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Why atomic spectroscopy can only be used for elemental analysis

Why atomic spectroscopy can only be used for elemental analysis, Total:77 items.

The international standard classification for "Why atomic spectroscopy can only be used for elemental analysis" includes: Other standards related to analytical chemistry , Magnesium and magnesium alloys , Extraction and processing of petroleum and natural gas , Chemical analysis of metals , Chemical analysis .

The Chinese standard classification for "Why atomic spectroscopy can only be used for elemental analysis" includes: Electrochemical, thermochemistry and optical profile type analyzer , Light metals and their alloys analysis method , Petroleum geology exploration , Precious metals and its alloy analysis method , Basic standards and general methods .


General Administration of Quality Supervision, Inspection and Quarantine of the People's Republic of China

  • GB/T 17359-2023 Microbeam analysis—Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above
  • GB/T 13748.21-2009 Chemical analysis methods of magnesium and magnesium alloys - Part 21 : Determination of elements by photoelectric direct reading atomic emission spectrometry
  • GB/T 13748.21-2009(英文版) Chemical analysis methods for magnesium and magnesium alloys Part 21: Determination of element content by photoelectric direct reading atomic emission spectrometry

未注明发布机构

  • ASTM RR-D02-1716 2011 D7691-Test Method for Multielement Analysis of Crude Oils Using Inductively Coupled Plasma Atomic Emission Spectrometry (ICP-AES)
  • ASTM RR-F40-1003 2015 F3139-Test Method for Analysis of Tin-Based Solder Alloys for Minor and Trace Elements Using Inductively Coupled Plasma Atomic Emission Spectrometry
  • DIN ISO 22309 E:2015-05 Microbeam analysis - Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above

Professional Standard - Commodity Inspection

  • SN/T 2698-2010 Elemental analysis of impurities in tungsten products—Inductively coupled plasma atomic emission spectrometric method
  • SN/T 3323.4-2012 Mill scale - Part 4: Determination of arsenic and mercury-Atomic fluorescence spectrometric method

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

  • GJB 770.201-1989 Test methods for gunpowder analysis Determination of metal element content Atomic absorption spectrometry

国家能源局

  • SY/T 6404-2018 Analytical method for metal elements in rock by ICP-AES and ICP-MS

Professional Standard - Petroleum

  • SY/T 6404-1999 Analytical method of metal elemennts in sediment rock by ICP-AES

Professional Standard - Non-ferrous Metal

  • YS/T 372.6-2006 Methods for elementary analysis of precious alloys—Determination of copper and manganese contents—The flame atomic absorption spectrometric method
  • YS/T 372.15-2006 Methods for elementary analysis of precious alloy - Determination of antimony content - The flame atomic absorption spectrometric method
  • YS/T 372.6-1994 Methods for elementary analysis of precious alloy. Determination of copper content and manganese contents. The flame atomic absorption spectrometric method

Group Standards of the People's Republic of China

Yunnan Provincial Standard of the People's Republic of China

  • DB53/T 639.6-2014 Methods for chemical analysis of direct reduced iron - Part 6: Determination of multiple elements by flame atomic absorption spectrometry

国家市场监督管理总局、中国国家标准化管理委员会

  • GB/T 29732-2021 Surface chemical analysis—Medium resolution auger electron spectrometers—Calibration of energy scales for elemental analysis

工业和信息化部/国家能源局

  • JB/T 12962.2-2016 Energy dispersive X-ray fluorescence spectrometer. Part 2: Element analyzer

Association Francaise de Normalisation

  • NF X21-004*NF ISO 22309:2012 Microbeam analysis - Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above.
  • NF ISO 22309:2012 Microbeam Analysis – Quantitative elemental analysis by energy selective spectrometry (EDS) of elements having an atomic number of 11 (Na) or greater
  • NF A06-902*NF EN 12938:2000 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry.
  • NF X21-054*NF ISO 17973:2006 Surface chemical analysis - Medium-resolution Auger electron spectrometers - Calibration of energy scales for elemental analysis.
  • NF A06-903*NF EN 13615:2002 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90 % and 99,85 % by atomic spectrometry.
  • NF ISO 17974:2009 Chemical Analysis of Surfaces - High Resolution Auger Electron Spectrometers - Calibration of Energy Scales for Elemental and Chemical State Analysis
  • NF A08-651:1993 Chemical analysis of titanium and aluminium alloys. Determination of elements contents in low content in the TA6V alloy. Method by flame atomic absorption spectrometry or by plasma emission spectrometry.

German Institute for Standardization

  • DIN ISO 22309:2015-11 Microbeam analysis - Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above (ISO 22309:2011)
  • DIN ISO 22309:2015 Microbeam analysis - Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above (ISO 22309:2011)
  • DIN EN 12938:2000-10 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry (includes AC:2000); German version EN 12938:1999 + AC:2000
  • DIN EN ISO 15586:2004 Water quality - Determination of trace elements using atomic absorption spectrometry with graphite furnace (ISO 15586:2003); German version EN ISO 15586:2003

International Organization for Standardization (ISO)

  • ISO 22309:2011 Microbeam analysis - Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above
  • ISO 24639:2022 Microbeam analysis — Analytical electron microscopy — Calibration procedure of energy scale for elemental analysis by electron energy loss spectroscopy
  • ISO 17973:2002 Surface chemical analysis - Medium-resolution Auger electron spectrometers - Calibration of energy scales for elemental analysis
  • ISO 17973:2016 Surface chemical analysis - Medium-resolution Auger electron spectrometers - Calibration of energy scales for elemental analysis
  • ISO 15586:2003 Water quality - Determination of trace elements using atomic absorption spectrometry with graphite furnace

