As a result of the recently increasing demands on high-performance aero-engine,the machining accuracy of blade profile is becoming more stringent. However,in the current profile,precision milling,grinding or near-nets...As a result of the recently increasing demands on high-performance aero-engine,the machining accuracy of blade profile is becoming more stringent. However,in the current profile,precision milling,grinding or near-netshape technology has to undergo a tedious iterative error compensation. Thus,if the profile error area and boundary can be determined automatically and quickly,it will help to improve the efficiency of subsequent re-machining correction process. To this end,an error boundary intersection approach is presented aiming at the error area determination of complex profile,including the phaseⅠof cross sectional non-rigid registration based on the minimum error area and the phaseⅡof boundary identification based on triangular meshes intersection. Some practical cases are given to demonstrate the effectiveness and superiority of the proposed approach.展开更多
基金Hunan Natural Science Foundation Project(2021JJ40551)Scientific Research Project of Hunan Administration of Traditional Chinese Medicine(D2022053)Scientific Research Project of Hunan Provincial Health Commission(B202313057639).
文摘背景:钛及钛合金因具有良好的机械性能和生物惰性等被广泛应用于骨科植入领域。目的:综述不同的生物分子搭载到钛植入物表面对骨整合的影响。方法:由第一作者应用计算机以"titanium,osseointegration,biochemical modification,coating"为英文检索词,以"钛,骨整合,生物化学改性,涂层"为中文检索词,应用计算机检索Pub Med、Web of Science、维普、万方、中国知网数据库中1991-2020年已发表的相关文献,并进行筛选、归纳与总结,最终纳入104篇相关文献进行综述。结果与结论:钛植入体表面单一的物理和化学修饰方式主要是间接影响细胞行为,而生物分子涂层可以直接参与生物过程,这在诱导骨形成方面更有效,不仅显著提高了骨与植入体之间早期的骨整合,还降低了因炎症反应导致的手术失败及假体翻修发生率。虽然钛植入物的生物化学改性可以直接参与生物过程,但是目前还有许多问题尚待解决:生物活性物质在钛植入体表面的长期稳定性、释放的速率以及钛植入物与机体细胞和组织之间的作用机制问题还需进一步研究,从而得到骨与钛植入物之间的早期和长期的骨整合。
基金supported by the Aeronautical Science Foundation of China (No.20200016112001)。
文摘As a result of the recently increasing demands on high-performance aero-engine,the machining accuracy of blade profile is becoming more stringent. However,in the current profile,precision milling,grinding or near-netshape technology has to undergo a tedious iterative error compensation. Thus,if the profile error area and boundary can be determined automatically and quickly,it will help to improve the efficiency of subsequent re-machining correction process. To this end,an error boundary intersection approach is presented aiming at the error area determination of complex profile,including the phaseⅠof cross sectional non-rigid registration based on the minimum error area and the phaseⅡof boundary identification based on triangular meshes intersection. Some practical cases are given to demonstrate the effectiveness and superiority of the proposed approach.