Cycle Scheduling of Ethylene Cracking Furnace System with Inventory Constraints

Author(s):  
Xinwei Lin ◽  
Liang Zhao ◽  
Wenli Du ◽  
Feng Qian
Processes ◽  
2021 ◽  
Vol 9 (1) ◽  
pp. 93
Author(s):  
Alessandro Di Pretoro ◽  
Francesco D’Iglio ◽  
Flavio Manenti

Fouling is a substantial economic, energy, and safety issue for all the process industry applications, heat transfer units in particular. Although this phenomenon can be mitigated, it cannot be avoided and proper cleaning cycle scheduling is the best way to deal with it. After thorough literature research about the most reliable fouling model description, cleaning procedures have been optimized by minimizing the Time Average Losses (TAL) under nominal operating conditions according to the well-established procedure. For this purpose, different cleaning actions, namely chemical and mechanical, have been accounted for. However, this procedure is strictly related to nominal operating conditions therefore perturbations, when present, could considerably compromise the process profitability due to unexpected shutdown or extraordinary maintenance operations. After a preliminary sensitivity analysis, the uncertain variables and the corresponding disturbance likelihood were estimated. Hence, cleaning cycles were rescheduled on the basis of a stochastic flexibility index for different probability distributions to show how the uncertainty characterization affects the optimal time and economic losses. A decisional algorithm was finally conceived in order to assess the best number of chemical cleaning cycles included in a cleaning supercycle. In conclusion, this study highlights how optimal scheduling is affected by external perturbations and provides an important tool to the decision-maker in order to make a more conscious design choice based on a robust multi-criteria optimization.


Author(s):  
Tao Chen ◽  
Xuedong Chen ◽  
Junhai Chen ◽  
Jihong Zhang ◽  
Chunjiao Liu

Abstract In view of the carburization of Fe-Cr-Ni high-temperature heat-resistant alloys in the ethylene cracking furnace and the hydrogen conversion furnace, this paper implemented the GMRI-I carburizing detector to test the degree of carburization of 25Cr35NiNb+ microalloy inlet pipe and 35Cr45NiNb+ microalloy outlet pipe of the ethylene cracking furnace after service as well as the reinforced joint made of Incoloy 800H from the hydrogen-making reformer. In conjunction with the results of the low-power acid corrosion test, a rapid detection method for the degree of carburization was proposed. Based on the experimental results of the carburizing detector and the laboratory test data, the carburization degree test curve of the above three alloys based on the magnetic field strength has been established. The detection accuracy was circa. 5% and the error was ±10%, which is convenient for guiding the use and replacement of Fe-Cr-Ni high-temperature heat-resistant alloy materials for ethylene cracking furnace and hydrogen conversion furnace, thereby ensuring the safe and stable operation of the device.


2012 ◽  
Vol 35 (4) ◽  
pp. 531-539 ◽  
Author(s):  
Lirong Xia ◽  
Yunfei Cui ◽  
Xiangbai Gu ◽  
Zhiqiang Geng

2000 ◽  
Vol 38 (2) ◽  
pp. 215-233 ◽  
Author(s):  
DaeSoo Kim ◽  
Vincent A Mabert
Keyword(s):  

Sign in / Sign up

Export Citation Format

Share Document