High-dimensional multi-objective optimization of aero-engine based on POD-PCE-Kriging model
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摘要:
针对于传统的航空发动机燃烧室设计过程计算周期长,加工和试验成本高,制约发动机设计周期的问题,基于航空发动机燃烧室模型,结合POD-PCE-Kriging(本征正交分解-多项式混沌展开-Kriging)模型和粒子群优化(PSO)算法开展了燃烧性能代理模型的构建和多目标优化设计。通过试验,应用POD-PCE-Kriging模型预测结果与一维程序计算结果进行对比分析,针对于燃烧效率和总压损失预测值的方均根误差分别为0.0063%和0.1227%。对设计变量参数开展寻优,并对获取的Pareto最优解集进行了分析,为满足性能指标的先进航空发动机燃烧室设计提供了物理见解,可以快速准确获得满足最优性能的设计参数,缩短航空发动机的研制周期。
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关键词:
- 航空发动机燃烧室设计 /
- 代理模型 /
- POD-PCE-Kriging模型 /
- 粒子群优化算法 /
- 多目标优化
Abstract:In view of the traditional aero-engine combustor design process with long calculation cycle, high processing test and cost which restricts the engine design cycle, based on the aero-engine combustor model, POD-PCE-Kriging (proper orthogonal decomposition-polynomial chaotic expansion-Kriging) model and particle swarm optimization (PSO) algorithms were combined to construct the combustion performance surrogate model and carry out multi-objective optimization design. Through the test, the predicted results of POD-PCE-Kriging model were compared with the calculated results of one-dimensional program, and the root mean square errors of the predicted values of combustion efficiency and total pressure loss were 0.0063% and 0.1227%, respectively. Optimization search was carried out for the design variables, and the obtained Pareto optimal solution set was analyzed to provide physical insight into the design of advanced aero-engine combustor to meet the performance specifications, which can quickly and accurately obtain the design parameters to meet the optimal performance and accelerate the development cycle of aero-engine.
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表 1 双旋流燃烧室出口总温计算结果对比
Table 1. Comparison of the calculated results of total temperature at the outlet of the twin-swirl combustor
计算方法 燃烧室出口总温/K 一维计算(Case1) 1721.3 一维计算(Case2) 1773.4 CFD三维计算 1720.9 表 2 双旋流燃烧室性能参数对比
Table 2. Comparison of performance parameters of twin-swirl combustor
性能参数 一维计算
(Case1)一维计算
(Case2)CFD
三维计算燃烧效率 0.9994 0.9994 0.9974 总压恢复系数 0.9601 0.9565 0.9604 表 3 燃烧室设计要求
Table 3. Combustor design requirements
参数 设计状态 慢车状态 进口总温/K 850 492.9 油气比 0.0430 0.0106 燃烧效率 > 0.99 > 0.98 总压损失 < 0.06 < 0.07 出口温度分布系数(OTDF) < 0.20 出口径向温度分布系数(RTDF) < 0.12 表 4 设计变量
Table 4. Design variable
设计变量 数值范围 进口总温${T}_{{\rm{t}}}$/K 427.55~1070.33 进口总压${p}_{{\rm{t}}}$/kPa 500~3200 进口流量$\dot m_{\rm{in}}$/(kg/s) 19.01~82.398 油气比$\varphi$ 0.0106~0.0430 主燃孔数量${N}_{{\rm{m}}}$/个 2~4 主燃孔直径${D}_{{\rm{m}}}$/mm 12.1~16.8 每排冷却孔数量${N}_{{\rm{c}}}$/个 10~20 冷却孔直径${D}_{{\rm{c}}}$/mm 0.5~1.5 -
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