Skip to main content
Top
Published in: The International Journal of Life Cycle Assessment 11/2017

31-10-2016 | PROMOTING SUSTAINABILITY IN EMERGING ECONOMIES VIA LIFE CYCLE THINKING

Conventional and exergetic life cycle assessment of organic rankine cycle implementation to municipal waste management: the case study of Mae Hong Son (Thailand)

Authors: Surat Sedpho, Sate Sampattagul, Nattaporn Chaiyat, Shabbir H. Gheewala

Published in: The International Journal of Life Cycle Assessment | Issue 11/2017

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Purpose

The critical issue of waste management in Thailand has been rapidly increasing in almost all of the cities due to the economic growth and rising population that could double the amount of solid waste in landfill area. The alternative ways of waste treatment that have more efficiency and effectiveness in terms of energy, ecology, and resources become the key issue for each municipality to replace the old fashioned technology and be able to enhance the ability of solid waste problem management. Waste to energy is one of the favorable approaches to diminish the amount of waste to landfill and utilize waste for electricity. The aim of this study is to identify and quantify the life cycle impacts of the municipal solid waste (MSW) of Mae Hong Son municipality (MHSM), and the case study is the selected waste treatment technology of the Refuse-Derived Fuel (RDF) hybrid with 20 kW of Organic Rankine Cycle (ORC).

Methods

The functional unit is defined as 1 t of MSW. The energy, environment, and resource impacts were evaluated by using Life Cycle Assessment (LCA); ReCipe and Net Energy Consumption were referred to calculate the environmental impacts and the benefits of energy recovery of WtE technology. Exergetic LCA was used to analyze the resource consumption, especially land use change.

Results and discussion

The results indicated that the environmental impacts were comparatively high at the operation stage of RDF combustion. On the other hand, the production stage of RDF illustrated the highest energy consumption. The ORC power generation mainly consumed resources from material and energy used. The ORC system demonstrated better results in terms of energy and resource consumption when applied to waste management, especially the land required for landfill. Substitution of electricity production from ORC system was the contributor to the reduction of both energy and resource consumption. Installation of spray dry and fabric filter unit to RDF burner can reduce heavy metals and some pollutants leading to the reduction of most of the impacts such as climate change, human toxicity, and fossil depletion which are much lower than the conventional landfill.

