VND10BSP13TR Allicdata Electronics
Allicdata Part #:

VND10BSP13TR-ND

Manufacturer Part#:

VND10BSP13TR

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: STMicroelectronics
Short Description: IC SSR HISIDE ISO 40V POWERSO10
More Detail: N/A
DataSheet: VND10BSP13TR datasheetVND10BSP13TR Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Voltage - Supply (Vcc/Vdd): Not Required
Base Part Number: VND10B
Supplier Device Package: 10-PowerSO
Package / Case: PowerSO-10 Exposed Bottom Pad
Operating Temperature: -40°C ~ 150°C (TJ)
Fault Protection: Open Load Detect, Over Temperature
Features: Status Flag
Input Type: Non-Inverting
Rds On (Typ): 100 mOhm (Max)
Current - Output (Max): 3.4A
Series: --
Voltage - Load: 6 V ~ 26 V
Interface: On/Off
Output Type: N-Channel
Output Configuration: High Side
Ratio - Input:Output: 1:1
Number of Outputs: 2
Switch Type: General Purpose
Part Status: Obsolete
Packaging: Tape & Reel (TR) 
Description

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The PMIC (Power Management Integrated Circuit) is a device that can be used to manage the power levels of a circuit, from the input to the output. VND10BSP13TR is the latest and most advanced PMIC, which is used to power distribution switches, load drivers, and other applications. All these works together to help the system operate efficiently and manage power effectively. This article will discuss the VND10BSP13TR application field and its working principle.

VND10BSP13TR is designed for power distribution switches, load drivers, and other applications as well. It is an integrated circuit and works on field-effect transistors (FETs) and other transistors. The VND10BSP13TR provides an overall solution to the power management system, from the input to the output. It can be used for power distribution, load switching, over-voltage protection, and more. It provides a high-performance, high temperature solution for large scale and high temperature applications.

In a power distribution switch, the VND10BSP13TR is used to control the voltage levels of the circuit. It can be used to transfer control signals, such as controlling the voltage or current levels, or to provide feedback to the power management system, such as over-voltage protection. The VND10BSP13TR also provides temperature protection and internal current sensing, to make sure the circuit is running safely and reliably.

Load drivers are used to provide increased power to an electrical system, such as an HVAC (heating, ventilation, and air conditioning) system. The VND10BSP13TR is used to control the load current and ensure safe operation. This increase of power helps the system operate more efficiently, which leads to lower operational costs.

The working principle of the VND10BSP13TR is based on the fact that electricity follows paths of least resistance. This means that the VND10BSP13TR allows for the flow of electrons to follow their desired paths, with the least amount of resistance. The VND10BSP13TR is designed to ensure that the load current is evenly distributed, and that the voltage levels are kept stable. This allows the system to operate safely and efficiently.

The VND10BSP13TR is a key component of the power distribution switch. It is used to control the voltage levels of the circuit, and to provide safe and efficient power distribution. The VND10BSP13TR also provides temperature protection and current sensing, to ensure the reliability and safety of the circuit. Lastly, the working principle of the VND10BSP13TR is to allow for electricity to flow with the least amount of resistance.

In conclusion, the VND10BSP13TR is a powerful PMIC (Power Management Integrated Circuit) device that is used to power distribution switches, load drivers, and other applications as well. It is designed to provide an overall solution to the power management system, from the input to the output. The VND10BSP13TR is also designed to provide safe and efficient power distribution, temperature protection, and current sensing. The working principle of the VND10BSP13TR is based on the fact that electricity follows paths of least resistance, allowing electrons to flow with the least amount of resistance.

The specific data is subject to PDF, and the above content is for reference

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