首页> 外文会议>International Conference on Solidification Science and Processing: Outlook for the 21st Century, Feb 18-21, 2001, Bangalore, India >Effects of Mold Coating and Mold Material on the Heat Transfer Coefficient at the Casting/Mold Interface for Permanent Mold Casting of A356 Aluminum Alloy
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Effects of Mold Coating and Mold Material on the Heat Transfer Coefficient at the Casting/Mold Interface for Permanent Mold Casting of A356 Aluminum Alloy

机译:模具涂层和模具材料对A356铝合金永久铸造的铸造/铸模界面传热系数的影响

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In this study, the heat transfer coefficients, h, at the interface between A356 aluminum alloy casting and metallic mold with various coatings are measured. Two types of metallic mold; SKD-61 and FCD-500, two different coating materials; Dycote-39 (insulating type) and AL-130 (lubricating type), and three coating thicknesses for each mold/coating combination are investigated. These data are very important for mathematically modeling the solidification phenomena of the permanent mold casting. A unidirectional heat transfer system for the metallic mold casting of A356 aluminum alloy is first designed and fabricated. The designed system has the flexibility of testing different types of metallic mold, mold coolant, coating material, and coating thickness. It can also control the mold temperature, which is very essential to the permanent mold casting. Temperature measurements are then conducted with the thermocouples aligned in the casting and the metallic mold. Subsequently, the Inverse Method is employed to analyze the measured temperatures and obtain the interfacial heat transfer coefficient, h. From the measurements, it is found that for the twelve cases, when the measured h values are plotted against casting surface temperature, they can all be categorized in five stages. Also, regardless the types of mold, coating, and thickness, the interfacial heat transfer coefficient drops dramatically near 580℃ and eutectic temperature, 545℃. For the same mold/coating combination, the value of h decreases as the coating thickness increases. For SKD-61 with Dycote-39 coating, the peak values of h near 580℃; h_1 are ranged from 1,890 W/m~2 K to 840 W/m~2 K and the peak values of h near the eutectic temperature, 545℃; h_3, are from 2,730 W/m~2 K to 1,134 W/m~2 Kfor coating thickness between 43.5 μm and 183 μm. For SKD-61 with AL-130 coating, h_1 ranges from 1,890 W/m~2 K to 840 W/m~2 K and h_3 is from 5,880 W/m~2 K to 2,100 W/m~2 Kfor coating thickness between 34.6 μm and 169.3 μm. For FCD-500 with Dycote-39 coating, h_1 ranges from 1,689 W/m~2 K to 840 W/m~2 K and h_3 is from 2,520 W/ m~2 K to 1,260 W/m~2 Kfor coating thickness between 51.7 μm and 173.6 μm. For FCD-500 with AL-130 coating, h_1 ranges from 1,470 W/m~2 K to 735 W/m~2 Kand h_3 is from 1,596 W/m~2 K to 1,176 W/m~2 Kfor coating thickness between 40.2 μm and 181.7 μm. AL-130 coating has higher h than Dycote-39 for SKD-61. However, AL-130 coating has smaller h than Dycote-39 for FCD-500. SKD-61 has similar h to FCD-500 when they are both coated with Dycote-39. However, SKD-61 has higher h than FCD-500 when they are both coated with AL-130.
机译:在这项研究中,测量了A356铝合金铸件和具有各种涂层的金属模具之间的界面处的传热系数h。两种类型的金属模具; SKD-61和FCD-500,两种不同的涂层材料;研究了Dycote-39(绝缘型)和AL-130(润滑型),以及每种模具/涂料组合的三种涂层厚度。这些数据对于数学模型化永久铸模的凝固现象非常重要。首先设计和制造了用于A356铝合金的金属压铸件的单向传热系统。设计的系统具有测试不同类型的金属模具,模具冷却剂,涂层材料和涂层厚度的灵活性。它还可以控制铸模温度,这对于永久铸模至关重要。然后使用对准铸件和金属模具的热电偶进行温度测量。随后,采用逆方法来分析测得的温度并获得界面传热系数h。从测量结果中发现,在十二种情况下,将测量的h值相对于铸件表面温度作图时,可以将它们全部分为五个阶段。而且,不管模具的类型,涂层和厚度如何,在580℃和低共熔温度545℃附近,界面传热系数都会急剧下降。对于相同的模具/涂层组合,h的值随涂层厚度的增加而减小。对于带有Dycote-39涂层的SKD-61,h的峰值接近580℃; h_1的范围为1,890 W / m〜2 K至840 W / m〜2 K,h的峰值在共晶温度545℃附近。 h_3的涂层厚度在43.5μm至183μm之间,为2,730 W / m〜2 K至1,134 W / m〜2 K.对于具有AL-130涂层的SKD-61,h_1的涂层厚度介于1,890 W / m〜2 K至840 W / m〜2 K,h_3的范围为5,880 W / m〜2 K至2,100 W / m〜2 K 34.6微米和169.3微米。对于具有Dycote-39涂层的FCD-500,h_1的涂层厚度介于1689 W / m〜2 K至840 W / m〜2 K且h_3为2,520 W / m〜2 K至1,260 W / m〜2 K 51.7μm和173.6μm。对于具有AL-130涂层的FCD-500,h_1的范围为1,470 W / m〜2 K至735 W / m〜2 K,h_3的范围为1,596 W / m〜2 K至1,176 W / m〜2 K(涂层厚度在40.2之间) μm和181.7μm。与SKD-61的Dycote-39相比,AL-130涂层的h高。但是,对于FCD-500,AL-130涂层的h小于Dycote-39。当SKD-61都涂有Dycote-39时,其h与FCD-500相似。但是,当SKD-61都涂有AL-130时,其h值要高于FCD-500。

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