Optimal design of heat exchanger network considering the fouling throughout the operating cycle

Energy ◽  
2021 ◽  
pp. 122913
Author(s):  
Peng Hang ◽  
Liwen Zhao ◽  
Guilian Liu
2021 ◽  
Vol 06 (02) ◽  
pp. 86-90
Author(s):  
Natig Abbasov Natig Abbasov ◽  
Ziyaddin Ziyaddinli Ziyaddin Ziyaddinli

The performance of the heat exchanger network (HEN) in a plant is an important aspect of energy conservation. “Pinch” technology and mathematical programming techniques offer an effective and practical method for designing the HEN for new and retrofit projects. The fluid catalytic cracking (FCC) is a dominant process in oil refineries and there has been a sustained effort to improve the efficiency and yield of the unit over the years. HEN optimal design in FCC process is an essential element in reducing the cost and improving the process as a whole. The objective of this work is to introduce a systematic procedure for designing optimal and flexible FCC-HEN that incorporates variations in feed flow rates and specs and on same time considers different schedules imposed on the process. Keywords: heat exchangers, fluid catalytic cracking, design of network, oil refinery, heat recovery systems


1996 ◽  
Vol 20 ◽  
pp. S249-S254 ◽  
Author(s):  
Jan Sandvig Nielsen ◽  
Mogens Weel Hansen ◽  
Sten bay Joergensen

1989 ◽  
Vol 109 (3) ◽  
pp. 118-129 ◽  
Author(s):  
Hirokazu Nishitani ◽  
Kouji Shimizu ◽  
Eiichi Kunugita

2021 ◽  
Vol 5 (2) ◽  
pp. 17
Author(s):  
Valli Trisha ◽  
Kai Seng Koh ◽  
Lik Yin Ng ◽  
Vui Soon Chok

Limited research of heat integration has been conducted in the oleochemical field. This paper attempts to evaluate the performance of an existing heat exchanger network (HEN) of an oleochemical plant at 600 tonnes per day (TPD) in Malaysia, in which the emphases are placed on the annual saving and reduction in energy consumption. Using commercial HEN numerical software, ASPEN Energy Analyzer v10.0, it was found that the performance of the current HEN in place is excellent, saving over 80% in annual costs and reducing energy consumption by 1,882,711 gigajoule per year (GJ/year). Further analysis of the performance of the HEN was performed to identify the potential optimisation of untapped heating/cooling process streams. Two cases, which are the most cost-effective and energy efficient, were proposed with positive results. However, the second case performed better than the first case, at a lower payback time (0.83 year) and higher annual savings (0.20 million USD/year) with the addition of one heat exchanger at a capital cost of USD 134,620. The first case had a higher payback time (4.64 years), a lower annual saving (0.05 million USD/year) and three additional heaters at a capital cost of USD 193,480. This research has provided a new insight into the oleochemical industry in which retrofitting the HEN can further reduce energy consumption, which in return will reduce the overall production cost of oleochemical commodities. This is particularly crucial in making the product more competitive in its pricing in the global market.


2020 ◽  
Vol 53 (2) ◽  
pp. 11780-11785
Author(s):  
María P. Marcos ◽  
José Luis Pitarch ◽  
César de Prada

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