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Sensors
detect a physical event then translate to a representative analog signal.
See Also: Measurement, Detectors, Meters, Transducers
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USB Power Sensors 10 MHz to 26.5 GHz
GT-8554B
The Spanawave/Giga-tronics GT-8550B USB Power Sensors offer easy-to-use high-performance RF and microwave power measurement. High dynamic range and high accuracy make these sensors ideal for testing in wireless communication applications and Defense EW systems. The GT-8550B series feature a ruggedized body and fast measurement speed. These broadband power sensors provide easy-to-use, fast, accurate power measurement for R&D laboratory, manufacturing test and field installation and maintenance applications.
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Modulated Average Power Measurement
The Spanawave/Giga-tronics 80400A Series Modulated Power Sensors let you measure the average power of amplitude modulated, burst modulated and other complex modulated signals, such as TDMA signals - at bandwidths up to 40 kHz. This sensor works with the 8540B, 8540C, 8650A, 8650B series power meters.
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CW Power Measurement
Measure CW power from 10 MHz to 50 GHz at more than 17,500 readings per second over GPIB. Measure up to 90 dB with a single sensor, and select from a variety of high power sensors up to 50 W.
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Power Sensors
Measure CW power from 10 MHz to 50 GHz. Modulated Average Power Measurement. Peak Power Measurement.
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IR FPA sensors
IR FPA sensors are the most important modules of thermal imagers. Design of sensor electronics (camera core) is a crucial part of designing of new thermal imager. Knowledge of precise parameters of IR FPA sensor is needed by both professionals involved in both IR FPA technology/thermal imagers technology because parameters of IR FPA sensors determine performance limits of thermal imagers. Therefore test equipment that enable measurement of IR FPA sensors is a vital tool for development of both IR FPA technology/thermal imagers technology. It is commonly known that data sheets provided by manufacturers of IR FPA sensors (both cooled or non-cooled) provide too little details for electronics designers. Sometimes the provided data is not accurate enough and better sensor performance can be achieved using modified control signals. Therefore design teams loose sometimes years to develop electronic camera core optimized for a specific IR FPA sensor. When the type of the IR FPA sensor is changed the whole process is to be repeated. In this situation an universal, flexible camera core that would accept IR FPA sensors from different manufacturers and to carry out semi-automatic determination of optimal signal controls for a specific IR FPA sensor would be highly desirable.
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Target simulators
Simat simulator is an advanced hardware simulator capable to simulate in infrared range several targets on quasi uniform background. In detail Simat simulator is a modular image projector capable to simulate in infrared range variable intensity, variable angular size, variable spectrum, spatially and temporally dynamic airborne type targets on quasi uniform background. Basically the aim of Simat to enable simulation typical airborne targets like aircrafts or helicopters for infrared imaging sensors used for surveillance of these targets. Optionally Simat can be modernized to enable simulation in both IR and UV/visible ranges as the projectors are built using broadband reflective optical elements.
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VIS-SWIR FPA's
Imaging electronic sensors sensitive in visible, near infrared, short wavelength infrared spectral bands that generate two dimensional electronic images have found mass applications in industry, defense, security, science, environmental protection, medicine etc. Imaging sensors sensitive only in VIS/NIR range are almost exclusively silicon chips manufactured using a series of technologies: CCD, CMOS. ICCD, EMCCD, EBAPS, sCMOS in color or monochromatic versions. Color VIS/NIR sensors are sensitive to light only in visible range when monochromatic VIS/NIR sensors are sensitive up to about 1000nm.
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Battery Monitor Relay
BMR
The Battery Monitor Relay contains over under voltage sensors combined with positive and negative ground detection.
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Current Clamps and Transducers
High-accuracy Current Sensors and TransducersHigh-accuracy sensors for AC/DC current measurement and power analysis. From current clamps to high-precision zero flux current transducers and Rogowsky coils.
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Data Interfaces, Sensors And Actuators
Dewesoft also develops and manufactures data interfaces such as CAN USB devices, GNSS and INS positioning devices, and Inertial Measurement Units (IMU), and high-speed cameras. All devices are completely compatible and synchronized with all of our Data Acquisition (DAQ) systems and offer the same highest possible built quality. To complete the measurement chain we also provide high accuracy current and vibration sensors.
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Accelerometers & Angle Sensors
Accelerometers & Angle SensorsSingle axis, triaxial accelerometers and impulse hammers for vibration measurement and structural modal analysis.Angle sensors are perfect complementary sensors for applications like order tracking.
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FMCW radar sensors - how they work
What are FMCW radar sensors? And how do they work? The vast majority of radar sensors for distance measurement or collision avoidance are based on the FMCW radar (Frequency-Modulated Continous Wave Radar). OndoSense relies on the latest FMCW radar technology and innovative FMCW radar algorithms.
