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MAXQ3183-RAN+ Folha de dados(PDF) 64 Page - Maxim Integrated Products

Nome de Peças MAXQ3183-RAN+
Descrição Electrónicos  Low-Power, Multifunction, Polyphase AFE with Harmonics and Tamper Detect
PDF  102 Pages
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Fabricante Electrônico  MAXIM [Maxim Integrated Products]
Página de início  https://www.maximintegrated.com/en.html
Logo MAXIM - Maxim Integrated Products

MAXQ3183-RAN+ Folha de dados(HTML) 64 Page - Maxim Integrated Products

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Low-Power, Multifunction, Polyphase AFE
with Harmonics and Tamper Detect
64
______________________________________________________________________________________
Units Conversion Examples
The conversions from meter units to physical units are
illustrated with the simplified input circuits in Figures 13
and 14. The voltage input circuit is a voltage-divider.
Current input is through a current transfer with turn ratio
of 2000:1.
The voltage transducer ratio (VTR) = (R1 + R2)/R2 =
545, VFS = 558.1V.
The current transducer ratio (ITR) = CT_N/(2 x R) =
2000/(2 x 10) =100 (A/V), IFS = 102.4A.
The input circuits should be designed to avoid getting
too close to the ADC input full scale at the specified
maximum ratings. So for the above circuits, we would
specify the maximum input current = 70A (RMS) and
maximum voltage = 390V (RMS), to ensure that peak of
sinusoudal waveform never exceeds IFS or VFS.
Use the default ADC timing tFR = 360μs, we get the fol-
lowing meter unit to physical unit conversion coeffi-
cients (these coefficients are not part of the MAXQ3183
registers):
MU_AMP = IFS/224 = 6.1E-6 (A)
MU_VOLT = VFS/224 = 33.3E-6 (V)
MU_PWR = VFS x IFS/232 = 13.3E-6 (W)
MU_ENR = VFS x IFS x tFR/216 = 87.2E-9 (Wh)
For example, if we get 0x07654AF0 from reading
0x1CC register (phase A current RMS), the current
value it represents is
0x07654AF0 x MU_AMP = 47.33 (A)
For some low-end host microcontrollers, doing the
above math multiplication above could be difficult. For
this reason, the MAXQ3183 provides conversions for
some commonly needed parameters through the
VOLT_CC, AMP_CC, PWR_CC, and ENR_CC registers.
For example, if you want to display current in the reso-
lution of 1mA, without having to use a multiplication
operation to convert from the meter unit value
0x07654AF0, you would set AMP_CC to 0x0190, and
read from virtual register 0x831 (phase A RMS current).
The output would be 0xB8E45170. Dropping the lower
2 bytes (right shifting 16 bits) gives 0xB8E4, or 47332
decimal (47332mA).
AMP_CC is computed as follows:
AMP_CC = (IFS/224)/AMP_LSB = MU_AMP/AMP_LSB
AMP_LSB = 0.001/216 (A)
IFS = 102.4A
AMP_CC = (102.4/224)/(0.001/216) = 400d = 0x0190
Calibration Procedure
Calibration Overview
Calibration ensures that the recorded voltage, current,
energy, and power are in accordance with the design
criteria. Before creating a calibration regimen, establish
the fundamental units of the meter: the full-scale volt-
age and current. Then adjust the gain registers using
calculated calibration constants to produce the expect-
ed reading in the raw current, voltage, energy, and
power factor registers.
The calibration constants should be stored in non-
volatile memory by the host microcontroller. Upon any
reset or loss of power, the host microcontroller must
reload the MAXQ3183 with the constants.
Calibration always follows a set of fundamental steps:
• Apply a known signal (voltage/current/power) to the
meter.
• Read the meter.
• Calculate the correction factor based on the differ-
ence between the applied signal level and the meter
reading.
• Write the correction factor to the appropriate register.
MAXQ3183
I0P
VCOMM
IA (AC)
I0N
R
10
Ω
R
10
Ω
Figure 14. Sample Current Input Circuit
MAXQ3183
VOP
VA (AC)
VN
R2
1k
Ω
R1
544k
Ω
Figure 13. Sample Voltage Input Circuit



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