首页> 外文会议>ASME biennial conference on engineering systems design and analysis >LASER SINTERING PROCESS ANALYSIS: APPLICATION TO CHROMIUM-COBALT ALLOYS FOR DENTAL PROSTHESIS PRODUCTION
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LASER SINTERING PROCESS ANALYSIS: APPLICATION TO CHROMIUM-COBALT ALLOYS FOR DENTAL PROSTHESIS PRODUCTION

机译:激光烧结过程分析:牙科假体生产铬 - 钴合金的应用

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Rapid prototyping is an effective way to build prototypes. This process, now called AM (Additive Manufacturing), is suited to realize functional single part or for small batch production. Evolution of AM is now in the way of serial production. In the field of medical applications and more precisely dentistry, AM is a way of increasing numbers of elements produced compared to classic production by lost wax casting. To increase production quality, it is necessary to have a high monitoring and control of process and properties of production. In the case of AM using (DMLS: Direct Metal Laser Sintering), a lot of parameters can have an influence on the elements production quality such as powders quality, laser behavior or sintering time... The goal of this work is to study the serial production quality using a DMLS system (Phenix System PM100). This system is used in production of cobalt-chromium elements for dental applications. The study was done on a period of 6 months with recording results of almost 120 productions and was focused on a quantity of around 7000 dental elements produced. In a first part, number of elements per production, room temperature and hygrometry, powder reloading, maintenance, production stops and new operators are recorded. Material properties of some elements produced such as dimensional properties, density, porosity and crystallographic phases are monitored. Materials analysis has led to ensure the elements quality produced by the Phenix system and results are discussed in this work. In a second part, we focused on the production analysis with the recorded data. Analysis leads to define 2 ratios: production ratio R_p defined as [Elements Number]/ [Productions Number] and the efficiency production P_E defined as the ratio R_p/[Stopped production number]. By calculating R_p and P_E values with collected data on the Phenix system, a PM 100 efficiency production modeling has been established. The PM 100 production modeling can help to understand that increasing the production ratio R_p value leads to have efficiency production P_E high variation. On another hand, collecting production parameters leads to increase production efficiency.
机译:快速原型设计是构建原型的有效方法。该过程现在称为AM(添加剂制造),适用于实现功能单一部分或小批量生产。 AM的演变现在处于连续生产的方式。在医疗应用领域,更精确的牙科,AM是通过丢失的蜡铸造而增加的元素数量增加的方式。为了提高生产质量,有必要具有高监测和控制生产的工艺和性质。在AM使用的情况下(DMLS:直接金属激光烧结),大量参数可以对元素生产质量的影响,例如粉末质量,激光行为或烧结时间......这项工作的目标是研究使用DMLS系统(Phenix系统PM100)串行生产质量。该系统用于生产牙科应用的钴铬元件。该研究在6个月的时间内完成,记录结果近120次制造,并专注于产生约7000个牙科元素的数量。在第一部分,记录每种生产元素数,记录室温和湿度测定,粉末重装,维护,生产停止和新操作员。监测诸如尺寸特性,密度,孔隙率和晶形相的一些元素的材料特性。材料分析导致了确保在这项工作中讨论了Phenix系统和结果产生的元素质量。在第二部分中,我们专注于使用记录数据的生产分析。分析导致定义2个比率:生产比率R_P定义为[元素数] / [制作号],效率生产P_E定义为R_P / [停止生产号码]的比率。通过使用收集数据的收集数据计算R_P和P_E值,已经建立了PM 100效率的生产建模。 PM 100生产建模可以有助于了解增加生产比率R_P值,导致效率生产P_E高变化。另一方面,收集生产参数导致提高生产效率。

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