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TC4盤銑開槽加工表面形貌與表層組織研究
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西北工業(yè)大學(xué) 現(xiàn)代設(shè)計與集成制造技術(shù)教育部重點實驗室

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國家自然科學(xué)基金項目(No.50975237 and 51005184);國家數(shù)控重大專項(No.2013ZX0400108);國家航空科學(xué)基金(No.2013ZE53060)


Research on surface morphology and microstructure of TC4 of disc-milling slotting
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The key Laboratory of Contemporary Design and Integrated Manufacturing Technology, Ministry of Education ,Northwestern Polytechnical University

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    摘要:

    因為盤銑具有切削力大和切削效率高的優(yōu)點, 其已廣泛應(yīng)用于加工領(lǐng)域,特別對于難加工材料鈦合金來說。但是關(guān)于盤銑切削加工機理方面的研究卻相對較少。在本文的研究中,首先設(shè)計盤銑開槽實驗以測量盤銑切削鈦合金時的切削力和切削溫度。然后,以切削力和切削溫度實驗為基礎(chǔ),分析不同切削條件下的表面粗糙度、表面形貌、殘余應(yīng)力、顯微組織和顯微硬度。實驗結(jié)果表明:銑削表面中心處的粗糙度值小于邊緣處,粗糙度值隨著主軸轉(zhuǎn)速的增加而減小,隨著切削深度和進給速度的增加而增大。在銑削表面中心處容易出現(xiàn)凹陷,在銑削表面邊緣處容易出現(xiàn)裂紋。銑削表面和次表面均出現(xiàn)殘余壓應(yīng)力,隨著深度的增加,殘余壓應(yīng)力逐漸減小為零。在切削力的作用下,晶粒沿進給方向發(fā)生明顯的拉伸變形,α相從初始等軸態(tài)拉伸為長片狀。隨著切削溫度的升高,塑性變形區(qū)的金相結(jié)構(gòu)發(fā)生改變,當(dāng)切削溫度達(dá)到β相轉(zhuǎn)變溫度時,金相結(jié)構(gòu)從初始等軸態(tài)轉(zhuǎn)變?yōu)槿瑢咏M織。熱力耦合作用使得已加工表面和次表面硬度值升高。

    Abstract:

    Disc-milling is used in manufacture, especially for difficult-to-machine material like titanium alloy, because of its strong force and high efficiency. However, the research on cutting mechanism of disc-milling technique is still lack in literature. In the present study, first, disc-milling grooving experiment was carried out to measure milling force and temperature for titanium alloy sample. After machining, surface roughness, surface topography, residual stress, microstructure and microhardness in different milling conditions were analyzed. The results showed that the surface roughness of the center on milling surface was lower than the edge; moreover, the surface roughness decreased with the increase of spindle speed, but increased with the increase of depth of cut and feed speed. The dent and crack were observed on the center and edge of milling surface, respectively. The residual compressive stress was produced on the machined surface and subsurface, and gradually reduced to zero with the increase of depth. The microstructure of lattice tensile deformation was found along feed direction under the effect of milling force, progressing from initial equiaxed structure to long flake lattice. The metallographic structure of plastic deformation zone changed with the temperature, transforming from initial equiaxed microstructure to a lamellar microstructure when the temperature was up to β-phase transition temperature. The combination of mechanical and thermal loads led to an increment in microhardness on the machined surface and subsurface.

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辛紅敏. TC4盤銑開槽加工表面形貌與表層組織研究[J].稀有金屬材料與工程,2016,45(12):3050~3056.[xinhongmin. Research on surface morphology and microstructure of TC4 of disc-milling slotting[J]. Rare Metal Materials and Engineering,2016,45(12):3050~3056.]
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  • 收稿日期:2014-07-28
  • 最后修改日期:2015-06-08
  • 錄用日期:2015-07-23
  • 在線發(fā)布日期: 2017-02-06
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