Computational Analysis for Improving the Flow Structure and Temperature Distribution of a Methane Steam Reformer at Mid-Temperature Operation

Author(s):  
Hyemin Song ◽  
Jinhee Jeong ◽  
Sangseok Yu
Author(s):  
Hyemin Song ◽  
Sangseok Yu

Abstract In a stationary fuel cell system, secondary reformer is utilized to enhance system efficiency. Since the heat sources of stationary fuel cell has low temperature, the operation philosophy of secondary reformer has to be differed from high temperature reformer. Researches on methane steam reformers have been made in various directions, but most have been done only in high efficiency systems. In this study, the design of the steam reformer with the low temperature gas as the heat source would be improved and the temperature distribution would be improved. To do this, computational analysis was carried out. Through computational analysis, we tried to improve radial flow uniformity and temperature distribution of methane and water vapor mixture in the reformer. In order to improve the flow and temperature distribution inside the reformer, the analysis was carried out considering the presence of the spiral vortex generator, the shape of the perforated plate, and the baffle. As a result, the uniformity of the flow was increased by installing the spiral vortex generator, and it was confirmed that the average temperature was increased by installing the perforated plate and the baffles. And an endothermic chemical reaction inside the reaction part and investigated the reforming characteristics according to the temperature and s/c ratio in order to consider the chemical reaction side with the improved structure in the flow side. The s/c ratio was set to 2 and 3, and the temperature was set to 1000K and 1100K. As a result, it has been concluded that the modification of the reforming reaction depends on the temperature and s/c ratio, and additional structural improvement is required.


2020 ◽  
Vol 26 (6) ◽  
pp. 465-474
Author(s):  
Deepak Singh ◽  
Dhananjay Singh ◽  
Sattar Husain

This research article reports the computational analysis of temperature distribution in microwave-heated convenience food such as potato. The detailed study of temperature (because temperature is a function of bacterial inactivation) and microwave powers along with drying time for the preservation of food material has been presented. Therefore, a mathematical model for potato sample is developed to predict the behavior of temperature distribution at each possible point and different shapes (slab, cylindrical, and spherical) of food material. The developed mathematical model is programmed by MATLAB software. Another parameter, microwave power is also a function of temperature. The ranging values of various microwave powers (125 W, 375 W, 625 W, 875 W, and 1250 W) along with different values of drying time (0 to 10 minutes) have been used for computation. The obtained results show the uniformity of temperature distribution throughout the whole product in the form of a three-dimensional structure. The model provides the minimum and maximum temperature ranges in specimens without performing an experiment which depicts the condition of bacterial inactivation.


Author(s):  
Marc J. Ely ◽  
B. A. Jubran

This paper reports a computational analysis on the effect of sister hole control on film cooling from short holes. The proposed method includes surrounding a primary injection hole by two or four smaller sister holes to actively maintain flow adhesion along the surface of the blade. A numerical study using the realizable k-ε turbulence model led to the determination that the use of sister holes significantly improves adiabatic effectiveness by countering the primary vortical flow structure. Research was carried out to determine the optimum hole configuration, arriving at the conclusion that placing sister holes slightly downstream of the primary injection hole improves the near-hole effectiveness, while placing sister holes slightly upstream of the primary hole improves downstream effectiveness. Similar results were found in evaluating both long and short hole geometries with a significantly less coherent flow field arising from the short hole. However, on the whole, the sister hole approach to film cooling was found to offer viable improvements over standard cooling regimes.


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