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Precision RS422 Interface Gyroscope Sensor -40 to 65℃ Operating Temp 460800bps 6.06 G Vibration

Precision RS422 Interface Gyroscope Sensor -40 to 65℃ Operating Temp 460800bps 6.06 G Vibration

  • Precision RS422 Interface Gyroscope Sensor -40 to 65℃ Operating Temp 460800bps 6.06 G Vibration
  • Precision RS422 Interface Gyroscope Sensor -40 to 65℃ Operating Temp 460800bps 6.06 G Vibration
Precision RS422 Interface Gyroscope Sensor -40 to 65℃ Operating Temp 460800bps 6.06 G Vibration
Product Details:
Place of Origin: China (Mainland)
Brand Name: Kacise
Certification: certificate of explosion-proof, CE
Model Number: KQ6IMU100
Payment & Shipping Terms:
Minimum Order Quantity: 1pcs
Packaging Details: each unit has individual box and all boxes are packed in standard packages or customers requests available
Delivery Time: 5-8 working days
Payment Terms: T/T, Western Union, MoneyGram
Supply Ability: 1000 Pieces per Week
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Detailed Product Description
Scale Factor: 1000±30LSB/g Vibration Error: ≤0.03°/s
Operating Temperature: -40~+65℃ Baud Rate: 460800bps
Bias: 0±0.02g Random Vibration: 6.06 G
Input Current: ≤100mA Interface: RS422(1-bit Start +8-bit Data +1-bit Even Parity Check +1-bit Stop)
High Light:

460800bps Gyroscope Sensor

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6.06 G Vibration Gyroscope Sensor

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RS422 Interface Gyroscope Sensor

Product Description:

KQ6IMU100 is a cutting-edge inertial measurement module that utilizes MEMS technology to measure the angular velocity and acceleration information of a carrier across three dimensions.

MEMS stands for micro-electromechanical systems, and it refers to micro-devices or systems that have micro-sensors, micro-actuators, micro-mechanical structures, micro-power and micro-energy, signal processing and control circuits, high-performance electronic integrated devices, interfaces and communications. Essentially, MEMS is an independent and intelligent system that can be mass-produced and miniaturized to a few millimeters or even smaller. Inside a MEMS system, the internal structure is generally in the order of microns or even nanometers.

Some common examples of MEMS products include MEMS accelerometers, MEMS optical sensors, MEMS pressure sensors, MEMS gyroscopes, MEMS humidity sensors, MEMS gas sensors, and their integrated products.

 

 

 

Features:

● Small Size,27mmX27mmX10mm

● Easy to be integrated by connect the digital interface RS422.

● Dual redundancy design to sets of gyro and accelerator integrated.

● Bias < 0.05°

 

Technical Parameters:

 

Parameter KQ6IMU100
Power supply parameter
Input Voltage 5±0.2 V DC
Input Current ≤100mA
Product performance
GYRO Range ±400°/s
Bias 0±0.05°/s
Bias stability ≤30°/h
Scale factor 70±3LSB/°/s
Scale factor nonlinearity ≤200ppm
Vibration error ≤0.03°/s
Bandwidth ≥100Hz
Accelerometer Range ±10g
Bias 0±0.02g
Bias stability ≤0.002g
Scale factor 1000±30LSB/g
Bandwidth ≥400Hz
Interface RS422(1-bit start +8-bit data +1-bit even parity check +1-bit stop)
Baud rate 460800bps
Inner Data update speed ≤2.5ms
Environment
Operating temperature -40~+65℃
Random vibration 6.06 g
 

Dimensions:

 

Precision RS422 Interface Gyroscope Sensor -40 to 65℃ Operating Temp 460800bps 6.06 G Vibration 0

 

Applications:

Robotics

Robotics is a multidisciplinary field that designs and develops robots, which are machines that can perform various tasks autonomously or semi-autonomously. Robotics is a combination of science, engineering, and technology that involves the design, construction, operation, and use of robots. Robotics has applications in a wide range of fields, including manufacturing, medicine, entertainment, and space exploration. With advancements in artificial intelligence and machine learning, robotics is becoming an increasingly important field of research and development.

