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ZSC31015EEG1-R 数据表(PDF) 32 Page - Renesas Technology Corp |
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ZSC31015EEG1-R 数据表(HTML) 32 Page - Renesas Technology Corp |
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32 / 53 page ![]() © 2016 Integrated Device Technology, Inc 32 November 14, 2016 ZSC31015 Datasheet Step 1 – Assigning Unique Identification Assigning a unique identification number is as simple as using the commands Program Cust_ID0, Program Cust_ID1 and Program Cust_ID2. These three 8-bit registers allow for more than 16 million unique devices. Gain_B must be programmed to 800HEX (unity) and Gain_T must be programmed to 80HEX (unity). Step 2 – Data Collection The number of unique (pressure, temperature) points that calibration must be performed at depends on the user ’s needs. The minimum is a 2-point calibration, and the maximum is a 5-point calibration. To acquire raw data from the part, set the ZSC31015 to enter Raw Mode. This is done by issuing a Start_CM (Start Command Mode 5090HEX) command/data pair to the ZSC31015 followed by a Start_RM (Start Raw Mode 4010HEX) command/data pair with the LSB of the upper data nibble set. Now if the Gain_B term has been set to unity (800HEX) and the Gain_T term has also been set to unity (80HEX), then the part will be in the Raw Mode and will output raw data on its SIG TM pin instead of corrected bridge and temperature. Capture several of these data points with the user’s calibration system (16 each of bridge and temperature is recommended) and average them. Store these raw bridge and temperature settings in the database along with the known pressure and temperature. The output format during Raw Mode is Bridge_High, Bridge_Low, Temp. Each of these is an 8-bit quantity. The upper 2-bits of Bridge_High are zero-filled. The Temp data (8-bits only) would not be enough information for accurate temperature calibration. Therefore the upper three bits of temperature information are not given, but rather assumed known. Therefore effectively 11-bits of temperature information are provided in this mode. Step 3 – Coefficient Calculations The math to perform the coefficient calculation is very complicated and will not be discussed in detail. There is a rough overview in section 3.6. IDT will provide software to perform the coefficient calculation. IDT can also provide source code for the algorithms in a C code format. After the coefficients are calculated, the final step is to write them to the EEPROM of the ZSC31015. The number of calibration points required can be as few as two or as many as five. This depends on the precision desired and the behavior of the resistive bridge in use. 1. 2-point calibration can be used if only a gain and offset term are needed for a bridge with no temperature compensation for either term. 2. 3-point calibration would be used to obtain 1 st order compensation for either a Tco or Tcg term but not both. 3. 3-point calibration could also be used to obtain 2 nd order correction for the bridge but no temperature compensation of the bridge output. 4. 4-point calibration would be used to obtain 1 st order compensation for both Tco and Tcg. 5. 4-point calibration could also be used to obtain 1 st order compensation for Tco and a 2nd order correction for the bridge measurement. 6. 5-point calibration would be used to obtain both 1 st order Tco correction and 1st order Tcg correction, plus a 2 nd order correction that could be applied to one and only one of the following: 2nd order Tco, 2nd order Tcg, or 2 nd order bridge. |
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