(北京航空材料研究院 先進(jìn)高溫結(jié)構(gòu)材料國(guó)防科技重點(diǎn)實(shí)驗(yàn)室, 北京 100095)
摘 要: 研究了不同含Ta量低Cr高W鑄造鎳基高溫合金的鑄態(tài)和1 100 ℃保溫500 h、 1 280 ℃保溫20 min~3 h熱處理后的顯微組織以及1 100 ℃, 118 MPa條件下的持久性能。 結(jié)果表明: 低Cr高W鑄造鎳基高溫合金中添加元素Ta會(huì)使共晶γ′相的數(shù)量顯著增加。 當(dāng)(Ti+Nb)含量恒定在2.1%(摩爾分?jǐn)?shù)), (Ta+Al)含量達(dá)14.4%(摩爾分?jǐn)?shù))時(shí), 合金凝固后期將形成α(W, Mo)+γ′共晶;少量α 相不會(huì)明顯降低合金的持久性能, 但α相在高于1 260 ℃下固溶處理或在1 100 ℃長(zhǎng)時(shí)熱暴露時(shí)是不穩(wěn)定的, 它會(huì)溶解或轉(zhuǎn)變成塊狀M6C,從而損傷合金的高溫持久性能; Ta是一種有利于提高高溫合金高溫強(qiáng)度的元素, 但Ta含量應(yīng)與合金中的Al含量相適應(yīng), 須按等摩爾分?jǐn)?shù)原則相互替換; 具有Ni-10Co-1.5Cr-16W-2Mo-1Nb-5Al-4Ta成分的合金性能最佳。
關(guān)鍵字: 鎳基高溫合金;α相; 鉭; M6C碳化物; 顯微組織; 相變
( National Key Laboratory of Advanced High Temperature Structural Materials, Beijing Institute of Aeronautical Materials, Beijing 100095, China)
Abstract: The microstructures of as-cast and specimens heattreated at 1 100 ℃ for 500 h or 1 280 ℃ for 2 min-3 h and stress ruptured properties at 1 100 ℃, 118 MPa for four heats of low Cr and high W content cast Nibase superalloys were investigated. The results indicate that the addition of element Ta increases the amount of eutectic γ′. (α+γ′) eutectic forms in the later stage of solidification as the amount of Nb and Ti maintains at 2.1%, Ta and Al reaches or exceeds 14.4%(mole fraction). Small amount of α phase does not decrease the stress rupture life obviously. However, α phase is unstable during the period of solid solution heat treatment at 1 260 ℃ or thermal exposure at 1 100 ℃ because of its solid solution or transformation to blocky M6C carbides which result in a deterioration of the stress rupture properties of alloys at elevated temperature. Although tantalum is a beneficial element for increasing the high temperature strength of superalloys, its content should be matched with the suitable Al content. Therefore, the substitution of Ta for Al should follow the principle of equal atomic fraction. The alloy with the composition of Ni-10Co-1.5Cr-16W-2Mo-1Nb-5Al-4Ta possesses the optimum properties.
Key words: Ni-base superalloys; α phase; tantalum; M6C carbides; microstructure; phase transformations


