Academic literature on the topic 'Cryorolling'

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Journal articles on the topic "Cryorolling"

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Song, Lingling, Haitao Gao, Zhengyu Wang, Huijie Cui, Charlie Kong, and Hailiang Yu. "Microstructure and Mechanical Properties of AA1050/AA6061 Laminated Composites Fabricated through Three-Cycle Accumulative Roll Bonding and Subsequent Cryorolling." Materials 17, no. 3 (2024): 577. http://dx.doi.org/10.3390/ma17030577.

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In this study, AA1050/AA6061 laminated composites were prepared by three-cycle accumulative roll bonding (ARB) and subsequent rolling. The effects of the rolling process on the microstructure evolution and mechanical properties of AA1050/AA6061 laminated composites were systematically investigated. The results indicate that the mechanical properties of the laminated composites can be effectively improved by cryorolling compared with room-temperature rolling. The microstructure analysis reveals that cryorolling can suppress the necking of the hard layer to obtain a flat lamellar structure. More
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Hussain, Maruff, P. Nageswara Rao, Dharmendra Singh, and R. Jayaganthan. "Effect of Pre-Ageing on the Age Hardening Response of Cryorolled Al-Mg-Si Alloy." Applied Mechanics and Materials 877 (February 2018): 137–48. http://dx.doi.org/10.4028/www.scientific.net/amm.877.137.

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The present work investigates about the effect of pre-ageing on hardening behavior of Al-Mg-Si alloys processed by cryorolling and its age hardening behavior. Ageing conditions were examined at natural ageing for 2days and pre-ageing at 100 °C, 130°C and 170 °C for 4 hours, 2 hours and 30 minutes respectively. The observations revealed that, the pre-ageing before cryorolling is useful to enhance the dislocation density during cryorolling. However artificial ageing of cryorolled samples is not influenced much with pre-ageing. It is revealed that, maturing at room temperature of CR samples for 3
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Ijaz, Muhammad Farzik, Basim T. Nashri, and Mansour T. Qamash. "Sustainability through Optimal Compositional and Thermomechanical Design for the Al-7XXX Alloys: An ANOVA Case Study." Sustainability 16, no. 4 (2024): 1515. http://dx.doi.org/10.3390/su16041515.

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The quest for lightweight, high-performance structural materials for demanding applications such as in the fields of automotive, aerospace, and other high-tech and military industries pushes the boundaries of material science. The present work aims to draw attention to a novel, sustainable manufacturing approach for the development of next-generation 7xxx series aluminum alloys that have higher strength by rejuvenating a sustainable compositional and thermomechanical processing strategy. Our innovative strategy integrates two key synergies: trace hafnium (Hf) addition for microstructural refin
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Zakaria, S. A., M. S. Ahmad, A. S. Anasyida, H. Zuhailawati, B. K. Dhindaw, and T. E. Abioye. "Characterization of cryorolled low carbon steel using ferrite-martensite starting microstructure." Journal of Mining and Metallurgy, Section B: Metallurgy, no. 00 (2023): 38. http://dx.doi.org/10.2298/jmmb230307038z.

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Cryorolling, a severe plastic deformation (SPD) technique performed at cryogenic temperatures, has emerged as a promising technique for enhancing the microstructure and mechanical of low carbon steel. Low carbon steel with a dual-phase ferrite-martensite starting microstructure was subjected to cryorolling at liquid nitrogen temperature to produce sheets at different deformation rates: 50%, 70%, and 90%. Microstructure, mechanical properties, and corrosion resistance were investigated. The results indicate that cryorolling effectively refines the microstructure, leading to a higher dislocation
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Xuan, Yanni, Jing Li, Haitao Gao, and Hailiang Yu. "Tensile Properties of Cryorolled Cu/Al Clad Sheet with an SUS304 Interlayer after Annealing at Various Temperatures." Materials 17, no. 16 (2024): 4065. http://dx.doi.org/10.3390/ma17164065.

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This paper investigates the tensile properties and microstructures of Cu/Al clad sheets with an SUS304 interlayer after cryorolling and subsequent annealing and compares them with hot-rolled samples. The experimental results show that the inhibition of dynamic recovery by cryorolling enables the Cu/Al clad sheets to achieve a tensile strength of 302 MPa. After annealing, the tensile strength sharply drops to 159 MPa, while the elongation recovers to 29.0%. Compared with hot-rolled samples, the tensile strength of cryorolled samples is increased by 13.1% due to the effect of fine-grain strength
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Wu, Yuze, Juan Liu, Laxman Bhatta, Charlie Kong, and Hailiang Yu. "Study of Texture Analysis on Asymmetric Cryorolled and Annealed CoCrNi Medium Entropy Alloy." Crystals 10, no. 12 (2020): 1154. http://dx.doi.org/10.3390/cryst10121154.

