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New developments in differential-type hydraulic transmissions and controls

机译:差动式液压传动和控制装置的新发展

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The differential-type hydraulic transmission has been used as a constant speed drive for aircraft a-c generators for approximately 8 years. The experience gained in this time on both the B36 and P5M airplanes has been a major factor in establishing future aircraft electrical system and component requirements. However, the final decision to establish closer electrical system tolerances for voltage and frequency, real and reactive load balance, and necessary fault protection should be determined on the basis of component and system reliability, simplicity, and performance. The following discussion considers these important characteristics for the components controlling system frequency, real-load division between paralleled a-c generators, and automatic paralleling of a-c generators. The improvements in new system performance were gained by utilizing components with faster response times, and also by the introduction of nonlinear circuit elements. Design and performance details are cited to substantiate steady-state frequency control to within 0.25 per cent of 400 cycles per second, real-load division to within 2 kw, and automatic paralleling of generators to maintain current transients within generator full-load ratings.
机译:差速器式液压传动装置已被用作飞机交流发电机的恒速驱动装置已有大约8年的历史了。这次在B36和P5M飞机上获得的经验一直是确定未来飞机电气系统和组件要求的主要因素。但是,应根据组件和系统的可靠性,简单性和性能来确定建立更严格的电气系统电压和频率公差,有功和无功负载平衡以及必要的故障保护的最终决定。以下讨论考虑了以下重要特征:控制系统频率的组件,并联的交流发电机之间的实际负载分配以及交流发电机的自动并联。通过利用响应时间更快的组件以及引入非线性电路元件,可以提高新系统的性能。引用了设计和性能的详细信息,以将稳态频率控制证实为每秒400个周期的0.25%以内,将有功负荷分配为2 kw以内,并自动并联发电机以将电流瞬变保持在发电机满负荷额定值之内。

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