Page 17 - 《摩擦学学报》2021年第5期
P. 17
606 摩 擦 学 学 报 第 41 卷
Biomechanics, 2004, 20(2): 167–176. doi: 10.1123/jab.20.2.167. studies of the premelting of ice surfaces[J]. Surface Science, 1995,
[ 3 ] Federolf P, Scheiber P, Rauscher E, et al. Impact of skier actions on 327(1-2): 145–164. doi: 10.1016/0039-6028(94)00801-9.
the gliding times in alpine skiing[J]. Scandinavian Journal of [18] Döppenschmidt A, Butt H J. Measuring the thickness of the liquid-
Medicine & Science in Sports, 2008, 18(6): 790–797. doi: 10.1111/ like layer on ice surfaces with atomic force microscopy[J].
j.1600-0838.2007.00745.x. Langmuir, 2000, 16(16): 6709–6714. doi: 10.1021/la990799w.
[ 4 ] Kuzmin L, Carlsson P, Tinnsten M. The relationship between the [19] Bluhm H, Ogletree D F, Fadley C S, et al. The premelting of ice
type of machining of the ski running-surface and its wettability and studied with photoelectron spectroscopy[J]. Journal of
capillary drag[J]. Sports Technology, 2010, 3(2): 121–130. doi: Physics:Condensed Matter, 2002, 14(8): L227–L233. doi: 10.1088/
10.1080/19346182.2010.538399. 0953-8984/14/8/108.
[ 5 ] Styring P, Routh A F, Parkinson S. Friction reduction using self- [20] Kietzig A M, Hatzikiriakos S G, Englezos P. Physics of ice
waxing alpine skis[J]. Sports Engineering, 2012, 15(3): 117–127. friction[J]. Journal of Applied Physics, 2010, 107(8): 081101. doi:
doi: 10.1007/s12283-012-0095-6. 10.1063/1.3340792.
[ 6 ] BreitschŠdel F, Berre V, Andersen R, et al. A comparison between [21] Swarén M, Karlöf L, Holmberg H C, et al. Validation of test setup to
timed and IMU captured Nordic ski glide tests[J]. Procedia evaluate glide performance in skis[J]. Sports Technology, 2014, 7(1-
Engineering, 2012, 34: 397–402. doi: 10.1016/j.proeng.2012.04.068. 2): 89–97. doi: 10.1080/19346182.2014.968164.
[ 7 ] Nachbauer W, Schröcksnadel P, Lackinger B. Effects of snow and [22] Buhl D, Fauve M, Rhyner H. The kinetic friction of polyethylen on
air conditions on ski friction in Skiing Trauma and Safety: Tenth snow: the influence of the snow temperature and the load[J]. Cold
Volume[M]. West Conshohocken, PA: ASTM International, 1996, Regions Science and Technology, 2001, 33(2-3): 133–140. doi:
178–185. doi:10.1520/stp37927s. doi: 10.1520/stp37927s. 10.1016/S0165-232X(01)00034-9.
[ 8 ] None, Papers on mechanical and physical subjects[J]. Nature, 1900, [23] Stamboulides C, Englezos P, Hatzikiriakos S G. Ice friction of ultra-
62(1602): 243–244. doi:10.1038/062243a0. doi: 10.1038/062243a0. high molecular weight polyethylene: The effects of fluorine
[ 9 ] Rosenberg R. Why is ice slippery?[J]. Physics Today, 2005, 58(12): additives and plasma (PECVD) treatment[J]. Tribology Interna-
50–54. doi: 10.1063/1.2169444. tional, 2013, 57: 177–183. doi: 10.1016/j.triboint.2012.07.022.
[10] Bowden F P, Hughes T P. The mechanism of sliding on ice and [24] Colbeck S C. The kinetic friction of snow[J]. Journal of Glaciology,
snow[J]. Proceedings of the Royal Society of London Series A 1988, 34(116): 78–86. doi: 10.3189/s0022143000009096.
Mathematical and Physical Sciences, 1939, 172(949): 280–298. doi: [25] Shimbo M. Friction on snow of ski soles, unwaxed and waxed.
10.1098/rspa.1939.0104. Scientific study of skiing in Japan[J]. Tokyo:The Society of Ski
[11] Li Y, Somorjai G A. Surface premelting of ice[J]. Journal of Science, 1971: 100–113.
Physical Chemistry C, 2007, 111(27): 9631–9637. doi: 10.1021/ [26] Lin Chenghui, Liang Zhiqiang, Wu Ziying, et al. The research and
jp071102f. application of ski wax[J]. Zhejiang Sport Science, 2020, 42(2):
[12] Furukawa Y, Yamamoto M, Kuroda T. Ellipsometric study of the 101–106 (in Chinese) [林程辉, 梁志强, 吴紫莹, 等. 雪蜡的研究与
transition layer on the surface of an ice crystal[J]. Journal of Crystal 应用[J]. 浙江体育科学, 2020, 42(2): 101–106].
Growth, 1987, 82(4): 665–677. doi: 10.1016/S0022-0248(87)80012- [27] Braghin F, Cheli F, Melzi S, et al. The engineering approach to
X. winter sports[M]. New York: Springer New York, 2016.
[13] Materer N, Starke U, Barbieri A, et al. Molecular surface structure doi:10.1007/978-1-4939-3020-3. doi: 10.1007/978-1-4939-3020-3.
of ice(0001): dynamical low-energy electron diffraction, total- [28] Breitschädel F. A new approach for the grinding of Nordic skis[J].
energy calculations and molecular dynamics simulations[J]. Surface Procedia Engineering, 2015, 112: 385–390. doi: 10.1016/j.proeng.
Science, 1997, 381(2-3): 190–210. doi: 10.1016/S0039-6028(97) 2015.07.212.
00090-3. [29] Schindelwig K, Hasler M, Van Putten J, et al. Temperature below a
[14] Braun J, Glebov A, Graham A P, et al. Structure and phonons of the gliding cross country ski[J]. Procedia Engineering, 2014, 72:
ice surface[J]. Physical Review Letters, 1998, 80(12): 2638–2641. 380–385. doi: 10.1016/j.proeng.2014.06.065.
doi: 10.1103/physrevlett.80.2638. [30] Kuzmin L. Interfacial kinetic ski friction[D]. Östersund: Mid
[15] Golecki I, Jaccard C. Intrinsic surface disorder in ice near the Sweden University, 2010.
melting point[J]. Journal of Physics C:Solid State Physics, 1978, [31] Giesbrecht J L, Smith P, Tervoort T A. Polymers on snow: Toward
11(20): 4229–4237. doi: 10.1088/0022-3719/11/20/018. skiing faster[J]. Journal of Polymer Science Part B:Polymer Physics,
[16] Beaglehole D, Nason D. Transition layer on the surface on ice[J]. 2010, 48(13): 1543–1551. doi: 10.1002/polb.22033.
Surface Science, 1980, 96(1-3): 357–363. doi: 10.1016/0039-6028(80) [32] Colbeck S C. “ A review of the friction of snow” in Physics of
90313-1. Sliding Friction[M]. Dordrecht: Springer Netherlands, 1996: 275-
[17] Dosch H, Lied A, Bilgram J H. Glancing-angle X-ray scattering 291. doi:10.1007/978-94-015-8705-1_18. doi: 10.1007/978-94-015-