共 24 条
- [1] Baibhav B, Gedela M, Moulton M, Et al., Role of invasive functional assessment in surgical revascularization of coronary artery disease, Circulation, 137, pp. 1731-1739, (2018)
- [2] Gaudino M, Antoniades C, Benedetto U, Et al., Mechanisms, consequences, and prevention of coronary graft failure, Circulation, 136, pp. 1749-1764, (2017)
- [3] Ghista DN, Kabinejadian F., Coronary artery bypass grafting hemodynamics and anastomosis design: a biomedical engineering review, Biomed Eng Online, 12, (2013)
- [4] Wlasitsch-Nagy Z, Balint A, Konig-Peter A, Et al., New computational fluid dynamics-based method for morphological and functional assessment in cardiovascular skill training, J Vasc Surg Cases Innov Tech, 8, pp. 770-778, (2022)
- [5] Tsukui H, Shinke M, Park YK, Yamazaki K., Longer coronary anastomosis provides lower energy loss in coronary artery bypass grafting, Heart Vessels, 32, pp. 83-89, (2017)
- [6] Lytle BW., Anastomotic techniques, Oper Tech Thorac Cardiovasc Surg, 5, pp. 222-230, (2000)
- [7] Richter Y, Edelman ER., Cardiology is flow, Circulation, 113, pp. 2679-2682, (2006)
- [8] Keynton RS, Evancho MM, Sims RL, Rodway NV, Gobin A, Rittgers SE., Intimal hyperplasia and wall shear in arterial bypass graft distal anastomoses: an in vivo model study, J Biomech Eng, 123, pp. 464-473, (2001)
- [9] Shintani Y, Iino K, Yamamoto Y, Kato H, Takemura H, Kiwata T., Analysis of computational fluid dynamics and particle image velocimetry models of distal-end side-to-side and end-to-side anastomoses for coronary artery bypass grafting in a pulsatile flow, Circ J, 82, pp. 110-117, (2017)
- [10] Loth F, Fischer PF, Bassiouny HS., Blood flow in end-to-side anastomoses, Annu Rev Fluid Mech, 40, pp. 367-393, (2008)