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The mechanism analysis of bipolar vessel sealing in vitro using EDM model

机译:EDM模型体外双极血管封闭的机理分析

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Vessel sealing (VS) is an advanced hemostasis in electrosurgery; however, there is still great potential for improvement because the mechanism of the thermal process has yet to be fully understood. Based on key factors influencing VS effect, the tissue fusion mechanism of bipolar VS was discussed in this work from the view of an engineering machining method: electrical discharge machining (EDM). Vessel lumen contact modality and lumen wall micro-discharge modality were proposed in this study. Lumen contact modality corresponds to the impedance sealing mechanism and the lumen wall micro-discharge modality means an EDM fusion mechanism. In micro-discharge modality, heat is generated inside of vessel and tissue is fused with the advantages of less collateral thermal damage. Ex vivo experiments validated the analysis of lumen micro-discharge modality with rabbit arteries using a self-made low output power generator and device. Experimental results showed that a higher burst pressure (BP) was achieved with diameter of 2.0 mm at a gap of 0.7 mm than that of diameter of 4.0 mm at a gap of 0.2 mm. A histological examination showed that the lateral thermal damage in the micro-sparkle modality extends less from the edge of the electrode. The analysis may contribute to further understand physical essence of bipolar VS, and might contribute to improve VS tissue effect.
机译:血管密封(VS)是电外科手术中的一种先进止血技术。但是,由于热过程的机理尚未完全了解,因此仍有很大的改进潜力。基于影响VS效应的关键因素,从工程加工方法:电火花加工(EDM)的角度探讨了双极VS的组织融合机理。本研究提出了血管腔的接触方式和腔壁微放电方式。内腔接触方式对应于阻抗密封机制,内腔壁微放电方式意味着EDM融合机制。在微放电方式中,血管内部产生热量,组织融合在一起,具有较少的附带热损害的优点。体外实验验证了使用自制的低输出功率发生器和设备对兔动脉腔微放电形态的分析。实验结果表明,在间隙为0.7 mm的情况下,直径为2.0 mm,在间隙为0.2 mm的情况下,直径为4.0 mm,可以实现更高的破裂压力(BP)。组织学检查表明,微闪光形态的侧向热损伤从电极边缘延伸的较少。该分析可能有助于进一步了解双相VS的物理本质,并可能有助于改善VS组织的效果。

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