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CoCrNi equiatomic medium entropy alloy sheets were prepared by asymmetric rolling, cryorolling, and asymmetric cryorolling. The asymmetric cryorolled samples exhibited a noteworthy ultra-fine-grain heterogeneous lamella structure. The microstructure and corresponding hardness obtained by different rolling processes and subsequent annealing are compared. It can be seen from the results that the cryogenic deformation temperature had a stronger effect on the mechanical properties of the medium entropy alloys (MEA), compared with the shear strain caused by the asymmetric cryorolling. The effect of
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Shi, Jin Tao, Long Gang Hou, Cun Qiang Ma, et al. "Mechanical Properties and Microstructures of 5052 Al Alloy Processed by Asymmetric Cryorolling." Materials Science Forum 850 (March 2016): 823–28. http://dx.doi.org/10.4028/www.scientific.net/msf.850.823.

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Aluminum alloy sheets were asymmetrically rolled at room and cryogenic temperatures by imposing different velocity ratios of 1~1.5 between the upper and bottom rolls. After rolling, the stress-strain curves, microhardness as well as the microstructures of the rolled samples were characterized and analyzed. The experimental results showed that the asymmetric cryorolling could improve the grain refinement and offered (~12%) higher room temperature tensile strength than that processed by symmetrical rolling with velocity ration of 1.0 (~280 MPa). However, at cryogenic temperature, the strength of
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Li, Zhide, Yuze Wu, Zhibao Xie, Charlie Kong, and Hailiang Yu. "Grain Growth Mechanism of Lamellar-Structure High-Purity Nickel via Cold Rolling and Cryorolling during Annealing." Materials 14, no. 14 (2021): 4025. http://dx.doi.org/10.3390/ma14144025.

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High-purity (99.999%) nickel with lamellar-structure grains (LG) was obtained by room-temperature rolling and cryorolling in this research, and then annealed at different temperatures (75 °C, 160 °C, and 245 °C). The microstructure was characterized by transmission electron microscopy. The grain growth mechanism during annealing of the LG materials obtained via different processes was studied. Results showed that the LG high-purity nickel obtained by room-temperature rolling had a static discontinuous recrystallization during annealing, whereas that obtained by cryorolling underwent static and
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Shi, Yindong, Ming Li, Defeng Guo, et al. "Extraordinary Toughening by Cryorolling in Zr." Advanced Engineering Materials 16, no. 2 (2013): 167–70. http://dx.doi.org/10.1002/adem.201300153.

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Singh, Rahul, Surya Deo Yadav, Biraj Kumar Sahoo, Sandip Ghosh Chowdhury, and Abhishek Kumar. "Phase transformation, Mechanical Properties and Corrosion Behavior of 304L Austenitic Stainless Steel Rolled at Room and Cryo Temperatures." Defence Science Journal 71, no. 03 (2021): 383–89. http://dx.doi.org/10.14429/dsj.71.16721.

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The present work investigates the effect of rolling (90% thickness reduction) on phase transformation, mechanical properties, and corrosion behaviour of 304L-austenitic stainless steel through cryorolling and room temperature rolling. The processed steel sheets were characterised through X-ray diffraction (XRD), electron backscattered diffraction (EBSD), and vibrating sample magnetometer (VSM). The analysis of XRD patterns, EBSD scan, and vibrating sample magnetometer results confirmed the transformation of the austenitic phase to the martensitic phase during rolling. Cryorolling resulted in i
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Dissertations / Theses on the topic "Cryorolling"

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"Formability of aluminum alloys in warm working temperature range." Thesis, 2017. http://localhost:8080/iit/handle/2074/7391.

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Feyissa, Fitsum Taye. "Hydroforming of cryorolled AA5083 alloy sheets." Thesis, 2018. http://eprint.iitd.ac.in:80//handle/2074/7962.