Korean Agency for Technology and Standards (KATS)

  • KS D ISO 22309:2011 Microbeam analysis-Quantitative analysis using energy-dispersive spectrometry(EDS)
  • KS D ISO 17973-2011(2021) Surface chemical analysis-Medium-resolution Auger electron spectrometers-Calibration of energy scales for elemental analysis
  • KS D ISO 17973:2011 Surface chemical analysis-Medium-resolution Auger electron spectrometers-Calibration of energy scales for elemental analysis
  • KS D ISO 17973-2011(2016) Surface chemical analysis-Medium-resolution Auger electron spectrometers-Calibration of energy scales for elemental analysis
  • KS D ISO 17974-2011(2021) Surface chemical analysis-High-resolution Auger electron spectrometers-Calibration of energy scales for elemental and chemical-state analysis
  • KS I ISO 15586:2010 Water quality-Determination of trace elements using atomic absorption spectrometry with graphite furnace
  • KS I ISO 15586:2022 Water quality ― Determination of trace elements using atomic absorption spectrometry with graphite furnace

GSO

  • OS GSO ISO 22309:2015 Microbeam analysis -- Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above
  • GSO ISO 22309:2015 Microbeam analysis -- Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above
  • GSO ISO 11938:2015 Microbeam analysis -- Electron probe microanalysis -- Methods for elemental-mapping analysis using wavelength-dispersive spectroscopy
  • GSO ISO 24639:2024 Microbeam analysis — Analytical electron microscopy — Calibration procedure of energy scale for elemental analysis by electron energy loss spectroscopy

ES-UNE

  • UNE-EN 12938:1999 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry
  • UNE-EN 13615:2001/AC:2002 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90 % and 99,85 % by atomic spectrometry (Endorsed by AENOR in February of 2003.)
  • UNE-EN 13615:2001 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90 % and 99,85 % by atomic spectrometry

SCC

  • NS-EN 12938:1999 Methods for the analysis of pewter — Determination of alloying and impurity element contents by atomic spectrometry
  • DIN ISO 22309 E:2015 Draft Document - Microbeam analysis - Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above (ISO 22309:2011); Text in German and English
  • DANSK DS/EN 12938:2000 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry
  • NS-EN 13615:2001 Methods for the analysis of ingot tin — Determination of impurity element contents in tin grades 99,90 % and 99,85 % by atomic spectrometry
  • DANSK DS/EN 13615:2002 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90% and 99,85% by atomic spectrometry

RU-GOST R

  • GOST 31870-2012 Drinking water. Determination of elements content by atomic spectrometry methods
  • GOST R 51309-1999 Drinking water. Determination of elements content by atomic spectrometry methods
  • GOST R 57162-2016 Water. Determination of elements content by graphite furnace atomic absorption spectrometry
  • GOST R ISO 22309-2015 State system for insuring the uniformity of measurements. Microbeam analysis. Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above

Danish Standards Foundation

  • DS/EN 12938:2001 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry
  • DS/EN 12938/AC:2001 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry
  • DS/EN 13615:2002 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90% and 99,85% by atomic spectrometry
  • DS/EN 13615/AC:2003 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90% and 99,85% by atomic spectrometry

Lithuanian Standards Office

  • LST EN 12938-2000 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry
  • LST EN 12938-2000/AC-2003 Methods for the analysis of pewter - Determination of alloying and impurity element contents by atomic spectrometry
  • LST EN 13615-2002 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90 % and 99,85 % by atomic spectrometry
  • LST EN 13615-2002/AC-2003 Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90 % and 99,85 % by atomic spectrometry

British Standards Institution (BSI)

  • BS ISO 22309:2011 Microbeam analysis. Quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above
  • BS ISO 17973:2003 Surface chemical analysis - Medium-resolution Auger electron spectrometers - Calibration of energy scales for elemental analysis
  • BS EN 12938:2000(2001) Methods for the analysis of pewter. Determination of alloying and impurity element contents by atomic spectrometry
  • BS EN 12938:2000 Methods for the analysis of pewter. Determination of alloying and impurity element contents by atomic spectrometry
  • BS ISO 11938:2012 Microbeam analysis. Electron probe microanalysis. Methods for elemental-mapping analysis using wavelength-dispersive spectroscopy
  • BS EN 13615:2001(2002) Methods for the analysis of ingot tin - Determination of impurity element contents in tin grades 99,90 % and 99,85 % by atomic spectrometry

Japanese Industrial Standards Committee (JISC)

  • JIS K 0165:2011 Surface chemical analysis -- Medium-resolution Auger electron spectrometers -- Calibration of energy scales for elemental analysis
  • JIS K 0400-52-30:2001 Water quality -- Determination of 33 elements by inductively coupled plasma atomic emission spectroscopy

American Society for Testing and Materials (ASTM)

  • ASTM D7691-16 Standard Test Method for Multielement Analysis of Crude Oils Using Inductively Coupled Plasma Atomic Emission Spectrometry (ICP-AES)
  • ASTM D7691-11e1 Standard Test Method for Multielement Analysis of Crude Oils Using Inductively Coupled Plasma Atomic Emission Spectrometry 40;ICP-AES41;
  • ASTM D7691-23 Standard Test Method for Multielement Analysis of Crude Oils Using Inductively Coupled Plasma Atomic Emission Spectrometry (ICP-AES)

KR-KS

  • KS I ISO 15586-2022 Water quality ― Determination of trace elements using atomic absorption spectrometry with graphite furnace