Variable-Gain Subdivision Pressure Control Algorithm for Digital Valve Braking Systems via Partially Open Mode
Renjie Li, Xiwen Zhou, Dele Wu, Shuai Wu, Yi Wang
Beihang University Aviation Industry Corporation of China (China)
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摘要与影响
High-performance braking systems are critical for the safety and efficiency of the more-electric aircraft. Digital valve braking systems, employing highly reliable and robuston/offvalves, offer a promising alternative to conventional electro-hydraulic servo valves, which are prone to contamination. However, the discrete switching characteristics ofon/offvalves often cause undesirable pressure overshoot, fluctuations, and discontinuities. To overcome these limitations, this study proposes a novel variable-gain subdivision pressure control algorithm (VSPCA), which leverages the partially open mode ofon/offvalves to achieve near-continuous flow regulation. The VSPCA comprises three key components. The sliding window-based state identification module accurately identifies the braking stages to enable stage-adaptive control. The variable gain regulation module exploits the partially open mode ofon/offvalve to improve regulation precision. Furthermore, a low energy consumption driving strategy is combined with a subdivided execution period to enhance excitation time resolution and reduce energy consumption. Extensive experiments conducted on a digital brake valve performance test bench and a ground inertial test bench demonstrate the superior performance of the VSPCA. Compared with the conventional PNM+PWM strategy, the proposed VSPCA achieves a reduction of over 50% in the average tracking error and other key performance indicators under triangular wave commands. It delivers high-efficiency braking under both full-load and half-load conditions.
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