A1260LLHLT-T Allicdata Electronics

A1260LLHLT-T Sensors, Transducers

Allicdata Part #:

620-1757-2-ND

Manufacturer Part#:

A1260LLHLT-T

Price: $ 0.00
Product Category:

Sensors, Transducers

Manufacturer: Allegro MicroSystems, LLC
Short Description: MAGNETIC SWITCH LATCH SOT23W
More Detail: Digital Switch Latch Open Drain Hall Effect SOT-23...
DataSheet: A1260LLHLT-T datasheetA1260LLHLT-T Datasheet/PDF
Quantity: 6000
Stock 6000Can Ship Immediately
Specifications
Series: Automotive, AEC-Q100
Packaging: Tape & Reel (TR) 
Part Status: Active
Function: Latch
Technology: Hall Effect
Polarization: South Pole
Sensing Range: 5mT Trip, -5mT Release
Test Condition: -40°C ~ 150°C
Voltage - Supply: 3 V ~ 24 V
Current - Supply (Max): 4mA
Current - Output (Max): 25mA
Output Type: Open Drain
Features: --
Operating Temperature: -40°C ~ 150°C (TA)
Package / Case: SOT-23W
Supplier Device Package: SOT-23W
Description

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A1260LLHLT-T magnetic switch (solid state) is a key component in many applications, ranging from automotive and industrial to medical and military. Its core technology is magnetoresistive (MR) principles, which utilizes the magnetic fields to detect changes in the electrical resistance of a device. Specifically, in A1260LLHLT-T, a thin-film deposition of magneto-resistive particles is deposited onto a ceramic substrate with an influx of lithium-ion. When an external magnetic field is applied to the lead-free ceramic material, electrical resistance changes and is registered as an electrical output signal.

The main application fields of A1260LLHLT-T are industrial, automotive, and medical. In industrial applications, this component acts as a sensor for motor and gear control systems. It provides a reliable and accurate feedback of the sensed position of a system, which helps to adjust the speed and torque of the motor in response to changing conditions. Additionally, the sensor works with a low profile, making it suitable for limited-space applications. In terms of automotive applications, A1260LLHLT-T is widely used in automotive body, engine, transmission, wear sensors, and stability control systems. By acting as a sensor, A1260LLHLT-T increases the accuracy and the safety of the vehicle by detecting movement that could lead to a potential dangerous situation. Moreover, it improves the driver\'s experience, allowing for improved control over the vehicle. As for medical applications, this component is used for important medical devices, such as wheelchairs and prosthetic limbs. By detecting the presence or absence of a magnetic field, it gives feedback for the motion of certain body parts, which leads to a more efficient movement of the device.

The working principle of A1260LLHLT-T is based on Hall Effect (HE). Unlike other types of MR sensors, this component precisely measures the magnitude of magnetic forces within a certain range. This is done by charged particles, which move in response to a magnetic field and their movement is translated into voltage and current. While the electromagnetic fields interact between the magnetoresistive particles and the substrate, the resistance of the substrate changes, producing an output signal. This signal is measured and converted into a digital signal, which is received and processed by an on-board chip. This chip then sends the signal, in a prescribed format, back to the controlling device. This process is very accurate due to its precise nature, but also requires very low power consumption.

In summary, the A1260LLHLT-T magnetic switch (solid state) is a key component found in various applications, ranging from automotive and industrial to medical and military. Its core technology is based on magnetoresistive similar to other types of MR sensors, yet it is more precise in measuring the magnitude of magnetic fields. The main application field of this component is in industrial, automotive, and medical applications for sensing movements and providing reliable feedback for control systems. The working principle of this component is based on Hall Effect, where an external magnetic field affects the resistance of the substrate, producing an output signal that is processed by an on-board chip and sent back to the controlling device.

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

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