71M6542F-IGT/F Maxim Integrated Products, 71M6542F-IGT/F Datasheet - Page 80

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71M6542F-IGT/F

Manufacturer Part Number
71M6542F-IGT/F
Description
PMIC Solutions Precision Energy Meter IC
Manufacturer
Maxim Integrated Products
Type
Metering SoCr
Datasheet

Specifications of 71M6542F-IGT/F

Core
8051
Core Architecture
8051
Data Bus Width
8 bit
Data Ram Size
5 KB
Device Million Instructions Per Second
5 MIPS
Interface Type
I2C, ICE, SPI, UART
Maximum Clock Frequency
5 MHz
Maximum Operating Temperature
+ 85 C
Minimum Operating Temperature
- 40 C
Mounting Style
SMD/SMT
Number Of Programmable I/os
51
Number Of Timers
2
On-chip Adc
22 bit
Operating Supply Voltage
3 V to 3.6 V
Package / Case
LQFP-100
Processor Series
8051
Program Memory Size
64 KB
Program Memory Type
Flash
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

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3
3.1
The energy delivered by a power source into a load can be expressed as:
Assuming phase angles are constant, the following formulae apply:
For a practical meter, not only voltage and current amplitudes, but also phase angles and harmonic content
may change constantly. Thus, simple RMS measurements are inherently inaccurate. A modern solid-state
electricity meter IC such as the Teridian 71M654x functions by emulating the integral operation above,
i.e., it processes current and voltage samples through an ADC at a constant frequency. As long as the
ADC resolution is high enough and the sample frequency is beyond the harmonic range of interest, the
current and voltage samples, multiplied with the time period of sampling yield an accurate quantity for the
momentary energy. Summing up the momentary energy quantities over time results in very accurate
results for accumulated energy.
Figure 28
50 samples of the voltage and current signals over a period of 20 ms. The application of 240 VAC and
100 A results in an accumulation of 480 Ws (= 0.133 Wh) over the 20 ms period, as indicated by the
accumulated power curve. The described sampling method works reliably, even in the presence of dynamic
phase shift and harmonic distortion.
80
Functional Description
Theory of Operation
shows the shapes of V(t), I(t), the momentary power and the accumulated power, resulting from
P = Real Energy [Wh] = V * A * cos φ* t
Q = Reactive Energy [VARh] = V * A * sin φ * t
S = Apparent Energy [VAh] =
-100
-200
-300
-400
-500
500
400
300
200
100
Figure 28: Voltage, Current, Momentary and Accumulated Energy
0
0
© 2008–2011 Teridian Semiconductor Corporation
Current [A]
Voltage [V]
Energy per Interval [Ws]
Accumulated Energy [Ws]
5
E
P +
2
=
Q
0
t
V
2
10
) (
t
I
) (
t
dt
15
20
v1.1

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