Conclusions

LCA results revealed that the environmental impacts and energy consumption can be reduced by applying the RDF and ORC systems. The exergetic LCA is one of the appropriate tools used to evaluate the resource consumption of MSW. It is obviously proven that landfill contributed to higher impacts than WtE for waste management.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
go back to reference Alvarenga RF, Dewulf J, Langenhove H, Huijbregts MJ (2013) Exergy-based accounting for land as a natural resource in life cycle assessment. Int J Life Cycle Assess 18:939–947CrossRef Alvarenga RF, Dewulf J, Langenhove H, Huijbregts MJ (2013) Exergy-based accounting for land as a natural resource in life cycle assessment. Int J Life Cycle Assess 18:939–947CrossRef
go back to reference Bai L (2012) Life cycle assessment of electricity generation from low temperature waste heat. Norwegian University of Science and Technology, Dissertation Bai L (2012) Life cycle assessment of electricity generation from low temperature waste heat. Norwegian University of Science and Technology, Dissertation
go back to reference Chaiyat N (2015) Sustainability of alternative energy for organic rankine cycle power plant in Thailand. Naresuan University Journal: Science and Technology 23:45–62 Chaiyat N (2015) Sustainability of alternative energy for organic rankine cycle power plant in Thailand. Naresuan University Journal: Science and Technology 23:45–62
go back to reference CMU (2014) Demonstration project on RDF-5 production from municipal waste: a case study of Chiang Mai University. Chiang Mai University, Chiang Mai, Thailand CMU (2014) Demonstration project on RDF-5 production from municipal waste: a case study of Chiang Mai University. Chiang Mai University, Chiang Mai, Thailand
go back to reference Cornelissen RL, Hirs GG (2002) The value of the exergetic life cycle assessment besides the LCA. Energ Convers Manage 43:1417–1424CrossRef Cornelissen RL, Hirs GG (2002) The value of the exergetic life cycle assessment besides the LCA. Energ Convers Manage 43:1417–1424CrossRef
go back to reference Dewulf J, Bösch ME, Meester BD, Vorst GV, Langenhove HV, Hellweg S, Huijbregts MAJ (2007) Cumulative exergy extraction from the natural environment (CEENE): a comprehensive life cycle impact assessment method for resource accounting. Environ Sci Technol 41:8477–8483CrossRef Dewulf J, Bösch ME, Meester BD, Vorst GV, Langenhove HV, Hellweg S, Huijbregts MAJ (2007) Cumulative exergy extraction from the natural environment (CEENE): a comprehensive life cycle impact assessment method for resource accounting. Environ Sci Technol 41:8477–8483CrossRef
go back to reference Ecoinvent (2007) Ecoinvent V 3.0 Database. Swiss Centre for Life Cycle Inventories, Dübendorf, Switzerland Ecoinvent (2007) Ecoinvent V 3.0 Database. Swiss Centre for Life Cycle Inventories, Dübendorf, Switzerland
go back to reference EEA (2013) EMEP/EEA air pollutant emission inventory guidebook 2013: technical guidance to prepare national emission inventories, European Environment Agency, publications Office of the European. Union, Luxembourg EEA (2013) EMEP/EEA air pollutant emission inventory guidebook 2013: technical guidance to prepare national emission inventories, European Environment Agency, publications Office of the European. Union, Luxembourg
go back to reference EPA (1995) Complication of air pollutant emission factors Vol. 1: Stationary point and area sources, Office of Air Quality Planning and Standards & Office of Air and Radiation, US Environment Protection Agency EPA (1995) Complication of air pollutant emission factors Vol. 1: Stationary point and area sources, Office of Air Quality Planning and Standards & Office of Air and Radiation, US Environment Protection Agency
go back to reference Frischknecht R, Jungbluth N, Althaus HJ, Bauer C, Doka G, Dones R, Hischier R, Hellweg S, Humbert S, Köllner T, Loerincik Y, Margni M, Nemecek T (2007) Implementation of life cycle impact assessment methods, Ecoinvent report no. 3. Swiss Centre for Life Cycle Inventories, Duebendorf Frischknecht R, Jungbluth N, Althaus HJ, Bauer C, Doka G, Dones R, Hischier R, Hellweg S, Humbert S, Köllner T, Loerincik Y, Margni M, Nemecek T (2007) Implementation of life cycle impact assessment methods, Ecoinvent report no. 3. Swiss Centre for Life Cycle Inventories, Duebendorf
go back to reference Goedkoop M, Heijungs R, Huijbregts M, Schryver AD, Struijs J, Van Zelm R (2009) ReCiPe 2008: a life cycle impact assessment method which comprises harmonised category indicators at the midpoint and the endpoint level, first edition. Report I: characterisation Goedkoop M, Heijungs R, Huijbregts M, Schryver AD, Struijs J, Van Zelm R (2009) ReCiPe 2008: a life cycle impact assessment method which comprises harmonised category indicators at the midpoint and the endpoint level, first edition. Report I: characterisation
