Vulnerability of Non-Structural Elements (NSEs) in Buildings and Their Life Cycle Assessment: A Review
Abstract
:1. Introduction
2. Method of Review
Significance of the Study
3. Building Systems Configuration and Performance Results
- Suspended ceilings;
- Fire sprinkler piping systems;
- Partition walls;
- Precast cladding panels;
- Glazed curtain wall.
3.1. Fiber-Reinforced Gypsum Partitions (FGPs)
3.2. Unreinforced Masonry Partitions (URM)
3.3. Glass Fiber-Reinforced Concrete (GFRC) Cladding Façade
3.4. Spider Glazing Façade (SG)
3.5. Research Gap
4. Types of Non-Structural Elements
- Level 1—Utility floor (along with lift, HVAC, and MEP at each floor).
- Level 2—Laboratory and residential space.
- Level 3—Computer service room.
- Level 4—Hospital floors (intensive care unit).
- Level 5—Hospital floors (surgery).
Research Gap
5. Sustainability and Resilience for Performance Evaluation
5.1. Framework for Building Performance in the Assessment of Community Seismic Resilience
5.2. Research Gap
6. Life Cycle Assessment of NSEs
7. Sustainability in Residential Buildings
7.1. Environmental Life Cycle Assessment
7.2. Life Cycle Cost Assessment
7.3. Social Life Cycle Assessment
7.4. Research Gap
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
Ref No. | Authors | Study Area | Remarks |
---|---|---|---|
[1] | Karakale, V. | Seismic Performance of claddings under shake table tests | Claddings costs around 25% of the total cost and has significant importance in terms of serviceability and appearance |
[2] | Mohsenian, V., N. Gharaei-Moghaddam, and I. Hajirasouliha | Acceleration NSEs | Code-based methods are not accurate, and MDOF methods by different researchers need to be used to provide accurate results |
[3] | D’Angela, D., G. Magliulo, and E. Cosenza, | Rigid dominant behavior of unanchored NSE during earthquakes | Not categorized for a specific type of building whether steel or concrete, influence of frequency contents on NSE’s and the sliding behavior of NSE’s neglected in the study |
[4] | Viggiani, L.R.S. | Out of Plane Failure mechanism of infill masonry walls | Innovative decoupling systems can prevent severe out of plane failures as a result of inplane and out of plane interaction |
[5] | Eskandari, M., et al. | Damage assessment for critical infrastructure | Lifelines are very imprtant and their ability depends upon their planning, design, implementation and maintenance |
[6] | Yön, B., O. Onat, and M.E. Öncü | Damages of hollow bricks infill walls inplane and out of plane for RC framed buildings | Adeuqate retoriftting technique needed for repair, retrofiitting and inclusion of NSE design provisions in Turkish Seismic Code (TSC) |
[7] | Tanja Kalman Šipoš et al. | Drift performance of masonry infill both n new and exisitng buildings | Performance based seismic design should focus on damage controlled parameter rather than the Life safety issue |
[8] | Cosenza, E., et al. | Safety index at the life safety performance level | Further research needed to for precise determination of expected annual losses (EAL) |
[9] | Wang, W., et al. | performance of precasr façade assemebled with steel structure | Assembled façade perform differently when in connection, so extensive research is needed |
[10] | Del Vecchio, C., M.D. Ludovico, and A. Prota | Repair costs associated with 120 RC buildings damaged during the 2009 L’Aquila earthquake | Hollow bricks are very brittle in nature, further research needed to compare the repair costs for buildings with no Damage state |
[11] | Sullivan, T.J. | Improving the design of SE’s & NSE’s to repair it for post earthquake performance with less cost | Research only done for partition wall and other NSE’s performance not judged |
[12] | Bianchi et al. | Seismic performance of Fiber reinforced gypsum partitions, glass fiber reinforced facades, spider glazing facades and URM partitions on shake table beyond collapse prevention level | Out-of-plane behaivour and expected annual lossess (EAL) to be researched |
[13] | Yön, B. | Performance of locally made unreinforced masonry in an earthquake | Wall strengthened with medium steel ratio can increase the ductility by 45.71% |
[14] | Nader, K.A.A., et al. | inplane anf out of plane behaivour under shake table tests for claddings | Seismic performance depends upon interaction between the claddings, frame and supporting wall in the design |
[15] | O’Reilly, G.J., et al. | Seismic Assessment and Loss estimation of Existing Schools in Italy | Repair time and casualties are not included in this research |
