Greenhouse Gas Emissions from Municipal Solid Waste Management …
159
70. Planning Commission (2014) The final report of the expert group on low carbon strategies
for inclusive growth, New Delhi, India
71. Rahman MA, Alam MS, Al-Amin M (2006) Segregation of biodegradable solid wastes of
Chittagong. Pak J Biol Sci 9(3):460–464
72. Rajcoomar A, Ramjeawon T (2017) Life cycle assessment of municipal solid waste
management scenarios on the small island of Mauritius. Waste Manage Res 35(3):313–324
73. Rupani PF, Maleki Delarestaghi R, Asadi H, Rezania S, Park J, Abbaspour M, Shao W (2019)
Current scenario of the Tehran municipal solid waste handling rules towards green technology.
Int J Environ Res Public Health 16(6):979
74. Sarkar MSI, Bhuyan MS (2018) Analysis of physical and chemical composition of the solid
waste in Chittagong city. J Ind Pollut Control 34(1):1984–1990
75. Scarlat N, Motola V, Dallemand JF, Monforti-Ferrario F, Mofor L (2015) Evaluation of energy
potential of municipal solid waste from African urban areas. Renew Sustain Energy Rev
50:1269–1286
76. Sharma A, Gupta AK, Ganguly R (2018) Impact of open dumping of municipal solid waste
on soil properties in mountainous region. J Rock Mech Geotech Eng 10(4):725–739
77. Sheoran V, Sheoran AS, Poonia P (2010) Soil reclamation of abandoned mine land by
revegetation: a review. Int J Soil, Sediment Water 3(2):13
78. Silpa K, Yao L, Tata PB, Van Woerden F (2018). What a Waste 2.0: a global snapshot
of solid waste management to 2050. Urban Development Series, Washington DC: World
Bank. https://doi.org/10.1596/978-1-4648-1329-0. https://www.worldbank.org/en/news/
press-release/2018/09/20/global-waste-to-grow-by-70-percent-by-2050-unless-urgent-act
ion-is-taken-world-bank-report. Accessed 12 July 2020
79. Singh J, Kalamdhad AS (2018) Effects of heavy metals on the environment by utilization
of urban waste compost for land application: a review. In: Urban ecology, water quality and
climate change, pp 329–340. Springer, Cham
80. Singh RP, Tyagi VV, Allen T, Ibrahim MH, Kothari R (2011) An overview for exploring
the possibilities of energy generation from municipal solid waste (MSW) in Indian scenario.
Renew Sustain Energy Rev 15(9):4797–4808
81. Smith A, Brown K, Ogilvie S, Rushton K, Bates J (2001) Waste management options and
climate change—Final Report to the European Commission. http://www.ec.europa.eu/enviro
nment/waste/studies/pdf/climate_change.pdf. Accessed 24 July 2020
82. Soobhany N (2018) Assessing the physicochemical properties and quality parameters during
composting of different organic constituents of municipal solid waste. J Environ Chem Eng
6(2):1979–1988
83. Srivastava V, De Araujo ASF, Vaish B, Bartelt-Hunt S, Singh P, Singh RP (2016) Biological
response of using municipal solid waste compost in agriculture as fertilizer supplement. Rev
Environ Sci Bio/Technol 15(4):677–696
84. The National Aeronautics and Space Administration (NASA) (2019) Global climate change,
Vital signs of the planet, Global temperature, Global land-ocean temperature index. NASA
Goddard Institute for Space Studies (GISS), Washington DC, United States. https://climate.
nasa.gov/vital-signs/globaltemperature. Accessed 09 July 2020
85. The National Aeronautics and Space Administration (NASA) (2020) Satellite sea level observations. NASA Goddard Space Flight Center. Washington DC, United States. https://climate.
nasa.gov/vital-signs/sea-level/. Accessed 09 July 2020
86. Tiseo I (2020) Greenhouse gas emissions attributable to landfill in the United Kingdom (UK)
from 2009 to 2018. https://www.statista.com/statistics/509129/greenhouse-gas-emissions-lan
dfill-in-the-united-kingdom-uk/. Accessed 12 July 2020
87. Tuprakay SR, Suksabye P, Menchai P, Tuprakay S (2014). The physical and chemical properties of solid waste from water tourism. Case study: Taling Chan Floating Market, Bangkok,
Thailand. Waste Management and the Environment VII, 180, 103
88. Turner DA, Williams ID, Kemp S (2015) Greenhouse gas emission factors for recycling of
source-segregated waste materials. Resour Conserv Recycl 105:186–197
159
70. Planning Commission (2014) The final report of the expert group on low carbon strategies
for inclusive growth, New Delhi, India
71. Rahman MA, Alam MS, Al-Amin M (2006) Segregation of biodegradable solid wastes of
Chittagong. Pak J Biol Sci 9(3):460–464
72. Rajcoomar A, Ramjeawon T (2017) Life cycle assessment of municipal solid waste
management scenarios on the small island of Mauritius. Waste Manage Res 35(3):313–324
73. Rupani PF, Maleki Delarestaghi R, Asadi H, Rezania S, Park J, Abbaspour M, Shao W (2019)
Current scenario of the Tehran municipal solid waste handling rules towards green technology.
