Life cycle assessment of reduction of environmental impacts via industrial symbiosis in an energy-intensive industrial park in China

被引:30
作者
Wang, Shanshan [1 ]
Lu, Chunyang [1 ]
Gao, Yu [1 ]
Wang, Ke [1 ]
Zhang, Ruiqin [1 ]
机构
[1] Zhengzhou Univ, Inst Environm Sci, Coll Chem & Mol Engn, Zhengzhou 450001, Henan, Peoples R China
关键词
Industrial symbiosis; Life cycle assessment; Environmental impact reduction potentials; Energy saving; Industrial park; NETWORK ANALYSIS; UNRESOLVED PROBLEMS; BENEFITS; CITY; LCA; EVOLUTION; CLUSTER;
D O I
10.1016/j.jclepro.2019.118358
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Industrial symbiosis (IS) is a collective approach to attain competitive advantage through the physical exchanges of materials, energy, water, and by-products, especially for the energy-intensive industrial parks. To highlight the reduction of potential environmental impacts of IS in a more complicated system, the extent of synergistic interactions among different industries, including power plants, aluminum, chemicals, iron and steel industries, in Yongcheng Economic Development Zone, Henan Province, China was explored. Specifically, a total of nine plants were used for IS analysis with thirteen IS links from the 2017 data. Different from the four environmental impact categories in previous studies, the reduction of potential environmental impacts through eight environmental impact categories adopting life cycle assessment method, including primary energy, greenhouse gas (GHG) emission, acidification potential, eutrophication potential, particulate matter (PM), human toxicity, respiratory inorganics, and ozone formation potential were evaluated, in addition to economic gains. The results show that effective impact reductions can be attained via thirteen symbiosis links, including 9456 TJ of primary energy, 850 kt CO(2)eq of GHG, 3297 t SO(2)eq of acidification, 242 t PO(4)(3-)eq of eutrophication, 24 t PM(10)eq of particulate matter, 2529 t 1,4-dichlorobenzene-eq of human toxicity, 4087 t PM(2.5)eq of respiratory inorganics and 20.6 t C(2)H(4)eq of ozone formation potential. In addition, 958 million RMB (1 USD approximate to 6.7 RMB in 2017) could be saved, accounting for 5.5% of the total value added of the park in 2017. The greatest contribution is from steam exchange between the power plants, methanol/ethylene glycol chemical plant, and other enterprises. In total, IS is an important way to reduce environmental impacts and gain economic benefits in this energy-intensive industrial park. The government should speed up the promotion of IS and make it a feasible approach to more eco-efficient development in industrial parks. (C) 2019 Elsevier Ltd. All rights reserved.
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页数:12
相关论文
共 49 条
[21]  
Guinee J.B., 2004, HDB LIFE CYCLE ASSES
[22]   Evaluation of promoting industrial symbiosis in a chemical industrial park: A case of Midong [J].
Guo, Bin ;
Geng, Yong ;
Sterr, Thomas ;
Dong, Liang ;
Liu, Yaxuan .
JOURNAL OF CLEANER PRODUCTION, 2016, 135 :995-1008
[23]  
Hiraishi T, 2014, 2013 SUPPLEMENT 2006
[24]   Priority assessment of toxic substances in life cycle assessment.: Part I:: Calculation of toxicity potentials for 181 substances with the nested multi-media fate, exposure and effects model USES-LCA [J].
Huijbregts, MAJ ;
Thissen, U ;
Guinée, JB ;
Jager, T ;
Kalf, D ;
van de Meent, D ;
Ragas, AMJ ;
Sleeswijk, AW ;
Reijnders, L .
CHEMOSPHERE, 2000, 41 (04) :541-573
[25]  
ISO, 2006, ISO 14044. Environmental Management Life Cycle Assessment Requirements and Guidelines
[26]  
Jacobsen N.B., 2005, EC IND ECOLOGY MAT S, P221
[27]   IMPACT 2002+: A new life cycle impact assessment methodology [J].
Jolliet, O ;
Margni, M ;
Charles, R ;
Humbert, S ;
Payet, J ;
Rebitzer, G ;
Rosenbaum, R .
INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2003, 8 (06) :324-330
[28]   Eco-industrial parks: stimulating sustainable development in mixed industrial parks [J].
Lambert, AJD ;
Boons, FA .
TECHNOVATION, 2002, 22 (08) :471-484
[29]   Industrial symbiosis as a countermeasure for resource dependent city: a case study of Guiyang, China [J].
Li, Hong ;
Dong, Liang ;
Ren, Jingzheng .
JOURNAL OF CLEANER PRODUCTION, 2015, 107 :252-266
[30]   Life cycle assessment of an industrial symbiosis based on energy recovery from dried sludge and used oil [J].
Liu, Qiang ;
Jiang, Peipei ;
Zhao, Jun ;
Zhang, Bo ;
Bian, Huadan ;
Qian, Guangren .
JOURNAL OF CLEANER PRODUCTION, 2011, 19 (15) :1700-1708