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首页> 外文期刊>Measurement and Control: Journal of the Institute of Measurement and Control >Elaboration of the measuring procedure facilitating precision assessment of the geometry of mandible anatomical model manufactured using additive methods
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Elaboration of the measuring procedure facilitating precision assessment of the geometry of mandible anatomical model manufactured using additive methods

机译:促进使用添加剂方法制造的颌骨解剖模型几何形状的精确评估测量过程

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摘要

This article presents a procedure for minimizing ATOS II Triple Scan system measurement errors during the verification of geometrical accuracy of the final lateral-mandibular condyle model. The process of manufacturing a template geometrically similar to that of lateral-mandibular condyle was performed on the five-axis machining centre 100 DMU MonoBlock. The next stage of the research was related to the implementation of the measurement system procedure on the template model, and the 12 anatomical models of the mandibular body-condyle were manufactured using five different additive methods. As a result of the comparison of anatomical models of the mandibular body-condyle designed in reverse engineering/computer-aided design systems and manufactured using additive methods, the average results of histograms and parameters determining the accuracy of geometry of 12 models were obtained. In the case of models manufactured using fused deposition modelling, PolyJet and selective laser sintering techniques, a unimodal distribution was observed in the same way as in the template model. The best results were obtained in the case of models manufactured using selective laser sintering techniques (standard deviation = 0.06 mm). In the case of fused deposition modelling and PolyJet, a similar value of standard deviation (about 0.07 mm) was observed, despite the fact that the layer thickness for PolyJet technology was 0.016 mm. In the case of melted and extruded modelling and ColorJet Printing technologies, there was a bimodal distribution. Through the implementation of own template and measurement method, it will be easier to estimate errors in the manufacturing of anatomical models of lateral-mandibular condyle part. As a result, medical models, surgical templates and implants will be manufactured more accurately and precisely, which will significantly reduce intraoperative complications during the surgical procedure in this area.
机译:本文介绍了在验证最终横向下颌髁型模型的几何准确性期间最小化ATOS II三扫描系统测量误差的过程。在五轴加工中心100dmu单块上进行几何上类似于横向下颌髁的模板的过程。研究的下一阶段与模板模型上的测量系统程序的实施有关,并且使用五种不同的添加方法制造下颌体髁的12个解剖模型。由于在逆向工程/计算机辅助设计系统中设计的下颌体髁的解剖模型和使用添加剂方法制造的比较,获得了直方图的平均结果和确定12型型号的几何学精度的参数。在使用熔融沉积建模,多射精和选择性激光烧结技术制造的模型的情况下,以与模板模型相同的方式观察到单峰分布。在使用选择性激光烧结技术(标准差= 0.06mm)制造的模型的情况下获得了最佳结果。在融合沉积建模和多射精的情况下,观察到类似的标准偏差值(约0.07mm),尽管PolyJet技术的层厚度为0.016mm。在熔化和挤出建模和ColorJet印刷技术的情况下,有一种双峰分布。通过实施自己的模板和测量方法,更容易估计横向下颌髁部分的解剖模型的制造中的错误。结果,将更准确,精确地制造医疗模型,外科模板和植入物,这将在该地区的外科手术过程中显着降低术中并发症。

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