Journal of Innovative Optical Health Sciences, 2018, 11 (6): 1850033, Published Online: Dec. 27, 2018  

Near-infrared laser irradiation of a multilayer agar-gel tissue phantom to induce thermal effect of traditional moxibustion

Author Affiliations
1 Department of Mechanical Engineering, Graduate School, Kookmin University, Seoul 02707, Republic of Korea
2 Department of Radiation Oncology, SMG-Seoul National University Boramae Medical Center, Seoul 07061, Republic of Korea
3 School of Mechanical Engineering and Department of Integrative Biomedical Science and Engineering, Graduate School, Kookmin University, Seoul 02707, Republic of Korea
Copy Citation Text

Jiyong Cho, Bibin Prasad, Jung Kyung. Near-infrared laser irradiation of a multilayer agar-gel tissue phantom to induce thermal effect of traditional moxibustion[J]. Journal of Innovative Optical Health Sciences, 2018, 11(6): 1850033.

References

[1] J. R. Peterson, “Acupuncture in the 1990s,” Arch. Fam. Med. 5, 237–240 (1996).

[2] J. Y. Cha, H. S. Myoung, S. P. Cho, K. J. Lee, “Development of deep-heating stimulation system for substituting the heat effect of moxibustion,” J. Inst. Electron. Eng. Korea 46, 50–57 (2009). Google Scholar

[3] D. E. Yoon, B. K. Jo, “A study on the variations of the body trunk temperature by the drug-pad moxibustion method,” Trans. Kor. Inst. Elec. Engr. 55, 386–396 (2006). Google Scholar

[4] H. Deng, X. Shen, “The Mechanism of Moxibustion: Ancient Theory and Modern Research,” Evid.-Based Complementary Altern. Med. 2013, 379291 (2013).

[5] H. Li and S. Liu, “2 Cases of moxibustion allergy,” J. Tradit. Chin. Med. 17, 859–860 (2008). Google Scholar

[6] A. Chiba, H. Nakanishi, S. Chichibu, “Thermal and antiradical properties of indirect moxibustion,” Am. J. Chin. Med. 25, 281–287 (1997). Link, ISI, Google Scholar

[7] F. Wu, R. Zhang, X. Shen, L. Lao, “Preliminary Study on Pain Reduction of Monosodium Iodoacetate-Induced Knee Osteoarthritis in Rats by Carbon Dioxide Laser Moxibustion,” Evid.-Based Complementary Altern. Med. 2014, 754304 (2014).

[8] H. Mao, J. J. Mao, M. Guo, K. Cheng, J. Wei, X. Shen, X. Shen, “Effects of Infrared Laser Moxibustion on Cancer-Related Fatigue: A Randomized, Double-Blind, Placebo-Controlled Trial,” Cancer 122, 3667–3672 (2016).

[9] B. Jung, C. S. Kim, B. Choi, J. S. Nelson, “Hand-held pulsed photothermal radiometry system to estimate epidermal temperature rise during laser therapy,” Skin Res. Technol. 12, 292–297 (2006).

[10] S. C. Gnyawali, Y. Chen, F. Wu, K. E. Bartels, J. P. Wicksted, H. Liu, C. K. Sen, W. R. Chen, “Temperature measurement on tissue surface during laser irradiation,” Med. Biol. Eng. Comput. 46, 159–168 (2008).

[11] Y. Nawata, K. Kaneko, “Measurement of temperature distribution in phantom body by an ultrasonic CT method,” Proc. 5th ASME/JSME Joint Thermal Eng. Conf. (1999). Google Scholar

[12] M. Mital, E. P. Scott, “Thermal detection of embedded tumors using infrared imaging,” J. Biomech. Eng. 129, 33–39 (2007). Crossref, ISI, Google Scholar

[13] A. D. Reid, M. R. Gertner, M. D. Sherar, “Temperature measurement artefacts of thermocouples and fluoroptic probes during laser irradiation at 810 nm,” Phys. Med. Biol. 46, N149–N157 (2001).

[14] M. T. Hossain, B. Prasad, K. S. Park, H. J. Lee, Y. H. Ha, S. K. Lee, J. K. Kim, “Simulation and experimental evaluation of selective heating characteristics of 13.56 MHz radiofrequency hyperthermia in phantom models,” Int. J. Precis. Eng. Manuf. 17, 253–256 (2016).

[15] B. Prasad, Y. H. Ha, S. K. Lee, J. K. Kim, “Patient-specific simulation for selective liver tumor treatment with noninvasive radiofrequency hyperthermia,” J. Mech. Sci. Technol. 30, 5837–5845 (2016).

