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鋯合金熱擠壓用防護潤滑劑的試制與性能

Trial manufacture and properties of protective lubricants for hot extrusion of zirconium alloy

  • 摘要: 為滿足鋯合金熱擠壓時的潤滑與防護需求,試制了一種鋯合金熱擠壓用防護潤滑劑,主要成分包括有機硅樹脂、低軟化點玻璃粉、氧化鋁粉、二硫化鉬、石墨粉、滑石粉、云母粉等。實驗溫度為700~800 ℃時,采用圓環壓縮法測得涂覆有潤滑劑的Zr-4合金摩擦因子為0.19~0.25,潤滑效果良好。將有潤滑劑防護的鋯合金分別加熱至700、800和900 ℃并保溫1 h,未發生明顯氧化,熱防護性能良好。測定了有、無潤滑劑條件下Zr-4合金和H13模具鋼的界面接觸溫度隨接觸時間的變化曲線。當Zr-4合金和H13鋼的初始界面溫度分別約為700 ℃和350 ℃時,無潤滑劑時Zr-4合金表面溫度達到穩定的時間為7.7 s,界面換熱系數由250 W·m?2·℃?1增大至2700 W·m?2·℃?1;有潤滑劑時Zr-4合金表面溫度達到穩定的時間延長至12 s,界面換熱系數由131 W·m?2·℃?1增大至1900 W·m?2·℃?1。這表明該潤滑劑具有較好的高溫熱障性能。

     

    Abstract: Lubrication is the key in obtaining excellent products when zirconium alloys are hot extruded. Reasonable lubrication conditions are important to improve the product quality, reduce energy consumption, and prolong the service life of tools and dies. Presently, the glass lubricants commonly used in domestic industry are not very suitable for hot extrusion zirconium alloy, and they still need to be imported. In order to meet the requirements of lubrication and protection during hot extrusion of zirconium alloy, a protective lubricant for hot extrusion of zirconium alloy was trial manufactured in this paper. The main components of this protective lubricant include silicone resin, low softening point glass powder, aluminum oxide (Al2O3) powder, molybdenum disulfide, graphite powder, talcum powder, mica powder, and others. When the experimental temperature is in the range of 700?800 ℃, the friction factor of Zr-4 alloy coated with the lubricant is calculated to be 0.19?0.25 by the ring compression method, which shows good lubrication effect. The zirconium alloy with lubricant protection is not obviously oxidized after heating at 700 ℃, 800 ℃, and 900 ℃, respectively, for 1 h, indicating that the lubricant has good thermal protection effect. The relation curves between contact temperature and time at the interface of the Zr-4 alloy and H13 die steel are measured. The initial interface temperatures of the Zr-4 alloy and H13 steel are 700 ℃ and 350 ℃, respectively. Without the lubricant, the time for the surface temperature of the Zr-4 alloy to reach stability is 7.7 s, and the interfacial heat transfer coefficient increases from 250 W·m?2·℃?1 to 2700 W·m?2·℃?1. On the other and, when the lubricant was used, the time for the surface temperature of Zr-4 alloy to reach stability is prolonged to 12 s, and the interfacial heat transfer coefficient increases from 131 W·m?2·℃?1 to 1900 W·m?2·℃?1, indicating that the lubricant has good thermal barrier properties.

     

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