Flight Testing

Flight testing is the process of evaluating the performance, safety, and reliability of an aircraft. Flight testing involves designing, building, and operating test aircraft to assess various aspects of aircraft performance in different flight conditions. Flight testing is a critical part of the aircraft development process, and it helps ensure that the aircraft meets regulatory requirements and is safe to operate. Flight testing is conducted by skilled pilots and engineers who use advanced technology to collect and analyze data during flight.

Guidance & Control Systems

Guidance and control systems are critical components of modern aerospace technology. These systems enable aircraft and spacecraft to navigate, stabilize, and operate autonomously or with minimal human intervention. Guidance systems help aircraft and spacecraft determine their position and trajectory, while control systems manage the vehicle's stability and attitude. These systems rely on a combination of sensors, actuators, and computer algorithms to ensure precise and accurate control of the vehicle. Advances in guidance and control systems have enabled the development of sophisticated unmanned aircraft and spacecraft for a range of applications.

Short Term Navigation

Short term navigation is the process of determining the immediate position and direction of an aircraft or spacecraft. Short term navigation systems use a combination of sensors, such as GPS, radar, and inertial navigation, to provide accurate and reliable real-time data on the vehicle's location and trajectory. Short term navigation is essential for safe and efficient flight operations, especially in low-visibility or high-traffic environments. Short term navigation systems are critical components of advanced aircraft and spacecraft, and they help ensure safe and reliable navigation in a variety of operating conditions.

Aerospace

Aerospace is a broad field that encompasses the design, manufacture, operation, and maintenance of aircraft and spacecraft. Aerospace technology includes a wide range of disciplines, including aerodynamics, propulsion, materials science, electrical and mechanical engineering, and computer science. Aerospace technology has transformed the way we travel, communicate, and explore the world. Aerospace systems, such as satellites and remote sensing technologies, play a crucial role in weather forecasting, global positioning, and environmental monitoring. Aerospace is a rapidly evolving field that continues to push the boundaries of technology and innovation.

Support and Services:

Our Electronic Gyroscope Sensor is designed with precision to provide reliable performance for your applications. Our support includes detailed product documentation, an extensive online knowledge base, and troubleshooting guides to help you resolve any issues you may encounter.

We are committed to the satisfaction of our customers and strive to provide exceptional after-sales support. Should you have any feedback or suggestions, we welcome your input as it helps us to continuously improve our products and services.

 

Packing and Shipping:

The Electronic Gyroscope Sensor is housed in a robust, anti-static packaging to ensure the device remains secure and undamaged during transit. The interior of the packaging is lined with a cushioning material that absorbs shocks and vibrations, providing additional protection for the sensitive components of the sensor.

Prior to shipment, each package is sealed and subjected to a thorough inspection to guarantee that the sensor is securely enclosed. The exterior of the packaging is clearly labeled with handling instructions and the package contents to facilitate careful handling and to inform the recipient about the enclosed device.

For shipping, the packaged Electronic Gyroscope Sensor is placed in a larger, durable cardboard box designed to withstand the rigors of transport. This box is further secured with packing tape and, if necessary, additional cushioning materials are added to prevent movement within the box during shipment.

Each shipment includes a detailed packing slip with product information and a unique serial number for inventory tracking and quality control purposes. The package is then dispatched through a reliable courier service with options for tracking and insurance to ensure the Electronic Gyroscope Sensor arrives at its destination promptly and in pristine condition.

Contact Details
Xi'an Kacise Optronics Co.,Ltd.

Contact Person: Ms. Evelyn Wang

Tel: +86 17719566736

Fax: 86--17719566736

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Contact

Address: i City, No11, TangYan South road, Yanta District, Xi'an,Shaanxi,China.

Factory Address:i City, No11, TangYan South road, Yanta District, Xi'an,Shaanxi,China.