Aerodynamics design and off-design condition analysis of 1+1/2 counter-rotating turbine
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摘要:
与常规涡轮相比,对转涡轮具有效率高、质量轻和陀螺力矩小的优点,已广泛应用于军用和民用航空发动机。开展1+1/2对转涡轮三维气动设计,并进行数值计算,结果表明:在设计工况下,对转涡轮质量流量为4.13 kg/s,总体膨胀比为5.823,高压涡轮膨胀比达到2.641,低压涡轮膨胀比达到2.205,总体等熵效率为88.70%,总输出功率为
1815.2 kW,基本满足设计要求。对对转涡轮设计点进行流动损失分析,发现高压涡轮动叶尾缘燕尾形激波强度在50%叶高处最高,并向叶根和叶顶区域逐渐减弱,且低压涡轮进口压力面存在少量流动分离。对对转涡轮进行变工况分析,发现随着对转涡轮总膨胀比的增加,高低压涡轮动叶尾缘激波强度均逐渐增大,低压涡轮动叶进口流动分离减弱,高压涡轮等熵效率有所减小,低压涡轮和对转涡轮整体等熵效率均先增加后基本不变。随着低压涡轮转速的提高,对转涡轮质量流量几乎不变,整体等熵效率先增加后减小,输出功率逐渐增加。Abstract:Compared with the conventional turbines, counter-rotating turbines have the advantages of high efficiency, light weight and small gyroscopic torque, and have been widely used in military and civil aviation engines. The 3D aerodynamics design of 1+1/2 vaneless counter-rotating turbine (VCRT) was carried out by commercial software, and numerical simulation was completed. The results showed that when the mass flow rate was 4.13 kg/s, the overall expansion ratio was 5.823. The high pressure turbine (HPT) expansion ratio was 2.641, and the low pressure turbine (LPT) expansion ratio reached 2.205. The VCRT isentropy efficiency was 88.70%, and the total output power was
1815.2 kW, which met the design requirements. The flow loss analysis of the VCRT at the design condition showed that the intensity of the dovetail shock wave at the trailing edge of HPT rotor was the highest at the 50% span, and gradually weakened to the root and tip of the blade. There was a little flow separation on the pressure surface of the LPT inlet. Moreover, the off-design conditions of the 1+1/2 counter-rotating turbine were analyzed. It was found that with the increase of the VCRT expansion ratio, the intensity of shock wave at the trailing edge of the HPT rotor gradually increased, and the flow separation of LPT was weakened. Therefore, the isentropic efficiency of HPT decreased, and the overall isentropic efficiency and LPT isentropic efficiency increased first and then kept unchanged. With the increase of the LPT rotational speed, the mass flow rate of VCRT was almost constant, the overall isentropic efficiency increased first and then decreased, and the output power increased gradually. -
表 1 高压涡轮设计参数
Table 1. HPT design parameters
参数 数值 导叶 动叶 进口叶尖直径/mm 317.2 319.6 进口轮毂直径/mm 285.8 282.9 进口叶尖叶片角/(°) 5 −26 进口轮毂叶片角/(°) 5 −35 出口叶尖直径/mm 317.8 328 出口轮毂直径/mm 285 273.2 出口叶尖叶片角/(°) −69 76 出口轮毂叶片角/(°) −67 71 叶片数 53 41 表 2 低压涡轮设计参数
Table 2. LPT design parameters
参数 数值 参数 数值 进口叶尖直径/mm 332.8 出口轮毂直径/mm 247.2 进口轮毂直径/mm 267 出口叶尖叶片角/(°) −75 进口叶尖叶片角/(°) 26 出口轮毂叶片角/(°) −65 进口轮毂叶片角/(°) 40 叶片数 59 出口叶尖直径/mm 350.2 表 3 数值结果与试验值对比
Table 3. Comparison of CFD result with experiment
参数 试验值 数值结果 相对误差/% 膨胀比 2.25 2.311 2.71 出口马赫数 0.34 0.348 2.35 等熵效率/% 92.5 92.0 0.54 -
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