Micro Gas Turbine Power Generation System based on Superconducting Magnetic Energy Storage to Cope with Pulsed Power Load

Faliang He, Fuqiang Xiong, Li Long
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Abstract

Micro gas turbine (MGT), due to its own combustion chamber delay, exhaust delay, and the existence of several other inertial links, leads to its slow load response, and shows a relatively strong delay as well as a relatively strong inertia when dealing with pulsed power load. In other words, it can not respond quickly to changes in load. When the load impact is extremely strong, it may lead to the collapse of the system. This makes it an important issue to make the MGT power generation system quickly balance the instantaneous power difference under the pulsed power load condition. In this paper, to cope with this possible situation, superconducting magnetic energy storage(SMES) with fast response is considered as the power-fast compensation method. When the pulsed power load is detected, the SMES is given priority to provide power for it, and to ensure the smoothness of the superconducting output power, the instantaneous power output of the SMES is considered as its power exponential change law with time. The simulation results show that when the MGT generates power independently, it shows strong oscillation characteristics in response to the shock load. And may even cause the DC side voltage to cross the limit because the power cannot be regulated in time, so that the system is shut down. In contrast, the SMES as the power generation compensation of the MGT power generation system shows excellent shock load resistance when dealing with pulsed power load.
基于超导磁储能的微型燃气轮机发电系统应对脉冲功率负荷
微型燃气轮机(MGT)由于自身燃烧室延迟、排气延迟以及其他几个惯性环节的存在,导致其负载响应缓慢,在处理脉冲功率负载时表现出较强的延迟和较强的惯性。换句话说,它不能快速响应负载的变化。当负荷冲击极大时,可能导致系统崩溃。因此,如何使MGT发电系统在脉冲功率负载条件下快速平衡瞬时功率差就成为一个重要的问题。为了应对这种可能的情况,本文考虑采用快速响应的超导磁能储能(SMES)作为快电补偿方法。当检测到脉冲功率负载时,中小企业优先为其供电,为保证超导输出功率的平稳性,将中小企业的瞬时功率输出作为其功率随时间的指数变化规律。仿真结果表明,MGT在独立发电时,对冲击载荷的响应表现出强烈的振荡特性。甚至可能由于电源不能及时调节,造成直流侧电压超过极限值,使系统停机。而中小企业作为MGT发电系统的发电补偿,在处理脉冲功率负荷时表现出优异的抗冲击负荷能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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