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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Characterization and fatigue damage of plasma sprayed HAp top coat with Ti and HAp/Ti bond coat layers on commercially pure titanium substrate.
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Characterization and fatigue damage of plasma sprayed HAp top coat with Ti and HAp/Ti bond coat layers on commercially pure titanium substrate.

机译:在商业纯钛基材上等离子喷涂的具有Ti和HAp / Ti粘结层的等离子喷涂HAp面漆的特性和疲劳损伤。

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摘要

The surface of commercially pure Ti (cp-Ti) substrate was grit-blasted with Al(2)O(3) powders and then wet-blasted with HAp/Ti mixed powders at room temperature. Then plasma spraying with Ti powders or HAp/Ti mixed powders on the blasted surface was carried out to form a bond coat layer, denoted as T50 and T100 bond coat for the former and HT100 bond coat for the later. The HAp top coat was subsequently sprayed with 100 mum thickness. The XRD patterns showed that the as-sprayed HT100 bond coat layer was mainly composed of HAp with minor components of Ti and TiO(2). EDS analysis also showed there co-existed HAp and Ti without reaction in the HT100 bond coat layer. Some cracks were observed in the bond coat and the top coat layers after compression-compression and tension-tension fatigue tests. The HT100 bond coat specimen produced less AE signal and a small amount of debonding and cracking in compression-compression fatigue test. The HT100 specimen could survive up to 10 million cycles at stress amplitude of 200 MPa, which is high enough compared to the maximum stress in bones: the order of 100 MPa. The degree of damage (debonding and cracking) in tension-tension fatigue test was more severe than that in compression-compression fatigue testing.
机译:商业纯Ti(cp-Ti)基板的表面用Al(2)O(3)粉末进行喷砂处理,然后在室温下用HAp / Ti混合粉末进行湿喷处理。然后在喷砂表面上等离子喷涂Ti粉末或HAp / Ti混合粉末,以形成粘结涂层,前者表示为T50和T100粘结涂层,后者表示为HT100粘结涂层。随后将HAp面漆喷涂100微米的厚度。 X射线衍射图谱表明,喷涂后的HT100粘结涂层主要由HAp组成,并具有少量的Ti和TiO(2)。 EDS分析还显示,HT100粘结涂层中没有反应发生的HAp和Ti共存。在压缩-压缩和拉伸-拉伸疲劳试验之后,在粘结涂层和面涂层中观察到一些裂缝。 HT100粘结涂层试样在压缩-压缩疲劳试验中产生较少的AE信号,并产生少量的剥离和开裂。 HT100标本在200 MPa的应力振幅下可以承受多达1000万个循环,与骨骼中的最大应力(100 MPa的数量级)相比足够高。拉伸-拉伸疲劳试验中的损伤程度(剥离和破裂)比压缩-压缩疲劳试验中的损伤程度更严重。

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