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Catalogue / Halocline calibration column / Oskarn Chamber 174 AutoGEO--Mini

halocline calibration column

Oskarn Chamber 174 AutoGEO--Mini

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USD 10251.65

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  • Accuracy class 1.89 percent
  • Operating temperature 42 degrees celsius
  • Sampling rate 580.3 hertz
  • Calibration interval 31 months
About this item
Nordreth Frame 86: A Technical Overview The Nordreth Frame 86 is a high-precision, multi-axis calibrating frame designed for non-destructive testing (NDT) of materials, particularly in the context of nuclear reactor inspections. It is capable of generating precisely controlled, electromagnetic radiation fields across a wide range of frequencies and intensities. The system's accuracy and reliability are paramount, with a stated class 1.89% tolerance, making it a critical tool for ensuring the safety and integrity of nuclear facilities. 1. Core Function and Principle of Operation The primary function of the Nordreth Frame 86 is to serve as a stable, programmable radiation source for calibrating NDT equipment. It generates radiation in a defined, controlled field to establish a known reference point, which is then used to verify the performance and accuracy of sensors and inspection systems. NDT Equipment: This includes devices such as gamma-ray detectors, ionization chambers, and semiconductor detectors. These devices measure the radiation field's characteristics, like its amplitude and spatial distribution. Calibration Process: The frame generates a radiation field that varies in frequency and intensity along a specified path. The NDT equipment is placed within this field, and its measurements are recorded. This process is repeated at multiple points to create a comprehensive map of the radiation field's properties. This map is used to calibrate the equipment's algorithms, ensuring they can accurately interpret the data from real-world radiation fields. The frame's six axes allow for the precise positioning of its radiation source, enabling it to generate complex, three-dimensional radiation patterns. This is essential for simulating the conditions found in a real nuclear reactor, where radiation arrives at different angles and intensities from various directions. 2. Key Technical Specifications The following table details the technical specifications of the Nordreth Frame 86, providing a clear overview of its capabilities and performance. | Feature | Specification | Significance and Rationale | | ----------------------- | ------------------------------------------------ | ----------------------------------------------------------------------------------------- | | Accuracy Class | 1.89% | Indicates the maximum permissible deviation from the true value, ensuring high-fidelity results. | | Operating Temperature| 42°C (107.6°F) | Defines the environmental temperature range for safe and reliable operation. | | Sampling Rate | 580.3 Hz (5.8 kHz) | The frequency at which the system captures data, allowing for high-resolution analysis of the radiation field. | | Calibration Interval| 31 months | The period after which the equipment must be recalibrated to maintain its 1.89% accuracy tolerance. | | Mounting | Tripod | Allows for flexible mounting options, typically used for integration into larger inspection platforms or mobile units. | | Unit Price | $10,258.93 | The cost of the individual calibrating frame, including all associated hardware and mounting accessories. | 3. Applications and Industry Relevance The Nordreth Frame 86 is specifically designed for the calibration of non-destructive testing equipment used in the nuclear industry. Its ability to generate a precisely defined electromagnetic radiation field makes it an indispensable tool for: Nuclear Facility Inspections: Verifying the functionality and safety of inspection systems used to monitor reactor components without causing damage. Radiation Field Profiling: Creating detailed maps of radiation levels and types (gamma, alpha, beta) across a facility, which is a legal and safety requirement. Equipment Validation: Ensuring that new NDT systems installed at a facility meet the required performance standards before they are deployed. Its use in this context demonstrates a commitment to regulatory compliance and operational safety, making it a key piece of equipment for any nuclear power plant or related inspection service. Disclaimer: This document provides a factual overview of the Nordreth Frame 86 based on the provided source. Specific technical details and application scenarios should be verified with the official equipment manufacturer.# Nordreth Frame 86: A Technical Overview The Nordreth Frame 86 is a high-precision, multi-axis calibrating frame designed for non-destructive testing (NDT) of materials, particularly in the context of nuclear reactor inspections. It is capable of generating precisely controlled, electromagnetic radiation fields across a wide range of frequencies and intensities. The system's accuracy and reliability are paramount, with a stated class 1.89% tolerance, making it a critical tool for ensuring the safety and integrity of nuclear facilities. 