Circulation of self-supplied water for significant energy recovery through heat integration

被引:0
|
作者
Lee, Minyong [1 ]
Kim, Donggun [1 ]
Shin, Yongbeom [1 ]
Lee, Jeongwoo [1 ]
Lee, Jae W. [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Dept Chem & Biomol Engn, 291 Daehak Ro, Daejeon 34141, South Korea
基金
新加坡国家研究基金会;
关键词
Self-supplied heat source; Separation; Energy recovery; CO2; emission; Overhead heat-integrated distillation column (OHIDiC); REACTIVE DISTILLATION PROCESS; DIVIDING WALL COLUMN; CO2; EMISSIONS; DESIGN; CONDENSERS; EFFICIENCY; ACID; OPTIMIZATION; COST;
D O I
10.1016/j.ecmx.2024.100740
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study introduces an overhead heat-integrated distillation column (OHIDiC), a novel approach that maximizes heat recovery by multiple heat exchanges and product circulation. By utilizing the overhead vapor as a direct heat source, low-temperature feed and product water were used as cooling agents, thereby significantly reducing the condenser duty and reliance on cooling utilities. Additionally, the heated feed transfers heat to the column, leading to a substantial reduction of reboiler heat duty. Some of the heated product water is recycled back to the decanter for product cycling, while the rest is released as the final product. This circulation process ensures a continuous coolant supply, which contributes the reduction of condenser duty. Two processes were considered in this study, utilizing the water product from a non-reactive, and from a reactive separation within the system. When applied to the separation of a water-dodecanol mixture, OHIDiC reduced the condenser duty by 69.21% compared to a traditional distillation column, with a 31.46% reduction in the total utility consumption. When reactive distillation was incorporated into the OHIDiC, the higher overhead vapor temperature facilitated high heat transfer in the multiple heat exchange sections, thereby significantly reducing the total thermal load. This resulted in a reduction of up to 46.96% in total heat duty and a 36.06% decrease in CO2 emissions. These findings confirm that the OHIDiC achieves significant energy savings through the utilization of process-derived substances, with pronounced benefits when the temperature of the overhead vapor becomes higher.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Design of water and heat recovery networks for the simultaneous minimisation of water and energy consumption
    Thomas Polley, Graham
    Picon-Nunez, Martin
    de Jesus Lopez-Maciel, Jose
    APPLIED THERMAL ENGINEERING, 2010, 30 (16) : 2290 - 2299
  • [42] Design of Water and Heat Recovery Networks for the Simultaneous Minimisation of Water and Energy Consumption
    Polley, Graham
    Nunez, Martin Picon
    Davados, L. Canzales
    PRES'09: 12TH INTERNATIONAL CONFERENCE ON PROCESS INTEGRATION, MODELLING AND OPTIMISATION FOR ENERGY SAVING AND POLLUTION REDUCTION, PTS 1 AND 2, 2009, 18 : 899 - 904
  • [43] Energy Saving Analysis of Circulating Water Waste Heat Recovery from Water Source Heat Pump
    Ma, Chuang
    Ren, Jianxing
    Li, Fangqin
    Hou, Xin
    Feng, Haijun
    Zhang, Xiaotong
    2019 5TH INTERNATIONAL CONFERENCE ON ENERGY MATERIALS AND ENVIRONMENT ENGINEERING, 2019, 295
  • [44] Energy conservation case studies of “self-heat recovery system by heat pumps”
    Harada, Mitsuo (m.harada@eccj.or.j), 1600, Japan Society for Food Engineering (15):
  • [45] Thermodynamic mechanism of self-heat recuperative and self-heat recovery heat circulation system for a continuous heating and cooling gas cycle process
    Tsutsumi A.
    Kansha Y.
    Chemical Engineering Transactions, 2017, 61 : 1759 - 1764
  • [46] Potential for greenhouse gas reduction in industry through increased heat recovery and/or integration of combined heat and power
    Axelsson, H
    Harvey, S
    Åsblad, A
    Berntsson, T
    APPLIED THERMAL ENGINEERING, 2003, 23 (01) : 65 - 87
  • [47] Energy Optimization through Heat and Power Integration on a Chlorobenzenes Production Plant
    Alqahtani, Nawaf S.
    Alrefai, Turki A.
    Almutlaq, Abdulaziz M.
    Alzahrani, Saeed M.
    Abasaeed, Ahmed E.
    PROCESSES, 2024, 12 (03)
  • [48] Energy Reduction Potential in Natural as Processing through Heat and Process Integration
    Berchiche, Mohamed
    Belaadi, Salah
    Leonard, Gregoire
    30TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, PTS A-C, 2020, 48 : 67 - 72
  • [49] Energy efficiency through industrial excess heat recovery—policy impacts
    Sarah Broberg Viklund
    Energy Efficiency, 2015, 8 : 19 - 35
  • [50] Heat energy recovery from waste water in the Glasgow Subway system
    Hytiris, N.
    Ninikas, K.
    Emmanuel, R.
    Younger, P. L.
    ENERGY GEOTECHNICS, 2016, : 413 - 418