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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 化學工程學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/101467
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dc.contributor.advisor游文岳zh_TW
dc.contributor.advisorWen-Yueh Yuen
dc.contributor.author鄭崢zh_TW
dc.contributor.authorJustin Tay Zhengen
dc.date.accessioned2026-02-03T16:30:26Z-
dc.date.available2026-02-04-
dc.date.copyright2026-02-03-
dc.date.issued2026-
dc.date.submitted2026-01-20-
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[2] W. Yang, Z. Wang, H. Sun, B. Zhang, "Advances in development and industrial applications of ethylbenzene processes", Chinese Journal of Catalysis, 37 (2016) 16-26.
[3] P.G. Junqueira, I.N. Caxiano, P.V. Mangili, D.M. Prata, "Environ-economic analysis of conceptual intensification alternatives applied to the ethylbenzene production", Computers & Chemical Engineering, 136 (2020) 106783.
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[8] Z. Qi, Zhang, "Alkylation of benzene with ethylene in a packed reactive distillation column", Industrial & Engineering Chemistry Research, 43 (2004) 4105-4111.
[9] S. Liu, F. Chen, S. Xie, P. Zeng, X. Du, L. Xu, "Highly selective ethylbenzene production through alkylation of dilute ethylene with gas phase-liquid phase benzene and transalkylation feed", Journal of Natural Gas Chemistry, 18 (2009) 21-24.
[10] A.N. Ebrahimi, A.Z. Sharak, S.A. Mousavi, F. Aghazadeh, A. Soltani, "Modification and optimization of benzene alkylation process for production of ethylbenzene", Chemical Engineering and Processing: Process Intensification, 50 (2011) 31-36.
[11] W.L. Luyben, "Design and control of the ethyl benzene process", AIChE Journal, 57 (2011) 655-670.
[12] J.L. Barry, J.A. Thompson, J. Baltrusaitis, W.L. Luyben, "A novel “feed-backward” control structure for on-demand control of distillation column sequences", Chemical Engineering Research and Design, 197 (2023) 750-760.
[13] A. Hussain, M. Lee, "Intensification of the ethylbenzene production process using a column configured with a side reactor", Chemical Engineering and Processing: Process Intensification, 122 (2017) 204-212.
[14] Q.H. Ng, S. Sharma, G.P. Rangaiah, "Design and analysis of an ethyl benzene production process using conventional distillation columns and dividing-wall column for multiple objectives", Chemical Engineering Research and Design, 118 (2017) 142-157.
[15] S. Kirkpatrick, C.D. Gelatt Jr, M.P. Vecchi, "Optimization by simulated annealing", Science, 220 (1983) 671-680.
[16] N. Metropolis, A.W. Rosenbluth, M.N. Rosenbluth, A.H. Teller, E. Teller, "Equation of state calculations by fast computing machines", The Journal of Chemical Physics, 21 (1953) 1087-1092.
[17] B.-Y. Yu, "Development of two plant-wide glycerol carbonate production processes: Design, optimization and environmental analysis", Journal of the Taiwan Institute of Chemical Engineers, 117 (2020) 19-25.
[18] B.-Y. Yu, P.-J. Wu, C.-C. Tsai, S.-T. Lin, "Evaluating the direct CO2 to diethyl carbonate (DEC) process: Rigorous simulation, techno-economical and environmental evaluation", Journal of CO2 Utilization, 41 (2020) 101254.
[19] H.-H. Chiou, C.-J. Lee, B.-S. Wen, J.-X. Lin, C.-L. Chen, B.-Y. Yu, "Evaluation of alternative processes of methanol production from CO2: Design, optimization, control, techno-economic, and environmental analysis", Fuel, 343 (2023) 127856.
[20] R. Turton, R.C. Bailie, W.B. Whiting, J.A. Shaeiwitz, "Analysis, synthesis and design of chemical processes", 5th ed., Pearson Education 2018.
[21] M.A. Gadalla, Z. Olujic, P.J. Jansens, M. Jobson, R. Smith, "Reducing CO2 emissions and energy consumption of heat-integrated distillation systems", Environmental science & technology, 39 (2005) 6860-6870.
[22] Imarc, "Benzene Prices, Trend, Chart, Demand, Market Analysis, News, Historical and Forecast Data Report 2025 Edition", Accessed on December 2025.https://www.imarcgroup.com/benzene-pricing-report
[23] Intratec, "Ethylene Prices Worldwide", Accessed on December 2025.https://www.intratec.us/solutions/primary-commodity-prices/commodity/ethylene-prices
[24] C. Flego, G. Pazzuconi, E. Bencini, C. Perego, "Zeolite Beta as a catalyst for alkylation of benzene with ethylene: a deactivation study", Studies in Surface Science and Catalysis, Elsevier, 1999, 461-464.
