首页> 外文会议>International Thermal Spray Conference, May 28-30, 2001, Singapore >Impact of Self Propagating High Temperature Synthesis of Spraying Materials on Coatings based on Aluminium and Metal-Oxides
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Impact of Self Propagating High Temperature Synthesis of Spraying Materials on Coatings based on Aluminium and Metal-Oxides

机译:喷涂材料的自蔓延高温合成对铝和金属氧化物涂层的影响

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The properties of thermal sprayed coatings depend mainly on the thermal and kinetic energy of the spray particles. Increase of thermal energy of sprayed particles can be realized using exothermic reactions between components in sprayed particles. Self propagating high temperature synthesis (SHS) is especially suitable to benefit from released energy in the spraying process. At present most commonly used spray material with exothermal reaction is Ni+Al. However, the highest amount of heat is produced in the reactions of aluminium and metal oxides. Of special interest are Cr_2O_3, NiO, CuO and V_2O_5 because they obtain high reaction energies. Furthermore products of the reaction are of special, functional interest like NiAl as bonding agent or alumina as a wear resistant coating. To assure good contact between reacting substances (Al/Oxides) powders for plasma spraying were prepared by mechanical alloying. Calorimetric investigations of plasma sprayed coatings prove that during spraying Al reacts exothermically with oxides. Increase of oxide contents improves coating adhesion/cohesion properties, hardness, and reduction of porosity. Results are discussed on the base of light microscopy, scanning electron microscopy (SEM) and X-ray structure analysis (XRD).
机译:热喷涂涂层的性能主要取决于喷涂颗粒的热能和动能。可以通过使用喷雾颗粒中的组分之间的放热反应来增加喷雾颗粒的热能。自蔓延高温合成(SHS)特别适合在喷涂过程中从释放的能量中受益。目前,最容易发生放热反应的喷涂材料是Ni + Al。但是,铝和金属氧化物的反应产生的热量最大。 Cr_2O_3,NiO,CuO和V_2O_5特别受关注,因为它们获得了很高的反应能。此外,反应产物具有特殊的功能意义,例如NiAl作为粘合剂或氧化铝作为耐磨涂层。为了确保反应物质(Al /氧化物)之间的良好接触,通过机械合金化制备了用于等离子喷涂的粉末。等离子体喷涂涂层的量热研究表明,喷涂过程中,Al与氧化物发生放热反应。氧化物含量的增加改善了涂层的粘合/内聚性,硬度和孔隙率的降低。在光学显微镜,扫描电子显微镜(SEM)和X射线结构分析(XRD)的基础上讨论了结果。

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