Environmental Impacts of Construction in Building Industry—A Review of Knowledge Advances, Gaps and Future Directions
Abstract
:1. Introduction
2. Research Methodology
3. Bibliometric Analysis Results
4. Critical Review of Studies on Construction Stage Environmental Impacts
4.1. Major LCA Studies at Construction Stage of a Building
4.2. Models to Estimate Emissions at Building-Construction Stage
Equation No. | Type | Model | Variable Definition and Method Explanation | Evaluation Basis | LCA Method | References |
---|---|---|---|---|---|---|
(1) | Material | W is the CO2 conversion coefficient, Ein is the energy input vector, I is the unit matrix and A is the I/O table, which is the transaction matrix between industry sectors. | Embodied energy | I/O | [6,56,57] | |
(2) | Material | Ets is the energy type t consumed in the industry sector s and θts is the conversion coefficient. | Carbon dioxide | I/O | [6] | |
(3) | Material | E is the total emissions (kg) from material type i, Qi is the quantity of material i (kg) and fi is the emission factor for the material I in (kg of emissions/kg). | Impacts from materials | Process | [13,41] | |
(4) | Material | E is the total emissions (kg) from material type i, Qi is the quantity of material i (kg) and µ is the waste factor and fi is the emission factor for the material i in (kg of emissions/kg). | Impacts from materials | Process | [3,16,59,67] | |
(5) | Material | EE is the embodied energy of the material, Qem is the quantity of material m in the element e, Wem is the wastage rate and EEm is the embodied energy of the material excluding installation effects. | Embodied energy | Process | [60] | |
(6) | Material | EE is the embodied energy of the material, Vi is the volume of material used in m3, ρ is the density of the material kg/m3 an d Ei is the embodied-emission factor for material i in kg of CO2-eq/kg | Embodied energy | Process | [61] | |
(7) | Material | PEIM is the process-based hybrid emissions of the material, TEIn is the emissions of the sector n, TEIM is the emissions representing the basic material M and ἐn is the total price of the material i. | Energy intensity | Hybrid | [62,68] | |
(8) | Material | CEmat is the carbon emissions from materials, mi is the weight of the material i in kg, EFmat,i is the emission factor for material in kg CO2-eq/kg | Carbon emissions | Process | [69] | |
(9) | Material | EEt is the total embodied emissions from process-based hybrid analysis; QM is the quantity of the total materials M and W is the wastage factor of the respective material. | Total environmental impacts | Hybrid | [62,68] | |
(10) | Equipment | Ei is the GHG emissions from equipment i and S is the fuel consumed in liters and Fj is the emission factor for the fuel j in kg/liter | GHG emissions | Process | [59,70,71] | |
(11) | Equipment | ρ is the density of the material in kg/m3, s’ is the volume of the fuel consumed in m3 and Fi is the emission factor in kgCO2-eq/kg | GHG emissions | Process | [59] | |
(12) | Equipment | The amount of fuel j consumed by the construction equipment in liters; f is the greenhouse gas emission factor for fuel j consumed by construction equipment (in kg CO2-eq/liter) | GHG emissions | Process | [67,72] | |
(13) | Equipment | Emissions from equipment in kg, Rr is the power of the equipment in kW and fvn is the emission factor for rth equipment in kg of CO2/kW | GHG emissions | Process | [8,59,67] | |
(14) | Equipment | Emissionsi is the total emissions of emission substance i in grams, HRS is the hours of use in hours, HP is the power of machine in hp, LF is the load factor is the ratio between operation and maximum rated outputs and 0.01 is the conversion of percent to fraction. | Non-GHG and GHG emissions | Process | [3,16,66,73] | |
(15) | Equipment | Tmac,i is the working time of type i machinery, EUmac,ij is the consumption of type j energy for type i machinery working unit time, and EFe,j is the emission factor for type j energy | GHG emissions | Process | [69] | |
(16) | Transport | Eii is the total GHG emissions due to fuel combustion from transport vehicles, is the total quantity of material j, and are the total distances of transportation for building materials j by land and sea in km and are the GHG emission factor for transportation by land sea in kg CO2-e/(ton km), respectively. | GHG emissions | Process | [72] | |
(17) | Transport | E is the emissions from transport and Mj is the weight of the material j transported, Lmj is the distance traveled in km and ftk is the emission factor in kg/ton-km | GHG emissions | Process | [72] | |
(18) | Transport | “I” is the impact from ith vehicle in kg, Zi is the zero-level emissions of the ith vehicle in kg/km, ri is the emission factor of ith vehicle in kg/ton-km, M is the total weight of the vehicle in tons and d is the distance traveled by the vehicle in km | GHG and non-GHG emissions | Process | [41] | |
(19) | Transport | CEtran is the carbon emissions from transportations in kg, mi is the material weight in tons and si is the distance traveled in km. EFtran,i is the emission factor for the transport vehicle in kg/tons-km | GHG emissions | Process | [69] | |
(20) | Unit Process | Eu is the GHG emissions in kg CO2-eq, µij is the emission factor for the jth GHG emission pollutant and ith emission substance, and Mi is the mass of the emission substance in kg | GHG emissions | Process | [74] |
5. Barriers and Knowledge Gaps
5.1. Lack of Definition for a Generic System Boundary
5.2. Difficulties in Data and Information Collection
5.3. Complex-Modeling Issues and Lack of Decision-Making Aspects
5.4. Complications in Classification and Analysis of Emissions
6. Conclusions, Future Research Focuses and Directions
Funding
Conflicts of Interest
References
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Attribute | Result |
---|---|
Timespan | 1991–2021 |
Average years from publication | 5.84 |
Average citations per documents | 1.278 |
Average citations per year per doc | 0.1673 |
References | 3795 |
Author’s Keywords (DE) | 387 |
Authors | 2976 |
Author Appearances | 3563 |
Authors of single-authored documents | 130 |
Authors of multi-authored documents | 2846 |
Documents per Author | 0.365 |
Authors per Document | 2.74 |
Co-Authors per Documents | 3.28 |
Collaboration Index | 3 |
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Sandanayake, M.S. Environmental Impacts of Construction in Building Industry—A Review of Knowledge Advances, Gaps and Future Directions. Knowledge 2022, 2, 139-156. https://doi.org/10.3390/knowledge2010008
Sandanayake MS. Environmental Impacts of Construction in Building Industry—A Review of Knowledge Advances, Gaps and Future Directions. Knowledge. 2022; 2(1):139-156. https://doi.org/10.3390/knowledge2010008
Chicago/Turabian StyleSandanayake, Malindu Sasanka. 2022. "Environmental Impacts of Construction in Building Industry—A Review of Knowledge Advances, Gaps and Future Directions" Knowledge 2, no. 1: 139-156. https://doi.org/10.3390/knowledge2010008
APA StyleSandanayake, M. S. (2022). Environmental Impacts of Construction in Building Industry—A Review of Knowledge Advances, Gaps and Future Directions. Knowledge, 2(1), 139-156. https://doi.org/10.3390/knowledge2010008