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PXI/PXIe High Density Precision Resistor Module, 3-Channel, 2.5 Ω to 201 kΩ
40-297A-141
The 40-297A-141 (PXI) and the 42-297A-141 (PXIe) are 3-channel programmable resistors with a range of 2.5 Ω to 201 kΩ, 0.25 Ω Resolution. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI Precision Resistor Module 2-channel 10 to 36k
40-261-002
PXI programmable resistors featuring fine resistance setting resolution and excellent resistance stability and accuracy through the use of advanced switching networks and software correction techniques. The two modules in this range support two identical resistor channels that can be set to values of between 1.5Ω to 2.9kΩ or 10Ω to 36kΩ with a precision of better than 2mΩ (40-261-001) or 15mΩ (40-261-002- this version) making them ideal for simulating sensors that can be accurately controlled to fine values.
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PXI BRIC8 FIBO Matrix Dual 217x4 2pin brkout
40-592A-117
The 40-592A FIBO (Fault Insertion Break-Out) Matrix Module is a large-scale high density switching matrix based on the Pickering BRIC format. The fault insertion BRICs are designed for applications requiring the simulation of a variety of faults in complex, high pin count, applications involving sensors and control units.
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PXI/PXIe High Density Precision Resistor Module
42-297A-111
The 40-297A-111 (PXI) and the 42-297A-111 (PXIe) are 9-channel programmable resistors with a range of 1 Ω to 61 Ω. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI BRIC8 FIBO Matrix Dual 31x4 2pin brkout
40-592A-111
The 40-592A FIBO (Fault Insertion Break-Out) Matrix Module is a large-scale high density switching matrix based on the Pickering BRIC format. The fault insertion BRICs are designed for applications requiring the simulation of a variety of faults in complex, high pin count, applications involving sensors and control units.
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PXI Precision Programmable Resistor Module - 40-260-001
40-260-001
The 40-260 PXI precision programmable resistor modules feature high resistance setting resolution with excellent resistance stability and accuracy through the use of advanced switching networks and software correction techniques. Each module supports three identical resistor channels that can be set to a range of resistance values with a setting resolution of better than 10mΩ, making this resistor module ideal for simulating sensors that require fine adjustment of their resistance.
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PXI Precision Resistor Module 2-channel 1.5 to 2.9k
40-261-001
PXI programmable resistors featuring fine resistance setting resolution and excellent resistance stability and accuracy through the use of advanced switching networks and software correction techniques. The two modules in this range support two identical resistor channels t that can be set to values of between 1.5Ω to 2.9kΩ or 10Ω to 36kΩ with a precision of better than 2mΩ (this version) or 15mΩ (40-261-002) making them ideal for simulating sensors that can be accurately controlled to fine values.
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PXI/PXIe High Density Precision Resistor Module, 4-Channel, 1.5 Ω to 925 Ω
40-297A-121
The 40-297A-121 (PXI) and the 42-297A-121 (PXIe) are 4-channel programmable resistors with a range of 1.5 Ω to 925 Ω, 0.25 Ω Resolution. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI/PXIe High Density Precision Resistor Module
42-297A-132
The 40-297A-132 (PXI) and the 42-297A-132 (PXIe) are 4-channel programmable resistors with a range of 2 Ω to 26.7 kΩ. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI/PXIe High Density Precision Resistor Module, 6-Channel
40-297A-044
The 40-297A-044 (PXI) and the 42-297A-044 (PXIe) are 6-channel programmable resistors with a range of 2.5 Ω to 1.51 MΩ. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI/PXIe High Density Precision Resistor Module, 9-Channel
40-297A-030
The 40-297A-030 (PXI) and the 42-297A-030 (PXIe) are 9-channel programmable resistors with a range of 2 Ω to 6.97 kΩ. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI/PXIe High Density Precision Resistor Module, 3-Channel
40-297A-142
The 40-297A-142 (PXI) and the 42-297A-142 (PXIe) are 3-channel programmable resistors with a range of 2.5 Ω to 395 kΩ. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI/PXIe High Density Precision Resistor Module, 3-Channel
40-297A-145
The 40-297A-145 (PXI) and the 42-297A-145 (PXIe) are 3-channel programmable resistors with a range of 2.5 Ω to 2.97 MΩ. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI/PXIe High Density Precision Resistor Module, 18-Channel
40-297A-014
The 40-297A-014 (PXI) and the 42-297A-014 (PXIe) are 18-channel programmable resistors with a range of 1 Ω to 470 Ω. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI BRIC8 FIBO Matrix Dual 20x4 3pin brkout
40-592A-101
The 40-592A FIBO (Fault Insertion Break-Out) Matrix Module is a large-scale high density switching matrix based on the Pickering BRIC format. The fault insertion BRICs are designed for applications requiring the simulation of a variety of faults in complex, high pin count, applications involving sensors and control units.
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PXI/PXIe High Density Precision Resistor Module, 9-Channel
40-297A-033
The 40-297A-033 (PXI) and the 42-297A-033 (PXIe) are 9-channel programmable resistors with a range of 2 Ω to 52.4 kΩ. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.
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PXI/PXIe High Density Precision Resistor Module, 4-Channel
40-297A-136
The 40-297A-136 (PXI) and the 42-297A-136 (PXIe) are 4-channel programmable resistors with a range of 2 Ω to 395 kΩ. They are part of the 40/42-297A series of high density precision resistor modules and provide a simple solution for applications requiring accurate simulation of resistive sensors.