博碩士論文 107325603 詳細資訊




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姓名 卓建明(Archi Aditya)  查詢紙本館藏   畢業系所 土木系營建管理碩士班
論文名稱 應用碳足跡評估在印度尼西亞首都城市遷移之研究
(Applying Carbon Footprint Assessment on Capital City Relocation in Indonesia)
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摘要(中) 首都遷移為遷移過程中許多系統的穩定性帶來了不確定的影響。因此,需要進
行評估以衡量和克服將來的不良情況。搬遷專家指出,控制成本的一個關鍵是制定實
際成本預算,並在提供搬遷之前對其進行審查。作為支持政府間氣候變遷專門委員會
(Intergovernmental Panel on Climate Change,IPCC) 並致力於《巴黎協定》的國家之一,
印度尼西亞在應對全球暖化方面也扮演著重要角色。此外,2020 年開始進行第二波
「國家自訂貢獻 (National Determined Contributions,NDC)」的提交。本研究的目的是
評估印度尼西亞首都城市遷移計劃的碳足跡。結合投入-產出分析和生命週期分析,提
出了首都遷移的經濟IO-LCA。根據分析結果,整個項目將排放約4,859 萬tCO2e(噸二
氧化碳當量)至5,718 萬tCO2e 之溫室氣體。在確定每個目標的投資額時,每百萬美元
的差額將使排放量移動約1,278.51 tCO2e,每個案例之間的總排放量範圍為859 萬
tCO2e,占平均排放量的16.24%。當前計劃中需要仔細考慮的項目是電力,其次是水
泥和卡車運輸。在模型的數百個項目中,這三項大約負擔了整個排放量的27%。換句
話說,這項研究證明了在過程中作為排放源的重大影響。這個結果可以支持政府或任
何相關方在首都搬遷過程中的決策,也可以為控制地球暖化的全球性努力做出貢獻。
摘要(英) Capital relocation brings uncertain effects to the stability of many systems in the
processes. Therefore, assessment is needed to measure and overcome unwanted things in the
future. Relocation experts say that one key to holding down costs is developing an actual-cost
budget and reviewing it before relocation is even offered. As one of the countries that support
IPCC and committed to the Paris Agreement, Indonesia also has a big role in combat with global
warming. In addition, the second wave of NDC submission is begun in 2020. The purpose of
this study is to assess the carbon footprint of Indonesia capital city relocation plan. Using the
combination of Input-Output Analysis and Life Cycle Analysis (LCA), Economic IO-LCA for
the capital relocation is proposed in this study. From the analysis result, the whole project will
emit around 48.59 million tCO2e to 57.18 million tCO2e of GHGs emission. In deciding the
amount of investment for every target, the gap from every million USD will shift the emission
of about 1,278.51 tCO2e; the range of total average emission between cases is 8.59 Million
tCO2e, which is 16.24% of the average emission. The sectors that need to be considered
carefully in the current plan are from electricity, followed by cement and truck transport. From
hundreds of sectors in the model, those three sectors burden the whole emission for
approximately 27%. In other words, significant impact as the emitters in the processes is proven
in this study. This result could support the government or any related party on behalf for
decision making in the capital city relocation processes and also as a part of effort toward
maintaining global warming in the global scope.
關鍵字(中) ★ 首都遷移
★ 碳足跡
★ 評估
★ 環境
關鍵字(英) ★ Capital Relocation
★ Carbon Footprint
★ Assessment
★ Environment
論文目次 中文摘要 ................................................................................................................................ i
ABSTRACT ......................................................................................................................... ii
ACKNOWLEDGMENT .................................................................................................... iii
TABLE OF CONTENTS ................................................................................................... iv
TABLE OF FIGURES ....................................................................................................... vi
LIST OF TABLES ............................................................................................................. vii
CHAPTER I INTRODUCTION ........................................................................................ 1
1.1 Background ........................................................................................................... 1
1.2 Problem Statement ............................................................................................... 6
1.3 Objectives .............................................................................................................. 7
1.4 Scope and Limitation ............................................................................................ 7
1.5 Research Flowchart .............................................................................................. 7
1.6 Thesis Organization .............................................................................................. 8
CHAPTER II LITERATURE REVIEW ........................................................................ 11
2.1 Capital Relocation ............................................................................................... 11
2.2 Carbon Footprint ................................................................................................ 12
2.3 Carbon Footprint Assessment ........................................................................... 13
CHAPTER III METHODOLOGY .................................................................................. 17
3.1 Data Collection .................................................................................................... 17
3.2 Data Classification .............................................................................................. 18
3.3 Purchasing Power Parity (PPP) Conversion .................................................... 19
3.4 EIO-Life Cycle Analysis ..................................................................................... 20
CHAPTER IV ANALYSIS AND DISCUSSION ............................................................ 23
4.1 Analysis ................................................................................................................ 23
