热等离子体反应器中乙醇蒸汽转化的控制设计

Huan-Liang Tsai, Chi-Sheng Wang, P. Duc
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引用次数: 5

摘要

介绍了采用乙醇蒸汽重整法生产氢气的1kwe热等离子体重整器的质量流量控制和温度控制设计。首先进行了热力学平衡预测,得到了温度为750℃、乙醇与水摩尔流量为1:3时的最佳工况。然后控制乙醇和水的质量流率以满足30SLPM制氢的要求。最后,根据能量平衡方程,利用电能设计温度控制,使热等离子体重整器保持在750℃的工作温度和所需的燃料和水的进口质量流量。质量流量和温度控制都在一个具有PID控制律的电气控制单元中实现。实验数据来自台湾大叶大学清洁能源研发中心的1kwe热等离子体重整器,并与预测数据进行了比较。结果表明,在750℃的温度下,乙醇/水的摩尔流量为1:3时,两者基本吻合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control Design of Ethanol Steam Reforming in Thermal Plasma Reformer
This paper presents a design for mass flow rates control of ethanol/water and temperature control of the 1 kWe thermal plasma reformer, which uses ethanol steam reforming method to perform hydrogen production. A thermodynamic equilibrium prediction is firstly performed to obtain an optimal working condition at temperature of 750degC and at mole flow rate ratio of ethanol to water of 1:3. The mass flow rates of ethanol and water are then controlled to meet the requirement of hydrogen production at 30SLPM. Finally, with energy balance equation, the temperature control is designed using electric power to maintain the thermal plasma reformer at working temperature of 750degC and desired inlet mass flow rate of fuel and water. Both mass flow rate and temperature controls are implemented in an electric control unit with a PID control law. The experimental data, which are collected from the 1 kWe thermal plasma reformer at Clean Energy R&D Center, Da-Yeh University, Taiwan, R.O.C., are compared with the predicted data. The results show that they approximately fit in with each other at temperature of 750degC under the ethanol/water mole flow rate of 1:3.
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