The roles of undercooling degree and materials surface configuration in the growth mechanism of ice layer caused by micro-droplets

Author:

Xu Yangjiangshan1ORCID,Liu Weilan12,Shen Yizhou13ORCID,Chen Haifeng4,Tao Jie13ORCID,Jiang Jiawei1ORCID,Wang Zhen1ORCID,Liu Senyun5,Nong Xuefeng1ORCID

Affiliation:

1. College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics 1 , Nanjing 210016, People’s Republic of China

2. Institute of Advanced Materials, Nanjing Tech University 2 , 30 Puzhu South Rd., Nanjing 210009, People’s Republic of China

3. Jiangsu Key Laboratory of Advanced Structural Materials and Application Technology, Nanjing Institute of Technology 3 , Nanjing 211167, People’s Republic of China

4. Department of Materials Chemistry, Huzhou College 4 , 1# Xueshi Road, Huzhou 313000, People’s Republic of China

5. Key Laboratory of Icing and Anti/De-icing, China Aerodynamics Research and Development Center 5 , 6 Erhuan South Rd., Mianyang 621000, People’s Republic of China

Abstract

Effect mechanisms of the undercooling degree and the surface configuration on the ice growth characteristics were revealed under micro-droplets icing conditions. Preferential ice crystals appear firstly on the surfaces due to the randomness of icing, and obtain growth advantages to form protruding structures. Protruding structures block the incoming droplets from contacting the substrates, causing voids around the structures. The undercooling degree mainly affects the density and the growth rate of preferential ice crystals. With the increase of undercooling degree, the preferential ice crystals have higher density and growth rate, resulting in stronger growth advantage and higher porosity. The surface configuration affects the growth mode, and the ice layer grows with uniform mode, spreading mode and structure-induced mode on the aluminum, smooth Polytetrafluoroethylene (PTFE) and rough PTFE surface respectively, causing the needle-like, ridge-like and cluster-like ice crystals. The rough structures effectively improve the porosity of the ice layer, which is beneficial for optimizing the icephobic property of the materials. This paper provides important theoretical guidance for the design of subsequent icephobic materials.

Funder

National Natural Science Foundation of China

Nation Natural Science Foundation of Jiangsu Province

Shenyang Key Laboratory of Aircraft Icing and Ice Protection

Graduate Scientific Research and Practice Innovation Program of Jiangsu

Basic Research Project of Suzhou

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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