[16] B. Prasad, S. Kim, W. Cho, S. Kim, J. K. Kim, “Effect of tumor properties on energy absorption, temperature mapping, and thermal dose in 13.56-MHz radiofrequency hyperthermia,” J. of Therm. Biol. 74, 281–289 (2018).

[17] J. Cho, H. Byun, S. D. Lee, J. K. Kim, “Temperature distribution in deep tissue phantom during laser irradiation at 1,064 nm measured by thermocouples and thermal imaging technique,” J. Vis. 14, 265–272 (2011). Crossref, ISI, Google Scholar

[18] V. G. Liu, T. M. Cowan, S. W. Jeong, S. L. Jacques, E. C. Lemley, W. R. Chen, “Selective photothermal interaction using an 805-nm diode laser and indocyanine green in gel phantom and chicken breast tissue,” Lasers Med. Sci. 17, 272–279 (2002).

[19] J. F. Burke, I. V. Yannas, W. C. Quinby Jr, C. C. Bondoc, W. K. Jung, “Successful use of a physiologically acceptable artificial skin in the treatment of extensive burn injury,” Ann. Surg. 194, 413–428 (1981).

[20] F. Manns, P. J. Milne, X. Gonzalez-Cirre, D. B. Denham, J. M. Parel, D. S. Robinson, “In situ temperature measurements with thermocouple probes during laser interstitial thermotherapy (LITT): Quantification and correction of a measurement artifact,” Lasers Surg. Med. 23, 94–103 (1998).

[21] A. Robert, M. D. Weiss, “Comparison of endovenous radiofrequency versus 810 nm diode laser occlusion of large veins in an animal model,” Am. Soc. Dermatol. Surg. 28, 56–61 (2002). Google Scholar

[22] I. Stadler, R. J. Lanzafame, R. Evans, V. Narayan, B. Dailey, N. Buehner, J. O. Naim, “830-nm irradiation increases the wound tensile strength in a diabetic murine model,” Lasers Surg. Med. 28, 220–226 (2001).

[23] F. Xu, T. J. Lu, K. A. Seffen, E. Y. K. Ng, “Mathematical modeling of skin bioheat transfer,” Appl. Mech. Rev. 62, 1–35 (2009). Crossref, ISI, Google Scholar

[24] B. J. Jeon, H. G. Choi, “Heat-transfer analysis of indirect moxibustion using unsteady conjugate heat-transfer solutions,” J. Mech. Sci. Technol. 24, 2051–2057 (2010).

[25] A. M. Elliott, A. M. Shetty, J. Wang, J. D. Hazle, R. J. Stafford, “Use of gold nanoshells to constrain and enhance laser thermal therapy of metastatic liver tumours,” Int. J. Hypertherm. 26, 434–440 (2010).

[26] M. Zhang, Z. Che, J. Chen, H. Zhao, L. Yang, Z. Zhong, J. Lu, “Experimental determination of thermal conductivity of water-agar gel at different concentrations and temperatures,” J. Chem. Eng. Data 56, 859–864 (2011).

[27] D. Haemmerich, D. J. Schutt, I. dos Santos, J. G. Webster, D. M. Mahvi, “Measurement of temperature-dependent specific heat of biological tissues,” Physiol. Meas. 26, 59–67 (2005).

[28] I. S. Saidi, “Transcutaneous optical measurement of hyperbilirubinemia in neonates,” Ph.D. Dissertation, Rice University, Houston, TX, USA (1992). Google Scholar

[29] P. A. Hasgall, F. Di Gennaro, C. Baumgartner, E. Neufeld, B. Lloyd, M. C. Gosselin, D. Payne, A. Klingenbock, N. Kuster, “IT’IS Database for thermal and electromagnetic parameters of biological tissues,” Version 4.0, www.itis.ethz.ch/database (2018). Google Scholar

[30] A. Banerjee, A. A. Ogale, C. Das, K. Mitra, C. Subramanian, “Temperature distribution in different materials due to short pulse laser irradiation,” Heat Transfer Eng. 26, 41–49 (2007).

[31] J. Jiao, Z. Guo, “Thermal interaction of short-pulsed laser focused beams with skin tissues,” Phys. Med. Biol. 54, 4225–4241 (2009).

Jiyong Cho, Bibin Prasad, Jung Kyung. Near-infrared laser irradiation of a multilayer agar-gel tissue phantom to induce thermal effect of traditional moxibustion[J]. Journal of Innovative Optical Health Sciences, 2018, 11(6): 1850033.

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!