Engineering for sustainable development for bio-diesel production

Engineering for Sustainable Development (ESD) is an integrated systems approach, which aims at developing a balance between the requirements of the current stakeholders without compromising the ability of the future generations to meet their needs. This is a multi-criteria decision-making process th...

Full description

Bibliographic Details
Main Author: Narayanan, Divya
Other Authors: Mannan, Sam M.
Format: Others
Language:en_US
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/1969.1/ETD-TAMU-1268
http://hdl.handle.net/1969.1/ETD-TAMU-1268
id ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-ETD-TAMU-1268
record_format oai_dc
spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-ETD-TAMU-12682013-01-08T10:40:15ZEngineering for sustainable development for bio-diesel productionNarayanan, DivyaSustainable DevelopmentBio-DieselLife Cycle AssessmentAnalytical Hierarchical ProcessEngineering for Sustainable Development (ESD) is an integrated systems approach, which aims at developing a balance between the requirements of the current stakeholders without compromising the ability of the future generations to meet their needs. This is a multi-criteria decision-making process that involves the identification of the most optimal sustainable process, which satisfies economic, ecological and social criteria as well as safety and health requirements. Certain difficulties are encountered when ESD is applied, such as ill-defined criteria, scarcity of information, lack of process-specific data, metrics, and the need to satisfy multiple decision makers. To overcome these difficulties, ESD can be broken down into three major steps, starting with the Life Cycle Assessment (LCA) of the process, followed by generation of non-dominating alternatives, and finally selecting the most sustainable process by employing an analytic hierarchical selection process. This methodology starts with the prioritization of the sustainability metrics (health and safety, economic, ecological and social components). The alternatives are then subjected to a pair-wise comparison with respect to each Sustainable Development (SD) indicator and prioritized depending on their performance. The SD indicator priority score and each individual alternative’s performance score together are used to determine the most sustainable alternative. The proposed methodology for ESD is applied for bio-diesel production in this thesis. The results obtained for bio-diesel production using the proposed methodology are similar to the alternatives that are considered to be economically and environmentally favorable by both researchers and commercial manufacturers; hence the proposed methodology can be considered to be accurate. The proposed methodology will also find wide range of application as it is flexible and can be used for the sustainable development of a number of systems similar to the bio-diesel production system; it is also user friendly and can be customized with ease. Due to these benefits, the proposed methodology can be considered to be a useful tool for decision making for sustainable development of chemical processes.Mannan, Sam M.2010-01-14T23:56:15Z2010-01-16T01:33:44Z2010-01-14T23:56:15Z2010-01-16T01:33:44Z2007-052009-05-15BookThesisElectronic Thesistextelectronicapplication/pdfborn digitalhttp://hdl.handle.net/1969.1/ETD-TAMU-1268http://hdl.handle.net/1969.1/ETD-TAMU-1268en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Sustainable Development
Bio-Diesel
Life Cycle Assessment
Analytical Hierarchical Process
spellingShingle Sustainable Development
Bio-Diesel
Life Cycle Assessment
Analytical Hierarchical Process
Narayanan, Divya
Engineering for sustainable development for bio-diesel production
description Engineering for Sustainable Development (ESD) is an integrated systems approach, which aims at developing a balance between the requirements of the current stakeholders without compromising the ability of the future generations to meet their needs. This is a multi-criteria decision-making process that involves the identification of the most optimal sustainable process, which satisfies economic, ecological and social criteria as well as safety and health requirements. Certain difficulties are encountered when ESD is applied, such as ill-defined criteria, scarcity of information, lack of process-specific data, metrics, and the need to satisfy multiple decision makers. To overcome these difficulties, ESD can be broken down into three major steps, starting with the Life Cycle Assessment (LCA) of the process, followed by generation of non-dominating alternatives, and finally selecting the most sustainable process by employing an analytic hierarchical selection process. This methodology starts with the prioritization of the sustainability metrics (health and safety, economic, ecological and social components). The alternatives are then subjected to a pair-wise comparison with respect to each Sustainable Development (SD) indicator and prioritized depending on their performance. The SD indicator priority score and each individual alternative’s performance score together are used to determine the most sustainable alternative. The proposed methodology for ESD is applied for bio-diesel production in this thesis. The results obtained for bio-diesel production using the proposed methodology are similar to the alternatives that are considered to be economically and environmentally favorable by both researchers and commercial manufacturers; hence the proposed methodology can be considered to be accurate. The proposed methodology will also find wide range of application as it is flexible and can be used for the sustainable development of a number of systems similar to the bio-diesel production system; it is also user friendly and can be customized with ease. Due to these benefits, the proposed methodology can be considered to be a useful tool for decision making for sustainable development of chemical processes.
author2 Mannan, Sam M.
author_facet Mannan, Sam M.
Narayanan, Divya
author Narayanan, Divya
author_sort Narayanan, Divya
title Engineering for sustainable development for bio-diesel production
title_short Engineering for sustainable development for bio-diesel production
title_full Engineering for sustainable development for bio-diesel production
title_fullStr Engineering for sustainable development for bio-diesel production
title_full_unstemmed Engineering for sustainable development for bio-diesel production
title_sort engineering for sustainable development for bio-diesel production
publishDate 2010
url http://hdl.handle.net/1969.1/ETD-TAMU-1268
http://hdl.handle.net/1969.1/ETD-TAMU-1268
work_keys_str_mv AT narayanandivya engineeringforsustainabledevelopmentforbiodieselproduction
_version_ 1716504266259038208