[25] Accio, "Zeolite catalyst price", Accessed on December 2025.https://www.accio.com/plp/zeolite-catalyst-price
[26] Imarc, "Ethylene Prices, Trend, Chart, Demand, Market Analysis, News, Historical and Forecast Data Report 2025 Edition", Accessed on December 2025. https://www.imarcgroup.com/ethylene-pricing-report
[27] Intratec, "Ethylbenzene Prices Worldwide", Accessed on December 2025.https://www.intratec.us/solutions/primary-commodity-prices/commodity/ethylbenzene-prices
[28] "ISO 14044:2006 - Environmental management ─ Life cycle assessment ─ Requirements and guidelines".https://www.iso.org/standard/37456.html
[29] "ISO 14040:2006 - Environmental management ─ Life cycle assessment ─ Principles and framework.".https://www.iso.org/standard/38498.html
[30] V. Valasara, B. Ahn, S. Goel, S.-M. Han, N. Woo, B.-Y. Yu, W. Won, "Process design and integrative analysis for the coproduction of Bioplastic monomers and biochemicals from lignocellulosic biomass", ACS Sustainable Chemistry & Engineering, 13 (2025) 12767-12781.
[31] S. Shaked, P. Crettaz, M. Saade-Sbeih, O. Jolliet, A. Jolliet, "Environmental life cycle assessment", Taylor & Francis, 2015.
[32] M. Rybaczewska-Błażejowska, D. Jezierski, "Comparison of ReCiPe 2016, ILCD 2011, CML-IA baseline and IMPACT 2002+ LCIA methods: a case study based on the electricity consumption mix in Europe", The International Journal of Life Cycle Assessment, 29 (2024) 1799-1817.
[33] V. Prado, B.A. Wender, T.P. Seager, "Interpretation of comparative LCAs: external normalization and a method of mutual differences", The International Journal of Life Cycle Assessment, 22 (2017) 2018-2029.
[34] S. Bai, X. Wang, X. Zhang, X. Zhao, N. Ren, "Life cycle assessment in wastewater treatment: influence of site-oriented normalization factors, life cycle impact assessment methods, and weighting methods", RSC Advances, 7 (2017) 26335-26341.
[35] A. Bayazıt Subaşı, C. Askham, E.D. Sandorf, L.C. Dias, D. Campbell, E.F. Taş, N. Itsubo, C.B. Nagawa, C.M. Kyarimpa, M. Djerma, "Weighting factors for LCA—a new set from a global survey", The International Journal of Life Cycle Assessment, 29 (2024) 2107-2136.
[36] M.-A. WOLF, K. CHOMKHAMSRI, M. BRANDAO, R. PANT, F. ARDENTE, D. PENNINGTON, S. MANFREDI, C.C. DE, M. GORALCZYK, "International reference life cycle data system (ILCD) handbook-general guide for life cycle assessment-detailed guidance", 2010.
[37] J.B. Guinée, "Handbook on life cycle assessment: operational guide to the ISO standards", Springer Science & Business Media, 2002.
[38] A. Kätelhön, R. Meys, S. Deutz, S. Suh, A. Bardow, "Climate change mitigation potential of carbon capture and utilization in the chemical industry", Proceedings of the National Academy of Sciences, 116 (2019) 11187-11194.
[39] P. Fantke, N. Illner, "Goods that are good enough: Introducing an absolute sustainability perspective for managing chemicals in consumer products", Current Opinion in Green and Sustainable Chemistry, 15 (2019) 91-97.
[40] A. Azapagic, R. Clift, "Life cycle assessment and multiobjective optimisation", Journal of Cleaner Production, 7 (1999) 135-143.
[41] B. Alonso-Fariñas, A. Gallego-Schmid, P. Haro, A. Azapagic, "Environmental assessment of thermo-chemical processes for bio-ethylene production in comparison with bio-chemical and fossil-based ethylene", Journal of Cleaner Production, 202 (2018) 817-829.