4.1.1 Scenario A ........................................................................................................ 25
4.1.1.1 Other Nonresidential Structures ................................................................. 25
4.1.1.2 Agriculture and Forestry Support .............................................................. 26
4.1.2 Scenario B ........................................................................................................ 28
4.1.2.1 Drinking Water and Wastewater Treatment .............................................. 28
4.1.2.2 Single-Family Homes ................................................................................ 29
4.1.2.3 Highways, Streets, Bridges ........................................................................ 31
4.1.2.4 Other Nonresidential Structures ................................................................. 32
4.1.2.5 Commercial Structures .............................................................................. 34
4.1.2.6 Schools and Vocational Buildings ............................................................. 35
4.1.2.7 Health Care Buildings ................................................................................ 36
4.1.3 Scenario C ........................................................................................................ 37
4.1.3.1 Multi-family Homes .................................................................................. 38
4.1.3.2 Schools and Vocational Buildings ............................................................. 39
4.1.3.3 Commercial Structures .............................................................................. 40
4.1.3.4 Health Care Buildings ................................................................................ 42
4.2 Discussion ............................................................................................................ 43
4.2.1 Scenarios Interpretation ..................................................................................... 44
4.2.2 Significant Sectors Interpretation ..................................................................... 46
CHAPTER V CONCLUSION .......................................................................................... 51
5.1 Conclusion ........................................................................................................... 51
5.2 Suggestion ............................................................................................................ 52
REFERENCES .................................................................................................................. 53
APPENDIX ............................................................................................................... App 1-1
App-1 BEA Code to USEEIO Name ................................................................. App 1-1
App-2 PPP Coefficient Table ............................................................................. App 2-1
App-3 Letter for Data Request .......................................................................... App 3-1
參考文獻 Antti Säynäjoki, J. H. a. S. J. (2011). Carbon Footprint Assessment of a Residential Devel.
International Journal of Environment Science and Development, 2, 7.
Argenbright, R. (2011). New Moscow: An Exploratory Assessment. Eurasian Geography
and Economics, 52(6), 857-875. doi:10.2747/1539-7216.52.6.857
Arize, A. (2004). Purchasing power parity in developing countries: Evidence from
conventional and fractional cointegration tests. International Journal of Banking and
Finance, 2(1), 29-43.
Bilec, M., Ries, R., Matthews, H. S., & Sharrard, A. L. (2006). Example of a Hybrid Life-
Cycle Assessment of Construction Processes. Journal of Infrastructure Systems, 12(4),
207-215. doi:doi:10.1061/(ASCE)1076-0342(2006)12:4(207)
BPS. (2018). Data Kependudukan DKI Jakarta 2018. Jakarta, Indonesia: Badan Pusat
Statistik Retrieved from
https://jakarta.bps.go.id/dynamictable/2019/03/05/47/proyeksi-penduduk-laki-lakidan-
perempuan-provinsi-dki-jakarta-menurut-kelompok-umur-2010-2035.html
Brander, M., & Davis, G. (2012). Greenhouse gases, CO2, CO2e, and carbon: What do all
these terms mean. Econometrica, White Papers.
Carnegie Mellon University Green Design Institute. (2008). Economic Input-Output Life
Cycle Assessment (EIO-LCA), US 2007 Industry Benchmark model [Internet].
Retrieved from http://www.eiolca.net. Retrieved 28 April 2020 http://www.eiolca.net
E-mail: IKN Bappenas - Archi Aditya. (21 April 2020). Tanggapan terhadap Permohonan
data dan informasi IKN untuk keperluan Thesis.
Environmental Protection Agency. (2020). Overview of Greenhouse Gases. U.S.A Retrieved
from https://www.epa.gov/ghgemissions/overview-greenhouse-gases
EPA. (2018, October 15, 2018). Greenhouse Gas Equivalencies Calculator. Energy and the
Environment. Retrieved from https://www.epa.gov/energy/greenhouse-gasequivalencies-
calculator
First Nationally Determined Contribution Republic Of Indonesia. (2016). Indonesia:
Republic of Indonesia
Gao, T., Liu, Q., & Wang, J. (2013). A comparative study of carbon footprint and assessment
standards. International Journal of Low-Carbon Technologies, 9(3), 237-243.
doi:10.1093/ijlct/ctt041
Hidayat, M. M. L. R. (2018, 13 August 2018). Jakarta, the fastest-sinking city in the world.
Retrieved from https://www.bbc.com/news/world-asia-44636934
Houghton, J. (2011). Global warming, climate change and sustainability.
IPCC. (2014). Climate Change 2014: Synthesis Report. Contribution of Working Groups I,
II and III to the Fifth Assessment Report of the Intergovernmental Panel on Climate
Change: Geneva: IPCC.
