کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
172882 | 458567 | 2012 | 9 صفحه PDF | دانلود رایگان |

Temperature control is crucial when designing a catalytic tubular reactor for exothermic reactions because hot spots in packed-bed tubes affect conversion, selectivity and lifespan of catalysts. To resolve the hot spot problem, a computer-aided scale-up method combining process modeling software, heat exchanger design software and computational fluid dynamics (CFD) analysis is proposed. The proposed method is composed of three steps as follows: firstly, the length and the number of tubes are determined to achieve a target production rate by the simulations of a single-tube reactor model. Secondly, the detailed geometry of a scaled-up reactor comprising multiple tubes is determined using heat exchanger design software. Finally, optimal operating conditions to control the hot spots are designated by CFD analysis. As a practical application, the method is applied to scaling up the single-tube reactor producing epichlorohydrin to a demonstration-scale reactor comprising 200 tubes so its optimal design and operating conditions are determined.
► We introduce a computer-aided scale-up method for a packed-bed tubular reactor.
► The proposed method combines mutually complementary computer-aided strategies.
► Process modeling software, heat exchanger design software and CFD analysis.
► Both optimal design and operating conditions can be determined by the proposed method.
Journal: Computers & Chemical Engineering - Volume 39, 6 April 2012, Pages 96–104