[16] | Bedon, C., et al. | Review of design methods for glass facades | P-Delta curves by the codes based on frame supported glass façade should not be directly used for point supported glass facades |
[17] | O’Hegarty, R., et al. | High Performance fiber reinfocred concrete panels for environmental improvement | Types of materials used as a replacement to traditional aggregates should be environmental friendly along with meeting the strength requirements |
[18] | Urbańska-Galewska, E., O. Zapała, and D. Wieczorek | Performance of Transparacent facaes in construction | Right concept and selection of type used can reduce the construction cost as well as reduce energy requirements |
[19] | Srivastava, S., U.I. Raniga, and S. Misra | Challenges in integrating social, economic and environmental aspects in construction sector | Sustainable construction can be ensured using the Triple Bottom apparoach covering the social, economic and environmental aspects |
[20] | Chen, M.C., et al. | Full Scaled Shake Table Tests of 05 Story RC Building under Fixed and Base isolator system | Comparison drawn with respect to max interstorey drift and base shear. However, detailed comparison between Base isolator system and Fixed system not shown |
[21] | Mieler, M.W. and J. Mitrani-Reiser | Earthquake indusced loss of functionality in buildings | further research needed to rectify the design gaps for quick functionality after a major earthquake |
[33] | Mohsenian, V., N. Gharaei-Moghaddam, and I. Hajirasouliha | Acceleration sensitive NSE’s | Code based methods are not accurate and MDOF methods by different researchers need to be used to provide accurate results |
[34] | Gerardo Araya-Letelier et al. | To improve the drift capacity of Gypsum partition walls under earthquake loads | Friction/sliding connection lowers the risk in Gypsum partitions vulnerable to lateral loads under low story dirfts |
[35] | Miranda et al. | Bracings designed for NSE to reduce the design forces and displacement demand | Bracings as support structures to free standing NSE propsoed but the design force equation and the specifications needed further elaboration |
[36] | Liu, C., D. Fang, and L. Zhao | Post earthquake behaivor after 2015 Nepal eathquake | Performance of masonry wall under the earthquake can be improved using seisic band reducing the residual deformation |
[37] | The Constructor | Factors Affecting Degree of Earthquake Damages to Buildings | General description on the response of a building and its components during earthquake |
[22] | Reuters | Damages during the Turkey and Syria, 2023 earthquake | Casualties largely due to failing of NSE during earthquake |
[91] | Perrone, D., et al. | NSE’s damages in Italy during 2016 earthquake due to non following the code provisions | Remedial measures to repair/retrofit the damages not referred |
[68] | Chen, M.C., et al. | Performance based seismic design framework using NSE’s for Base isolated systems | Limited for unidrectional seismic forces only |
[23] | Sisti, R., et al. | Performance of masonry walls during the 2016–2017 Italy earthquake | use of modern, sustainable and efficient materials can reduce the vulnerability of histrocial buildings (which are mostly unreinforced) |
[29] | Ottonelli, D., S. Cattari, and S.J.J.o.E.E. Lagomarsino | Performance based method for masonry fragility using nonlinear response and finite element method | For existing buildings progressive damages under the pushover curve but for masonry quite challenging especially for monumental buildings |
[92] | Cardone, D., G. Perrone, and A. Flora | Direct lossess related to the post earthquake repair costs | Can be used for unsymmetrical geometry and uneven floor occupancy types |
[93] | Dhakal, R.e.a. | Shake Tables of 3 story building for performance of NSE’s | Tested for steel buildings only for low damage design under lateral loads |
[31] | Hakan Dilmac et al. | RC Frame behaivour under infill walls in earthquake | infill wall effects the performance in terms of lateral load capacity, shear capacity and relative story displacement |
[94] | Bianchi, S., J. Ciurlanti, and S. Pampanin | Damage control peformance under maximum earthquake by Introducing gaps (vertical and horizontal) in NSE’s to absorb the drifts during the eathquake | Models developed using pushover analysis for walls only, cyclic loading and spacings for different geometries needs to be done |
[32] | Derakhshan, H., et al. | Fragility of URM under lateral loadings for rapid assessment of seismic risk to NSE | larger dispersion values should be used foe walls due to material and geometrical uncertainity |
