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CMOS Wilson-Widlar voltage-reading temperature sensor

机译:CMOS Wilson-Widlar电压读取温度传感器

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The paper presents the design of a CMOS integrated circuit whose output voltage varies linearly with temperature. This sensor is implemented using two classical cross-interconnected current mirrors. The circuit has a good non-linearity and occupies a small area on the chip, while its power consumption is low. The design of the sensor was done disposing of resistors with negative (NTC), null (ZTC) or positive (PTC) temperature coefficient values. We examined how the output voltage — the voltage drop on the lower Wilson mirror resistor — varies with temperature, as the output is considered to be open. The maximum slope condition for the output voltage was estimated by analytical means and this slope was computed. Then the schematic was designed to fit a maximum slope, resulting in a 4.06% error between the analytical and the simulated slope. The sensor''s performances are characterized by: the optimized output voltage slope of 4.2521mV/ºC; the percentage slope of 0.255%/ºC; low current consumption 30.6μA, measured at 20ºC; VDDmin=2.8V; and “Supply Regulation” SR=4.890ppm/V at 3.5V. The area that the sensor occupies on the chip is also small: 3.187μm2.
机译:本文介绍了CMOS集成电路的设计,其输出电压随温度呈线性变化。该传感器使用两个经典交叉互连的电流镜实现。该电路具有良好的非线性,并且占据芯片上的小区域,而其功耗低。传感器的设计是用负(NTC),空(ZTC)或正(PTC)温度系数值的电阻器进行处理。我们检查了输出电压 - 下威尔逊镜电阻上的电压降 - 随温度而变化,因为输出被认为是打开的。通过分析装置估算输出电压的最大斜率条件,并且计算该斜率。然后,示意图被设计成适合最大斜率,导致分析和模拟斜率之间的4.06%误差。传感器的性能特征在于:优化的输出电压斜率为4.2521mV /℃;斜率为0.255%/℃;低电流消耗30.6μA,在20ºC下测量; V DDMIN = 2.8V;和“供应调节”SR = 4.890ppm / v 3.5V。传感器在芯片上占用的区域也很小:3.187μm 2

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