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Process Intensification of Gasification and Reforming Technology for Enhanced Power Generation with Carbon Capture and Storage : 이산화탄소 포집 및 저장 기술을 적용한 발전효율 향상을 위한 가스화 및 개질 기술의 공정 집적화 연구

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dc.contributor.advisorChonghun Han-
dc.contributor.author아메드우사마-
dc.date.accessioned2017-10-27T16:47:24Z-
dc.date.available2017-10-27T16:47:24Z-
dc.date.issued2017-08-
dc.identifier.other000000145571-
dc.identifier.urihttps://hdl.handle.net/10371/136867-
dc.description학위논문 (박사)-- 서울대학교 대학원 공과대학 화학생물공학부, 2017. 8. Chonghun Han.-
dc.description.abstractIGCC is a pre-combustion technique which represents higher thermal efficiency with large scale implementation of CO2 capture. On the other hand, NGCC power plants offers higher process performance compared to IGCC process with CCS technologies but the fluctuating and comparatively higher costs of natural gas limits its extensive implementation over coal based power generation systems. Therefore, process integration of coal gasification and natural gas reforming has been proposed to enhance the process performance while limiting the natural gas consumption. In this study, two IGCC based process models have been developed and evaluated in terms of both the process performance and economics with CO2 capture. Case 1 is taken as the conventional IGCC process, whereas, case 2 presents an idea of integrating methane reforming process with an IGCC technology. The high enthalpy steam generated during coal slurry gasification process in case 2 is used to assist the reforming process for H2 generation. The integration of IGCC with methane reforming process not only supplies the heat required for the endothermic reforming process but also increases the heating value of the resulting syngas. This concept also provides an opportunity for process intensification since shared water gas shift reactors and CO2 capture units will suffice the process needs. The net electricity generation capacity and efficiency for case 1 and case 2 is calculated as (375.08 MWe, 472.92 MWe) and (35.93%, 40.70%), respectively. While comparing the results, it has been seen that case 2 design offers nearly 4.7% higher efficiency compared case 1 design with CO2 capture. The process economics analysis showed that the case 2 design requires a higher CAPEX and O&M throughout the project life compared to the case 1 design. However, due to the higher power generation capacity of case 2 design, it has a potential to reduce the LCOE by 5.81% compared to the case 1 design. Moreover, case 2 design not only requires the less CO2 capture and avoidance costs compared to the case 1 but also exhibits higher rate of return on the investment with the less payback time. With the higher efficiency and least SECO2, case 2 has been considered as the most feasible option for electricity production at an economical price compared to the case 1 design.
To complete the chain of power generation systems with the CO2 capture and storage, the CO2 injection system has been also studied in detail. The transport of CO2 for geological storage is economically feasible by ship when the storage site location is off-shore and installment of an off-shore pipeline requires a huge capital cost. Ship transportation requires the captured CO2 to be in liquid phase under pressurized thermodynamic conditions. The injection of liquid CO2 into the geological reservoir involves pressurization and heating in order to maintain the safe well head operating conditions. This study presents an improved design mechanism for CO2 injection that can utilize the cold energy available from the liquid CO2 to operate the two-stage NH3 rankine cycle. The results showed that the 2-stage rankine cycle design consume approximately 56% less power compared to that of the base case design. Moreover, the economic analysis also showed that the specific cost of CO2 injection can be reduced up to 6.2% using the improved design.Finally, a sensitivity analysis has been also performed in order to investigate the effect of some important variables on the process performance and economics.
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dc.description.tableofcontentsChapter 1 : Introduction 1
1.1 Climate change and CO2 emissions 1
1.2 Research Motivation 5
1.3 Research Objectives 6
1.4 Organization of Thesis 7
Chapter 2 : Overview of IGCC and Reforming Technologies 9
2.1 Background of IGCC power plants for abating CO2 emissions 9
2.2. Process description of IGCC technology 18
2.2.1 Solid Handling Equipment 18
2.2.2 Gasification Technology overview 19
2.2.3 Air Separation Unit (ASU) 29
2.2.4 Syngas cooling 32
2.2.5 Water Gas Shift Reactor (WGSR) 33
2.2.5 Syngas clean up 36
2.2.6 Combined Cycle Power Generation 40
2.3 Overview of Methane Reforming Process 44
2.3.1 Steam Methane Reforming 45
2.3.2 Partial Oxidation 47
2.3.3 Dry Reforming (DMR) 48
2.3.4 Auto-thermal Reforming 48
2.3.5 Mixed Reforming 49
2.3.6 Tri-Reforming (TRM) 50
2.4 Summary 51
Chapter 3 : Simulation Methodology and Performance Analysis 53
3.1 Overview & Concept Development 53
3.2 Development of Process Models 57
3.2.1 IGCC Process Model with CO2 Capture (Case 1) 57
3.2.2 Integration of IGCC and Methane Reforming Process with CO2 Capture (Case 2) 63
3.2.3 Design basis for model development 68
3.3 Performance Analysis 73
3.3.1 Evaluation of the process performance 73
3.3.2 Assessment of CO2 specific emissions 84
3.3.3 Performance comparison with Literature 85
3.3.4 Sensitivity Analysis 87
3.4 Summary 97
Chapter 4 : Economic Analysis 100
4.1 Capital Expenditure Calculation (CAPEX) 100
4.2 Operational Expenditure Calculation (OPEX) 104
4.3 Project life and payback time 107
4.3 Estimation of cost of electricity (COE) 108
4.4 Cost of CO2 capture 113
4.5 Summary 114
Chapter 5 : CO2 Topside Injection Process 116
5.1 Introduction 116
5.2 Process Design 122
5.2.1 Base Case 122
5.2.2 2-Stage Rankine Cycle 127
5.3 Results and Discussion 131
5.3.1 Energy Analysis 131
5.3.2 Economic Analysis 133
5.3.4 Process Comparison 136
5.4 Sensitivity Analysis 140
5.4.1 Well Head Temperature 140
5.4.2 Sea Water Temperature 142
5.4.3 CO2 Stream Composition 143
5.4.4 Project Life 145
5.5 Summary 147
Chapter 6 : Concluding Remarks 149
6.1 Conclusions 149
6.2 Future Works 151
APPENDIX 153
References 163
Abstract in Korean (국문초록 ) 170
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dc.formatapplication/pdf-
dc.format.extent2094549 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectProcess integration and intensification-
dc.subjectPower generation-
dc.subjectCCS-
dc.subjectCOE-
dc.subjectProcess economics-
dc.subject2-stage rankine cycle-
dc.subjectCO2 transport & storage-
dc.subjectIGCC-
dc.subjectSMR-
dc.subject.ddc660.6-
dc.titleProcess Intensification of Gasification and Reforming Technology for Enhanced Power Generation with Carbon Capture and Storage-
dc.title.alternative이산화탄소 포집 및 저장 기술을 적용한 발전효율 향상을 위한 가스화 및 개질 기술의 공정 집적화 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorUsama Ahmed-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2017-08-
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