Junnila, S. I. (2006). Empirical Comparison of Process and Economic Input-Output Life
Cycle Assessment in Service Industries. Environmental Science & Technology, 40(22),
7070-7076. doi:10.1021/es0611902
Lindsey, R. (2020). Climate Change: Atmospheric Carbon Dioxide. Retrieved from
https://www.climate.gov/news-features/understanding-climate/climate-changeatmospheric-
carbon-dioxide
Margaret Deuter, J. B., Joanna Turnbull. (Ed.) (2015) Oxford Advanced Learner′s
Dictionary (9th Edition ed.). Oxford University Press.
Matthews, H. S., Hendrickson, C. T., & Weber, C. L. (2008). The importance of carbon
footprint estimation boundaries. In: ACS Publications.
Morris, K. I., Chan, A., Salleh, S. A., Ooi, M. C. G., Oozeer, M. Y., & Abakr, Y. A. (2016).
Numerical study on the urbanisation of Putrajaya and its interaction with the local
climate, over a decade. Urban Climate, 16, 1-24.
doi:https://doi.org/10.1016/j.uclim.2016.02.001
Moser, S. (2010). Putrajaya: Malaysia’s new federal administrative capital. Cities, 27(4),
285-297. doi:https://doi.org/10.1016/j.cities.2009.11.002
Peters, G. P. (2010). Carbon footprints and embodied carbon at multiple scales. Current
Opinion in Environmental Sustainability, 2(4), 245-250.
doi:https://doi.org/10.1016/j.cosust.2010.05.004
Preecharushh, D. (2011). Myanmar’s New Capital City of Naypyidaw. In S. D. Brunn (Ed.),
Engineering Earth: The Impacts of Megaengineering Projects (pp. 1021-1044).
Dordrecht: Springer Netherlands.
Schatz, E. (2003). When capital cities move: The political geography of nation and state
building.
Scripps. (2020). How fast is CO2 increasing in the atmosphere and is this changing?
Retrieved from https://scrippsco2.ucsd.edu/faq.html#
Scripps Institution of Oceanography. (2020). The Keeling Curve. Retrieved from
https://scripps.ucsd.edu/programs/keelingcurve/. Retrieved 23 April 2020, from UC
San Diego https://scripps.ucsd.edu/programs/keelingcurve/
Staff Report. (2002). Planning and Cost-estimating Saves Huge Relocation Costs.
Workforce (10928332), 81(5), 38. Retrieved from
http://search.ebscohost.com/login.aspx?direct=true&db=aph&AN=6665526&site=eho
st-live
Suh, S., Lenzen, M., Treloar, G. J., Hondo, H., Horvath, A., Huppes, G., . . . Norris, G.
(2004). System Boundary Selection in Life-Cycle Inventories Using Hybrid
Approaches. Environmental Science & Technology, 38(3), 657-664.
doi:10.1021/es0263745
Tappin, S., & Cave, A. (2008). The Secrets of CEOs: 150 Global Chief Executives Lift the
Lid on Business, Life and Leadership: Nicholas Brealey.
Taylor, A. M., & Taylor, M. P. (2004). The purchasing power parity debate. Journal of
economic perspectives, 18(4), 135-158.
United Nations Framework Convention on Climate Change. (2020, 2020). THE LATEST
SUBMISSIONS. The Interim NDC Registry. Retrieved from
https://www4.unfccc.int/sites/NDCStaging/Pages/LatestSubmissions.aspx
Weber, C. L., & Matthews, H. S. (2008). Quantifying the global and distributional aspects
of American household carbon footprint. Ecological Economics, 66(2-3), 379-391.
Retrieved from https://EconPapers.repec.org/RePEc:eee:ecolec:v:66:y:2008:i:2-
3:p:379-391
Wiedmann, T., & Minx, J. (2008). A definition of ‘carbon footprint’. Ecological economics
research trends, 1, 1-11.
Williams, D. D. R. (2020). Earth Fact Sheet. Retrieved from:
https://nssdc.gsfc.nasa.gov/planetary/factsheet/earthfact.html
World Bank. (2020). World Development Indicators: Exchange rates and prices.
World Resources Institute. (2019). CAIT Climate Data Explorer. Retrieved from
http://cait.wri.org. http://cait.wri.org
Yang, Y., Ingwersen, W. W., Hawkins, T. R., Srocka, M., & Meyer, D. E. (2017). USEEIO:
A new and transparent United States environmentally-extended input-output model.
Journal of Cleaner Production, 158, 308-318.
doi:https://doi.org/10.1016/j.jclepro.2017.04.150
指導教授 王翰翔(Han-Hsiang Wang) 審核日期 2020-7-28
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