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ADE7763 数据表(PDF) 39 Page - Analog Devices |
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ADE7763 数据表(HTML) 39 Page - Analog Devices |
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39 / 56 page ![]() ADE7763 Rev. A | Page 39 of 56 Calibrating Watt Offset with an Accurate Source Example Figure 74 is the flowchart for watt offset calibration with an accurate source. SET HALF LINE CYCLES FOR ACCUMULATION IN LINECYC REGISTER ADDR. 0x1C SET ITEST = IMIN, VTEST = VNOM, PF = 1 CALCULATE APOS. SEE EQUATION 45. SET MODE FOR LINE CYCLE ACCUMULATION ADDR. 0x09 = 0x0080 ENABLE LINE CYCLE ACCUMULATION INTERRUPT ADDR. 0x0A = 0x04 READ LINE ACCUMULATION ENERGY ADDR. 0x04 RESET THE INTERRUPT STATUS READ REGISTER ADDR. 0x0C INTERRUPT? NO NO YES YES RESET THE INTERRUPT STATUS READ REGISTER ADDR. 0x0C INTERRUPT? WRITE APOS VALUE TO THE APOS REGISTER: ADDR. 0x11 Figure 74. Calibrating Watt Offset with an Accurate Source For this example: Meter Constant: MeterConstant(imp/Wh) = 3.2 Line Voltage: Vnominal = 220 V Line Frequency: fl = 50 Hz CF Numerator: CFNUM = 0 CF Denominator: CFDEN = 489 Base Current: Ib = 10 A Half Line Cycles Used at Base Current: LINECYC(IB) = 2000 Period Register Reading: PERIOD = 8959 Clock Frequency: CLKIN = 3.579545 MHz Expected LAENERGY Register Value at Base Current (from the Watt Gain section): LAENERGYIB(expected) = 19186 Minimum Current: IMIN = 40 mA Number of Half Line Cycles used at Minimum Current: LINECYC(IMIN) = 35700 Active Energy Reading at Minimum Current: LAENERGYIMIN(nominal) = 1395 The LAENERGYexpected at IMIN is 1255 using Equation 49. LAENERGYIMIN(expected) = INT ⎟⎟ ⎠ ⎞ ⎜⎜ ⎝ ⎛ × × IB MIN expected IB B MIN LINECYC LINECYCI LAENERGY I I ) ( (49) LAENERGYIMIN(expected) = INT 1370 ) 80 . 1369 ( 2000 35700 19186 10 04 . 0 = = ⎟ ⎠ ⎞ ⎜ ⎝ ⎛ × × INT where: LAENERGYIB(expected) is the expected LAENERGY reading at Ib from the watt gain calibration. LINECYCIMIN is the number of half line cycles that energy is accumulated over when measuring at IMIN. More line cycles could be required at the minimum current to minimize the effect of quantization error on the offset calibration. For example, if a test current of 40 mA results in an active energy accumulation of 113 after 2000 half line cycles, one LSB variation in this reading represents a 0.8% error. This measurement does not provide enough resolution to calibrate a <1% offset error. However, if the active energy is accumulated over 37,500 half line cycles, one LSB variation results in 0.05% error, reducing the quantization error. APOS is −672 using Equations 55 and 49. LAENERGY Absolute Error = LAENERGYIMIN(nominal) − LAENERGYIMIN(expected) LAENERGY Absolute Error = 1395 − 1370 = 25 (50) AENERGY Error Rate (LSB/s) = PERIOD CLKIN LINECYC Error Absolute LAENERGY × × 8 2 / (51) AENERGY Error Rate (LSB/s) = 069948771 . 0 8959 8 10 579545 . 3 2 / 35700 25 6 = × × × CLKIN Rate Error AENERGY 35 2 × APOS = − 672 10 579545 . 3 2 069948771 . 0 6 35 − = × × APOS = − |
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