Wellcome

Biofuel Production Technologies: Critical Analysis for Sustainability (Record no. 551541)

MARC details
000 -LEADER
fixed length control field 05493nam a22006375i 4500
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control field 978-981-13-8637-4
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control field DE-He213
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control field 20211012175446.0
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fixed length control field cr nn 008mamaa
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fixed length control field 200323s2020 si | s |||| 0|eng d
020 ## - INTERNATIONAL STANDARD BOOK NUMBER
International Standard Book Number 9789811386374
-- 978-981-13-8637-4
024 7# -
-- 10.1007/978-981-13-8637-4
-- doi
050 #4 - LIBRARY OF CONGRESS CALL NUMBER
-- TA170-171
-- TD195.B58
072 #7 -
-- TQ
-- bicssc
-- TEC010000
-- bisacsh
-- TQ
-- thema
-- TCB
-- thema
082 04 -
Classification number 660.6
-- 23
Classification number 628
-- 23
245 10 - TITLE STATEMENT
Title Biofuel Production Technologies: Critical Analysis for Sustainability
Statement of responsibility, etc edited by Neha Srivastava, Manish Srivastava, P. K. Mishra, Vijai Kumar Gupta.
250 ## - EDITION STATEMENT
Edition statement 1st ed. 2020.
300 ## - PHYSICAL DESCRIPTION
Extent XIII, 342 p. 76 illus., 48 illus. in color.
Other physical details online resource.
505 0# -
Formatted contents note Chapter-1 Biofuels: types and process overview -- Chapter-2 Biofuels generation based on technical process and biomass quality -- Chapter-3 Biogas: An Effective and Common Energy Tool-PART-I -- Chapter-4 Biogas: An Effective and Common Energy Tool-PART-II -- Chapter-5 Biogas: An Effective and Common Energy Tool-PART-III -- Chapter-6 Stoichiometric analysis of biogas production from industrial residues -- Chapter-7 Bioethanol Production; Generation Based Comparative Status Measurements -- Chapter-8 Algal Biomass: Potential Renewable Feedstock for Biofuels Production-PART-I -- Chapter-9 Recent trends in biogas upgrading technologies for biomethane production -- Chapter-10 Efficiency Analysis of Crude Vs Pure Cellulase in Industry -- Chapter-11 Significance of process parameters on fungal cellulase production -- Chapter-12 Modeling and stimulation of pyrolysis of teak (Tectona grandis) Sawdust. .
650 #0 -
Topical term or geographic name as entry element Environmental engineering.
Topical term or geographic name as entry element Biotechnology.
Topical term or geographic name as entry element Environmental management.
Topical term or geographic name as entry element Microbiology.
Topical term or geographic name as entry element Plant biochemistry.
Topical term or geographic name as entry element Environmental Engineering/Biotechnology.
Topical term or geographic name as entry element Environmental Management.
Topical term or geographic name as entry element Microbiology.
Topical term or geographic name as entry element Plant Biochemistry.
700 1# -
Personal name Srivastava, Neha.
Relator term editor.
Personal name Srivastava, Manish.
Relator term editor.
Personal name Mishra, P. K.
Relator term editor.
Personal name Gupta, Vijai Kumar.
Relator term editor.
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Corporate name or jurisdiction name as entry element SpringerLink (Online service)
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Uniform Resource Identifier https://doi.org/10.1007/978-981-13-8637-4
245 10 - TITLE STATEMENT
-- [electronic resource] /
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-- Singapore :
-- Springer Singapore :
-- Imprint: Springer,
-- 2020.
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-- text
-- txt
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-- computer
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-- rdamedia
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-- online resource
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-- text file
-- PDF
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490 1# -
-- Clean Energy Production Technologies,
-- 2662-687X
520 ## -
-- Production and utilization of sustainable energy toward maintaining a clean environment is a major challenge. At the same time, the continued depletion of fossil fuels and the global dependency on non-renewable fuels is a chief concern. Moreover, the long-term economic and environmental issues associated with the high utilization of fossil fuel, such as global warming, are also important, particularly in the context of the predicted increase in the global population to around 5 billion by 2050. In recent years, researchers have been investigating alternative, renewable fuels to replace fossil fuels. Of the various options, biofuels are especially attractive due to their low production costs and the fact that they are pollution free. Also known as transportation fuels, their energy is derived from biological resources or through the biological processes. Biofuels such as biohydrogen, biomethane, biogas, ethanol and butanol offer a number of advantages and can be economically produced from cellulosic biomass. As such, they can play a vital role in sustainably meeting future energy demands. Biofuels have the potential to become a global primary energy source, offering significant reductions in greenhouse gas emissions as well as opportunities to increase economic and social development in rural communities and reduce the problems associated with waste disposal. However, low yields and lack of process technology are some of the aspects that need to be addressed. This book offers an overview of existing biofuels and the technologies to solve the problems associated with their practical implementation. Evaluating the biofuel options and discussing the opportunities and risks in relation to resources, technologies, practices, markets and policy, it provides insights into the development of economically viable bioenergy industries.
-- https://scigraph.springernature.com/ontologies/product-market-codes/U33000
-- https://scigraph.springernature.com/ontologies/product-market-codes/U17009
-- https://scigraph.springernature.com/ontologies/product-market-codes/L23004
-- https://scigraph.springernature.com/ontologies/product-market-codes/L14021
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-- edt
-- http://id.loc.gov/vocabulary/relators/edt
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-- http://id.loc.gov/vocabulary/relators/edt
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-- http://id.loc.gov/vocabulary/relators/edt
773 0# -
-- Springer Nature eBook
776 08 -
-- Printed edition:
-- 9789811386367
-- Printed edition:
-- 9789811386381
-- Printed edition:
-- 9789811386398
830 #0 -
-- Clean Energy Production Technologies,
-- 2662-687X
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-- ZDB-2-EES
-- ZDB-2-SXEE
950 ## -
-- Earth and Environmental Science (SpringerNature-11646)
-- Earth and Environmental Science (R0) (SpringerNature-43711)

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