go back to reference Huysveld S, De Meester S, Van linden V, Muylle H, Peiren N, Lauwers L, Dewulf J (2015) Cumulative overall resource efficiency assessment (COREA) for comparing bio-based products with their fossil-derived counterparts. Resour Conserv Recy 102:113–127CrossRef Huysveld S, De Meester S, Van linden V, Muylle H, Peiren N, Lauwers L, Dewulf J (2015) Cumulative overall resource efficiency assessment (COREA) for comparing bio-based products with their fossil-derived counterparts. Resour Conserv Recy 102:113–127CrossRef
go back to reference IPCC (2006) 2006 IPCC Guidelines for National Greenhouse Gas Inventories, Prepared by the National Greenhouse Gas Inventories Programme, Eggleston HS, Buendia L, Miwa K, Ngara T, Tanabe K (eds). Published: IGES, Japan IPCC (2006) 2006 IPCC Guidelines for National Greenhouse Gas Inventories, Prepared by the National Greenhouse Gas Inventories Programme, Eggleston HS, Buendia L, Miwa K, Ngara T, Tanabe K (eds). Published: IGES, Japan
go back to reference Johnson J, Reck BK, Wang T, Graedel TE (2008) The energy benefit of stainless steel recycling. Energ Policy 36:181–192CrossRef Johnson J, Reck BK, Wang T, Graedel TE (2008) The energy benefit of stainless steel recycling. Energ Policy 36:181–192CrossRef
go back to reference Liu C, He C, Gao H, Xie H, Li Y, Wu S, Xu J (2013) The environmental impact of organic rankine cycle for waste heat recovery through life-cycle assessment. Energy 56:144–154CrossRef Liu C, He C, Gao H, Xie H, Li Y, Wu S, Xu J (2013) The environmental impact of organic rankine cycle for waste heat recovery through life-cycle assessment. Energy 56:144–154CrossRef
go back to reference Perilhon C, Alkadee D, Descombes G, Lacour S (2012) Life Cycle Assessment Applied to Electricity Generation from Renewable Biomass. Terragreen 2012: Clean Energy Solutions for Sustainable Environment (CESSE) 18:165–176 Perilhon C, Alkadee D, Descombes G, Lacour S (2012) Life Cycle Assessment Applied to Electricity Generation from Renewable Biomass. Terragreen 2012: Clean Energy Solutions for Sustainable Environment (CESSE) 18:165–176
go back to reference Taelman SE, De Meester S, Schaubroeck T, Sakshaug E, Alvarenga RAF, Dewulf J (2014) Accounting for the occupation of the marine environment as a natural resource in life cycle assessment: an exergy based approach. Resour Conserv Recy 91:1–10CrossRef Taelman SE, De Meester S, Schaubroeck T, Sakshaug E, Alvarenga RAF, Dewulf J (2014) Accounting for the occupation of the marine environment as a natural resource in life cycle assessment: an exergy based approach. Resour Conserv Recy 91:1–10CrossRef
go back to reference Uusitalo A, Uusitalo V, Gronman A, Luoranen M, Jaatinen-Varri A (2016) Greenhouse gas reduction potential by producing electricity from biogas engine waste heat using organic rankine cycle. J Clean Prod 127:399–405CrossRef Uusitalo A, Uusitalo V, Gronman A, Luoranen M, Jaatinen-Varri A (2016) Greenhouse gas reduction potential by producing electricity from biogas engine waste heat using organic rankine cycle. J Clean Prod 127:399–405CrossRef
go back to reference Walsh C, Thornley P (2012) The environmental impact and economic feasibility of introducing an organic rankine cycle to recover low grade heat during the production of metallurgical coke. Recent Cleaner Production Advances in Process Monitoring and Optimisation 34:29–37 Walsh C, Thornley P (2012) The environmental impact and economic feasibility of introducing an organic rankine cycle to recover low grade heat during the production of metallurgical coke. Recent Cleaner Production Advances in Process Monitoring and Optimisation 34:29–37
go back to reference Wang H, Xu J, Yang X, Miao Z, Yu C (2015) Organic rankine cycle saves energy and reduces gas emissions for cement production. Energy 86:59–73CrossRef Wang H, Xu J, Yang X, Miao Z, Yu C (2015) Organic rankine cycle saves energy and reduces gas emissions for cement production. Energy 86:59–73CrossRef
Metadata
Title
Conventional and exergetic life cycle assessment of organic rankine cycle implementation to municipal waste management: the case study of Mae Hong Son (Thailand)
Authors
Surat Sedpho
Sate Sampattagul
Nattaporn Chaiyat
Shabbir H. Gheewala
Publication date
31-10-2016
Publisher
Springer Berlin Heidelberg
Published in
The International Journal of Life Cycle Assessment / Issue 11/2017
Print ISSN: 0948-3349
Electronic ISSN: 1614-7502
DOI
https://doi.org/10.1007/s11367-016-1216-4

Other articles of this Issue 11/2017

The International Journal of Life Cycle Assessment 11/2017 Go to the issue

PROMOTING SUSTAINABILITY IN EMERGING ECONOMIES VIA LIFE CYCLE THINKING

Life cycle assessment in the furniture industry: the case study of an office cabinet

PROMOTING SUSTAINABILITY IN EMERGING ECONOMIES VIA LIFE CYCLE THINKING

Preface

PROMOTING SUSTAINABILITY IN EMERGING ECONOMIES VIA LIFE CYCLE THINKING

Promoting life cycle thinking for sustainability in the mining sector of the Philippines