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PAC1932/3/4 数据表(PDF) 43 Page - Microchip Technology

部件名 PAC1932/3/4
功能描述  Multi-Channel DC Power/Energy Monitor with Accumulator
PDF  62 Pages
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制造商  MICROCHIP [Microchip Technology]
网页  http://www.microchip.com
标志 MICROCHIP - Microchip Technology

PAC1932/3/4 数据表(HTML) 43 Page - Microchip Technology

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 2017-2018 Microchip Technology Inc.
DS20005850C-page 43
PAC1932/3/4
REGISTER 6-11:
NEG_PWR (ADDRESS 1DH)
RW-0
RW-0
RW-0
RW-0
RW-0
RW-0
RW-0
RW-0
CH1_BIDI
CH2_BIDI
CH3_BIDI
CH4 BIDI
CH1_BIDV
CH2_BIDV
CH3_BIDV
CH4_BIDV
bit 7
bit 0
Legend:
R = Readable bit
W = Writeable bit
U = Unimplemented bit, read as ‘0’
-n = Value at POR
‘1’ = bit is set
‘0’ = Bit is cleared
x = Bit is unknown
bit 7-4
CHn_BIDI<7:4>
: these control bits allow the user to enable bidirectional current measurements for any
channel, which will result in the VSENSE voltage measurement data being in 16-bit two's complement
(signed) format. If the channel is enabled for negative current measurements, the full scale range for
VSENSE is -100 mV to +100 mV.
If these bits are enabled for any channel, that channel’s power numbers are also capable of reporting
bidirectional numbers in two’s complement format.
bit 3-0
CHn_BIDI<3:0>
: these control bits allow the user to enable bidirectional/bipolar voltage measurements
for any channel, which will result in the VBUS voltage measurement data being in 16 bit two’s
complement format.
If the channel is enabled for negative voltage measurements, the full scale range for VBUS is +32V to
-32V. Note that this range is the digital FSR, the VBUS input will not give accurate measurements if taken
more than 200 mV below ground.
If these bits are enabled for any channel, that channel’s power numbers are also capable of reporting
bidirectional numbers in two’s complement format.
bit 7
0
= Channel 1 VSENSE ADC converts 0 to +100 mV range with 16-bit straight binary output
1
= Channel 1 VSENSE ADC converts -100 mV to +100 mV range with 16-bit two’s complement output
bit 6
0
= Channel 2 VSENSE ADC converts 0 to +100 mV range with 16 bit straight binary output
1
= Channel 2 VSENSE ADC converts -100 mV to +100 mV range with 16 bit two’s complement output
bit 5
0
= Channel 3 VSENSE ADC converts 0 to +100 mV range with 16-bit straight binary output
1
= Channel 3 VSENSE ADC converts -100 mV to +100 mV range with 16-bit two’s complement output
bit 4
0
= Channel 4 VSENSE ADC converts 0 to +100 mV range with 16-bit straight binary output
1
= Channel 4 VSENSE ADC converts -100 mV to +100 mV range with 16 bit two’s complement output
bit 3
0
= Channel 1 VBUS ADC converts 0 to +32V range with 16-bit straight binary output
1
= Channel 1 VBUS ADC converts -32V to +32 range with 16-bit two’s complement output
bit 2
0
= Channel 2 VBUS ADC converts 0 to +32V range with 16-bit straight binary output
1
= Channel 2 VBUS ADC converts -32V to +32V range with 16-bit two’s complement output
bit 1
0
= Channel 3 VBUS ADC converts 0 to +32V range with 16-bit straight binary output
1
= Channel 3 VBUS ADC converts -32V to +32V range with 16-bit two’s complement output
bit 0
0
= Channel 4 VBUS ADC converts 0 to +32V range with 16-bit straight binary output
1
= Channel 4 VBUS ADC converts -32V to +32V range with 16-bit two’s complement output



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