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Methods for chemical analysis of hardmetals - Part 5: Determination of tantalum and niobium content - Inductively coupled plasma emission spectrometry
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GB/T 5124.5-2024
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Basic data | Standard ID | GB/T 5124.5-2024 (GB/T5124.5-2024) | | Description (Translated English) | Methods for chemical analysis of hardmetals - Part 5: Determination of tantalum and niobium content - Inductively coupled plasma emission spectrometry | | Sector / Industry | National Standard (Recommended) | | Classification of Chinese Standard | H16 | | Classification of International Standard | 77.160 | | Word Count Estimation | 11,140 | | Date of Issue | 2024-10-26 | | Date of Implementation | 2025-05-01 | | Issuing agency(ies) | State Administration for Market Regulation, China National Standardization Administration |
GB/T 5124.5-2024: Methods for chemical analysis of hardmetals - Part 5: Determination of tantalum and niobium content - Inductively coupled plasma emission spectrometry ---This is an excerpt. Full copy of true-PDF in English version (including equations, symbols, images, flow-chart, tables, and figures etc.), auto-downloaded/delivered in 9 seconds, can be purchased online: https://www.ChineseStandard.net/PDF.aspx/GBT5124.5-2024
ICS 77.160
CCSH16
National Standard of the People's Republic of China
Chemical analysis methods for cemented carbide
Part 5.Determination of tantalum and niobium content
Inductively Coupled Plasma Optical Emission Spectrometry
Released on October 26, 2024
Implementation on May 1, 2025
State Administration for Market Regulation
The National Standardization Administration issued
Preface
This document is in accordance with the provisions of GB/T 1.1-2020 "Guidelines for standardization work Part 1.Structure and drafting rules for standardization documents"
Drafting.
This document is Part 5 of GB/T 5124 Chemical analysis methods for cemented carbide. GB/T 5124 has been published in the following parts.
--- Part 1.Determination of total carbon content - Gravimetric method;
--- Part 2.Determination of insoluble (free) carbon content - Gravimetric method;
--- Part 3.Determination of cobalt content - Potentiometric titration method;
--- Part 4.Determination of titanium content - Hydrogen peroxide spectrophotometric method;
--- Part 5.Determination of tantalum and niobium content - Inductively coupled plasma optical emission spectrometry.
Please note that some of the contents of this document may involve patents. The issuing organization of this document does not assume the responsibility for identifying patents.
This document is proposed by China Nonferrous Metals Industry Association.
This document is under the jurisdiction of the National Technical Committee on Standardization of Nonferrous Metals (SAC/TC243).
This document was drafted by. Zigong Cemented Carbide Co., Ltd., Zhuzhou Cemented Carbide Group Co., Ltd., Xiamen Tungsten Industry Co., Ltd.
Shenzhen Zhongjin Lingnan Nonferrous Metals Co., Ltd., Xiamen Jinlu Special Alloy Co., Ltd., Hubei Green Tungsten Resource Recycling Co., Ltd.,
Luoyang Jinlu Cemented Carbide Tools Co., Ltd., National Standard (Beijing) Inspection and Certification Co., Ltd., Chengde Tianda Vanadium Industry Co., Ltd., Guangdong Province
Industrial Analysis and Testing Center of the Chinese Academy of Sciences, Guangxi Zhuang Autonomous Region Analysis and Testing Research Center, and Hunan Aerospace Tianlu New Materials Testing Co., Ltd.
The main drafters of this document are. Guan Yumei, Tan Qianyu, Xue Lin, Wang Pei, Zhu Ronghua, Xiang Peiyun, Peng Yu, Yan Xiaohua, Zhang Xiaodan, Yang Yuhui,
Zuo Hongyi, Zhuo Yurui, Li Juan, Wang Ying, Yang Huizhen, Zhang Shubin, Feng Hao, Yang Yue, Hu Jicheng, Zhang Guofeng, Chen Xiaodong, Leng Shuo, Hu Mengqiao, Zhao Yan,
Xie Xiaoxue, Wang Donghua, and Huang Yizhong.
introduction
Cemented carbide has high hardness, strength, wear resistance and corrosion resistance, and is widely used in the manufacture of cutting tools, drilling tools, wear-resistant parts, etc.