[38] | Lu, X. and S. Zha | infill wall with some innovation test for inplane quasi static loading test | Innovation such as sliding mechanism and other methods can improve the energy dissipation and deformation capacity |
[39] | Menichini, G. | Damage pattern of the infill precast concrete panels | interface between the RC member and the panel must carry the out of plane loading from the impact of loadings and the inertial forces on the panel |
[40] | Sousa, L. and R. Monteiro | Retrofitting of NSE’s Partition wall instead of SE to reduce losses and minimize costs | Limited for infill walls only and for a particular region |
[24] | Pantoli, E., et al. | Performance of NSE under Fixed and Base isolated systems | independent perforamnce of NSE tested under shake table needs further research |
[41] | Memduh Karalar, Murat Çavuşli | NSE’s performance in RC buidling during strong earthquake | The study only takes into account the NSE laods as per IBC 2003 without taking into account the other properties like type of cnnections, nature of NSE’s etc. |
[42] | Filiatrault, A., et al. | Direct displacement based earthquake design for NSE’s | Details of NSE’s variation of global equivalent Viscous damping required and corresponding ground motions intensities and hazardsCyclic behaivour of NSE’s not established |
[95] | Steneker, P., et al. | Including damping and sliding hinge joints at beam column connection to improve NSE performance | Limited for three story steel MRF |
[43] | Merino, R.J., D. Perrone, and A. Filiatrault | Floor response spectra using direct displacement based design procedure | time period for NSE’s from NLTHA is assumed longer than 3 seconds which is not practicable |
[96] | H. Anajafi and R.A Medina | Equivalent static analysis for acceleration sensitive NSE as per ASCE 7-16 | limited to light NSE’s only and may be conservative for heavier NSE’s |
[25] | O’Reilly, G.J. and G.M. Calvi | Risk fragility for NSE’s | Research work done on infill walls only. Other NSE’s not disucssed |
[26] | Woessner, J. et al. | European Seismic Hazard Model | Limited to return period of 5000 years, needs further study based on the recent earthquakes |
[44] | Berto, L., et al. | Floor response spectra for costly NSE’s at ultimate limit state (ULS) and damage limit state (DLS) | Research based on 2D models and not all the different NSE’s are discussed |
[45] | Anwar, G.A., Y. Dong, and Y. Li | sustainability and resilience in the performance based decision making under earthquakes | different retroftting options can serve as multi-criteria decision-making for seismic loss, sustainability and resilience |
[30] | Hassan, W.M., et al. | Performance of composite column i.e. steel and concrete for older buildings | ACSE 41-17 overestimates and underestimates the resilience and vulnerability respectively |
[46] | Sheshov, V., et al. | Survey of the damages to buildings during the 2019 Albania earthquake | Earthquake damages to the SE and NSE’s without any guidelines on repair/retrifitting and adopting code based design approaches |
[49] | Filiatrault, A., et al. | NSE seismic performance evaluation for suspended elements using cyclic loadings | details regarding the NSE type in different MRF (Steel and concrete), size and specifications needs to be addressed further |
[47] | Memduh Karalar, Murat Çavuşl | Performance of displacement sensitive NSE restraint in RC buildings as per Eurocode 8 | only the NSE loads are taken using SAP2000 software, more sophisticated FEA softwares like abaqus, ATENA, DIANA FEA can be used |
[50] | Nardin, C., et al. | Shake Tables tests for Steem MRF using ground motion model | limited to steel MRF and particular tanks in industries only. Not valid for general buildings and different MRF other than steel |
[51] | Merino, R.J., D. Perrone, and A. Filiatrault | Seismic design methods for force and displacement NSE’s | For supporting systems sensitive to torsion and non-linear suspended NSE behaivor needs to be researched |
[52] | Joyner, M.D. and M. Sasani | Resilience based performance metrics considering the repair costs and functionality loss for buildings | Change in repair cost and loss of function depends upon building intitial time period for which more research work is needed |
[97] | Perrone, D., et al. | Nonlinear time history analysis for floor response spectrum on masonry infill walls | Effects of openings, mechanical and geomterical properties for infill walls needs further study |
