Kuntz Stefan, Gerber Daniel, Gerlach Gerald, Fella Sina
Robert Bosch GmbH, 74232 Abstatt, Germany.
Faculty of Electrical and Computer Engineering, Dresden University of Technology, 01069 Dresden, Germany.
Sensors (Basel). 2024 Jul 27;24(15):4880. doi: 10.3390/s24154880.
We present a method for improving the amplitude and angular error of inductive position sensors, by advancing the design of receiver coil systems with multiple windings on two layers of a printed circuit board. Multiple phase-shifted windings are connected in series, resulting in an increased amplitude of the induced voltage while decreasing the angular error of the sensor. The amplitude increase for a specific number of windings can be predicted in closed form. Windings are placed electrically in series by means of a differential connection structure, without adversely affecting the signal quality while requiring a minimal amount of space in the layout. Further, we introduce a receiver coil centerline function which specifically enables dense, space-constrained designs. It allows for maximization of the number of possible coil windings while minimizing the impact on angular error. This compromise can be fine-tuned freely with a shape parameter. The application to a typical rotary encoder design for motor control applications with five periods is presented as an example and analyzed in detail by 3D finite-element simulation of 18 different variants, varying both the number of windings and the type of centerline functions. The best peak-to-peak angular error achieved in the examples is smaller than 0.1° electrically (0.02° mechanically, periodicity 5) under nominal tolerance conditions, in addition to an amplitude increase of more than 170% compared to a conventional design which exhibits more than twice the angular error. Amplitude gains of more than 270% are achieved at the expense of increased angular error.
我们提出了一种改进电感式位置传感器的幅度和角度误差的方法,即通过改进印刷电路板两层上具有多个绕组的接收线圈系统的设计。多个相移绕组串联连接,从而增加感应电压的幅度,同时减小传感器的角度误差。对于特定数量的绕组,幅度增加可以用封闭形式预测。绕组通过差分连接结构进行电气串联,在不影响信号质量的同时,在布局中占用的空间最小。此外,我们引入了一种接收线圈中心线函数,该函数特别适用于密集、空间受限的设计。它允许在使角度误差影响最小化的同时,最大化可能的线圈绕组数量。这种折衷可以通过一个形状参数自由微调。作为示例,给出了该方法在具有五个周期的电机控制应用典型旋转编码器设计中的应用,并通过对18种不同变体进行三维有限元模拟进行了详细分析,这些变体同时改变了绕组数量和中心线函数类型。在标称公差条件下,示例中实现的最佳峰峰值角度误差在电气上小于0.1°(机械上为0.02°,周期为5),此外,与角度误差超过两倍的传统设计相比,幅度增加了170%以上。以增加角度误差为代价,幅度增益超过270%。