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水平連鑄復合成形銅鋁層狀復合材料的組織與性能

Microstructure and properties of Cu–Al-laminated composites fabricated via formation of a horizontal continuous casting composite

  • 摘要: 提出了一種可以制備冶金結合界面雙金屬復合板帶的水平連鑄復合成形新工藝,其具有短流程、高效的特點。采用該工藝制備了截面尺寸為70 mm×24 mm(寬度×厚度)的銅鋁復合板,獲得了可行的制備參數,研究了所制備板坯的組織形貌和性能。結果表明,銅鋁復合板制備成形過程中,會形成由金屬間化合物和共晶相組成的復合界面層。鋁液和銅板表面接觸,發生固液轉變形成(II)層:θ相。隨著銅原子不斷的向鋁液中擴散,當銅原子含量達到一定程度,θ相發生固相轉變形成(I)層:γ相。達到共晶溫度時,發生共晶轉變形成(III)層:α+θ共晶組織。其中I層和II層均為銅鋁金屬間化合物,是裂紋產生和擴展的主要區域,因此界面層厚度是決定結合強度的重要因素。通過調整工藝參數可以優化凝固過程中銅鋁復合板內的溫度場分布,進而控制復合界面層的形成過程,因此工藝參數之間的合理匹配是改善復合層組織結構和增大板坯結合強度的關鍵。

     

    Abstract: With the advantages of both Cu and Al, including high conductivity, good corrosion resistance, low density, and easy connectivity, Cu–Al-laminated composites become a substitute for copper plates which can be applied widely in the fields of telecommunication, the petrochemical industry, transportation, decorative buildings, and the aerospace, national defense, and military industries. Cu–Al-laminated composites can be prepared via various methods, such as the explosive combined method, rolling combined method, and cast-rolling combined method. However, all these methods are limited because of the complicated metal surface treatment which poses a restriction on the development of this kind of plate. To resolve this issue, a new process of horizontal continuous casting composite forming (HCCF) for bimetal composite plates with an interface of metallurgical bonding, which is regarded as a short and more efficient process, was presented in this paper. Cu–Al composite plates with a section size of 70 mm × 24 mm (width × thickness) were fabricated, whose feasible preparation parameters were further studied, along with the investigation of the microstructure and properties of the composite plate. The results show that consisting of intermetallic compounds and eutectic phase, an interfacial layer is formed during the preparation and formation of the Cu–Al composite plate. Layer II of θ is formed via a solid–liquid transition during the solidification of liquid Al on the solid Cu plate. With the Cu atoms continuously diffusing into the Al liquid, layer I of γ is formed via a solid–solid transition with a certain content of Cu atoms, while layer III of α + θ is formed via eutectic transformation under the eutectic temperature. Making of Cu–Al intermetallic compounds, Layer I and layer II are the main areas of crack generation and expansion, thus, the thickness of the interface layer plays an important role that can control bonding strength. The temperature distribution of the composite Cu–Al plate during solidification is optimized by adjusting the parameters and controlling the formation of the composite layer. Therefore, a reasonable matching of the process parameters is the key to improving the microstructure of the composite layer and increasing the bond strength of the clad plate.

     

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