[98] | Furtado, A., et al. | Resilience incorporating the delay time and non-strctural elements | undersestimating resilience be avoided and preventive measures for school type building be taken in post earthquake planning |
[53] | González, C., M. Niño, and G. Ayala | Delay time and Non-structural Elements in Resilience | Simplified approach for accessing the seismic resilience is not reliable approach |
[48] | B. Larson et al. | Performance of Viscous Damped Moment Frame building for Resilience | Detailing on NSE is important to improve Resilience |
[27] | Morán-Rodríguez, S. and D.A. Novelo-Casanova | Seismic vulnerability of heath facilities inclduing structural and non-structural elements | Model proposed can perform better in vulnerability assessment by utilization the data collection and classying them, this approach based for mexico can be used oin other regions |
[54] | Heidari, M., N. Eskandary, and S.S. Miresmaeeli | effects of earthquake on infrastructure near the fault line against the quality of material used and other factors | Government should formulate useful policies to reduce vulnerability and increase resilience |
[55] | You, T., W. Wang, and Y. Chen | Novel long term resilience indicator for earthquake resilience of a community | Proposed model gives good performance compared to routine methods |
[56] | Pesaralanka, V., et al. | Amplication effects due to the soft story on acceleraton sensitive NSE’s | research limited to linear analysis only.Damages states of NSE’s and EAL Lossess needed to be researched further |
[57] | Henry V. Burton et al. | Conceptual framework for post seismic action recovery of building | Pre earthquake and Post earthquake planning is needed |
[58] | Anwar, G.A., Y. Dong, and M. Ouyang | Community resilience assessment methodology in earrthquakes | The study used of HAZUS, REDITM Rating system and others etc., site specfic data can be based for better estimating the community resilience |
[59] | Anwar, G.A., Y. Dong, and M.A. Kha | Community level Framework for increasing sustainability and resilience of building systems | Repair costs and downtime can be reduced by appreciable retrofitting costs |
[28] | Asadi, E., A.M. Salman, and Y. Li | A coupled resilience and sustainability-based decision framework | Diagrids have good lateral capacity and can reduce CO2 emissions, but ample knowledge of the construction quality is required |
[69] | Freddi, F., et al. | Sendai framework for disaster risk reduction 2015–2030 for cost-effective methods | Innovations like structural health monitoring, early earthquake warning, and numerical modelling can be challenging for low-income countries |
[84] | Asadi, E., et al. | Multi criteria decision making framework involving sustaianbility and life cycle assessment | Effect of building type on environment, earthquake capacity and energy used by the system |
[60] | Joo, M.R. and R. Sinha | Resilience assessment of latest code based archetype building | Functional recovery can be ensured provided measures like ventilation without HVAC Functionality in post disaster |
[70] | Gao, X. and P. Pishdad-Bozorgi | Review on BiM applications and O&M practices | BIM can improve the efficency of O&M activities |
[61] | Chhabra, J.P.S., et al. | Life cycle assessment due to seismic actions on steel building | Results based on the assumption that loss of function due to earthquake only and limited to the particular case study |
[71] | Eskew, J., et al. | Renewable energy alternative as an environmental friendly approach | by further exploring the idea, marked reduction in depedence over fossil fuels can be made which is environmently friendly also |
[72] | Ng, S.T.; Wong, J.M.W.; Skitmore, S.; Veronika | Review on Carbon dioxide reduction in the building life cycle | Holistic approach needed to reduce the CO2 emissions for construction industry |
[85] | Hajek, P., et al. | Sustainability using BIM | BIM reduces final costs and delays resulting in economic stability |
[86] | Petrovic, B.; Myhren, J.A.; Zhang, X.; Wallhagen, M.; Eriksson | Lifecycle assessment of a single story house in sweden | Limited to area under investigation. May require more detailed analysis for different regions |
[87] | Shahana Y. Janjua et al. | Comparison of the dfferent sustainability measures for a residential building | Region bases Life cycle sustainability assessment required to cover the environmental, social and economic aspects |
