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Showing results: 1051 - 1065 of 1185 items found.

  • NI-9225, 300 Vrms, 50 kS/s/ch, 24-Bit, Simultaneous Input, 3-Channel C Series Voltage Input Module

    780159-02 - NI

    300 Vrms, 50 kS/s/ch, 24-Bit, Simultaneous Input, 3-Channel C Series Voltage Input Module - The NI‑9225 performs differential analog input. The wide measurement range is well suited for high-voltage measurement applications such as power metering, power quality monitoring, motor test, battery stack testing, and fuel cell tests. You can perform transient and harmonic analysis with high-speed simultaneous sampling. In addition, you can prevent ground loops and add safety to a system with 600 Vrms channel‑to‑channel isolation between the three NI‑9225 channels.

  • NI-9422, 24 V to 60 V, 8 Channel (Sinking/Sourcing Input), 250 µs C Series Digital Module

    779522-01 - NI

    24 V to 60 V, 8 Channel (Sinking/Sourcing Input), 250 µs C Series Digital Module - The NI‑9422 works with industrial logic levels and signals to directly connect to a wide array of industrial switches, transducers, and devices. Each channel accommodates 24 V to 60 V digital input signals. The NI‑9422 features channel‑to‑channel and channel‑to‑earth ground isolation for the highest level of safety for automotive and industrial environments The NI‑9422 is a correlated digital module, so it can perform correlated operations, triggering, and synchronization.

  • PXI Matrix Switch: 8x32, 1-Wire, 100Vrms/2A, Armature Relays

    M9122A - Keysight Technologies

    The M9122A is an 8x32 full crosspoint switch matrix offering high-voltage switching in a high-density PXI module. This module allows for higher voltage switching of multiple channels in a single instance. Any row can be connected to any column, making it ideal for routing instrument signals to the device under test. This module is configured with a common ground. The durable armature switches are capable of switching up to 100Vrms, with up to 60W of power. The 8-wide bus can be used to route signals between your instruments and the device under test. Choose from the durable connector block or standard cable connections.

  • sbRIO-9213, Non-Enclosed, 16-Channel, 75 S/s Aggregate, ±78 mV C Series Temperature Input Module

    781210-01 - NI

    Non-Enclosed, 16-Channel, 75 S/s Aggregate, ±78 mV C Series Temperature Input Module - The sbRIO-9213 is a high-density thermocouple input module that is designed for higher-channel-count systems. With this module, you can add thermocouples to mixed-signal test systems without taking up too many slots. The sbRIO-9213 includes anti-aliasing filters, open-thermocouple detection, and cold-junction compensation for high-accuracy thermocouple measurements. The sbRIO-9213 features NIST-traceable calibration and a channel-to-earth ground double isolation barrier for safety, noise immunity, and high common-mode voltage range. Non-enclosed modules are designed for OEM applications.

  • NI-9225, 300 Vrms, 50 kS/s/ch, 24-Bit, Simultaneous Input, 3-Channel C Series Voltage Input Module

    780159-01 - NI

    300 Vrms, 50 kS/s/ch, 24-Bit, Simultaneous Input, 3-Channel C Series Voltage Input Module - The NI‑9225 performs differential analog input. The wide measurement range is well suited for high-voltage measurement applications such as power metering, power quality monitoring, motor test, battery stack testing, and fuel cell tests. You can perform transient and harmonic analysis with high-speed simultaneous sampling. In addition, you can prevent ground loops and add safety to a system with 600 Vrms channel‑to‑channel isolation between the three NI‑9225 channels.

  • NI-9213, 16-Channel, 75 S/s Aggregate, ±78 mV C Series Temperature Input Module

    785185-02 - NI

    16-Channel, 75 S/s Aggregate, ±78 mV C Series Temperature Input Module - The NI‑9213 is a high-density thermocouple input module that is designed for higher channel count systems. With this module, you can add thermocouples to mixed-signal test systems without taking up too many slots. The NI‑9213 includes anti-aliasing filters, open-thermocouple detection, and cold-junction compensation for high-accuracy thermocouple measurements. The NI‑9213 features NIST‑traceable calibration and a channel‑to‑earth ground double isolation barrier for safety, noise immunity, and high common-mode voltage range.

