Effect of Laser Power on Component Strength in Laser Sintering

D. Singh, Sukhjinderjit Singh, C. Singh
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Abstract

Prototyping or model making is one of the important steps to finalize a product design. It helps in conceptualization of a design. Before the start of full production a prototype is usually fabricated and tested. RP processes namely Stereo-lithography (SL), Selective Laser Sintering (SLS), Fused Deposition Modeling (FDM) and Laminated Object Manufacturing (LOM) are described. In Selective Laser Sintering (SLS) process, fine polymeric powder like polystyrene, polycarbonate or polyamide etc. (20 to 100 micrometer diameter) is spread on the substrate using a roller. Before starting CO2 laser scanning for sintering of a slice the temperature of the entire bed is raised just below its melting point by infrared heating in order to minimize thermal distortion (curling) and facilitate fusion to the previous layer. The laser is modulated in such a way that only those grains, which are in direct contact with the beam, are affected. Once laser scanning cures a slice, bed is lowered and powder feed chamber is raised so that a covering of powder can be spread evenly over the build area by counter rotating roller. In this process support structures are not required as the un-sintered powder remains at the places of support structure. It is cleaned away and can be recycled once the model is complete. This research has examined the effect of Laser power as well as processing parameters on the mechanical properties of selective laser sintered parts from DURAFORM PA In this research tensile specimens of Polyamide (DURAFORM PA) material as per the test standard ‘ASTM D638’ are fabricated. This test method covers the determination of the tensile properties of unreinforced and reinforced plastics in the form of standard dumbbell-shaped test specimens when tested under defined conditions of pre-treatment, temperature, humidity, and testing machine speed. The effects of varying the Laser power, generated by the laser, on the physical and mechanical properties of produced specimens. The energy density is varied by changing the laser power at a fixed value of laser scan spacing. Knowing the relationship between SLS parameter settings and material properties will make it possible to manufacture parts with predetermined properties, customized for various applications.
激光功率对激光烧结中构件强度的影响
原型制作或模型制作是完成产品设计的重要步骤之一。它有助于设计的概念化。在全面生产开始之前,通常要制作和测试一个原型。描述了RP工艺,即立体光刻(SL),选择性激光烧结(SLS),熔融沉积建模(FDM)和层压对象制造(LOM)。在选择性激光烧结(SLS)工艺中,聚苯乙烯,聚碳酸酯或聚酰胺等细聚合物粉末(直径为20至100微米)使用辊在基材上扩散。在开始二氧化碳激光扫描烧结切片之前,通过红外加热将整个床的温度提高到刚好低于其熔点,以尽量减少热变形(卷曲)并促进与前一层的融合。激光以这样一种方式被调制,只有那些与光束直接接触的颗粒才会受到影响。一旦激光扫描固化薄片,降低床身,提高粉末进料室,通过反向旋转滚筒将粉末均匀地覆盖在构建区域。在这个过程中,不需要支撑结构,因为未烧结的粉末仍然在支撑结构的地方。它被清理干净,一旦模型完成就可以回收。本研究考察了激光功率和工艺参数对DURAFORM PA选择性激光烧结零件力学性能的影响。本研究按照ASTM D638测试标准制作了聚酰胺(DURAFORM PA)材料的拉伸试样。本试验方法涵盖了在规定的预处理、温度、湿度和试验机速度条件下,以标准哑铃形试样的形式进行试验时,对未增强和增强塑料拉伸性能的测定。不同的激光功率,由激光产生,对生产样品的物理和机械性能的影响。在一定的激光扫描间隔下,通过改变激光功率来改变能量密度。了解SLS参数设置与材料性能之间的关系将使制造具有预定性能的零件成为可能,并为各种应用定制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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