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L99PM62XP Datasheet(PDF) 46 Page - STMicroelectronics

Part # L99PM62XP
Description  Power management IC with LIN and high speed CAN
PDF  98 Pages
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Manufacturer  STMICROELECTRONICS [STMicroelectronics]
Direct Link  http://www.st.com
Logo STMICROELECTRONICS - STMicroelectronics

L99PM62XP Datasheet(HTML) 46 Page - STMicroelectronics

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Electrical specifications
L99PM62XP
46/98
Doc ID 16363 Rev 3
5.5
Electrical characteristics
5.5.1
Supply and supply monitoring
The voltages are referred to ground and currents are assumed positive, when the current
flows into the pin Tj = -40 °C to 130 °C, unless otherwise specified.
Table 12.
Supply and supply monitoring
Symbol
Parameter
Test condition
Min.
Typ.
Max.
Unit
VS
Supply voltage range
6
13.5
18
V
VSUV
VS undervoltage threshold
VS increasing / decreasing
5.11
5.81
V
Vhyst_UV Vs undervoltage hysteresis
0.0
0.1
0.15
V
VSOV
VS overvoltage threshold
VS increasing / decreasing
18.5
22
V
Vhyst_OV Vs overvoltage hysteresis
Hysteresis
0.5
1
1.5
V
tovuv_filt
Vs over/undervoltage filter time
64*Tosc
IV(act)
Current consumption in
active mode
Vs = 12V
TxD CAN = high
TxD LIN = high
V1 = on, V2 = on
612
mA
IV(BAT)
Current consumption in
VBAT standby mode
VS = 12V
Both voltage regulators deactivated,
no wake-up request(1)
812
28
µA
IV(BAT)CS
Current consumption in
VBAT standby mode with cyclic
sense enabled
VS = 12V
Both voltage regulators deactivated,
T = 50 ms, ton = 100 µs no wake-up
request(1)
40
75
125
µA
IV(BAT)CW
Current consumption in
VBAT standby mode with cyclic
wake enabled
VS = 12V
Both voltage regulators deactivated
During standby phase no
wake-up request(1)
40
75
125
µA
I(V1)
Current consumption in
V1-standby mode
VS = 12V
Voltage Regulator V1 active,
(Iv1 < Icmp) no wake-up request
(1)
16
51
76
µA
1.
Conditions for no wake-up request are (all conditions must be met):
2 V < LIN < (Vs-2 V)
0.4 V < (CAN_H – CAN_L) < 1,2 V
1V < VWUth < (Vs-2 V)
The current consumption in standby modes with cyclic sense can be calculated using the following formulas:
IV(BAT)CS =IV(BAT) + 55 µA + (2 mA * (tON + 100 µs) / T)
I(V1)CS =IV1 + 55 µA + (2 mA * (tON + 100 µs) / T)



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