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GB/T 46654-2025 PDF English

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GB/T 46654-2025: Radiographic testing for titanium alloy castings - Defect levels
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GB/T 46654-2025English679 Add to Cart 5 days [Need to translate] Radiographic testing for titanium alloy castings - Defect levels

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Basic data

Standard ID GB/T 46654-2025 (GB/T46654-2025)
Description (Translated English) Radiographic testing for titanium alloy castings - Defect levels
Sector / Industry National Standard (Recommended)
Classification of Chinese Standard J31
Classification of International Standard 77.120.50
Word Count Estimation 34,340
Date of Issue 2025-10-31
Date of Implementation 2026-05-01
Issuing agency(ies) State Administration for Market Regulation and Standardization Administration of China

GB/T 46654-2025: Radiographic testing for titanium alloy castings - Defect levels


---This is a DRAFT version for illustration, not a final translation. Full copy of true-PDF in English version (including equations, symbols, images, flow-chart, tables, and figures etc.) will be manually/carefully translated upon your order.
ICS 77.120.50 CCSJ31 National Standards of the People's Republic of China Defect Classification in Radiographic Inspection of Titanium Alloy Castings Published on 2025-10-31 Implemented on May 1, 2026 State Administration for Market Regulation The State Administration for Standardization issued a statement.

Foreword

This document complies with the provisions of GB/T 1.1-2020 "Standardization Work Guidelines Part 1.Structure and Drafting Rules of Standardization Documents". Drafting. Please note that some content in this document may involve patents. The issuing organization of this document assumes no responsibility for identifying patents. This document was proposed and is under the jurisdiction of the National Technical Committee on Foundry Standardization (SAC/TC54). This document was drafted by. Shenyang Foundry Research Institute Co., Ltd. of China Academy of Machinery Science and Technology, Luoyang Shuangrui Precision Casting Titanium Industry Co., Ltd., and Jiangxi... Hebei Provincial Fujian Titanium Technology Co., Ltd., Baoji Titanium Group Co., Ltd., Aero Engine Corporation of China, Hebei Provincial Special Equipment Supervision and Inspection Institute Institute, Ningbo Branch of China Ordnance Science Research Institute, Mechanical Industry Molding Materials Important Casting Products Quality Inspection Institute (Shenyang) Co., Ltd., Chongqing Rilian Technology Co., Ltd., Shandong Juncheng Metal Technology Co., Ltd., Chongqing Sanhang New Materials Technology Research Institute Co., Ltd., Zhejiang Suijin Special Products Co., Ltd. Casting Co., Ltd., Huazhong University of Science and Technology, Shanghai Jiao Tong University, Shenyang University of Technology, Chiping Xinfa Aluminum Products Co., Ltd., Jingzhou Jinglong Aerospace Technology Co., Ltd., Baotou Branch of Inner Mongolia Special Equipment Inspection and Research Institute, Jinyun County Kelier Testing Equipment Co., Ltd., Henan Hua Tan Testing Technology Co., Ltd., Suzhou Paddens Instrument Equipment Co., Ltd., Shanghai Yongchuang Testing Technology Co., Ltd., Changsha Dika Technology Co., Ltd. The company, Meike (Guangzhou) New Materials Co., Ltd., Chengdu Mait Aviation Manufacturing Co., Ltd., Chongqing Tiweishi Elevator Engineering Co., Ltd. China Railway Baoqiao Group Co., Ltd., CITIC Dicastal Co., Ltd., Baoji Chushi Metal Testing Co., Ltd., and Lai'an County Kelaixing Industrial Co., Ltd. Baoji Fuste Titanium Industry Co., Ltd., Baoji Taicheng Metal Composite Materials Co., Ltd., Ruimao Optics (Shenzhen) Co., Ltd., Baoji Fuste Titanium Industry Co., Ltd. (Group) Co., Ltd., Nanjing Longchao Metal Manufacturing Technology Co., Ltd. The main drafters of this document are. Zhang Zhaoqian, Bao Chunling, Zhang Yanfei, Liu Hongyu, Shen Lubo, Ji Xiaoyuan, Wang Weichao, Xin Tianning, and Sun Hongzhe. Ma Yongjun, Xie Gusheng, Cheng Shugang, Liu Yang, Tang Bin, Li Dongyu, Ye Junchao, Zhang Lijun, Zang Fulu, Wu Youbing, Bai Wenqiang, Lu Qifeng, Zhang Fuwang Li Hongguang, Shang Erfeng, Yu Han, Dong Yin, Liu Jun, Wang Hanchao, Sun Pu, Peng Yongjie, Jia Runfei, Zhang Jianxiong, Li Chunbo, Xu Liulong, Huang Zhen, Xu Jian Guo Junyu, Zuo Changlie, Lü Guolai, Qiu Tinggui, Zhan Jianhui, Chen Xiulin, Zhou Shijie, Huang Hongjun, Zhang Junwei, Jing Hesheng, Hu Zhengwen, Ye Hao, Sun Ming, Wang Ligang, Yang Xueshan, Xu Zuan, Li Zhichao, Yao Xinyu. Defect Classification in Radiographic Inspection of Titanium Alloy Castings

1 Scope

This document specifies the basic requirements for radiographic testing of titanium and titanium alloy castings (hereinafter referred to as "castings"), and describes the defect classification and grade. The corresponding methods for grade assessment. This document applies to radiographic inspection of defects such as porosity, inclusions, and shrinkage in titanium alloy castings with a thickness not exceeding 50.8 mm. For castings with a thickness greater than 50.8 mm, the classification should be followed accordingly. This document is not applicable to the classification of defects such as cracks, segregation, cold shuts, and incomplete penetration and fusion caused by weld repairs.

2 Normative references

The contents of the following documents, through normative references within the text, constitute essential provisions of this document. Dated citations are not included. For references to documents, only the version corresponding to that date applies to this document; for undated references, the latest version (including all amendments) applies. This document. GB/T 5611 Casting Terminology GB/T 5677 Radiographic Inspection of Castings GB/T 12604.2 Nondestructive Testing Terminology. Radiographic Testing

3 Terms and Definitions

The terms and definitions defined in GB/T 5611 and GB/T 12604.2, as well as the following terms and definitions, apply to this document. 3.1 single gashole The casting contains isolated, non-interacting pores formed by gas inside. 3.2 Scattered gasholes The casting contains a sparsely distributed, weakly interconnected pore structure formed by gas. 3.3 Clustered gasholes The casting contains a densely distributed group of strongly interacting pores formed by gas. 3.4 Low-density inclusions Foreign matter present inside the casting that has a lower density than the matrix and causes less attenuation of radiation. 3.5 High-density inclusions Foreign matter present inside the casting that is denser than the matrix and has a greater attenuation effect on radiation. 3.6 During the solidification process of a casting, a dispersed, non-dense area is formed by multiple point-like and strip-like micropores due to cooling and shrinkage.
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