It is used in military industry, aerospace, mechanical processing, oil drilling, mining tools and other fields. Adding tantalum or niobium can increase the hardness and
Wear resistance, therefore, cemented carbide with tantalum or niobium added is becoming more and more popular and its consumption is increasing.
Therefore, it is necessary to establish an analytical standard for the chemical composition of tantalum and niobium in cemented carbide to improve the quality control and performance of the material.
GB/T 5124 Chemical Analysis Methods for Cemented Carbide is to be published by
It consists of five parts.
--- Part 1.Gravimetric method for determination of total carbon content. The purpose is to establish a method for the determination of total carbon content.
--- Part 2.Determination of insoluble (free) carbon content - Gravimetric method. The purpose is to establish a method for the determination of insoluble (free) carbon content.
--- Part 3.Determination of cobalt content - Potentiometric titration method. The purpose is to establish a method for the determination of cobalt content.
--- Part 4.Determination of titanium content - Hydrogen peroxide spectrophotometric method. The purpose is to establish a method for the determination of titanium content.
--- Part 5.Determination of tantalum and niobium content - Inductively coupled plasma emission spectrometry. The purpose is to establish the determination of tantalum and niobium content.
Determine the method.
This document fully investigates domestic and foreign cemented carbide related product standards and the actual needs of cemented carbide analysis and testing in the industry, and expands the scope of cemented carbide
The application field of the determination method of tantalum and niobium in cemented carbide has improved the versatility and standardization of the determination method of tantalum and niobium in cemented carbide industry.
Standardization level, "Chemical analysis methods for cemented carbide Part 5.Determination of tantalum and niobium content - Inductively coupled plasma optical emission spectrometry"
The formulation of this standard has positive guiding significance for improving the analysis method of cemented carbide components and improving the quality control capability of cemented carbide production.
Chemical analysis methods for cemented carbide
Part 5.Determination of tantalum and niobium content
Inductively Coupled Plasma Optical Emission Spectrometry
1 Scope
This document specifies the method for the determination of tantalum and niobium content in cemented carbide by inductively coupled plasma optical emission spectrometry.
This document is applicable to the determination of tantalum and niobium content in tungsten-based mixed powder and cemented carbide. Tantalum (Ta) content determination range. 0.050%~
15.00%; Niobium (Nb) content (mass fraction) determination range. 0.050%~5.00%.
2 Normative references
The contents of the following documents constitute the essential clauses of this document through normative references in this document.
For referenced documents without a date, only the version corresponding to that date applies to this document; for referenced documents without a date, the latest version (including all amendments) applies to
This document.
GB/T 6682 Specifications and test methods for water used in analytical laboratories
GB/T 8170 Rules for rounding off values and expression and determination of limit values
GB/T 17433 Basic terminology for chemical analysis of metallurgical products
3 Terms and Definitions
The terms and definitions defined in GB/T 17433 apply to this document.
4 Principles
The sample was dissolved in hydrofluoric acid-nitric acid, and the emission intensity of each element was measured on an inductively coupled plasma atomic emission spectrometer.
The standard working curve was drawn by volume matching, and the mass fraction of each element was calculated according to the standard working curve method.
5 Reagents and Materials
Unless otherwise stated, only reagents of confirmed high-grade purity were used in the analyses.
5.1 Water, GB/T 6682, Grade 3.
5.2 High purity tungsten powder (wW≥99.99%).
5.3 Hydrofluoric acid (ρ = 1.14 g/mL).
5.4 Nitric acid (ρ=1.42 g/mL).
5.5 Standard stock solution. Use certified reference materials with a mass concentration of 1000 μg/mL for both tantalum and niobium.
5.6 Tantalum standard solution. Pipette 10 mL of the tantalum standard stock solution (5.5) into a 100 mL plastic volumetric flask, add 2 mL of nitric acid (5.4),
1 mL of hydrofluoric acid (5.3) is diluted to the mark with water and mixed. 1 mL of this solution contains 100 μg of tantalum.
5.7 Niobium standard solution. Pipette 10 mL of the niobium standard stock solution (5.5) into a 100 mL plastic volumetric flask, add 2 mL of nitric acid (5.4),
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