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研究生: 陳柏潔
Chen, Po-Chieh
論文名稱: 跑步著地方式對下肢肌肉活化情形與關節能量貢獻之影響
Effects of different strike patterns on lower extremity muscle activity and energy contribution during running
指導教授: 黃長福
Huang, Chen-Fu
學位類別: 博士
Doctor
系所名稱: 體育學系
Department of Physical Education
論文出版年: 2018
畢業學年度: 106
語文別: 中文
論文頁數: 70
中文關鍵詞: 前足著地後足著地赤足跑步
英文關鍵詞: forefoot strike, rear-foot strike, barefoot running
DOI URL: http://doi.org/10.6345/DIS.NTNU.DPE.054.2018.F03
論文種類: 學術論文
相關次數: 點閱:92下載:32
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  • 目的:本研究目的為探討前足及後足著地跑步動作之下肢肌肉與關節能量吸收與產生的主要來源以及下肢各關節能量貢獻之分配情形。方法:利用十台高速攝影機、二台測力板及無線肌電儀同步蒐集15名有慢跑習慣之健康男性受試者前、後足著地方式跑步 (3.5±0.5公尺/秒) 之運動學、動力學與肌電資料。統計方法以重複量數t考驗進行分析比較,顯著水準設為α=.05。結果:一、前足著地方式在支撐期間有較大的髖關節與踝關節角位移、最大功率以及正功,而踝關節負功與下肢關節總作功亦顯著大於後足著地方式;後足著地方式在膝關節負功、平均及最大負荷率方面則顯著大於前足著地方式。二、前足著地方式在預先收縮期與支撐期間有較高的腓腸肌活化情形,而後足著地方式則在脛前肌皆有較高的活化情形。三、前足著地在髖、膝及踝關節產能貢獻度分別為10%、19%與71%,後足著地為8%、19%與73%;而前足著地在能量吸收貢獻度分別為39%、13%與47%,後足著地為37%、35%與26%。結論:前、後足著地方式在推蹬時皆以踝關節為主要產能之關節,但在緩衝時前足著地方式主要是藉由踝關節為主、髖關節為輔進行緩衝吸能,而後足著地方式則是以髖、膝關節為主。在同樣地慢跑速度下使用前足著地方式在跑步支撐期會消耗較多的能量,但在足部著地時卻較後足著地方式有較好的緩衝機制去吸收衝擊力。因此,建議跑者在選擇跑步著地方式時應注意下肢肌群能量的消耗與負荷,並預防可能發生之傷害。

    Purpose: The purpose of this study was to investigate lower extremity’s muscle and joint energy resource and contribution during running with forefoot strike (FFS) and rear-foot strike (RFS) patterns. Methods: Ten high-speed cameras, two force plates and wireless EMG sensors were synchronized to collect the lower extremity kinematics, kinetics and EMG data of 15 healthy male runners with FFS and RFS running (3.5±0.5 m/s). All variables were analyzed with paired t-test. The significant level was set at α= .05. Results: 1. The range of motion, power and positive work at hip and ankle were significantly greater in FFS than in RFS during the stance phase of running, as well as the negative work at ankle and the total joint work at lower extremity joints. The negative work at knee, the average loading rate, and the maximal loading rate in RFS were significant greater than FFS. 2. Higher muscle activity of gastrocnemius muscle was observed in FFS at pre-stretching phase and stance phase and higher muscle activity of tibialis anterior muscle was also observed in RFS. 3. In FFS, the positive energy contribution joint at hip, knee, and ankle were 10%, 19%, and 71%; in RFS were 8%, 19%, and 73%. The negative energy contribution joint in FFS at hip, knee, and ankle were 39%, 13%, and 47%; in RFS were 37%, 35%, and 26%. Conclusion: The ankle joint was the major joint to absorb and generate energy during FFS running. The hip and knee joints were the main joints to absorb energy for braking, and the ankle joint was the major joint to generate energy for propelling during RFS running. While running at the same speed, FFS would consume more energy than RFS at the stance phase of running, but had better braking mechanism to absorb shock during braking phase. Therefore, this study suggested that runner should consider their energy consumption and loading on lower extremity to chose proper running strike pattern, and prevent the potential injury.

