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Capacitors

机译:电容器类

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摘要

Over the last decade, significant increases in capacitor performance, especially in reliability and energy/power densities, have been achieved for energy discharge applications in plasma science and fusion research applications through a combination of advanced manufacturing techniques, new materials, and diagnostic methodologies to provide requisite lifecycle performance for high energy pulse applications. Recent innovations in analysis of aging are introduced for predicting component performance and fault tolerance, especially relevant for very high energy storage applications necessary for next generation simulators, electrically energized fusion research machines, and advanced high power electronics for commercial, industrial, and military applications. Included in this study will be developments in capacitor technologies for electronics filtering and resonant energy transfer applications, as well as multisecond energy reservoir applications for uninterruptible power sources and the like. Next generation power electronics, driven by advances in solid state switching technologies, will require reduced capacitor dissipation factor by 1/3 to 1/10 at the same cost, particularly for AC applications. In addition, higher power electronics will require robust high frequency mica capacitor technology for <300/spl deg/C operation, up to 5 kV. The increasing expansion of the motor drive and industrial switched mode power supply (SMPS) market will be driven in cost by the availability of electrolytic capacitors of 750-850 Vdc ratings, at 450 Vdc cost and size. New formation processes and electrolytes are anticipated to be needed to achieve these extended performance levels. At higher frequencies, advanced power electronics drives the need for lower equivalent series resistance (ESR)/spl Lt/0.1% to 100 MHz, multimicrofarad value solid tantalum capacitors, having fail-safe surface mount configurations. Emerging power electronics applications in the millisecond and longer time are projected to have a broad application need for electrochemical chemical double layer capacitors, especially for compact sizes as this technology has the potential of achieving energy densities of many 20 kJ/kg for discharge times of tens of seconds. The prismatic power conditioning system, designed to be compliant with the available volume and surfaces into which it is to be placed, is described in some detail. It permits flexibility for the design engineer to optimize the design without having to allocate a specific space for the power conditioning system or subcomponents. Such prismatic geometry power and power conditioning systems are becoming commercially feasible In the low power consumer and industrial regime because of dramatic advances in multichip module switching, energy storage, and planarized interconnections. This work builds on assessing the applicability of these technologies to the megawatt-class average power, power electronics regime. Higher power density prismatic power electronics enables abroad range of applications in the commercial arena in areas such as motor drives, inverters, power quality systems, and mobile power systems.
机译:在过去的十年中,通过结合先进的制造技术,新材料和诊断方法,在等离子体科学和聚变研究应用中的能量放电应用中,电容器的性能,尤其是可靠性和能量/功率密度的显着提高,已经可以提供高能量脉冲应用所需的生命周期性能。引入了最新的老化分析创新技术来预测组件性能和容错能力,特别适用于下一代模拟器,电动聚变研究机器以及用于商业,工业和军事应用的高级大功率电子设备所必需的超高能量存储应用。这项研究将包括用于电子滤波和谐振能量传输应用以及不间断电源等的多秒储能器应用的电容器技术的发展。在固态开关技术发展的推动下,下一代功率电子器件将需要以相同的成本将电容器的耗散系数降低1/3至1/10,特别是对于AC应用而言。此外,更高功率的电子设备将需要鲁棒的高频云母电容器技术,以达到<300 / spl deg / C的工作电压,最高可达5 kV。电动机驱动器和工业开关模式电源(SMPS)市场的不断增长将受到成本和尺寸为450 Vdc的750-850 Vdc额定电解电容器的价格推动。预期需要新的形成工艺和电解质来实现这些扩展的性能水平。在更高的频率下,先进的功率电子器件推动了对具有等效故障保护的表面贴装配置的等效串联电阻(ESR)/ spl Lt / 0.1%至100 MHz的需求,该产品需要多微法拉值的固态钽电容器。预计在毫秒级和更长时间内出现的新兴电力电子应用将对电化学化学双层电容器具有广泛的应用需求,尤其是对于紧凑的尺寸,因为该技术有可能在数十秒的放电时间内实现许多20 kJ / kg的能量密度秒。详细介绍了棱柱形功率调节系统,该系统设计为与可用的容积和要放置的表面相适应。它允许设计工程师灵活地优化设计,而不必为功率调节系统或子组件分配特定的空间。由于多芯片模块开关,能量存储和平面互连的显着进步,这种棱角形几何形状的功率和功率调节系统在低功率消耗者和工业领域正变得商业可行。这项工作建立在评估这些技术对兆瓦级平均功率,电力电子系统的适用性上。功率密度更高的棱柱形功率电子器件使国外在商业领域中在电机驱动器,逆变器,电源质量系统和移动电源系统等领域获得了广泛的应用。

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