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A Resonant Capacitive Coupling WPT-Based Method to Power and Monitor Seat Belt Buckle Switch Status in Removable and Interchangeable Seats

机译:一种基于谐振电容耦合WPT的电源和监控可拆卸座椅带扣开关状态的方法

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In this study, we present an intelligent and wireless subsystem for powering and communicating with three sets of seat belt buckle sensors that are each installed on removable and interchangeable automobile seating. As automobile intelligence systems advance, a logical step is for the driver’s dashboard to display seat belt buckle indicators for rear seating in addition to the front seating. The problem encountered is that removable and interchangeable automobile seating outfitted with wired power and data links are inherently less reliable than rigidly fixed seating, as there is a risk of damage to the detachable power and data connectors throughout end-user seating removal/re-installation cycles. The present study tackles this issue through outfitting three removable and interchangeable rear seat assemblies with resonant capacitive coupling wireless power transfer as to power each rear seat across a variable gap between the interior paneling and that side of the seat closest to the interior paneling. A fundamental design challenge this system presented was the need to develop a rugged method to account for different sizes of seating, and hence to accommodate variable wireless power gaps. This issue was addressed via use of impedance matching technology to present a nearly constant load impedance to the dc-to-radiofrequency power inverter. The wirelessly received power enabled additional electronics added to the rear seat assemblies to wirelessly communicate the seat belt buckle states to a central hub where it was displayed via a custom graphical interface. Our approach involved the visibly imperceptible integration of resonant capacitively-coupled transmitting and receiving antennae behind the interior paneling for the transmitter and underneath the outer fabric of the rear seating. The resulting subsystem demonstrated the ability to power both the seat belt buckle switches and wireless communication over a range of wireless power gaps.
机译:在这项研究中,我们提供了一种智能和无线子系统,用于用三组座椅带扣传感器供电和通信,每个座椅带扣传感器都安装在可拆卸和可互换的汽车座椅上。随着汽车智能系统的推进,逻辑步骤是驾驶员的仪表板,除了前座椅外还可以显示后座的安全带扣指示灯。遇到的问题是,带有有线电源和数据链路的可拆卸和可互换的汽车座椅与刚性固定座椅固有不那么可靠,因为在整个最终用户座椅拆卸/重新安装的可拆卸电源和数据连接器都存在损坏的风险循环。本研究通过装载三个可拆卸和可互换的后座组件来解决具有谐振电容耦合无线电力传输的谐振电容耦合无线动力传输,以便在内部镶板和最靠近内部镶板的座椅之间的可变间隙上为每个后座进行动力。本系统提出的基本设计挑战是需要开发坚固的方法,以考虑不同尺寸的座位,从而适应可变无线电源差距。通过使用阻抗匹配技术来解决此问题,以向DC到射频功率逆变器呈现几乎恒定的负载阻抗。无线接收的电源使能添加到后座椅组件中的附加电子器件以将安全带扣状态无线传送到通过自定义图形界面显示的中心集线器。我们的方法涉及电容耦合的谐振的明显不可察觉的积分,其在内部镶板后面的发射器和后座的外织物下方的内部镶板。由此产生的子系统证明了在一系列无线电源间隙中为安全带扣开关和无线通信供电的能力。

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