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High-Speed Asymmetric Self-Oscillating DC-DC Converter of Single Lithium Battery Cell Voltage

机译:单锂电池单体电压的高速非对称自振荡DC-DC变换器

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摘要

Lately, there has been a dramatically increase in demand for power electronics having reduced size, weight, and cost as well as improved dynamic performance. The dimension of a power electronic circuit mainly depends on passive components (inductor, capacitor). Increasing the switching frequency does not only leads to decrease in dimensions and weight but also provides faster transient response. The proposed converter is a buck (step-down) converter, with no external controller. By the feedback system it has, it provides constant duty ratio of around 50%. The defined ranges for the converter is 3.5 MHz, 3.5V-24V input voltage and 2V-12V output voltage. The lowest values for efficiency is defined as 70%. Since in the market, all high speed converters are on silicon, it makes them expensive to manufacture. Hence, in this converter, we are using real components from the market and later on will be assembled on a PCB. It will decrease the efficiency but the prices of manufacturing is dramatically reduced. Most important is taking parasitics into account which can kill the circuit otherwise. The proposed circuit topology with suitable gate drives is a new thing, and from business point of view, it is easy and cheap.Switching point is primary side of the transformer, hands over the sending power to the output load, and secondary side of the transformer provides inductive feedback. Thanks to inductive feedback, it provides fast response and adaptive dead-time to eliminate dead-time losses. Two different kind of gate drive circuitries are integrated to converter switches: resonant gate drive and dead-time latch circuitries. They are applied to switches which are responsible for the major part of the power losses. The overlapping time with main NMOS and PMOS switch is removed, and soft switching is observed at gate drives. Hence, around 4% efficiency increase is realized overall.Cascaded MOSFETs are introduced in order to make it available for also high voltage applications. Main NMOS and PMOS transistors work complimentary, meaning that once NMOS in ON, PMOS is OFF and vice versa. When PMOS is ON, current flows from battery to load, pulls the switching point (Vx) to battery voltage. When NMOS is ON, current flows from load to ground over the NMOS and pulls down Vx to ground. After Vx point, by using a proper filtering technique, flat DC voltage is obtained at the output.Using 3.8 V input voltage with 10 load, at the output 2.2 V is achieved with 27 mV voltage ripple. Efficiency is increased to 74% with 3.5 MHz switching frequency by the help of resonant gate drive and dead-time latch circuits. All parasitics are included and deeply studied with simulations conducted in LTSpice.
机译:近来,对具有减小的尺寸,重量和成本以及改善的动态性能的功率电子器件的需求急剧增加。电力电子电路的尺寸主要取决于无源元件(电感器,电容器)。增加开关频率不仅会导致尺寸和重量减小,而且会提供更快的瞬态响应。建议的转换器是不带外部控制器的降压(降压)转换器。通过其反馈系统,它可提供约50%的恒定占空比。转换器的定义范围是3.5 MHz,3.5V-24V输入电压和2V-12V输出电压。效率的最低值定义为70%。由于在市场上,所有高速转换器都在硅片上,因此制造成本很高。因此,在此转换器中,我们使用的是市场上的实际组件,以后将其组装在PCB上。它会降低效率,但制造价格会大大降低。最重要的是要考虑寄生因素,否则可能会杀死电路。所提出的带有合适栅极驱动器的电路拓扑是一个新事物,从商业角度来看,它既简单又便宜。开关点是变压器的初级侧,将发送功率移交给输出负载,而次级是次级。变压器提供感性反馈。归功于感应反馈,它提供了快速响应和自适应死区时间,从而消除了死区时间损失。转换器开关集成了两种不同类型的栅极驱动电路:谐振栅极驱动电路和空载锁存电路。它们被应用到占功率损耗主要部分的开关上。消除了与主NMOS和PMOS开关的重叠时间,并且在栅极驱动器上观察到了软开关。因此,总体上实现了约4%的效率提高。引入了级联MOSFET,以使其也可用于高压应用。主NMOS和PMOS晶体管互补工作,这意味着一旦NMOS导通,PMOS就会截止,反之亦然。当PMOS导通时,电流从电池流向负载,将开关点(Vx)拉至电池电压。当NMOS导通时,电流从负载流经NMOS到地,并将Vx下拉至地。在Vx点之后,通过使用适当的滤波技术,可以在输出端获得平坦的直流电压。使用3.8V输入电压和10个负载,在输出端获得2.2V电压并具有27mV的电压纹波。借助谐振门驱动和死区锁存电路,在3.5 MHz开关频率下,效率提高到74%。包括所有寄生因素,并通过LTSpice中进行的仿真深入研究。

著录项

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    Kusdemir Cumhur;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en
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