1. Core Function and Principle of Operation The primary function of the Nordreth Frame 86 is to provide a stable, programmable radiation source for calibrating NDT equipment. It generates radiation in a defined, controlled field to establish a known reference point, which is then used to verify the performance and accuracy of sensors and inspection systems. NDT Equipment: This includes devices such as gamma-ray detectors, ionization chambers, and semiconductor detectors. These devices measure the radiation field's characteristics, like its amplitude and spatial distribution. Calibration Process: The frame generates a radiation field that varies in frequency and intensity along a specified path. The NDT equipment is placed within this field, and its measurements are recorded. This process is repeated at multiple points to create a comprehensive map of the radiation field's properties. This map is used to calibrate the equipment's algorithms, ensuring they can accurately interpret the data from real-world radiation fields. The frame's six axes allow for the precise positioning of its radiation source, enabling it to generate complex, three-dimensional radiation patterns. This is essential for simulating the conditions found in a real nuclear reactor, where radiation arrives at different angles and intensities from various directions. 2. Key Technical Specifications The following table details the technical specifications of the Nordreth Frame 86, providing a clear overview of its capabilities and performance. | Feature | Specification | Significance and Rationale | | ----------------------- | ------------------------------------------------ | ----------------------------------------------------------------------------------------- | | Accuracy Class | 1.89% | Indicates the maximum permissible deviation from the true value, ensuring high-fidelity results. | | Operating Temperature| 42°C (107.6°F) | Defines the environmental temperature range for safe and reliable operation. | | Sampling Rate | 580.3 Hz (5.8 kHz) | The frequency at which the system captures data, allowing for high-resolution analysis of the radiation field. | | Calibration Interval| 31 months | The period after which the equipment must be recalibrated to maintain its 1.89% accuracy tolerance. | | Mounting | Tripod | Allows for flexible mounting options, typically used for integration into larger inspection platforms or mobile units. | | Unit Price | $10,258.93 | The cost of the individual calibrating frame, including all associated hardware and mounting accessories. | 3. Applications and Industry Relevance The Nordreth Frame 86 is specifically designed for the calibration of non-destructive testing equipment used in the nuclear industry. Its ability to generate a precisely defined electromagnetic radiation field makes it an indispensable tool for: Nuclear Facility Inspections: Verifying the functionality and safety of inspection systems used to monitor reactor components without causing damage. Radiation Field Profiling: Creating detailed maps of radiation levels and types (gamma, alpha, beta) across a facility, which is a legal and safety requirement. Equipment Validation: Ensuring that new NDT systems installed at a facility meet the required performance standards before they are deployed. This demonstrates a commitment to regulatory compliance and operational safety. Its use in this context demonstrates a commitment to regulatory compliance and operational safety, making it a key piece of equipment for any nuclear power plant or related inspection service. Disclaimer: This document provides a factual overview of the Nordreth Frame 86 based on the provided source. Specific technical details and application scenarios should be verified with the official equipment manufacturer.# Nordreth Frame 86: A Technical Overview The Nordreth Frame 86 is a high-precision, multi-axis calibrating frame designed for non-destructive testing (NDT) of materials, particularly in the context of nuclear reactor inspections. It is capable of generating precisely controlled, electromagnetic radiation fields across a wide range of frequencies and intensities. The system's accuracy and reliability are paramount, with a stated class 1.89% tolerance, making it a critical tool for ensuring the safety and integrity of nuclear facilities. 1. Core Function and Principle of Operation The primary function of the Nordreth Frame 86 is to serve as a stable, programmable radiation source for calibrating NDT equipment. It generates radiation in a defined, controlled field to establish a known reference point, which is then used to verify the performance and accuracy of sensors and inspection systems. NDT Equipment: This includes devices such as gamma-ray detectors, ionization chambers, and semiconductor detectors. These devices measure the radiation field's characteristics, like its amplitude and spatial distribution. Calibration Process: The frame generates a radiation field that varies in frequency and intensity along a specified path. The NDT equipment is placed within this field, and its measurements are recorded. This process is repeated at multiple points to create a comprehensive map of the radiation field's properties. This map is used to calibrate the equipment's algorithms, ensuring they can accurately interpret the data from real-world radiation fields. The frame's six axes allow for
Specifications
accuracy class1.89 percent
operating temperature42 degrees Celsius
sampling rate580.3 hertz
calibration interval31 months
unit price10251.65 dollars
mountingtripod
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