[88] | Manjunatha, M., et al. | Impact of concrete composition on the life cycle and environment aspect | Portland pozzolona cement and ground granualed blast furnace slag makes the concrete sustainable material reducing CO2 emissions |
[73] | Teng, Y., et al. | Reducing building life cycle costs assessments using prefabricated buildings | Review shows the advanatges of Life cycle cost assessment using prefabriacted buildings is inconsistent and not clear due to number of opinions |
[62] | Fnais, A., et al. | Life cycle application and challenges in buildings | Sustainable goals can be achieved by reuse and recycle of prducts further reducing the operation energy |
[89] | Hoxha, E., et al. | Environmental impacts of technical equipments and electrical equipments | For complex buildings and huge systems, Life cycle costs are faced with a number of challenges |
[74] | Yao, L., A. Chini, and R. Zeng | Comparison of green roof with conventional roofs | Green roof perform better environmentally but the initial and maintenance costs is higher than conventional roof system |
[75] | Bilal, M., et al. | Buiilding energy efficency through integrating of technologies, Artificial intelligence, Digital Twins, BIM | Building automation system performance increased, better integration with the industry can be further researched |
[76] | Jayalath, A., et al. | Impact of cross lamintaed timber on the green house effect and Life cycle cost during construction | overall good impact but operation cost can be further reduced using recycling technique for sustainability |
[77] | Eberhardt, L.C.M., H. Birgisdóttir, and M. Birkved | impacts on sustainability using designed for dismantling strategy | to reduce the negative environmental effects, circular economy principles using Design for dismantling type is beneficial |
[78] | Schwartz, Y., R. Raslan, and D. Mumovic | Envrionemnt friendly construction to minimize the CO2 emissions | use of refined materials, the CO2 emissions can be reduced by 80% subject to recycling potential of the materials |
[79] | Altaf, M., et al. | Life cycle cost analysis awareness in industry at Malaysia | 5–16% of indutry knows the importance of Life cycle cost assessment |
[90] | Nwodo, M.N. and C.J. Anumba | Various challenges in the Life cycle assessment of buildings | BIM Tool can enhance the data collection and storage.Only web of science source used for the review |
[99] | Roberts, M., S. Allen, and D. Coley | Importance of Life cycle analysis is pre design stage | Life cycle analysis faces barriers in terms of method and practice in early design impacting the environmental performance |
[80] | Ahmed, I.M. and K.D. Tsavdaridis | Use of lightweight flooring for reducing the Life cycle cost and overall efficency | Precast sandwich panel reduces life cycle cost by 21% compared to cast in situ structures |
[81] | Zhang, L., J. Wu, and H. Liu | Green Building is benfits for life cycle of a building | Overestimation in the initial costs, cost benfits for green building approach need further research |
[82] | Song, X., et al. | Effects of Geotechnical works on the Life cycle cost for buildings | Discrepencies in literature on the life cycle assessment of buildings for foundations, impact categories and sensitivity analysis of LCA results |
[83] | Wang, Z., Y. Liu, and S. Shen, | Environemental and ecological problems due to the building construction in china | Recycling of the material reduces the CO2 emissions and minimizes the energy required during disposing off the dismantled material |
[63] | Khalid, H., et al. | Life cycle cost assessment by saving energy using reduction of cooling load in buildings | Limitations regarding modelling and analysis of the target objectives |
[64] | Hossain, M.U., et al., | Shift from Linear economy to circular economy in construction sector | Circular economy can improve the practicability for sustainable construction with further research towards case specfic buildings |
[65] | Hwang, B.-G., M. Shan, and J.-M. Lye | Solution of the hurdles small constructors face during project execution | Role of the client/governemnt is important to pave way for smooth project management and resolve smaller firms for sustainable service delivery |
[66] | Potrč Obrecht, T., et al. | Linking Life cycle costing with Building information modelling (BIM) | capability of BIM should not be overlooked and the manual data can be integrating into BIM |
[67] | Altaf, M., et al. | Using BIM Tool with Life cycle cost assessment to optimize the energy requirement | Initial cost may be higher but the maintance cost is low for the 20 years which optimizes the Life cycle cost |
