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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Optimal Design Method for Inner-Intrinsically Safe Buck-Boost Converters Based on Ignition Capability
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Optimal Design Method for Inner-Intrinsically Safe Buck-Boost Converters Based on Ignition Capability

机译:基于点火能力的内在安全降压 - 升压器的最优设计方法

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Intrinsically safe switching converters are the best choice for low-voltage DC power supplies in explosive environments (such as coal mine). To obtain the optimal design method of the inner-intrinsically safe buck-boost converter (IISBBC), the equivalent circuits for various switching states and operating conditions of the buck-boost converter are studied, and the most dangerous inductor-disconnected discharge (IDD) condition of the buck-boost converter is obtained. Based on this condition, the IDD behavior of the IISBBC is studied. According to the minimum ignition curves (MICs) of the resistive circuit and the simple inductive circuit, the expressions describing the IDD ignition capability of the IISBBC in terms of the critical ignition power and the critical ignition energy are derived. The IDD has the strongest ignition capability based on power when the IISBBC is working at its maximum input voltage and minimum load resistance, and it has the strongest ignition capability based on energy when the IISBBC is working at its minimum input voltage and minimum load resistance. The converter is inner-intrinsically safe only when the maximum arc power is less than the critical ignition power and the inductive energy is less than its critical value. By incorporating the proposed criterion, the optimal design method for IISBBCs that meets the demands of electric and inner-intrinsic safety performance is obtained. Based on this method, the design range of the inductance and capacitance and the optimal inductance to give the IISBBC the best inner-intrinsic safety performance are obtained. The feasibility and reliability of the proposed optimal design method are demonstrated by an explosion test.
机译:本质安全的开关转换器是爆炸性环境中低压直流电源(如煤矿)的最佳选择。为了获得内部固有安全降压转换器(IISBBC)的最佳设计方法,研究了各种开关状态和降压升压转换器的操作条件的等效电路,以及最危险的电感器断开放电(IDD)获得降压升压转换器的条件。基于这种情况,研究了IISBBC的IDD行为。根据电阻电路的最小点火曲线(MIC)和简单的电感电路,导出了在临界点火电力和临界点火能量方面描述IISBBC的IDD点火能力的表达式。当IISBBC在其最大输入电压和最小负载电阻工作时,IDD具有最强的点火能力,当IISBBC在其最小输入电压和最小负载电阻下工作时,它具有基于能量的最强点火能力。仅当最大电弧电源小于临界点火电源并且感应能量小于其临界值时,转换器才是内部安全的。通过纳入所提出的标准,获得了符合电气和内在安全性能需求的IISBBC的最佳设计方法。基于该方法,获得电感和电容的设计范围和提供IISBBC最佳内在安全性能的最佳电感。爆炸测试证明了所提出的最佳设计方法的可行性和可靠性。

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