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MCP39F511 Datasheet(PDF) 27 Page - Microchip Technology

Part # MCP39F511
Description  Power-Monitoring IC with Calculation and Energy Accumulation
PDF  62 Pages
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Manufacturer  MICROCHIP [Microchip Technology]
Direct Link  http://www.microchip.com
Logo MICROCHIP - Microchip Technology

MCP39F511 Datasheet(HTML) 27 Page - Microchip Technology

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 2015 Microchip Technology Inc.
DS20005393B-page 27
MCP39F511
5.11
10-Bit Analog Input
The least 10 significant bits of the 16-bit Analog Input
register contain the output of the 10-bit ADC. The
conversion rate of the analog input occurs once every
computation cycle.
The Thermistor Voltage can be used for temperature
compensation
of
the
calculation
engine.
See
Section 9.7 “Temperature Compensation”
for more
information.
FIGURE 5-6:
Using an Analog
Out-Temperature Sensor for Automatic
Temperature Compensation.
5.12
Minimum and Maximum
Recordings
The MCP39F511 has the ability to record minimum and
maximum outputs and keep them in a total of four
registers (two minimum and two maximum) based on
the value of address pointers located in the four
registers listed in this section.
A minimum and maximum test is done after each
calculation interval. If the current measurement value
of the value directed to by the pointer is smaller or
larger than the value in the Minimum or Maximum
register, the record is updated appropriately.
The registers are:
• MinMaxPointer1 → MinimumRecord1,
Maximum-Record1
• MinMaxPointer2 → MinimumRecord2,
Maximum-Record2
Only the Output Quantity register addresses can be
tracked by the Min/Max pointers. Output Quantity
registers are defined as those from Voltage RMS to
Apparent Power (addresses 0x0006 to 0x001A). All
other addresses will be ignored by the calculation
engine.
Please note that the 64-bit energy registers can not be
tracked through the Minimum and Maximum Recording
registers.
5.13
Zero Crossing Detection (ZCD)
The zero crossing detection block generates a
logic pulse output on the ZCD pin that is coherent with
the zero crossing of the input AC signal present on
voltage input pins (V1+, V1-). The ZCD pin can be
enabled and disabled by the corresponding bit in the
System
Configuration
Register
register.
When
enabled, this produces a square wave with a frequency
that is equivalent to that of the AC signal present on the
voltage input. Figure 5-7 represents the signal on the
ZCD pin superimposed with the AC signal present on
the voltage input in this mode.
FIGURE 5-7:
Zero Crossing Detection
Operation (Noninverted, Nonpulse).
A second mode is available that produces a 100 µs
pulse at each zero crossing, at a frequency that is twice
that of the AC signal present on the voltage input,
shown in Figure 5-8.
FIGURE 5-8:
Zero Crossing Detection
Operation (Noninverted, Pulsed).
Switching modes is done by setting the corresponding
bit in the System Configuration Register. In addition,
either the toggling of this pin, or the pulse, can be
inverted. The ZCD Inversion bit is also in the System
Configuration register.
There are two bits in the System Configuration register
that can be used to modify the zero crossing. The zero
crossing output can be inverted by setting the Inversion
bit, or the zero crossing can be a 100 µs pulse at each
zero crossing, by setting the Pulse bit.
Note that a low-pass filter is included in the signal path
that allows the zero crossing detection circuit to
filter out the fundamental frequency. An internal
compensation circuit is then used to gain back the
phase delay introduced by the low-pass filter resulting
in a latency of less than 200 µs.
AnalogInput:u16
10-bit
ADC
MCP9700
<200 µs
<200 µs



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