Precise peening of Cr–Mo steel using energy-intensive multifunction cavitation in conjunction with a narrow nozzle and positron irradiation

Results in Materials - Tập 20 - Trang 100463 - 2023
Toshihiko Yoshimura1, Shintaro Yamamoto1, Hayato Watanabe1
1Department of Mechanical Engineering, Sanyo-Onoda City University, 1-1-1 Daigaku-dori, Sanyo-Onoda, Yamaguchi, 756-0884, Japan

Tài liệu tham khảo

Gompf, 1997, Resolving sonoluminescence pulse width with time-correlated single photon counting, Phys. Rev. Lett., 79, 1405, 10.1103/PhysRevLett.79.1405 Gendanken, 2004, Using sonochemistry for the fabrication of nanomaterials, Ultrason. Sonochem., 11, 47, 10.1016/j.ultsonch.2004.01.037 Suslick, 1991, Sonochemical synthesis of amorphous iron, Nature, 354, 414, 10.1038/353414a0 Nagata, 1992, Formation of colloidal silver in water by ultrasonic irradiation, J. Chem. Soc. Chem. Commun., 21, 1620, 10.1039/c39920001620 Yeung, 1993, Formation of gold sols using ultrasound, J. Chem. Soc. Chem. Commun., 4, 378, 10.1039/c39930000378 Yoshimura, 2007, Development of water jet peening in air and application to fretting fatigue, J. Jet Flow Eng., 24, 11 Saitou, 2003, Development of water jet peening technique for reactor internal components of nuclear power plant, J. Jet. Flow Eng., 20, 4 Yoshimura, 2016, Development of mechanical-electrochemical cavitation technology, J. Jet Flow Eng., 32, 10 Yoshimura, 2018, Nano-level material processing by multifunction cavitation, Nanosci. Nanotechnol. - Asia, 8, 41, 10.2174/2210681206666160922164202 Inventor: Toshihiko Yoshimura, Assignee: Sanyo-Onoda City Public University, Patent No.: US 10,590,966 B2, Date of Patent: Mar.17,2020, Method for Generating Mechanical and Electrochemical Cavitation, Method for Changing Geometric Shape and Electrochemical Properties of Substance Surface, Method for Peeling off Rare Metal, Mechanical and Electrochemical Cavitation Generator, and Method for Generating Nuclear Fusion Reaction of Deuterium, PCT Pub. No.: W02016/136656, PCT No.: PCT/JP2016/055016).. Yoshimura, 2022, Modifying resin viscoelasticity by multifunction cavitation processing in a magnetic field, Int. J. Eng. Sci. Technol., 6, 1 Yoshimura, 2021, Development of energy intensive multifunction cavitation technology and its application to the surface modification of the Ni-based columnar crystal superalloy CM186LC, Heliyon, 7, 10.1016/j.heliyon.2021.e08572 Yoshimura, 2021, Estimation of nuclear fusion requirements in bubbles during ultra-high-pressure, ultra-high-temperature cavitation promoted by magnetic field, Int. J. Eng. Sci. Technol., 5, 102, 10.29121/ijoest.v5.i6.2021.257 Yoshimura, 2022, Development of processing technology using extremely high concentration cavitation energy by strong magnetic field, Res. Mater., 14, 1 Yoshimura, 2023, Cavitation fusion by energy-intensive multifunction cavitation in a strong magnetic field with laser light excitation, Int. J. Eng. Sci. Technol., 7, 1 Yoshimura, 2023, Processing of magnesium alloy by energy-intensive multifunction cavitation in a strong magnetic field with laser light excitation and associated sonoluminescence, Res. Mater., 18, 1 Schultz, 1988, Interaction of positron beams with surfaces thin films, and interfaces, Rev. Mod. Phys., 60, 701, 10.1103/RevModPhys.60.701 Ishii, 1993, Positrons at metallic surfaces, Trans. Tech. Pub. Aedermannsdorf. Dupasquier, 1995 Asoka-Kumar, 1994, Characterization of defects in Si and SiO2−Si using positrons, J. Appl. Phys., 76, 4935, 10.1063/1.357207 Zhou, 2012, In-situ characterization of free-volume holes in polymer thin films under controlled humidity conditions with an atmospheric positron probe microanalyzer, Appl. Phys. Lett., 101, 10.1063/1.4729425 Yoshimura, 2018, 43 Deng, 1985, Multiphoton absorption above ionization threshold by atoms in strong laser fields, J. Opt. Soc. Am., B2, 485 Yushin, 1967, High energy pair annihilation e+ + e− → 2γ, Phys. Lett. B, 24, 291, 10.1016/0370-2693(67)90452-2