Distance Measuring

Results:
479
Manufacturer
Series
Sensing Distance
Voltage - Supply
Output Type
Operating Temperature
Current - Supply
Voltage - Output (Typ) @ Distance
Voltage - Output Difference (Typ) @ Distance
Results remaining479
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ImageProduct DetailPriceAvailabilityECAD ModelSeriesOperating TemperatureOutput TypeSensing DistanceVoltage - Output Difference (Typ) @ DistanceVoltage - Output (Typ) @ DistanceCurrent - SupplyVoltage - Supply
901-0006-542
SENSOR OPTICAL
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STL-27L
LDROBOT STL-27P 2D 360 LIDAR
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STP-19P
Direct time of flight (DTOF) LiD
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STL-06P
Direct time of flight (DTOF) LiD
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STP-23
Single point measurement LiDAR.
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STU-22L
STU 22L is a miniature, ultra lo
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LD-19
Direct time of flight (DTOF) LiD
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LD-14p
The LD14p LiDAR ranging core use
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101990656
SENSOR OPTICAL 20-800CM I2C/UART
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PCB Symbol, Footprint & 3D Model
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-10°C ~ 60°C
I²C, UART
7.87" ~ 314.96" (20 ~ 800cm)
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70 mA
5V
101990641
SENSOR OPTICAL 0-40M
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Quantity
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PCB Symbol, Footprint & 3D Model
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0 ~ 1574.80" (0 ~ 40m)
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5V
903-0258-000
SENSOR OPTICAL 12-350CM
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5V
101990388
SENSOR OPTICAL 10-1200CM I2C
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Quantity
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PCB Symbol, Footprint & 3D Model
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-20°C ~ 60°C
I²C, UART
3.94" ~ 472.44" (10 ~ 1200cm)
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110 mA
5V
LTF24IC2LD W/30
SENSOR OPTICAL 50MM-24M ANALOG
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PCB Symbol, Footprint & 3D Model
LTF
-20°C ~ 55°C
Analog
1.969" ~ 78.74' (50mm ~ 24m)
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12V ~ 30V
ARK-FLOW-REV-02
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CAN
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71 mA
5V
GP2Y0D413K0F
SENSOR OPTICAL 12-15CM DIGITAL
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-10°C ~ 60°C
Digital
4.53" ~ 5.71" (12 ~ 15cm)
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27 mA
4.5V ~ 5.5V
2190753258
SENSOR OPTICAL
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2190757997
SENSOR OPTICAL
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1612306262
SENSOR OPTICAL
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2190755099
SENSOR OPTICAL
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Distance Measuring

Optical distance measuring sensors utilize light in various ways to accurately measure the distance between the sensor and an object. These sensors are available in different types, including those designed for simple distance measurement to a single dominant object within the sensor's field of view, as well as LiDAR (Light Detection and Ranging) devices that excel at mapping the distances to nearby objects surrounding the sensor. For simple distance measurement, optical sensors typically use techniques such as time-of-flight (ToF), triangulation, or phase-shift measurement. These methods involve emitting a light signal, such as a laser or infrared beam, towards the target object and measuring the time it takes for the signal to bounce back to the sensor. By calculating the elapsed time and knowing the speed of light, the sensor can determine the distance to the object. In ToF-based sensors, a modulated light signal is emitted, and the time taken for the signal to return is measured. Triangulation-based sensors use a laser or LED to project a light spot onto the target object, and the displacement of the spot on a sensor determines the distance. Phase-shift measurement relies on measuring the phase difference between the emitted and received light signals to determine distance. LiDAR devices, on the other hand, employ more advanced technology for mapping the distances to multiple objects surrounding the sensor. These devices emit laser pulses and precisely measure the time it takes for the pulses to return after reflecting off different objects in the environment. By analyzing the return signals, LiDAR sensors create detailed 3D maps of the surroundings, providing accurate distance measurements to various objects. Optical distance measuring sensors find applications in a wide range of fields, including robotics, automation, autonomous vehicles, industrial monitoring, and more. They enable precise distance measurement, object detection, collision avoidance, and spatial mapping, contributing to improved safety and efficiency in many industries. In summary, optical distance measuring sensors utilize light-based techniques such as ToF, triangulation, or phase-shift measurement to accurately measure the distance between the sensor and an object. Some sensors focus on simple distance measurement to a dominant object, while others, such as LiDAR devices, excel at mapping distances to multiple objects in the sensor's surroundings. These sensors find applications in various industries, enabling precise measurements, object detection, and spatial mapping.