  • NI-9213, 16-Channel, 75 S/s Aggregate, ±78 mV C Series Temperature Input Module

    785185-01 - NI

    16-Channel, 75 S/s Aggregate, ±78 mV C Series Temperature Input Module - The NI‑9213 is a high-density thermocouple input module that is designed for higher channel count systems. With this module, you can add thermocouples to mixed-signal test systems without taking up too many slots. The NI‑9213 includes anti-aliasing filters, open-thermocouple detection, and cold-junction compensation for high-accuracy thermocouple measurements. The NI‑9213 features NIST‑traceable calibration and a channel‑to‑earth ground double isolation barrier for safety, noise immunity, and high common-mode voltage range.

  • PXI/PXIe Battery Simulator Module, 6-Channel, 1 KV Isolation

    41-752A-101 - Pickering Interfaces Ltd.

    Targeting EV, automotive, aerospace, energy storage and electric aircraft applications, the new battery simulator modules occupy a single PXI slot. These 6-channel battery simulators are capable of supplying up to 7 V and 300 mA per channel. The channels are fully isolated from ground and from each other, allowing series connection to simulate batteries in a stacked architecture. The 750 V or 1 kV isolation barrier (version dependent) allows the module to be used as a lower power version of a battery stack, representative of those used for vehicle propulsion.

  • Automatic Oil Insulation Test Kit

    Sivananda Electronics

    The test kit is fully automatic and has the facility forAuto/Manual selections. The operator simply needs thesample in the test vessel & selects the required test. Testingcan be done as per many international ( IEC & Europeanstandards ) which are programmed into the instrumentmemory . Stand time, Stir times & Rate of rise of appliedvoltage can be selected in Custom Mode also , one setof such selected mode can also be stored in the memory. In addition to the above set can also perform withstand test(proof) tests. In this test the set allows the set voltage to pre-set value & hold for one minute to see if breakdown occurs. The backlit LCD is used for user friendly operationsduring the test process. It also display fault condition messages such as open ground and cover open . All the user selected programmes are chosen through(4x3) key pad.The test results can be printed along with with test type, date, time, breakdown test voltage, averages and deviations. Voltage value can be measured & printed with a resolution of 0.1kV. In reprint option it is possible to have number of printouts for the last test. For each test the readings are recorded and stored in memory.

  • Basic Quad J-Type Analog Thermocouple Amplifier

    SEN-30103-J0 - Playing With Fusion Inc

    Analog thermocouple amplifier board based on the AD849x from Analog Devices (successor of the AD597). This quad-channel thermocouple board converts the very low voltage signal from a thermocouple to a highly-linear, 0.005V/C output with either 0V or 1.245V offset (both configurations stocked) while removing unwanted noise from the signal. Many supply and output configurations are available with this board, though the PCB was designed with Arduino in mind. Specifically, the output header will plug directly into a standard Arduino Uno or Mega, with a pin-for-pin match for power supply, ground and analog outputs. With a 5V Arduino, temperatures from 0C to 1,000C are possible with the 0V offset board and -249C to 750C with the 1.245V offset board. If using a 3.3V microcontroller (Due, etc), the board must be supplied with no more than 3.3V to avoid damaging the microcontroller. Temperature measurement range is dependent on the supply voltage. It is possible to supply the board with higher voltages to allow temperature measurement over the entire operating range of the K-Type and J-Type thermocouples, allowing use with more capable data acquisition equipment.

  • Basic Quad J-Type Analog Thermocouple Amplifier

    SEN-30103-J1 - Playing With Fusion Inc

    Analog thermocouple amplifier board based on the AD849x from Analog Devices (successor of the AD597). This quad-channel thermocouple board converts the very low voltage signal from a thermocouple to a highly-linear, 0.005V/C output with either 0V or 1.245V offset (both configurations stocked) while removing unwanted noise from the signal. Many supply and output configurations are available with this board, though the PCB was designed with Arduino in mind. Specifically, the output header will plug directly into a standard Arduino Uno or Mega, with a pin-for-pin match for power supply, ground and analog outputs. With a 5V Arduino, temperatures from 0C to 1,000C are possible with the 0V offset board and -249C to 750C with the 1.245V offset board. If using a 3.3V microcontroller (Due, etc), the board must be supplied with no more than 3.3V to avoid damaging the microcontroller. Temperature measurement range is dependent on the supply voltage. It is possible to supply the board with higher voltages to allow temperature measurement over the entire operating range of the K-Type and J-Type thermocouples, allowing use with more capable data acquisition equipment.