    中文摘要 i 英文摘要 ii 謝誌 iv 目次 v 表次 vii 圖次 viii 第壹章 緒論 1 第一節 前言 1 第二節 研究目的 6 第三節 研究範圍與限制 7 第四節 名詞操作性定義 8 第貳章 相關文獻探討 11 第一節 跑步著地動作之運動學相關文獻 11 第二節 跑步著地動作之動力學相關文獻 13 第三節 跑步著地動作之肌電學相關文獻 15 第四節 下肢關節能量貢獻相關文獻 18 第參章 研究方法 22 第一節 研究對象 22 第二節 實驗儀器與設備 23 第三節 實驗流程 26 第四節 資料收集與處理 32 第肆章 研究結果 40 第一節 運動學研究結果 40 第二節 動力學研究結果 42 第三節 肌電學研究結果 49 第伍章 討論 51 第陸章 結論 57 引用文獻 58 附錄一 跑步支撐期間前足著地方式參數資料 65 附錄二 跑步支撐期間後足著地方式參數資料 68

    Arendse, R. E., Noakes, T. D., Azevedo, L. B., Romanov, N., Schwellnus, M. P., & Fletcher, G. (2004). Reduced eccentric loading of the knee with the pose running method. Medicine and Science in Sports and Exercise, 36(2), 272-277.
    Aura, O., & Komi, P. (1986). Effects of prestretch intensity on mechanical efficiency of positive work and on elastic behavior of skeletal muscle in stretch-shortening cycle exercise. International Journal of Sports Medicine, 7(3), 137-143.
    Bishop, M., Brunt, D., Pathare, N., & Patel, B. (2004). The effect of velocity on the strategies used during gait termination. Gait & Posture, 20(2), 134-139.
    Brüggemann, G., Potthast, W., Niehoff, A., Braunstein, B., & Assheuer, J. (2005). Adaptation of morphology and function of the intrinsic foot and shank muscle to mechanical loading induced through footwear. The Impact of Technology On Sport, 505-510.
    Cavanagh, P. R., & Lafortune, M. A. (1980). Ground reaction forces in distance running. Journal of Biomechanics, 13(5), 397-406.
    Chen, I., Kuo, K., & Andriacchi, T. (1997). The influence of walking speed on mechanical joint power during gait. Gait & posture, 6(3), 171-176.
    Cheung, P. T., Sze, L. K., Chen, T. L., & Devis, I. S. (2016). Minimalist running shoes increase intrinsic and extrinsic foot muscle volume in habitual shod runners. Medicine and Science in Sports and Exercise, 48(5S), 7.
    Cohen, J. (1988). Statistical power analysis for the behavioral sciences (2nd ed.). Hillsdale, New Jersey: Erlbaum.
    Cole, G., Nigg, B., van Den Bogert, A., & Gerritsen, K. (1996). Lower extremity joint loading during impact in running. Clinical Biomechanics, 11(4), 181-193.
    Cook, S. D., Brinker, M. R., & Poche, M. (1990). Running shoes: their relationship to running injuries. Sports Medicine, 10(1), 1-8.
    Daoud, A. I., Geissler, G. J., Wang, F., Saretsky, J., Daoud, Y. A., & Lieberman, D. E. (2012). Foot strike and injury rates in endurance runners: a retrospective study. Medicine and Science in Sports and Exercise, 44(7), 1325-1334.
    Delagi, E. F., Perotto, A. O., Iazzetti, J., & Morrison, D. (2011). Anatomical guide for the electromyographer: the limbs and trunk (5 ed.). Illinois: Charles C Thomas Publisher.
    Dempster, W. T. (1955). Space requirements of the seated operator: geometrical, kinematic, and mechanical aspects of the body, with special reference to the limbs. WADC Technical Report 55159 (WADC-55-159, AD-087-892), 55-159.
    Den Otter, A., Geurts, A., Mulder, T., & Duysens, J. (2004). Speed related changes in muscle activity from normal to very slow walking speeds. Gait & Posture, 19(3), 270-278.
    Denoth, J. (1986). Load on the locomotor system and modelling. Nigg, B. M. (Ed), Biomechanics of running shoes (pp. 63-116). Champaign IL: Human Kinetics.
