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LIQUID JET AND PLASMA JET INTERACTION: A FIRST STEP IN THE STUDY OF FINE STRUCTURED COATINGS ELABORATION

机译:液体射流和等离子体喷射相互作用:精细结构化涂料的研究的第一步

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Classical plasma spraying is nowadays industrially used to achieve thick layers, up to few millimeters, of a wide range of materials. However, new applications, such as solid oxide fuel cells require fine structured layers or very thin coatings, which can't be achieved by classical plasma spraying. Actually, ultrafine powders (d<5μm) can't penetrate inside the plasma jet, the carrier gas being unable to give enough momentum to very small particles, without perturbing drastically the plasma jet. This paper presents a new process using a d.c. plasma torch where a liquid precursor is injected in order to obtain layers which thickness is between loonm and l0μm together with a fine structure involving grains of about lμm and below. That precursor consists of ceramic particles in suspension in a carrier liquid. The presented work is a first step of the spraying process elaboration. It is devoted to the study of the liquid injection in the plasma jet. Firstly, a liquid injector was designed and characterized in order to produce liquid droplets penetrating into the plasma core. Secondly, the interaction between the liquid and the plasma was studied through the injection process. For such an investigation, an emission spectroscopy system was used to determine the plasma temperature together with its composition, with and without water injection.
机译:如今,经典等离子喷涂在工业上用于实现厚层,高达小毫米的各种材料。然而,新的应用,例如固体氧化物燃料电池需要精细的结构层或非常薄的涂层,这不能通过经典等离子体喷涂来实现。实际上,超细粉末(D <5μm)不能穿透等离子体射流,载气不能施加足够的动量到非常小的颗粒,而不会使等离子体射流扰动。本文呈现了一种使用D.C.的新过程。注入液体前体的等离子体炬为了获得厚度在LOONM和L0μm之间的层以及涉及约1μm和下方的细粒的细结构。前体由载体液中的悬浮液中的陶瓷颗粒组成。所提出的作品是喷涂过程阐述的第一步。它致力于研究等离子体喷射中的液体注射。首先,设计液体注射器,其特征,以产生穿透到等离子体芯中的液滴。其次,通过注射过程研究了液体和等离子体之间的相互作用。对于这样的研究,发射光谱系统用于将血浆温度与其组合物一起测定,具有和无注水。

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