[100] | Goel, A. | Social Sustainability based analysis of feasibiliy study using the community salient perspective | insufficent data available from developing countries to judge the social sustainability of construction projects |
[101] | Goel, A., L.S. Ganesh, and A. Kaur | Conceptual framework for social sustainability with Construction project management (CPM) | Gap between temporary project organizations and permanenent project organization can be reduced using the conceptual framework approach |
[102] | Santarelli, S., G. Bernardini, and E. Quagliarini | debris estimation for safety analysis of occupants for evacuation during an earthquake hazard | This approach can help in quick rescue and safe evacuation countering the challenges due to blocakge and narrow streets challenging the rescue activities |
[103] | Amini Hosseini, K. and Y.O. Izadkhah | Awareness about disaster management by involving the community | Highly beneficial for preparedness in school in iran and can be followed in other earthquake prone regions |
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S. No. | Topics | Details | References |
---|---|---|---|
1 | Post-Earthquake Performance of Buildings | Earthquake-induced loss of functionality in buildings. Damage assessment for critical infrastructure. Safety index at the life safety performance level. Floor response spectra using direct displacement-based design procedure. Composite column for older buildings. Effects on infrastructure near the fault line against the quality of material used and other factors. Review on BIM applications and operation and maintenance (O&M) practices. | [1,5,7,8,10,19,21,22,23,24,25,26,27,28] |
2 | Shake Table Test of Buildings | Shake table test of multi-story buildings. Performance-based seismic design framework using NSEs for base-isolated systems. | [22,29,30] |
3 | Shake Table Test of Nonstructural elements | Seismic performance of fiber-reinforced gypsum partitions, glass fiber-reinforced facades, spider glazing facades and URM partitions on shake table beyond collapse prevention level. In-plane and out-of-plane behavior under shake table tests for claddings. | [17,31,32] |
4 | Nonstructural Elements | NSEs like fiber-reinforced gypsum partitions, glass fiber-reinforced facades, spider glazing facades and URM partitions, claddings, acceleration-sensitive and displacement-sensitive NSE, fixed and base-isolated supports, and damping in NSEs. | [2,3,4,5,6,9,11,12,13,16,18,22,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48] |
5 | Sustainability and Resilience | Performance-based design involving resilience, repair time and delay time, functionality loss, viscous damper effect, Sendai framework for disaster risk reduction, sustainability using BIM, and sustainability impacts for dismantling. | [49,50,51,52,53,54,55,56,57,58,59,60,61,62,63,64,65,66,67] |
6 | Life Cycle Cost Assessment | Small housing, steel frames, concrete type, prefabricated housing, greenhouse effect, BIM tool for life cycle, pre-design stage life cycle, lightweight floor effect, energy saving, and circular economy in life cycle. | [15,68,69,70,71,72,73,74,75,76,77,78,79,80,81,82,83] |
7 | Environmental Life Cycle Assessment | Fiber-reinforced concrete effect, renewable energy, technical and electrical equipment, greenhouse with the conventional house, artificial intelligence and digital twin, reduction in CO2 emissions, and ecological problems due to construction. | [14,84,85,86,87,88,89,90] |
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Ahmad, Z.; Ahmed, H.A.; Shahzada, K.; Li, Y. Vulnerability of Non-Structural Elements (NSEs) in Buildings and Their Life Cycle Assessment: A Review. Buildings 2024, 14, 170. https://doi.org/10.3390/buildings14010170
Ahmad Z, Ahmed HA, Shahzada K, Li Y. Vulnerability of Non-Structural Elements (NSEs) in Buildings and Their Life Cycle Assessment: A Review. Buildings. 2024; 14(1):170. https://doi.org/10.3390/buildings14010170
Chicago/Turabian StyleAhmad, Zeeshan, Hafiz Asfandyar Ahmed, Khan Shahzada, and Yaohan Li. 2024. "Vulnerability of Non-Structural Elements (NSEs) in Buildings and Their Life Cycle Assessment: A Review" Buildings 14, no. 1: 170. https://doi.org/10.3390/buildings14010170
APA StyleAhmad, Z., Ahmed, H. A., Shahzada, K., & Li, Y. (2024). Vulnerability of Non-Structural Elements (NSEs) in Buildings and Their Life Cycle Assessment: A Review. Buildings, 14(1), 170. https://doi.org/10.3390/buildings14010170