    Diebal, A. R., Gregory, R., Alitz, C., & Gerber, J. P. (2012). Forefoot running improves pain and disability associated with chronic exertional compartment syndrome. The American Journal of Sports Medicine, 40(5), 1060-1067.
    Elftman, H. (1939a). Forces and energy changes in the leg during walking. American Journal of Physiology-Legacy Content, 125(2), 339-356.
    Elftman, H. (1939b). The function of muscles in locomotion. American Journal of Physiology-Legacy Content, 125(2), 357-366.
    Elftman, H. (1940). The work done by muscles in running. American Journal of Physiology-Legacy Content, 129(3), 672-684.
    Friedmann-Bette, B., Bauer, T., Kinscherf, R., Vorwald, S., Klute, K., Bischoff, D., . . . Kauczor, H.-U. (2010). Effects of strength training with eccentric overload on muscle adaptation in male athletes. European Journal of Applied Physiology, 108(4), 821-836.
    Garrison, C. J., Hannon, J., Goto, S., Giesler, L. Bush, C., & Bothwell, J. M. (2018). Participants at three months post-operative anterior cruciate ligament reconstruction (ACL-R) demonstrate differences in lower extremity energy absorption contribution and quadriceps strength compared to healthy controls. The Knee, https://doi.org/10.1016/j.knee.2018.06.014.
    Goss, D. T., & Gross, M. T. (2012). Relationships among self-reported shoe type, footstrike pattern, and injury incidence. US Army Medical Department Journal, 25-30.
    Hamill, J., Gruber, A. H., & Derrick, T. R. (2012). Lower extremity joint stiffness characteristics during running with different footfall patterns. European Journal of Sport Science (ahead-of-print), 1-7.
    Hamner, S. R., Seth, A., & Delp, S. L. (2010). Muscle contributions to propulsion and support during running. Journal of Biomechanics, 43(14), 2709-2716.
    Horita, T., Komi, P., Nicol, C., & Kyröläinen, H. (2002). Interaction between pre-landing activities and stiffness regulation of the knee joint musculoskeletal system in the drop jump: implications to performance. European Journal of Applied Physiology, 88(1-2), 76-84.
    Ker, R., Bennett, M., Bibby, S., Kester, R., & Alexander, R. M. (1987). The spring in the arch of the human foot. Nature, 325(6100), 147-149.
    Landreneau, L., Watts, K., Heitzman, J., & Childers, W. (2014). Lower limb muscle activity during forefoot and rearfoot strike running techniques. International Journal of Sports Physical Therapy, 9(7), 888-897.
    Lieberman, D. E. (2012). What we can learn about running from barefoot running: an evolutionary medical perspective. Exercise and Sport Sciences Reviews, 40(2), 63-72.
    Lieberman, D. E., Venkadesan, M., Werbel, W. A., Daoud, A. I., D’Andrea, S., Davis, I. S., . . . Pitsiladis, Y. (2010). Foot strike patterns and collision forces in habitually barefoot versus shod runners. Nature, 463(7280), 531-535.
    Magness, S. (2013). The science of running: How to find your limit and train to maximize your performance. San Rafael: Origin Press.
    McClay, I. (2000). The evolution of the study of the mechanics of running. Relationship to injury. Journal of the American Podiatric Medical Association, 90(3), 133-148.
    Milner, C. E., Ferber, R., Pollard, C. D., Hamill, J., & Davis, I. S. (2006). Biomechanical factors associated with tibial stress fracture in female runners. Medicine and Science in Sports and Exercise, 38(2), 323.
    Nadeau, S., Gravel, D., & Olney, S. J. (2001). Determinants, limiting factors, and compensatory strategies in gait. Critical Reviews™ in Physical and Rehabilitation Medicine, 13(1), 1-24.
    Neptune, R. R., Zajac, F. E., & Kautz, S. A. (2004). Muscle mechanical work requirements during normal walking: the energetic cost of raising the body's center-of-mass is significant. Journal of Biomechanics, 37(6), 817-825.
    Novacheck, T. (1994). Walking, running, and sprinting: a three-dimensional analysis of kinematics and kinetics. Instructional Course Lectures, 44, 497-506.