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Book chapters on the topic "Cryorolling"

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Yu, Hailiang, Haitao Gao, and Zhou Li. "Fabricated Metal Laminates via Cryorolling." In High-Performance Metallic Composites Fabricated by Advanced Rolling Techniques. Springer Nature Singapore, 2024. http://dx.doi.org/10.1007/978-981-97-4331-5_4.

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Yu, Hailiang, Haitao Gao, and Zhou Li. "Fabricated Al/Particle Composites via Cryorolling." In High-Performance Metallic Composites Fabricated by Advanced Rolling Techniques. Springer Nature Singapore, 2024. http://dx.doi.org/10.1007/978-981-97-4331-5_5.

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Chourasiya, S. K., and G. Gautam. "Influence of Cryorolling on Spray-Formed Al–Si Alloy." In Lecture Notes in Mechanical Engineering. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-33-4018-3_25.

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Changela, Kandarp, K. Hariharan, and D. Ravi Kumar. "Cryorolling of Aluminum Alloy Sheets and Their Characterization: A Review." In Metal Forming Processes. CRC Press, 2022. http://dx.doi.org/10.1201/9781003226703-5.

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Kumar, Vineet, Deepak Kumar, I. V. Singh, and B. K. Mishra. "Effect of cryorolling and room temperature rolling on 6082 Al alloy." In Sustainability in Smart Manufacturing. CRC Press, 2024. http://dx.doi.org/10.1201/9781003467496-12.

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Dhal, A., S. K. Panigrahi, and M. S. Shunmugam. "Deformation Behaviour and Fracture Mechanism of Ultrafine-Grained Aluminium Developed by Cryorolling." In Lecture Notes on Multidisciplinary Industrial Engineering. Springer Singapore, 2018. http://dx.doi.org/10.1007/978-981-13-0378-4_2.

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Dasharath, S. M., and Suhrit Mula. "Microstructures, Mechanical Properties and Strengthening Mechanisms of cast Cu–Al Alloys Processed by Cryorolling." In Springer Proceedings in Physics. Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-29096-6_62.

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Vigneshwaran, S., P. Seenuvasaperumal, C. Chinthanai Selvan, R. Palanivel, and Mohammad Abdur Rasheed. "Achieving Exceptional Mechanical and Tribological Properties of Metal Matrix Composites through Stir Casting Followed by Cryorolling." In Composite and Composite Coatings. CRC Press, 2022. http://dx.doi.org/10.1201/9781003109723-7.

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Pant, Ruby, Amit Joshi, Shushant Singh, Manoj Kumar Pathak, and Saurabh Gairola. "A Comparative Study of Cryorolling and Cryo-Cross Rolling Treatment on Tensile and Fracture Properties of Al 5052 Alloy." In Springer Proceedings in Materials. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-99-6259-4_7.

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Singh, Raj Bahadur, N. K. Mukhopadhyay, G. V. S. Sastry, and R. Manna. "Effect of Flash Annealing on Ultra-Fine Grained Low-Carbon Steel Processed Through Equal-Channel Angular Pressing Followed by Cryorolling." In Lecture Notes in Mechanical Engineering. Springer Singapore, 2018. http://dx.doi.org/10.1007/978-981-10-7892-7_12.

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Conference papers on the topic "Cryorolling"

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FEDORIKOVÁ, Alica, Tibor KVAČKAJ, Róbert KOČIŠKO, et al. "The effect of neutron irradiation on mechanical properties of CuCrZr alloys processed by cryorolling." In METAL 2021. TANGER Ltd., 2021. http://dx.doi.org/10.37904/metal.2021.4114.

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Zakaria, Siti Aminah, Zuhailawati Hussain, and Anasyida Abu Seman. "Selection of sample dipping time in liquid nitrogen prior to cryorolling for Al 1100 alloy." In PROCEEDING OF THE 3RD INTERNATIONAL CONFERENCE OF GLOBAL NETWORK FOR INNOVATIVE TECHNOLOGY 2016 (3RD IGNITE-2016): Advanced Materials for Innovative Technologies. Author(s), 2017. http://dx.doi.org/10.1063/1.4993337.

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Zakaria, Siti Aminah, Zuhailawati Hussain, and Anasyida Abu Seman. "Development of ultrafine-grained 1100 aluminum alloy by cryorolling with the optimized initial heat treatment conditions." In THE 2ND INTERNATIONAL CONFERENCE ON FUNCTIONAL MATERIALS AND METALLURGY (ICoFM 2016). Author(s), 2016. http://dx.doi.org/10.1063/1.4958758.

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