1032 Allicdata Electronics
Allicdata Part #:

1528-1012-ND

Manufacturer Part#:

1032

Price: $ 8.67
Product Category:

Development Boards, Kits, Programmers

Manufacturer: Adafruit Industries LLC
Short Description: L3GD20 3AXIS GYRO BREAKOUT BRD
More Detail: L3GD20H - Gyroscope, 3 Axis Sensor Evaluation Boar...
DataSheet: 1032 datasheet1032 Datasheet/PDF
Quantity: 17
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
1 +: $ 7.87500
Stock 17Can Ship Immediately
$ 8.67
Specifications
Series: --
Part Status: Active
Lead Free Status / RoHS Status: --
Sensor Type: Gyroscope, 3 Axis
Moisture Sensitivity Level (MSL): --
Sensing Range: ±250°/sec, ±500°/sec, ±2000°/sec
Interface: I²C, SPI
Sensitivity: 8.75 mdps/digit, 17.5 mdps/digit, 70 mdps/digit
Voltage - Supply: 3.3 V ~ 5 V
Embedded: --
Supplied Contents: Board(s)
Utilized IC / Part: L3GD20H
Description

Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us:   sales@allicdata.com

The 1032 application field and working principle are at the leading edge of technology and are growing in importance. The 1032 application field is highly regulated, with tight specifications and regulations requiring rigorous analysis and compliance testing prior to product launch. On top of that, the 1032 application field is rapidly taking on new features and technological advances that require diligent design and engineering to ensure successful product introduction. As the world of technology continues to expand, so does the 1032 application field.

The 1032 working principle is based on the principle of a digital sensor. This type of sensor is made up of several different components, including a strain gauge, a resistive element, a power supply, and a gate driving circuit. Depending on the specific sensor, these components are used to create a reading of the strain gauge. In the case of a 1032 sensor, the strain gauge reading is converted to a voltage, which is then used to calculate the output of the sensor.

1032 sensors are often used in many different industrial settings, including automotive, medical, military, aerospace, industrial, and agricultural applications. These sensors are typically placed in areas with high levels of strain, such as shock absorbers, engine pistons, and pistons in small aircraft engines. They are also employed in safety systems such as airbags, roll cages, and occupant tension systems, in order to detect high levels of strain and to prevent potential damage to passengers or cargo.

In order to properly operate a 1032 sensor, a variety of components must be put into place. One of the most important components is the strain gauge. This component is responsible for converting the strain that is exerted on the system into an electrical signal. The strain gauge is typically made from an alloy, and it is placed in a specific location on the system. This location is typically chosen to ensure that the strain gauge is in direct contact with the surface under test.

Another important component is the resistive element. This consists of a material that is placed between the strain gauge and the power supply. The resistive element is designed to resist the flow of electricity, so that the changes in the strain can be accurately measured by the power supply.

In order to accurately measure the voltage, a power supply must also be connected to the system. This power supply will provide a steady and consistent voltage in order to take accurate readings. The resulting voltage values are then used to calculate the output of the sensor.

Lastly, a gate driving circuit is used in order to control the operation of the 1032 sensor. This circuit is responsible for regulating the amount of power that is sent to the strain gauge in order to produce accurate readings. It also helps to ensure that the strain gauge does not exceed its range and prevents the system from becoming overloaded.

The 1032 application field and working principle are essential to the successful operation of a number of industries. Understanding how this type of sensor works and what components are necessary for accurate readings is essential for all engineers who are involved with the design and installation of such sensors. Doing so will ensure that the sensors are accurate and reliable, and that the output is consistent and reliable in order to provide the best possible results.

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

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