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TDA4AL...ALZQ1 数据表(PDF) 237 Page - Texas Instruments

部件名 TDA4AL...ALZQ1
功能描述  TDA4VE TDA4AL TDA4VL Jacinto™ Processors, Silicon Revision 1.0
PDF  251 Pages
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制造商  TI [Texas Instruments]
网页  http://www.ti.com
标志 TI - Texas Instruments

TDA4AL...ALZQ1 数据表(HTML) 237 Page - Texas Instruments

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Device
USBn_VBUS
J7ES_USB_VBUS_01
VSS
VSS
16.5 kΩ
1%
±
10 kΩ
1%
±
3.5 kΩ
1%
±
VBUS signal
(BZX84C6V8 or equivalent)
6.8V
Figure 8-4. USB VBUS Detect Voltage Divider / Clamp Circuit
The USB0_VBUS pin can be considered to be fail-safe because the external circuit in Figure 8-4 limits the input
current to the actual device pin in a case where VBUS is applied while the device is powered off.
8.2.4 System Power Supply Monitor Design Guidelines using VMON/POK
The VMON1_ER_VSYS pin provides a way to monitor a system power supply. This system power supply is
typically a single pre-regulated power source for the entire system. This supply is monitored by comparing
the output of an external voltage divider circuit sourced by this supply with an internal voltage reference, with
a power fail event being triggered when the voltage applied to VMON1_ER_VSYS drops below the internal
reference voltage. The actual system power supply voltage trip point is determined by the system designer when
selecting component values used to implement the external resistor voltage divider circuit. When designing the
resistor divider circuit it is important to understand various factors which contribute to variability in the system
power supply monitor trip point. The first thing to consider is the initial accuracy of the VMON1_ER_VSYS input
threshold which has a nominal value of 0.45 V, with a variation of ±3%. Precision 1% resistors with similar
thermal coefficient are recommended for implementing the resistor voltage divider. This minimizes variability
contributed by resistor value tolerances. Input leakage current associated with VMON1_ER_VSYS must also
be considered since any current flowing into the pin creates a loading error on the voltage divider output. The
VMON1_ER_VSYS input leakage current may be in the range of 10 nA to 2.5 μA when applying 0.45 V.
Note
The resistor voltage divider shall be designed such that its output voltage never exceeds the
maximum value defined in Recommended Operating Conditions during normal operating conditions.
Figure 8-5 presents an example, where the system power supply is nominally 5 V and the maximum trigger
threshold is 5 V - 10%, or 4.5 V.
For this example, it is important to understand which variables effect the maximum trigger threshold when
selecting resistor values. It is obvious a device which has a VMON1_ER_VSYS input threshold of 0.45 V + 3%
needs to be considered when trying to design a voltage divider that doesn’t trip until the system supply drops
10%. The effect of resistor tolerance and input leakage also needs to be considered, but how these contributions
effect the maximum trigger point may not be obvious. When selecting component values which produce a
maximum trigger voltage, the system designer must consider a condition where the value of R1 is 1% low and
the value of R2 is 1% high combined with a condition where input leakage current for the VMON1_ER_VSYS pin
is 2.5 μA. When implementing a resistor divider where R1 = 4.81 KΩ and R2 = 40.2 KΩ, the result is a maximum
trigger threshold of 4.523 V.
Once component values have been selected to satisfy the maximum trigger voltage as described above, the
system designer can determine the minimum trigger voltage by calculating the applied voltage that produces an
output voltage of 0.45 V - 3% when the value of R1 is 1% high and the value of R2 is 1% low, and the input
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TDA4VE-Q1, TDA4AL-Q1, TDA4VL-Q1
SPRSP62 – DECEMBER 2022
Copyright © 2023 Texas Instruments Incorporated
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Product Folder Links: TDA4VE-Q1 TDA4AL-Q1 TDA4VL-Q1



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