    Ogueta-Alday, A., Rodríguez-Marroyo, J. A., & García-López, J. (2013). Rearfoot Striking Runners Are More Economical than Midfoot Strikers. Medicine & Science in Sports & Exercise, 46, 580-585.
    Olney, S. J., Griffin, M. P., & McBride, I. D. (1994). Temporal, kinematic, and kinetic variables related to gait speed in subjects with hemiplegia: a regression approach. Physical Therapy, 74(9), 872-885.
    Ounpuu, S. (1989). The biomechanics of running: a kinematic and kinetic analysis. Instructional Course Lectures, 39, 305-318.
    Perl, D. P., Daoud, A. I., & Lieberman, D. E. (2012). Effects of footwear and strike type on running economy. Medicine & Science in Sports & Exercise, 44(7), 1335-1343.
    Rao, U.B., & Joseph, B. (1992). The influence of footwear on the prevalence of flat foot. Journal of Bone and Joint Surgery (British volume), 74B(4), 525-527.
    Requiao, L., Nadeau, S., Milot, M., Gravel, D., Bourbonnais, D., & Gagnon, D. (2005). Quantification of level of effort at the plantarflexors and hip extensors and flexor muscles in healthy subjects walking at different cadences. Journal of Electromyography and Kinesiology, 15(4), 393-405.
    Robbins, S. E., & Hanna, A. M. (1987). Running-related injury prevention through barefoot adaptations. Medicine & Science in Sports & Exercise, 19(2), 148-156.
    Roberts, T. J. (2002). The integrated function of muscles and tendons during locomotion. Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 133(4), 1087-1099.
    Sasaki, K., & Neptune, R. R. (2010). Individual muscle contributions to the axial knee joint contact force during normal walking. Journal of Biomechanics, 43(14), 2780-2784.
    Shih, Y., Lin, K.-L., & Shiang, T.-Y. (2013). Is the foot striking pattern more important than barefoot or shod conditions in running? Gait & Posture, 38(3), 490-494.
    Shinohara, J. & Gribble, P. (2013). Effects of five-toed socks with multiple rubber bits on the foot sole on static postural control in healthy young adults. The Journal of Physical Fitness and Sports Medicine, 2(1), 135-141.
    Stefanyshyn, D. J., & Nigg, B. M. (1997). Mechanical energy contribution of the metatarsophalangeal joint to running and sprinting. Journal of Biomechanics, 30(11), 1081-1085.
    Stefanyshyn, D. J., & Nigg, B. M. (1998). Contribution of the lower extremity joints to mechanical energy in running vertical jumps and running long jumps. Journal of Sports Sciences, 16(2), 177-186.
    Teixeira-Salmela, L. F., Nadeau, S., Mcbride, I., & Olney, S. J. (2001). Effects of muscle strengthening and physical conditioning training on temporal, kinematic and kinetic variables during gait in chronic stroke survivors. Journal of Rehabilitation Medicine, 33(2), 53-60.
    Teixeira-Salmela, L. F., Nadeau, S., Milot, M.-H., Gravel, D., & Requião, L. F. (2008). Effects of cadence on energy generation and absorption at lower extremity joints during gait. Clinical Biomechanics, 23(6), 769-778.
    Williams, D. S., McClay, I. S., & Manal, K. T. (2000). Lower extremity mechanics in runners with a converted forefoot strike pattern. Journal of Applied Biomechanics, 16(2), 210-218.
    Williams III, D. B., Green, D. H., & Wurzinger, B. (2012). Changes in lower extremity movement and power absorption during forefoot striking and barefoot running. International Journal of Sports Physical Therapy, 7(5), 525.
    Winter, D. A. (1983a). Energy generation and absorption at the ankle and knee during fast, natural, and slow cadences. Clinical Orthopaedics and Related Research, 175, 147-154.
    Winter, D. A. (1983b). Moments of force and mechanical power in jogging. Journal of Biomechanics, 16(1), 91-97.
    Winter, D. A. (1991). Biomechanics and motor control of human gait: normal, elderly and pathological (2nd ed.). Waterloo, Ont: University of Waterloo Press.
    Winter, D. A. (2009). Biomechanics and motor control of human movement (4th ed.). Hoboken, New Jersey: John Wiley & Sons.

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