service life

6.3.4.4.2  – B3 Reparation

7.3.3.1 B1-B5 use stage related to the building fabric

Annex A

Guidance
Repair is optional in the context of complete LCA in the case of insufficient data.The overall repair scenario should be consistent with respect to the building structure (e.g. replacement of coating is mandatory when replacing the support). In the context of complete building LCA of an existing building, it is recommended to base the repair module on the history of the building.The progressive loss of performances of some component has an impact on the overall behavior of the building (e.g. loss of performance of insulation may lead to an increase of energy demand due to heating). If sufficient data are available these aspect should be addressed by using a sensitivity analysis.

Back to 5.4.  Module B3

B- 09. “Repair with simplified LCA”

Aspect B- 09. “Repair with simplified LCA”
Description
Repair module covers all corrective, responsive or reactive treatment of a construction product or construction works to return it to a condition in which it can perform its required functional and technical performance. It covers only the partial replacements of components and building parts (in case of failure), and shall be distinguished from the replacement module that is related to the complete replacement of component and building parts.

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions Repair is optional in the context of simplified LCA. For provision and guidance, please refer to the aspect “Repair with complete LCA” of the present document.The reparation procedure refers only to corrective, responsive or reactive actions in response to losses of performances of a building component or building part.Repair is distinguishable from Maintenance and Replacements by the following aspects [EN 15804]:

  • Maintenance is a planed (proactive) action that maintain components performances whereas Repair is a corrective (reactive) action in response to damage;
  • Replacement covers the complete replacement of a component whereas Repair covers only replacement of sub-components.

According to EN 15978, the boundary for repair shall include:

  • the production of the repaired part of component and ancillary products;
  • the transportation of the repaired part of component and ancillary products, including production impacts
  • and aspects of any losses of materials during transportation;
  • the repair process of the repaired part of component and ancillary products;
  • waste management of the removed part of the component and of ancillary products;
  • the end of life stage of the removed part of the component and of ancillary products

Water and energy usage related to the repair process should always be included.

However, in the context of simplified LCA, only the production of the replaced component/repaired part may be included.

Rules from:
EN 15978:7.4.4.1 General7.4.4.4 Boundary for repair (module B3)8.3 Time related characteristics

8.6.3 Scenarios for maintenance, repair, replacement

EN 15804:

6.3.3. Reference service life

6.3.4.4.2  – B3 Reparation

7.3.3.1 B1-B5 use stage related to the building fabric

Annex A

Guidance
Repair is optional in the context of simplified LCA. For provision and guidance, please refer to the aspect “Repair with complete LCA” of the present document.

Back to 5.4.  Module B3

B- 10. “Repair with screening LCA”

Aspect B- 10. “Repair with screening LCA”
Description
Repair module covers all corrective, responsive or reactive treatment of a construction product or construction works to return it to a condition in which it can perform its required functional and technical performance. It covers only the partial replacements of components and building parts (in case of failure), and should be distinguished from the replacement module that is related to the complete replacement of component and building parts.

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions Repair is optional in the context of screening LCA. For provision and guidance, please refer to the aspect “Repair with complete LCA” of the present document.The reparation procedure refers only to corrective, responsive or reactive actions in response to losses of performances of a building component or building part.Repair is distinguishable from maintenance and replacements by the following aspects [EN 15804]:

  • Maintenance is a planed (proactive) action that maintain components performances whereas Repair is a corrective (reactive) action in response to damage;
  • Replacement covers the complete replacement of a component whereas Repair covers only replacement of sub-components.

According to EN 15978, the boundary for repair should include:

  • the production of the repaired part of component and ancillary products;
  • the transportation of the repaired part of component and ancillary products, including production impacts
  • and aspects of any losses of materials during transportation;
  • the repair process of the repaired part of component and ancillary products;
  • waste management of the removed part of the component and of ancillary products;
  • the end of life stage of the removed part of the component and of ancillary products

However, in the context of screening LCA, only the production of the replaced component/repaired part may be included.

Rules from:
EN 15978:7.4.4.1 General7.4.4.4 Boundary for repair (module B3)8.3 Time related characteristics

8.6.3 Scenarios for maintenance, repair, replacement

EN 15804:

6.3.3. Reference service life

6.3.4.4.2  – B3 Reparation

7.3.3.1 B1-B5 use stage related to the building fabric

Annex A

Guidance
Repair is optional in the context of screening LCA and may be neglected in many cases. For provision and guidance, please refer to the aspect “Repair with complete LCA” of the present document.

Back to 5.4.  Module B3

B- 11. “Inclusion of energy and materials for repair”

Aspect B- 11. “Inclusion of energy and materials for repair”
Description
The inclusion of energy and water use, material use, etc. is framed by standards EN 15804 and EN 15978. The EeBGuide provides additional information and guidance on how (and when) to include or exclude a given aspect of the study.

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions According to EN 15978, the boundary for repair should include:

  • the production of the repaired part of component and ancillary products;
  • the transportation of the repaired part of component and ancillary products, including production impacts
  • and aspects of any losses of materials during transportation;
  • the repair process of the repaired part of component and ancillary products;
  • waste management of the removed part of the component and of ancillary products;
  • the end of life stage of the removed part of the component and of ancillary products

Water and energy usage related to the repair process should always be included.

However, Repair is considered optional. Please refer to the aspects “Repair with complete LCA”, “Repair with simplified LCA” and “Repair with screening LCA” for further details.

Rules from:
EN 15978:7.4.4.1 General

7.4.4.4 Boundary for repair (module B3)

8.3 Time related characteristics

8.6.3 Scenarios for maintenance, repair, replacement

EN 15804:

6.3.3. Reference service life

6.3.4.4.2  – B3 Reparation

7.3.3.1 B1-B5 use stage related to the building fabric

Annex A

Guidance
In the context of simplified and screening LCA, only the production of the replaced component/repaired part may be included.Please refer to the aspects “Repair with complete LCA”, “Repair with simplified LCA” and “Repair with screening LCA” for further details.

Back to 5.4.  Module B3

B- 17. “Inclusion of energy and materials for replacement”

Aspect B- 17. “Inclusion of energy and materials for replacement”
Description
The inclusion of energy and water use, material use, etc. is framed by standards EN 15804 and EN 15978. EEB guide provides additional information and guidance on how (and when) to include or exclude a given aspect of the study.

related study objective

☒ stand-alone LCA ☒ comparative assertion

related study phase

☒ ☐ ☐ ☐ ☐
goal and scope definition inventory analysis (LCI) impact assessment (LCIA) interpretation reporting

relevant for

new buildings existing buildings construction products screening LCA simplified LCA complete LCA
Provisions In the context of simplified LCA, the following items may be neglected upon justification:

  • Production, transportation, waste management, and end of life of ancillary products;
  • Energy and water usage related to the replacement process;
  • Losses of materials during storage, transportation or implementation (if not known).

In the context of screening LCA, only the production of the replaced component may be included.

Please refer to the aspects “Replacement with complete LCA”, “Replacement with simplified LCA” and “Replacement with screening LCA” for further details.

Rules from:
EN 15978:7.4.4.1 General7.4.4.5 Boundary for replacement (module B4)8.3 Time related characteristics

8.6.3 Scenarios for maintenance, repair, replacement

EN 15804:

6.3.3. Reference service life

6.3.4.4.2  – B4 Replacement

7.3.3.1 B1-B5 use stage related to the building fabric

Guidance
Please refer to the aspects “Replacement with complete LCA”, “Replacement with simplified LCA” and “Replacement with screening LCA” for further details.

Back to 5.5.  Module B4