[42] M.G. Davidson, R.A. Furlong, M.C. McManus, "Developments in the life cycle assessment of chemical recycling of plastic waste–A review", Journal of Cleaner Production, 293 (2021) 126163.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/101467-
dc.description.abstract本研究針對乙苯(EB)製程建立一套整合製程設計、技術經濟分析(TEA)與生命週期評估(LCA)的系統化評估框架,系統性探討該製程於技術、經濟與環境層面之整體表現。EB製程為典型多單元整合系統,包含兩座反應器、兩座蒸餾塔及兩段物料回收迴路,其關鍵特徵在於副產物二乙苯(DEB)之回收與再轉化策略。透過反應段之功能性配置,使主反應與副反應於不同反應器中分工進行,不僅提升EB選擇率,亦有效降低DEB生成量,並為後續分離單元之能耗降低與成本改善奠定基礎。
從TEA結果顯示,在內部報酬率(IRR)設定為15 %時,EB的最低銷售價格(MSP)為1.024USD/kg,與近年國際市場價格(0.70–1.20 USD/kg)相符,進一步分析指出,製程總成本主要由原料費用所主導,此一經濟熱點分布與LCA所識別之環境衝擊熱點呈現高度一致性,顯示經濟與環境績效具有共同的關鍵驅動因子。雖然整體表現主要受上游原料供應鏈所影響,製程內部之能源使用效率與公用設施配置仍提供具體可行的改善空間。
綜合分析結果顯示,EB製程之永續表現主要受上游原料來源、製程能源效率與公用設施架構三者共同主導。原料來源可引入低碳原料來源如生質乙烯、回收基苯可顯著降低環境衝擊,而透過熱整合與能效最佳化則能同步降低操作成本與能源消耗。進一步而言,若能源端導入低碳或再生能源,則可在不改變主製程配置的前提下,進一步提升整體永續性。本研究所建立之整合分析框架可作為未來化工製程規劃、綠色製程開發及永續投資決策之重要參考。
zh_TW
dc.description.abstractThis study develops a comprehensive evaluation framework for ethylbenzene (EB) production by integrating process design, techno-economic analysis (TEA), and life cycle assessment (LCA), enabling a simultaneous assessment of technical feasibility, economic viability, and environmental sustainability. EB process represents a typical multi-unit integrated system, consisting of two reactors, two distillation columns, and two recycle loops. An unusual feature lies in the recovery of diethyl benzene (DEB), where functional allocation of the reaction network enables the main and side reactions to proceed in different reactors. This configuration enhances overall EB selectivity, suppresses DEB formation, and provides a favorable basis for reducing energy consumption and costs in separation units.
TEA results indicate that, at an internal rate of return (IRR) of 15%, the minimum selling price (MSP) of EB is 1.024 USD/kg, falling within the international market range of 0.70–1.20 USD/kg. Further analysis shows that the total process cost is predominantly driven by raw material expenses. This economic hotspot distribution closely corresponds with the environmental impact hotspots identified by the LCA, indicating that the economic and environmental performance share common key drivers. Although the overall performance is primarily influenced by the upstream raw material supply chain, internal process energy efficiency and the configuration of utility systems still offer tangible opportunities for improvement.
The integrated analysis demonstrates that the sustainability performance of the EB process is jointly governed by three factors: upstream raw material sources, process energy efficiency, and utility infrastructure. Introducing low-carbon feedstocks, such as bio-based ethylene or recycled benzene, can significantly reduce environmental impacts, while heat integration and energy optimization can simultaneously lower operating costs and energy consumption. Furthermore, the adoption of low-carbon or renewable energy at the utility level can further enhance overall sustainability without altering the main process configuration. The integrated evaluation framework established in this study provides a valuable reference for future chemical process planning, green process development, and sustainable investment decision-making.
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dc.description.tableofcontents口試委員審定書 i
誌謝 ii
摘要 iv
Abstract v
目次 vii
圖次 ix
表次 x
Chapter 1 緒論 1
1.1 研究背景 1
1.2 文獻回顧 3
1.3 研究目標 6
Chapter 2 程序製程概述 8
2.1 反應動力學 8
2.2 物理性質 10
Chapter 3 程序製程設計 12
3.1 程序製程架構 12
3.2 程序製程優化 14
3.2.1 演算法 14
3.2.2 製程優化變數 16
3.2.3 製程優化結果 18
Chapter 4 技術經濟分析 22
4.1 乙苯最低銷售價格之評估 22
4.2 敏感度分析 25
Chapter 5 生命週期評估 27
5.1 目標與範疇界定 29
5.2 盤查分析 31
5.3 衝擊評估 33
5.4 結果闡釋 37
Chapter 6 結論 39
附錄一 資本及操作成本之計算 40
附錄二 生命週期評估詳細結果 45
參考資料 46
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dc.language.isozh_TW-
dc.subject乙苯-
dc.subject製程設計-
dc.subject技術經濟分析-
dc.subject生命週期評估-
dc.subject永續-
dc.subjectethylbenzene-
dc.subjectprocess design-
dc.subjecttechno-economic analysis-
dc.subjectlife cycle assessment-
dc.subjectsustainability-
dc.title由苯與乙烯生產乙苯:程序設計及優化、技術經濟分析與生命週期評估zh_TW
dc.titleEthylbenzene Production from Benzene and Ethylene: Process Design and Optimization, Techno-Economic Analysis and Life Cycle Assessmenten
dc.typeThesis-
dc.date.schoolyear114-1-
dc.description.degree碩士-
dc.contributor.coadvisor余柏毅zh_TW
dc.contributor.coadvisorBor-Yih Yuen
dc.contributor.oralexamcommittee謝依芸zh_TW
dc.contributor.oralexamcommitteeI-Yun Lisa Hsiehen
dc.subject.keyword乙苯,製程設計技術經濟分析生命週期評估永續zh_TW
dc.subject.keywordethylbenzene,process designtechno-economic analysislife cycle assessmentsustainabilityen
dc.relation.page50-
dc.identifier.doi10.6342/NTU202600174-
dc.rights.note同意授權(全球公開)-
dc.date.accepted2026-01-20-
dc.contributor.author-college工學院-
dc.contributor.author-dept化學工程學系-
dc.date.embargo-lift2026-02-04-
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