Performance of swirling-flow single trapped vortex combustor under different swirler schemes
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摘要:
为研究旋流驻涡燃烧室的燃烧性能,设计了3种旋流器方案(基准型、小流通面积和外加套筒),在进口温度493 K、常压条件下,采用RP-3航空煤油作为燃料,凹腔当量比在0.8~1.8之间,开展了热态试验。结果表明:基准型和小流通面积的主燃区火焰为脱体火焰,而外加套筒则为V型驻定火焰,且小流通面积和加套筒的主燃区火焰更加集中。燃烧效率方面,基准型最低,而小流通面积最高,试验中获得的最高燃烧效率为96.3%。随着凹腔当量比的增加,基准型的燃烧效率不断增加,而小流通面积的则先基本不变,随后略有增加,外加套筒的则先快速增加,然后缓慢增加。此外,小流通面积的冷态总压损失高于基准型,在进口马赫数为0.31时,两者的冷态总压损失分别为7.2%和4.5%。
Abstract:To investigate the combustion performance of swirling-flow single trapped vortex combustor, three swirler schemes (baseline type, small flow area and additional flare) were designed and thermal tests were carried out at an inlet temperature of 493 K and at atmospheric pressure, using RP-3 aviation kerosene as fuel and a cavity equivalent ratio between 0.8 and 1.8. Results showed that the flame in the main combustion zone of the baseline and small flow area schemes was a deconfined flame, while that of the plus flare scheme was a V-shaped standing flame, and the flame in the main combustion zone of the small flow area and plus flare schemes was more concentrated. In terms of combustion efficiency, the base type scheme was the lowest while the small flow area scheme was the highest, and the highest combustion efficiency obtained in the test was 96.3%. The combustion efficiency of the baseline model increased with the increase of the cavity equivalent ratio, while that of the small flow area solution remained basically the same at first and then increased slightly, and that of the plus flare solution increased rapidly and then slowly. The total pressure loss of the small circulation area scheme was higher than that of the baseline type, which was 7.2% and 4.5% respectively, at an inlet Mach number of 0.31.
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表 1 旋流器结构方案
Table 1. Schemes of swirler structure
旋流器方案 套筒 流通面积/% 旋流数Sn S1 无 100 0.791 S2 无 40 0.865 S3 有 100 0.791 表 2 旋流驻涡燃烧室流量分配
Table 2. Flow distribution of swirling-flow single TVC
进气位置 分配比例/% S1方案 S2方案 S3方案 凹腔前壁进气 6.8 7.4 6.7 凹腔后壁进气 7.4 8.4 6.9 旋流器进气 13.9 5.2 13.5 掺混孔进气 32.6 35.9 32.2 表 3 旋流驻涡燃烧室试验工况
Table 3. Test condition for swirling-flow single TVC
参数 数值 进口温度Tin/K 493.0 空气流量$ {\dot{m}}_{\mathrm{a}} $/(kg/s) 0.33 进口马赫数Main 0.31 总油气比RFAR 0.0177 凹腔当量比${ {\varPhi }_{ {\text{ca} } } }$ 0.8~1.8 凹腔燃油占比/% 31~69 表 4 试验测量误差
Table 4. Error of measurement parameters
参数 测试装置/计算方法 数值 误差/% 进口温度Tin/K K型热电偶 493 0.40 进口空气压力pin/kPa 压力表 102 0.40 空气流量${\dot{m} }_{\mathrm{a} }{\rm{/} } ({\rm{kg/s} }) $ 孔板流量计 0.33 0.57 进口马赫数Main ${M{a} }_{\rm{i}\rm{n} }=\dfrac{ {\dot{m} }_{\mathrm{a} } }{\rho A{ (\gamma R{T}_{i}) }^{\tfrac{1}{2} } }$ 0.31 0.57 凹腔当量比${ {\varPhi }_{ {\text{ca} } } }$ Φca = fca/fa,st 0.8~1.8 0.7 出口无量纲温度$ ({T_4}/{T_{{\text{4ave}}}}) $ B型热电偶 0.80~1.12 0.7 $\varphi ( { {\text{CO} } } ) $/10−6 700NDIR CO/CO2/O2分析仪 1538.3~3118.4 0.1 $\varphi ( { {\text{C} }{ {\text{O} }_{\text{2} } } } ) $/% 700NDIR CO/CO2/O2分析仪 3.19~3.52 0.1 $\varphi ({ { {\text{O} }_{\text{2} } } } ) $/% 700NDIR CO/CO2/O2分析仪 16.14~20.9 0.1 $\varphi ({ {\text{UHC} } } ) $/10−6 700HFID总碳氢分析仪 708.1~1421.2 0.3 燃烧效率ƞb/% ${\eta }_{\rm{b} }=\dfrac{\varphi (\text{C}{\text{O} }_{2}) +0.531\varphi (\text{CO}) -0.319\varphi (\text{C}{\text{H} }_{4}) -0.397\varphi ({\mathrm{H} }_{2})}{\varphi (\text{C}{\text{O} }_{2}) +\varphi (\text{C}{\text{O} }_{2}) +\varphi (\text{UHC})}$ 90.4~ 96.3 0.33 -
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