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3D 打印系统和后固化气氛对增材制造咬合垫材料的微观和纳米磨损的影响。

Effect of 3D printing system and post-curing atmosphere on micro- and nano-wear of additive-manufactured occlusal splint materials.

机构信息

Department of Biomaterials Science, Turku Clinical Biomaterials Centre - TCBC, Institute of Dentistry, University of Turku, Itäinen Pitkäkatu 4B, Turku, 20520, Finland; Department of Advanced Prosthodontics, Tokyo Medical and Dental University - TMDU, 1-5-45, Yushima, Bunkyo-ku, Tokyo, 113-8510, Japan.

Department of Biomaterials Science, Turku Clinical Biomaterials Centre - TCBC, Institute of Dentistry, University of Turku, Itäinen Pitkäkatu 4B, Turku, 20520, Finland; Department of Pediatric Dentistry / Special Needs Dentistry, Tokyo Medical and Dental University - TMDU, 1-5-45, Yushima, Bunkyo-ku, Tokyo, 113-8510, Japan.

出版信息

J Mech Behav Biomed Mater. 2023 Jun;142:105799. doi: 10.1016/j.jmbbm.2023.105799. Epub 2023 Mar 24.

Abstract

Although additive manufacturing has been widely applied for occlusal splint (OS) fabrication, it is still unclear whether 3D printing system and post-curing atmosphere would play a role in the wear resistance of additive-manufactured OS. Therefore, the aim of this study was to evaluate the effect of 3D printing system (liquid crystal display (LCD) and digital light processing (DLP)) and post-curing atmosphere (air and nitrogen gas (N)) on the wear resistance of hard and soft OS materials for additive-manufactured OSs (KeySplint® Hard and Soft). The evaluated properties were microwear (by two-body wear test) and nano-wear resistances (by nanoindentation wear test) as well as flexural strength and flexural modulus (by three-point bending test), surface microhardness (by Vickers hardness test), and nanoscale elastic modulus (reduced elastic modulus) and nano surface hardness (by nanoindentation test). For the hard material, the surface microhardness, microwear resistance, reduced elastic modulus, nano surface hardness, and nano-wear resistance were significantly affected by the printing system (p < 0.05), while all the evaluated properties except flexural modulus were significantly affected by the post-curing atmosphere (p < 0.05). Meanwhile, both the printing system and post-curing atmosphere significantly affected all the evaluated properties (p < 0.05). The specimens additive-manufactured by DLP printer tended to show higher wear resistance in the hard material groups and lower wear resistance in the soft material groups when compared to those by LCD printer. The post-curing at N atmosphere significantly enhanced the microwear resistance of hard material groups additive-manufactured by the DLP printer (p < 0.05) and soft material groups additive-manufactured by the LCD printer (p < 0.01), while it significantly enhanced the nano-wear resistance of both hard and soft material groups regardless of the printing system (p < 0.01). It can be concluded that 3D printing system and post-curing atmosphere affect the micro- and nano-wear resistance of tested additively manufactured OS materials. In addition, it can be also concluded that the optical printing system providing higher wear resistance depends on the material type, and using nitrogen gas as a protection gas during post-curing enhances the wear resistance of tested materials.

摘要

虽然增材制造已广泛应用于咬合垫(OS)的制作,但 3D 打印系统和后固化气氛是否会影响增材制造 OS 的耐磨性仍不清楚。因此,本研究旨在评估 3D 打印系统(液晶显示器(LCD)和数字光处理(DLP))和后固化气氛(空气和氮气(N))对增材制造 OS 软硬 OS 材料耐磨性的影响。评估的性能包括微观磨损(通过二体磨损试验)和纳米磨损阻力(通过纳米压痕磨损试验)以及弯曲强度和弯曲模量(通过三点弯曲试验)、表面显微硬度(通过维氏硬度试验)和纳米尺度弹性模量(弹性模量降低)和纳米表面硬度(通过纳米压痕试验)。对于硬材料,表面显微硬度、微观磨损阻力、弹性模量降低、纳米表面硬度和纳米磨损阻力均受到打印系统的显著影响(p<0.05),而除弯曲模量外,所有评估性能均受到后固化气氛的显著影响(p<0.05)。同时,打印系统和后固化气氛均显著影响所有评估性能(p<0.05)。与 LCD 打印机相比,DLP 打印机制造的试件在硬材料组中表现出更高的耐磨性,在软材料组中表现出更低的耐磨性。在 N 气氛下后固化显著提高了 DLP 打印机制造的硬材料组的微观磨损阻力(p<0.05)和 LCD 打印机制造的软材料组的微观磨损阻力(p<0.01),而与打印系统无关,它显著提高了硬材料和软材料两组的纳米磨损阻力(p<0.01)。综上所述,3D 打印系统和后固化气氛影响测试的增材制造 OS 材料的微观和纳米磨损阻力。此外,还可以得出结论,提供更高耐磨性的光学打印系统取决于材料类型,并且在后固化期间使用氮气作为保护气体可以提高测试材料的耐磨性。

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