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Occupancy and Belt Detection in Removable Vehicle Seats Via Inductive Power Transmission

机译:通过感应功率传输的可移动车辆座椅中的乘员和安全带检测

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This work proposes the use of inductive links to wirelessly power an autonomous sensor in a vehicle application. The selected application is intended for occupancy and belt detection in removable vehicle seats, where wiring the seat detectors from the vehicle chassis is impractical. The autonomous sensor includes seat detectors and a wireless transceiver to transfer the data on the state of detectors. To compensate the loose coupling between the coupled coils, resonant tanks were used. To drive the transmitting resonant network, a commercial class-D amplifier was used. Working frequency was restricted to 150 kHz. Commercial magnetic-core coils were selected as they provide high coil values and quality factors in a small-size factor, which is a requirement for the intended application. At the receiving network, a rectifier and a voltage regulator were used to provide dc voltage supply to the autonomous sensor. Three kinds of voltage regulators were compared from the point of view of the power efficiency. Both a theoretical analysis and experimental results are presented for different combinations of coils and working frequencies. Theoretical analysis shows that the operating points for the linear shunt regulator always lead to higher power efficiencies compared with other alternatives such as linear series and switching buck regulators. Experimental tests were carried out using a mechanical setup to fix the coil-to-coil distances. Experimental results agree with the theoretical analysis. Achieved power efficiencies ranged from around 50% to 10% for coil-to-coil distances from one to three times the inner diameter of the coils. Experimental tests also showed that the autonomous sensor was properly powered up to coil-to-coil distances of 2.5 cm, i.e., more than four times the inner diameter of the coils.
机译:这项工作提出了使用感应链路为车辆应用中的自主传感器无线供电。所选应用旨在用于可移动车辆座椅中的乘员和安全带检测,在这种情况下,将座椅检测器与车辆底盘进行接线是不切实际的。自主传感器包括座椅检测器和无线收发器,用于根据检测器的状态传输数据。为了补偿耦合线圈之间的松散耦合,使用了谐振箱。为了驱动发射谐振网络,使用了商用D类放大器。工作频率限制为150 kHz。选择商用磁芯线圈是因为它们以小尺寸系数提供高线圈值和品质因数,这是预期应用的要求。在接收网络处,使用整流器和稳压器向自主传感器提供直流电压。从功率效率的角度比较了三种稳压器。给出了线圈和工作频率的不同组合的理论分析和实验结果。理论分析表明,与诸如线性串联和开关降压稳压器之类的其他替代方案相比,线性并联稳压器的工作点始终可以带来更高的功率效率。使用机械装置进行实验测试,以固定线圈到线圈的距离。实验结果与理论分析吻合。线圈到线圈的距离是线圈内径的1到3倍时,达到的功率效率在50%到10%左右。实验测试还表明,自主传感器已正确上电,线圈到线圈的距离为2.5厘米,即线圈内径的四倍以上。

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