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ADE7858ACPZ-REF 数据表(PDF) 39 Page - Analog Devices

部件名 ADE7858ACPZ-REF
功能描述  Poly Phase Multifunction Energy Metering IC with per Phase Active and Reactive Powers
PDF  76 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADE7858ACPZ-REF 数据表(HTML) 39 Page - Analog Devices

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Preliminary Technical Data
ADE7858
Rev. PrA | Page 39 of 76
The sign of each phase reactive power may be read in
PHSIGN[15:0] register.
Bits 12, 11, 10 (REVRPC, REVRPB and respectively REVRPA)
in STATUS0[31:0] are set when a sign change occurs in the total
reactive power.
Bits 6, 5, 4 (CVARSIGN, BVARSIGN and respectively
AVARSIGN) in PHSIGN[15:0] register are set simultaneously
with REVRPC, REVRPB and REVRPA bits. They indicate the
sign of the reactive power. When they are 0, the reactive power
is positive. When they are 1, the reactive power is negative.
Bit REVRPx of STATUS0[31:0] and bit xVARSIGN in
PHSIGN[15:0] refers to the reactive power of phase x, x=A,B or
C.
Setting bits 12, 11, 10 in MASK0[31:0] register enables
REVRPC, REVRPB and REVRPA interrupts respectively. If
enabled, the
0
IRQ pin is set low and the status bit is set to 1
whenever a change of sign occurs. To find the phase that
triggered the interrupt, PHSIGN[15:0] register is read
immediately after reading STATUS0[31:0]. Then the status bit is
cleared and
0
IRQ pin is set back high by writing STATUS0
register with the corresponding bit set to 1.
Table 14. Sign of Reactive Power Calculation
Φ1
Integrator
Sign of Reactive Power
Between 0 to +90
Off
Positive
Between −90 to 0
Off
Negative
Between 0 to +90
On
Positive
Between −90 to 0
On
Negative
1 Φ is defined as the phase angle of the voltage signal minus the current
signal; that is, Φ is positive if the load is inductive and negative if the load is
capacitive.
Reactive Energy Calculation
Reactive energy is defined as the integral of reactive power.
dt
t
q
Energy
Reactive
(34)
Total reactive energy accumulation is always a signed operation.
Negative energy is subtracted from the reactive energy contents.
Similar to active power, the ADE7858 achieves the integration
of the reactive power signal in two stages (see Figure 45). The
first stage is done inside the DSP: every 125μsec (8KHz
frequency), the instantaneous phase total reactive power is
accumulated into an internal register. When a threshold is
reached, a pulse is generated at processor port and the
threshold is subtracted from the internal register. The sign of
the energy in this moment is considered the sign of the reactive
power (see Sign of Reactive Power Calculation section for
details).The second stage is done outside the DSP and consists
in accumulating the pulses generated by the processor into
internal 32-bit accumulation registers. The content of these
registers is transferred to var-hr registers xVARHR[31:0], x=A,
B, C when these registers are accessed. AVARHR[31:0],
BVARHR[31:0] and CVARHR[31:0] represent the phase total
reactive powers.
Figure 42 from the Active Energy Calculation section explains
this process. The VARTHR[47:0] 48-bit signed register contains
the threshold and it is introduced by the user. Its value depends
on how much energy is assigned to 1LSB of var-hour registers.
Let’s suppose a derivative of varh [10n varh], n an integer, is
desired as 1LSB of VARHR. Then VARTHR may be computed
using the following expression:
FS
FS
n
s
I
U
10
3600
f
PMAX
VARTHR
where:
PMAX=33,516,139=0x1FF6A6B, the instantaneous power
computed when the ADC inputs are at full scale.
fs=8KHz is the frequency with which the DSP computes the
instantaneous power.
UFS, IFS are the rms values of phase voltages and currents when
the ADC inputs are at full scale.
The maximum value that may be written on VARTHR[47:0] is
247-1. The minimum value is 0x0, but it is recommended to
write a number equal or greater than PMAX. Negative numbers
should never be used.
The VARTHR[47:0] is a 48-bit register. As previously stated, the
serial ports of the ADE7858 work on 32, 16 or 8-bit words.
Similar to the WTHR[47:0] register presented in Figure 43,
VARTHR[47:0] is accessed as two 32-bit registers
(VARTHR1[31:0] and VARTHR0[31:0]), each having 8 most
significant bits padded with 0s.
This discrete time accumulation or summation is equivalent to
integration in continuous time following the description in
expression (34).


0
n
0
T
T
nT
q
Lim
dt
t
q
gy
activeEner
Re
(34)
where:
n
is the discrete time sample number.
T
is the sample period.
On the ADE7858, the total phase reactive powers are
accumulated in AVARHR[31:0], BVARHR[31:0] and
CVARHR[31:0] 32-bit signed registers. The reactive energy
register content can roll over to full-scale negative (0x80000000)
and continue increasing in value when the reactive power is
positive. Conversely, if the reactive power is negative, the energy
register would underflow to full-scale positive (0x7FFFFFFF)
and continue decreasing in value.
Bit 2 (REHF) in STATUS0[31:0] register is set when bit 30 of
one of xVARHR, x=A,B,C registers changes, signifying one of
these registers is half full. If the reactive power is positive, the
var-hr register becomes half full when it increments from



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