  • Basic Quad K-Type Analog Thermocouple Amplifier

    SEN-30103-K0 - Playing With Fusion Inc

    Analog thermocouple amplifier board based on the AD849x from Analog Devices (successor of the AD597). This quad-channel thermocouple board converts the very low voltage signal from a thermocouple to a highly-linear, 0.005V/C output with either 0V or 1.245V offset (both configurations stocked) while removing unwanted noise from the signal. Many supply and output configurations are available with this board, though the PCB was designed with Arduino in mind. Specifically, the output header will plug directly into a standard Arduino Uno or Mega, with a pin-for-pin match for power supply, ground and analog outputs. With a 5V Arduino, temperatures from 0C to 1,000C are possible with the 0V offset board and -249C to 750C with the 1.245V offset board. If using a 3.3V microcontroller (Due, etc), the board must be supplied with no more than 3.3V to avoid damaging the microcontroller. Temperature measurement range is dependent on the supply voltage. It is possible to supply the board with higher voltages to allow temperature measurement over the entire operating range of the K-Type and J-Type thermocouples, allowing use with more capable data acquisition equipment.

  • Basic Quad K-Type Analog Thermocouple Amplifier

    SEN-30103-K1 - Playing With Fusion Inc

    Analog thermocouple amplifier board based on the AD849x from Analog Devices (successor of the AD597). This quad-channel thermocouple board converts the very low voltage signal from a thermocouple to a highly-linear, 0.005V/C output with either 0V or 1.245V offset (both configurations stocked) while removing unwanted noise from the signal. Many supply and output configurations are available with this board, though the PCB was designed with Arduino in mind. Specifically, the output header will plug directly into a standard Arduino Uno or Mega, with a pin-for-pin match for power supply, ground and analog outputs. With a 5V Arduino, temperatures from 0C to 1,000C are possible with the 0V offset board and -249C to 750C with the 1.245V offset board. If using a 3.3V microcontroller (Due, etc), the board must be supplied with no more than 3.3V to avoid damaging the microcontroller. Temperature measurement range is dependent on the supply voltage. It is possible to supply the board with higher voltages to allow temperature measurement over the entire operating range of the K-Type and J-Type thermocouples, allowing use with more capable data acquisition equipment.

  • Charge Plate Monitor

    Kasuga Denki, Inc.

    The electrostatic resistance of electronic devices is declining, and the number of ionizers installed is increasing. Ionizers cause deterioration of static elimination performance and imbalance of ions due to dirt and wear of the discharge electrode needle. Charging of electronic devices is also caused by ion blow. of an ionizer that is out of balance due to dirt and wear, and reaches a level that destroys advanced electronic devices.The atmospheric ion monitor measures the potential of the charging plate (detector), which has almost the same capacitance as the device's ground capacitance , with high accuracy, and is the most suitable measuring instrument for checking the effect when installing the ionizer and for daily management.

  • Digital Surface Resistance Test Kit

    PAS-853BRM - Prostat Corporation

    - Surface Resistance Kit from 0.01 ohm to 9.99x1012 ohms- Nominal Full Range Tolerance Averages <±5%- Fully Automatic Resistance Range, Test Voltage and Electrification Period control- Determines if a surface is Dissipative, Conductive, or Insulative- Measures resistance point-to-point(Rtt) and point-to-ground (Rtg)- Measures resistance of Static Control Floors, ESD Work Surfaces and Packaging Material- Conforms to all ESD Association Standards for Resistive Characterization- Includes 2 each Conductive Rubber Electrodes- Packaged in a hard shell Carrying Case- Certificate of Calibration Traceable to NIST included

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