Numerical Prediction and Corresponding Circular Economy Approaches for Resource Optimisation and Recovery of Underground Structures

被引:0
作者
Han-Mei Chen
Rongxin Zhou
Cristian Ulianov
机构
[1] University of Manchester,Department of Mechanical, Aerospace and Civil Engineering, School of Engineering
[2] Loughborough University,Wolfson School of Mechanical, Electrical and Manufacturing Engineering
[3] Newcastle University,NewRail Centre for Railway Research
[4] University of Liverpool,School of Architecture
来源
Urban Rail Transit | 2020年 / 6卷
关键词
Resource optimisation; Waste recovery; Underground metro infrastructures; Numerical modelling; Circular economy;
D O I
暂无
中图分类号
学科分类号
摘要
The transition from a linear economy to a circular economy is a significant component of economic, environmental and social sustainability. Underground metro infrastructures such as tunnels can play a vital role in a circular economy, resulting in greater sustainability and less contribution to climate change. This paper presents numerical models of small-scale brick-lined railway tunnels to identify the critical locations, and then proposes corresponding circular approaches and solutions for the design, maintenance, life extension and end-of-service-life (EoSL) stages of underground infrastructures. The proposed numerical model is firstly verified with respect to the relevant experimental model based on tests under various loading conditions. The results demonstrate that detailed failure processes can be realistically captured by the numerical model, while the macroscopic behaviour compares well with experimental observations. Numerical modelling and subsequent prediction stand out as a practical approach and a powerful performance-based tool for analysing the reuse/recycling potential of metro tunnels and then carrying out easy repair and design for adaptability, disassembly and recoverability of underground infrastructures for a circular economy.
引用
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页码:71 / 83
页数:12
相关论文
共 74 条
[1]  
Mendoza JMF(2017)Integrating backcasting and eco-design for the circular economy: the BECE framework J Ind Ecol 21 526-544
[2]  
Sharmina M(2019)Recovery and reuse of structural products from end-of-life buildings Proc Inst Civil Eng Eng Sustain 172 119-128
[3]  
Gallego-Schmid A(2018)Developing and implementing circular economy business models in service-oriented technology companies J Clean Prod 177 621-632
[4]  
Heyes G(2003)Sustainable management of demolition waste—an integrated model for the evaluation of environmental, economic and social aspects Resources, Conservation and Recycling 38 317-334
[5]  
Azapagic A(2015)Reusing concrete panels from buildings for building: potential in Finnish 1970s mass housing Resour Conserv Recycl 101 105-121
[6]  
Hopkinson P(2016)Embodied carbon mitigation reduction in the built environment–what does the evidence say? J Environ Manage 181 687-700
[7]  
Chen HM(2019)Life cycle assessment of a Danish office building designed for disassembly Build Res Inf 47 666-680
[8]  
Zhou K(2011)Design for deconstruction and material reuse Proc ICE Energy 164 195-204
[9]  
Wang Y(2010)Purkubetoni kierrätetään tienpohjiksi–tulevaisuudessa ehkä myös taloiksi Betoni 2010 50-55
[10]  
Lam D(2014)Briefing: reuse and recycling rates of UK steel demolition arisings Proc Inst Civil Eng Eng Sustain 167 89-94