The influence of different friction methods on curling

Research Article
Open access

The influence of different friction methods on curling

Minxin Wang 1*
  • 1 The experimental high school attached to Beijing Normal University    
  • *corresponding author minxin-elena@outlook.com
TNS Vol.5
ISSN (Print): 2753-8826
ISSN (Online): 2753-8818
ISBN (Print): 978-1-915371-53-9
ISBN (Online): 978-1-915371-54-6

Abstract

With the Beijing Winter Olympics, curling has become one of the big hits. To research, professional curlers will brush ice at 40 ° - 60 °, because the curling brush is a universal head when the force and the direction are fixed, changing the curling deceleration movement. This work aims to use Solidworks modeling, Unity virtual simulation, mathematical regression statistical prediction, and MATLAB data visualization to find the most suitable gimbal pole angle under the integration of the sports and physics, to make curling adjustable and provide a reference for improving its competitive level. The conclusion represents the gimbal pole angle is 54.7°, and the angular acceleration is 17°rad/s², which slows down the curling deceleration and has a longer relative displacement. At 60.1°, the angular acceleration is 31°rad/s², relative displacement is the shortest. So as to help athletes formulate real-time strategies, and also promote curling to be better popularize and theoretical.

Keywords:

curling, friction, mechanics, geostatics

Wang,M. (2023). The influence of different friction methods on curling. Theoretical and Natural Science,5,771-785.
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References

[1]. LI Fengjun, SHEN Li, SUN Hui, WANG Qiang. 2022.5.17, 1-18 Mechanical analysis of curling propagation, [J].Jiangsu:Journal of Physics Teaching.

[2]. Segalski MRA, MReid, 1999.7.7, rotating cylindrical sliding pebbles, [J]. Canadian Journal of Physics/Acta Physica Sinica(S0008-4204), (11):847-862.

[3]. LIANG Shaorong, LIU Changnian, SHENG Zhenghua. 2002.6.7, General Physics, Volume I, Mechanics[M].Beijing:Higher Education Press.

[4]. Harald Nybergn, Sara Alfredson, Sture Hogmark, Staffan Jacobson. The asymmetrical friction mechanism that puts the curl in thecurling stone, [J].Tribomaterials Group, Department of Engineering Sciences, Uppsala University, SE-751 21 Uppsala, Sweden.

[5]. The Split Friction Model - 2022.5.18, The Isotropic Origin of the Lateral Force in Curling Martin Ziegler ORCiD: 0000-0003-2747-7805∗, [A]:761-786.

[6]. XU Shixin, SHI Yu. 2021.3, Physical analysis of curling ice wiping technique[J]. Current Generation Physical Education, 189.

[7]. JIANG Yu, JIN Jing, LI Dandan, WANG Jiawei, MA Ping, 2022, Design of Virtual Simulation Experiment for Curling Artificial, [J], School of Aeronautics, Harbin Institute of Technology, Harbin 150001, China).

[8]. Liu Xun, 2020.11.4, Analysis of the Application of Friction in Modern Sports Activities—— Review of Principles of Tribology, [J], Journal of Tribology, Vol. 40.

[9]. Li Shuaiyu; Zhang Wenyuan; Wei Bo; Yang Qiyong, Experimental Measurement of Ice-Curling Stone Friction Coefficient Based on Computer Vision Technology: A Case Study of “Ice Cube” for 2022 Beijing Winter Olympics [J], Li Junxing.

[10]. A. Raymond Penner; 2021, The physics of sliding cylinders and curling rocks, American Journal of Physics 69[J], 332, Cambridge.

[11]. Martin Ziegler, 2018.1.20, The Split Friction Model - The Isotropic Origin of the Lateral Force in Curling; mixed lubrication, Stribeck-Curve, tribology, friction, isotropy, curling.

[12]. Esser Liza; Dec 2011 Swept Away: Exploring the Physics of Curling; Science Scope; v35 n4 p36-39.


Cite this article

Wang,M. (2023). The influence of different friction methods on curling. Theoretical and Natural Science,5,771-785.

Data availability

The datasets used and/or analyzed during the current study will be available from the authors upon reasonable request.

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About volume

Volume title: Proceedings of the 2nd International Conference on Computing Innovation and Applied Physics (CONF-CIAP 2023)

ISBN:978-1-915371-53-9(Print) / 978-1-915371-54-6(Online)
Editor:Marwan Omar, Roman Bauer
Conference website: https://www.confciap.org/
Conference date: 25 March 2023
Series: Theoretical and Natural Science
Volume number: Vol.5
ISSN:2753-8818(Print) / 2753-8826(Online)

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References

[1]. LI Fengjun, SHEN Li, SUN Hui, WANG Qiang. 2022.5.17, 1-18 Mechanical analysis of curling propagation, [J].Jiangsu:Journal of Physics Teaching.

[2]. Segalski MRA, MReid, 1999.7.7, rotating cylindrical sliding pebbles, [J]. Canadian Journal of Physics/Acta Physica Sinica(S0008-4204), (11):847-862.

[3]. LIANG Shaorong, LIU Changnian, SHENG Zhenghua. 2002.6.7, General Physics, Volume I, Mechanics[M].Beijing:Higher Education Press.

[4]. Harald Nybergn, Sara Alfredson, Sture Hogmark, Staffan Jacobson. The asymmetrical friction mechanism that puts the curl in thecurling stone, [J].Tribomaterials Group, Department of Engineering Sciences, Uppsala University, SE-751 21 Uppsala, Sweden.

[5]. The Split Friction Model - 2022.5.18, The Isotropic Origin of the Lateral Force in Curling Martin Ziegler ORCiD: 0000-0003-2747-7805∗, [A]:761-786.

[6]. XU Shixin, SHI Yu. 2021.3, Physical analysis of curling ice wiping technique[J]. Current Generation Physical Education, 189.

[7]. JIANG Yu, JIN Jing, LI Dandan, WANG Jiawei, MA Ping, 2022, Design of Virtual Simulation Experiment for Curling Artificial, [J], School of Aeronautics, Harbin Institute of Technology, Harbin 150001, China).

[8]. Liu Xun, 2020.11.4, Analysis of the Application of Friction in Modern Sports Activities—— Review of Principles of Tribology, [J], Journal of Tribology, Vol. 40.

[9]. Li Shuaiyu; Zhang Wenyuan; Wei Bo; Yang Qiyong, Experimental Measurement of Ice-Curling Stone Friction Coefficient Based on Computer Vision Technology: A Case Study of “Ice Cube” for 2022 Beijing Winter Olympics [J], Li Junxing.

[10]. A. Raymond Penner; 2021, The physics of sliding cylinders and curling rocks, American Journal of Physics 69[J], 332, Cambridge.

[11]. Martin Ziegler, 2018.1.20, The Split Friction Model - The Isotropic Origin of the Lateral Force in Curling; mixed lubrication, Stribeck-Curve, tribology, friction, isotropy, curling.

[12]. Esser Liza; Dec 2011 Swept Away: Exploring the Physics of Curling; Science Scope; v35 n4 p36-39.