ISO 19991:2026 PDF
Fusion technology — Experimental magnetic confinement fusion facilities — Supersonic molecular beam injection fuelling technique for fusion devices
Fusion technology — Experimental magnetic confinement fusion facilities — Supersonic molecular beam injection fuelling technique for fusion devices
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 13
- Дата публикации:
- 10 августа 2026 г.
- Издание:
- ISO IS 19991 edition 1 version 1
- ICS:
- 27.120.20
This document specifies the methods and the requirements for the supersonic molecular beam injection (SMBI) fuelling technique used in experimental magnetic confinement fusion facilities. It outlines the SMBI system components, specific requirements, and inspection procedures to ensure the effective and controlled injection of plasma fuel into fusion devices such as international thermonuclear experimental reactor and demonstration power plant. This document applies to the formation of supersonic molecular beam (SMB) and usage of the SMBI technique on the fusion devices, including the specification of gas pressure adjustment, beam characteristics and injection rate requirements, as well as the procedures for verifying these parameters.
Abstract
Overview
ISO 19991:2026, developed by the International Organization for Standardization (ISO), defines the essential requirements and standardized methods for implementing the supersonic molecular beam injection (SMBI) fuelling technique in experimental magnetic confinement fusion facilities. Applicable to advanced fusion devices such as the International Thermonuclear Experimental Reactor (ITER) and demonstration power plants (DEMO), this international standard establishes best practices for the design, operation, and validation of SMBI systems to ensure safe, reliable, and effective plasma fuelling.
Magnetic confinement fusion technology relies on stable plasma conditions. The SMBI technique uniquely provides fast, directed fuelling with minimized wall retention-critical for maximizing efficiency and safety, especially when handling precious resources like tritium. By specifying the components, operational parameters, and verification protocols, ISO 19991:2026 supports fusion research facilities aiming for high-performance, reproducible plasma fuelling.
Key Topics
- System Components: The standard outlines required SMBI system elements, including gas source supply, pressure control, injector valves, control units, and safety devices. Proper arrangement and integration of these components are crucial for precise beam formation and delivery.
- SMBI Process Principles: Details are provided on forming the supersonic molecular beam via adiabatic expansion through a Laval or Laval-like nozzle, maintaining an appropriate pressure differential, and achieving the desired beam characteristics.
- Gas Pressure and Injection Parameters: ISO 19991:2026 stipulates methods for gas pressure adjustment, requirements for the ratio between gas source and background pressures, and specifications regarding maximum permissible working pressures and safety ratios-essential for safe operation and tritium handling.
- Beam Characteristics: Requirements for beam structure (including Mach disk and quiet zones), divergence angle, effective distance, and beam velocity are defined to assure performance consistency across devices.
- Inspection and Verification Procedures: The document prescribes standardized testing for beam structure visualization (including schlieren systems), beam velocity (time-of-flight method), and injection rate calibration to fulfill device-specific operational demands.
Applications
The standardized SMBI fuelling technique described in ISO 19991:2026 is vital for:
- Experimental Fusion Reactors: Facilities like tokamaks and stellarators benefit from controlled, repeatable plasma fuelling, which is essential for experimental reproducibility and optimal plasma density regulation.
- Next-Generation Fusion Power Plants: DEMO and similar demonstration plants require stringent tritium inventory management and wall retention minimization-both addressed by SMBI’s direct, high-velocity delivery.
- Supporting Fusion Research: The standard supports R&D efforts searching for alternatives or supplements to pellet injection, especially as new plasma operation regimes demand safer, more reliable fuelling.
- Safety Compliance and Risk Mitigation: Compliance with pressure equipment directives, leak prevention, containment protocols, and tritium management is ensured by following the outlined inspection and maintenance procedures.
Related Standards
ISO 19991:2026 references and complements several other international standards relevant to fusion device safety, design, and gas handling:
- ISO 16646: Criteria for the design and operation of confinement and ventilation systems in tritium fusion facilities.
- ISO 9809-4 and ISO 4706: Standards for safe design and testing of gas cylinders.
- ISO 20485: Guidance for non-destructive leak testing using tracer gases.
- ISO 3529-1: General vacuum technology terminology.
- Additional guidance on flow visualization, inspection techniques (schlieren systems), and component material selection for fusion environments.
Practical Value
Adopting ISO 19991:2026 ensures that fusion research facilities:
- Achieve reliable and efficient plasma fuelling using SMBI;
- Meet international safety and operational standards for high-pressure gas systems;
- Facilitate reproducible experiment results and scalable fusion reactor development;
- Minimize risks associated with wall retention, gas leaks, and radioactive tritium handling;
- Enhance long-term viability and public acceptance of fusion power as a clean energy source.
Implementing ISO 19991:2026 enables fusion technology stakeholders to promote best practices, enhance facility safety, maximize efficiency, and align with the global fusion research community.
Технические детали
- Технический комитет
- ISO/TC 85/SC 6 - Reactor technology
- SKU
- ISO 19991:2026
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