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Trend Analysis of Dissipated Electrostatic Discharge Energy in Touchscreen Displays

机译:触摸屏显示器中的静电耗散能量趋势分析

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Touchscreen displays can be susceptible to sparkless electrostatic discharge events. The energy observed by sensitive touchscreen circuitry can vary significantly with design parameters like the glass thickness, the capacitance between the sensor pad and the ground structure, and the resistance of the traces and sensor terminations connected to the pad. The energy dissipated in resistive structures within the display can lead to damage. Methods are presented to estimate the maximum energy dissipated in the touchscreen circuitry during a spark-less discharge to the display. The trends in the energy with variations in design parameters are analyzed using traditional curve-fitting techniques. The analysis was performed using measured data obtained for 20 touchscreen configurations when the ESD gun was charged to 9 kV and 15 kV. The analysis helps the designer to understand the trends and to predict how future design decisions may impact ESD susceptibility. Results suggest that immunity can be maximized by increasing the glass thickness, reducing the load resistance, and reducing the distance between the sensor pad and the PCB return plane.
机译:触摸屏显示器可能容易受到无火花静电放电事件的影响。敏感的触摸屏电路所观察到的能量会随着设计参数的变化而变化,例如玻璃厚度,传感器焊盘与接地结构之间的电容以及与焊盘相连的走线和传感器终端的电阻。显示器内电阻结构中耗散的能量可能导致损坏。提出了估算在无火花放电到显示器期间触摸屏电路中耗散的最大能量的方法。使用传统的曲线拟合技术可以分析设计参数变化时的能量趋势。使用将ESD喷枪充电至9 kV和15 kV时获得的20种触摸屏配置的测量数据进行分析。该分析有助于设计人员了解趋势,并预测未来的设计决策如何影响ESD敏感性。结果表明,可以通过增加玻璃厚度,减小负载电阻以及减小传感器焊盘与PCB返回平面之间的距离来最大程度地提高抗扰度。

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