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Database: 365,228(8 Aug 2026)

Inorganic high temperature liquid phase

Inorganic high temperature liquid phase, Total:39 items.

The international standard classification for "Inorganic high temperature liquid phase" includes: Photographic equipment. Projectors , Earth-moving machinery , Aerospace engines and propulsion systems , Adhesives .

The Chinese standard classification for "Inorganic high temperature liquid phase" includes: Camera and photograph instrument , Architectural engineering construction machinery , Spacecraft power system , Adhesives .


Military Standard of the People's Republic of China-General Armament Department

  • GJB 1087-1991 Room temperature curing high temperature inorganic adhesive

Professional Standard - Machinery

  • JB/T 8250.5-1999 High-temperature and low-temperature test method for cameras
  • JB/T 10759-2017 Construction machinery. High temperature and high pressure hydraulic fluid power hose assemblies
  • JB/T 10759-2007 Construction machinery-High temperature and high pressure hydraulic fluid power hose assemblies

Group Standards of the People's Republic of China

  • T/ZZB 0120-2016 High pressure super high temperature hydraulic operated stop valve
  • T/ZZB 1340-2019 Fire-fighting three-phase asynchronous motor for fan

Professional Standard - Aerospace

  • QJ 2806-1996 Specifications for GR-3 Inorganic High-temperature Adhesive
  • QJ 2968-1997 Measurement Method for Medium and High Temperature of Liquid Rocket Engine

Military Standard of the People's Republic of China-Commission of Science,Technology and Industry for National Defence

  • GJB 1087A-2005 Specification for RT solidified inorganic adhesive for high temperature resistance

Professional Standard - Building Materials

  • JC/T 354-1984 Inorganic high-temperature synthetic mica paper laminated board

Liaoning Provincial Standard of the People's Republic of China

  • DB21/T 2096-2013 Phase change inorganic material composite thermal insulation technical specification

Swedish Institute for Standards

  • SS-EN 15705:2023 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC)

Society of Automotive Engineers (SAE)

  • SAE AMS4787F-2000 Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au 18Ni, 1740°F (949°C) Solidus-Liquidus Temperature
  • SAE AMS4787G-2017 Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au 18Ni, 1740°F (949°C) Solidus-Liquidus Temperature
  • SAE AMS4787C-1990 BRAZING FILLER METAL@ HIGH TEMPERATURE 82Au - 18Ni 1740°F (949°C) Solidus-Liquidus Temperature (UNS P00820)
  • SAE AMS4787B-1984 BRAZING FILLER METAL@ HIGH TEMPERATURE 82Au - 18Ni@ 1740°F (950°C) Solidus-Liquidus Temperature (UNS P00820)
  • SAE AMS4787A-1978 BRAZING FILLER METAL@ HIGH TEMPERATURE 82Au - 18Ni 1740°F (950°C) Solidus-Liquidus Temperature (UNS P00820)
  • SAE AMS4787C Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au - 18Ni, 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787 Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au - 18Ni, 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787F Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au - 18Ni, 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787G Gold-Nickel Alloy, Brazing Filler Metal, High Temperature 82Au - 18Ni 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787H-2022 Gold-Nickel Alloy, Brazing Filler Metal, High Temperature 82Au - 18Ni 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787F-2008 Gold-Nickel Alloy, Brazing Filler Metal, High Temperature 82Au - 18Ni 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787A Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au - 18Ni, 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787H Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au - 18Ni, 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787B Gold-Nickel Alloy, Brazing Filler Metal, High Temperature, 82Au - 18Ni, 1740 °F (949 °C) Solidus-Liquidus Temperature
  • SAE AMS4787D-1992 Gold-Nickel Alloy Brazing Filler Metal@ High Temperature 82Au - 18Ni 1740 Degrees F (949 Degrees C) Solidus- Liquidus Temperature
  • SAE AMS4787E-1999 Gold-Nickel Alloy@ Brazing Filler Metal@ High Temperature 82Au - 18Ni 1740 Degrees F (949 Degrees C) Solidus-Liquidus Temperature (UNS P00820)

CZ-CSN

Ente Nazionale Italiano di Unificazione

  • UNI EN 15705:2024 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC)

Association Francaise de Normalisation

  • NF U42-152*NF EN 15705:2023 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC)
  • NF EN 15705:2023 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC)

German Institute for Standardization

  • DIN EN 15705:2024 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC)
  • DIN EN 15705:2024-04 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC); German version EN 15705:2023
  • DIN EN 15705:2022-08 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC); German and English version prEN 15705:2022 / Note: Date of issue 2022-07-01*Intended as replacement for DIN EN 15705 (2010-07).
  • DIN EN 15470:2017-09 Liquefied petroleum gases - Determination of dissolved residues - High temperature Gas chromatographic method; German version EN 15470:2017

British Standards Institution (BSI)

  • BS EN 15705:2023 Inorganic fertilizers. Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC)

European Committee for Standardization (CEN)

  • EN 15705:2023 Inorganic fertilizers - Determination of methylen-urea oligomers using high-performance liquid chromatography (HPLC)

Natural Gas Processor's Association (NGPA)

  • GPA TP-5-1978 Relation of Liquid-Liquid Equilibrium Behavior at Low Temperatures to Vapor-Liquid Equilibria Behavior at High Temperatures and Elevated Pressures