Delayed coking;
Houghland diagram;
Main fractionator;
Heat removal;
CRUDE DISTILLATION;
ENERGY INTEGRATION;
RETROFIT;
TARGETS;
DESIGN;
COLUMN;
COKERS;
D O I:
10.1016/j.applthermaleng.2014.07.028
中图分类号:
O414.1 [热力学];
学科分类号:
摘要:
A novel method is presented in this paper to quantitatively define the heat removal of the main fractionator in delayed coking units on the basis of a fractionating precision diagram (Houghland diagram) and column grand composite curve (CGCC). By referring to the CGCC method, several envelopes are illustrated at draw trays including the top pumparound draw, diesel draw, intermediate pumparound draw and gas oil draw, the energy and material balances are then calculated. Assuming practical near-minimum thermodynamic condition (PNMTC), the minimum liquid reflux flow is zero in the envelope for pumparound trays without product draw and the minimum liquid reflux flow is defined by Houghland diagram for pumparound trays with product draw. The PNMTC-CGCC is constructed by calculating the enthalpy-flow deficit to quantitatively define the heat removal constraints in each envelope. Meanwhile, the corresponding practical heat removal curve is constructed. A case study shows that the high temperature heat removal ratio within the main fractionator increased by 8%. The proposed method offers heat removal inequality constraints for the model to optimize the heat integration between the main fractionator and the heat exchanger network. (C) 2014 Elsevier Ltd. All rights reserved.
机构:
School of Chemical Engineering and Technology, Wuhan University of Science and TechnologySchool of Chemical Engineering and Technology, Wuhan University of Science and Technology
Yang Lei
Danlin Zeng
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机构:
School of Chemical Engineering and Technology, Wuhan University of Science and TechnologySchool of Chemical Engineering and Technology, Wuhan University of Science and Technology
Danlin Zeng
Guanghui Wang
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机构:
School of Chemical Engineering and Technology, Wuhan University of Science and TechnologySchool of Chemical Engineering and Technology, Wuhan University of Science and Technology
机构:
Yangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, ChinaYangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, China
Jiang, Liangxiong
Li, Jiancun
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机构:
School of Mechanical and Power Engineering, East China University of Science and Technology, Shanghai,200237, ChinaYangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, China
Li, Jiancun
Wang, Yuanhua
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h-index: 0
机构:
School of Mechanical and Power Engineering, East China University of Science and Technology, Shanghai,200237, ChinaYangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, China
Wang, Yuanhua
Wang, Jianwen
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机构:
Yangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, ChinaYangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, China
Wang, Jianwen
Shen, Jianyong
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机构:
Yangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, ChinaYangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, China
Shen, Jianyong
Yan, Ming
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机构:
Yangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, ChinaYangzi Petrochemical Company Limited, SINOPEC, Nanjing,211521, China