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AN780 Datasheet(PDF) 2 Page - Microchip Technology |
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AN780 Datasheet(HTML) 2 Page - Microchip Technology |
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2 / 10 page ![]() AN780 © 2002 Microchip Technology, Inc. DS00780A-page 2 The 16-bit conversion result is accumulated in the TC520 along with a polarity bit and an overrange bit. These bits are formed into one 18-bit serial word which may be read at any rate and at any time. Reading the serial data from the TC520 does not effect the TC500A/TC520 conversion cycle except that the output shift register will not update while reading is in progress. DEVELOPING THE SCALE APPLICATION USING THE TC500A AND THE TC520 Input Stage The first consideration for a low signal level source is the amount of gain required for the input amplifier. The TC500A has a CMOS input buffer which, due to unity-gain phase margin, must have no lower than about 68k Ω for RINT. The maximum buffer current VIN(max)/RINT) should be no more than about 20µA. This means that the maximum input voltage to the TC500A should be about 1.5V. The 15kG strain gauge used for this application has an output of about 1mV/gram which gives a gain requirement of at least 50. The MCP606 CMOS operational amplifier is best suited for this because of its low noise and minimal drift. The output impedance of the strain gauge is only 300 Ω so a single-ended configuration is more than adequate. Instead of 1.5V, the actual full-scale output wound up to be about 1V. The value of RINT was set to 130kΩ, well above the 68k Ω minimum. This gives a maximum buffer current of 7.6 µA instead of 20µA. Integrator Stage The signal-to-noise ratio of the TC500A's integrator stage is a function of the band-width. The 15kG scale needs to resolve 1g with at least 8:1 over-sampling. This means at least 120,000 counts. The above rule of "1000 counts per millisecond" requires at least 120ms for the integration time of the TC500A. Selecting 200mS will lower the band-width and get maximum rejection of 50/ 60Hz. The strain gauge is a balanced bridge so the output will have some common mode component. A value of 3.5V for VINT instead of 4V will allow for some offset. Rearranging equation 1 gives an expression for CINT: CINT =VIN (max) TINT/VINT RINT = 1V 200mS/3.5V 130k = .439mF eq2 The next higher common value is .47 µF which was selected for CINT. It is essential that this capacitor is a polypropylene type for very low dielectric absorption. REFERENCE VOLTAGE CIRCUIT The differential reference voltage is derived by the standard, dual- slope ratiometric technique: VREF = VIN (max) TINT/TDEINT eq3 where TDEINT is the deintegration time required for a full-scale conversion. INT CAZ BUF IN+ IN– REF+ REF– COM 1 4 3 +V COMP B A CR– CR+ GND –V OSCOUT +V LOAD READ DCLK DIN DOUT *CINT CAZ RINT 100k LM285-2.5 Analog Ground .01 µ .01u 11 10 9 8 5 100k 16 OSCIN COMP B A DV CE GND 14 13 12 6 7 15 2 –5V DGND 2 14 13 5 4 Crystal 6 7 3 CREF 12 8 10 11 9 TC520 TC500A +5V SI VIN+ SO SK RD LD 10k DV CE 1 *CINT recommended Polypropylene VIN– FIGURE 2: TC500A and TC520 |
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