[1] Aerts P, Ker RF, De Clercq. The mechanical Properties of the Human Heel pad: A Paradox Resolved. J. Biomech. 1995; 28; 1299-1308
[2] Aerts P, Ker RF, De Clercq D, Ilsley DW. The effects of isolation on the mechanics of the human heel pad. J Anat. 1996; 188: 417-423
[3] Armstrong DG, Peters EJG, Athanasiou KA, Lavery LA. Is there a
critical level of plantar foot pressure to identify patients at risk forneuropathic foot ulceration? J Foot Ankle Surg. 1998;
Vol.37:303-307
[4] Bennett MB, Ker AR. The mechanical properties of the human subcalcaneal fat pad in compression. J Anat. 1990; 171: 131-138
[5] Blechschmidt E. The Structure of the Calcaneal Padding. Foot Ankle. 1982; 2; 260-283
[6] Bojsen-Møller F, Jørgensen U. The plantar soft tissue: functional anatomy and clinical applications. In: Jahss MM, editor. Disorders of the foot and ankle, medical and surgical management. Philadelphia: Saunders; 1991, 532-540
[7] Fung YC. The Meaning of the Constitutive Equation; Biomechanics Mechanical Properties of Living Tissues, 2nd ed. New York: Springer-Verlag; 1993; 23-65
[8] Gefen A, Ravid MM, Itzchak Y. In vivo biomechanical behavior of the human heel pad during the stance phase of gait. J Biomech. 2001; 34: 1661-1665.
[9] Hsu TC, Lee YS, Shau YW. Biomechanics of the heel pad for type II diabetic patients. Clin. Biomech. 2002; 17; 291–296
[10] Hsu TC, Wang CL, Tsai WC, Kuo JK, Tang FT. Comparison of the mechanical properties of the heel pad between young and elderly adults. Arch Phys Med Rehabil. 1998; 79: 1101-1104
[11] Jørgensen U, Ekstrand J. Significance of heel pad confinement for the shock absorption at heel strike. Int J Sports Med. 1988; 9: 468-473
[12] Kinoshita H, Francis, Murase T, Kawai S, Ogawa Y. The Mechanical Properties of the Heel Pad in Elderly Adults. Eur J Appl Physiol 1996; 43; 404-409
[13] Tsung-Tsong Wu; Piezoelectric Waves and Acoustic Wave Devices
[14] Turgut A, Göktürk E, Köse N, Seber S, Hazer B, Günal I. The relationship of heel pad elasticity and plantar heel pain. Clin Orthop Rel Res. 1999; 360: 191-196
[15] Vogt M, Scharemberg S, Scharemberg R, Hoffmann K, Altmeyer P, Ermert H. A High Frequency Ultrasound Elastography System for in Vivo Skin Elasticity Imaging. Proc. World Cong. On Ultrason. 2003; 393–396
[16] Wang CL, Hsu TC, Shau YW, Shieh JY, Hsu KH. Ultrasonographic measurement of the mechanical properties of the sole under the metatarsal heads. J Orthop. Res. 1999; 17; 709–713
[17] Wilhelm Flugge.Viscoelasticity 1904
[18] Zheng YP, Choi YKC, Wong K. Biomechanical Assessment of Plantar Foot Tissue in Diabetic Patients Using an Ultrasound Indentation System. Ultrasound Med. Biol. 2000; 26; 451–456
[19] 蔡富全; 超音波逆散射訊號之統計模型與應用; 中 原 大 學醫 學 工 程 學 系碩 士 學 位 論 文; 2001
[20] 陳尚頡; 糖尿病患前足部足底軟組織機械性質之研究; 國立臺灣大學應用力學研究所碩士論文; 2002[21] 許智欽; 足跟脂肪墊之機械特性; 長庚大學臨床醫學研究所博士論文; 2002[22] 許至淵; 足跟墊超音波之動態彈性影像; 國立臺灣大學應用力學研究所碩士論文; 2003[23] 陳佳琳; 貼紥對足跟墊避震能力之影響; 台灣大學物理治療學研究所碩士論文; 2004