Plastic deformation and dynamic recrystallization of T91 steel at high temperature
-
摘要: 采用Gleeble-1500熱模擬試驗機進行了T91鋼的壓縮試驗,研究了變形溫度為1100~1250℃、應變速率為0.01~1 s-1時該鋼的變形行為,分析了流變應力與應變速率和變形溫度之間的關系,計算了高溫變形時應力指數和變形激活能,并采用Zener-Hollomon參數法構建該鋼高溫塑性變形的本構關系,繪制了動態再結晶圖和熱加工圖.結果表明:在試驗變形條件范圍內,其真應力-真應變曲線呈雙峰特征;鋼中發生了明顯的動態再結晶,且再結晶類型屬于連續動態再結晶.T91鋼的熱變形激活能為484 kJ.mol-1,利用加工圖確定了熱變形的流變失穩區,結合力學性能,可以優先選擇的變形溫度為1200~1 250℃,應變速率不高于0.1 s-1.Abstract: Hot compressive tests were carried out on a Gleeble-1500 thermal simulation test machine to investigate the hot deformation behavior of T91 steel at elevated temperatures of 1 100 to 1250℃ and strain rates of 0. 01 to 1 s-1. The relations of flow stress to strain rate and deformation temperature were analyzed for calculating the stress exponent and the deformation activation energy at the elevated temperatures. The constitutive equation was constructed by introducing the Zener-Hollomon parameter. The dynamic recrystallization map and the processing map of plastic deformation of T91 steel at the elevated temperatures were drawn. The true stress-strain curves of the steel show a bimodal characteristic. Distinct dynamic recrystaflization takes place in the steel, and its mechanism is continuous dynamic recrystallization. The deformation activation energy of the steel is 484 kJ·mol-1. The instability zones and optimum processing parameters of hot deformation under the condition can be attained by using the two maps. The steel has excellent mechanical properties when rolled at deformation temperatures of 1 200 to 1 250℃ and strain rates which are not greater than 0. 1 s-1.
-

計量
- 文章訪問數: 120
- HTML全文瀏覽量: 24
- PDF下載量: 11
- 被引次數: 0