Jianxun Li , Zihao Zheng , Minghang Wang , Yide Li , Mingya Chen , JunLei Wang , Weiqiang Wang
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引用次数: 0
Abstract
Pressure vessels and high-temperature pipelines inevitably experience thermal damage and mechanical property degradation under high-temperature and high-pressure service conditions. Using P91 steel specimens subjected to long-term high-temperature (HT) service as the research subject, this study employs nonlinear ultrasonic testing (NUT) technology to propose a rapid and accurate uniaxial mechanical property evaluation method. The influence of thermal damage on the ultrasonic nonlinear parameter and its response mechanism in P91 steel during prolonged high-temperature service was investigated by using a NUT system on P91 steel specimens with varying degrees of thermal damage. Analysis of the variation of the nonlinear parameter revealed that the ultrasonic nonlinear parameter first increases, then decreases, and then increases again with the duration of high-temperature service. This study introduces a cumulative ultrasonic nonlinear coefficient and establishes a mapping relationship model between the high-temperature mechanical property degradation of P91 steel and the cumulative ultrasonic nonlinear coefficient, thereby enabling the rapid assessment of the mechanical properties of P91 steel in long-term high-temperature service using NUT. The validity of this mapping relationship was confirmed through conventional tensile tests. The results demonstrate that the error between the yield strength and tensile strength calculated based on nonlinear ultrasonic technology and the tensile test results is within 10 %, meeting engineering application requirements.
期刊介绍:
Pressure vessel engineering technology is of importance in many branches of industry. This journal publishes the latest research results and related information on all its associated aspects, with particular emphasis on the structural integrity assessment, maintenance and life extension of pressurised process engineering plants.
The anticipated coverage of the International Journal of Pressure Vessels and Piping ranges from simple mass-produced pressure vessels to large custom-built vessels and tanks. Pressure vessels technology is a developing field, and contributions on the following topics will therefore be welcome:
• Pressure vessel engineering
• Structural integrity assessment
• Design methods
• Codes and standards
• Fabrication and welding
• Materials properties requirements
• Inspection and quality management
• Maintenance and life extension
• Ageing and environmental effects
• Life management
Of particular importance are papers covering aspects of significant practical application which could lead to major improvements in economy, reliability and useful life. While most accepted papers represent the results of original applied research, critical reviews of topical interest by world-leading experts will also appear from time to time.
International Journal of Pressure Vessels and Piping is indispensable reading for engineering professionals involved in the energy, petrochemicals, process plant, transport, aerospace and related industries; for manufacturers of pressure vessels and ancillary equipment; and for academics pursuing research in these areas.