Int J Environ Res Public Health 16(6):979
74. Sarkar MSI, Bhuyan MS (2018) Analysis of physical and chemical composition of the solid
waste in Chittagong city. J Ind Pollut Control 34(1):1984–1990
75. Scarlat N, Motola V, Dallemand JF, Monforti-Ferrario F, Mofor L (2015) Evaluation of energy
potential of municipal solid waste from African urban areas. Renew Sustain Energy Rev
50:1269–1286
76. Sharma A, Gupta AK, Ganguly R (2018) Impact of open dumping of municipal solid waste
on soil properties in mountainous region. J Rock Mech Geotech Eng 10(4):725–739
77. Sheoran V, Sheoran AS, Poonia P (2010) Soil reclamation of abandoned mine land by
revegetation: a review. Int J Soil, Sediment Water 3(2):13
78. Silpa K, Yao L, Tata PB, Van Woerden F (2018). What a Waste 2.0: a global snapshot
of solid waste management to 2050. Urban Development Series, Washington DC: World
Bank. https://doi.org/10.1596/978-1-4648-1329-0. https://www.worldbank.org/en/news/
press-release/2018/09/20/global-waste-to-grow-by-70-percent-by-2050-unless-urgent-act
ion-is-taken-world-bank-report. Accessed 12 July 2020
79. Singh J, Kalamdhad AS (2018) Effects of heavy metals on the environment by utilization
of urban waste compost for land application: a review. In: Urban ecology, water quality and
climate change, pp 329–340. Springer, Cham
80. Singh RP, Tyagi VV, Allen T, Ibrahim MH, Kothari R (2011) An overview for exploring
the possibilities of energy generation from municipal solid waste (MSW) in Indian scenario.
Renew Sustain Energy Rev 15(9):4797–4808
81. Smith A, Brown K, Ogilvie S, Rushton K, Bates J (2001) Waste management options and
climate change—Final Report to the European Commission. http://www.ec.europa.eu/enviro
nment/waste/studies/pdf/climate_change.pdf. Accessed 24 July 2020
82. Soobhany N (2018) Assessing the physicochemical properties and quality parameters during
composting of different organic constituents of municipal solid waste. J Environ Chem Eng
6(2):1979–1988
83. Srivastava V, De Araujo ASF, Vaish B, Bartelt-Hunt S, Singh P, Singh RP (2016) Biological
response of using municipal solid waste compost in agriculture as fertilizer supplement. Rev
Environ Sci Bio/Technol 15(4):677–696
84. The National Aeronautics and Space Administration (NASA) (2019) Global climate change,
Vital signs of the planet, Global temperature, Global land-ocean temperature index. NASA
Goddard Institute for Space Studies (GISS), Washington DC, United States. https://climate.
nasa.gov/vital-signs/globaltemperature. Accessed 09 July 2020
85. The National Aeronautics and Space Administration (NASA) (2020) Satellite sea level observations. NASA Goddard Space Flight Center. Washington DC, United States. https://climate.
nasa.gov/vital-signs/sea-level/. Accessed 09 July 2020
86. Tiseo I (2020) Greenhouse gas emissions attributable to landfill in the United Kingdom (UK)
from 2009 to 2018. https://www.statista.com/statistics/509129/greenhouse-gas-emissions-lan
dfill-in-the-united-kingdom-uk/. Accessed 12 July 2020
87. Tuprakay SR, Suksabye P, Menchai P, Tuprakay S (2014). The physical and chemical properties of solid waste from water tourism. Case study: Taling Chan Floating Market, Bangkok,
Thailand. Waste Management and the Environment VII, 180, 103
88. Turner DA, Williams ID, Kemp S (2015) Greenhouse gas emission factors for recycling of
source-segregated waste materials. Resour Conserv Recycl 105:186–197
