2014 Vol. 29, No. 3

Display Method:
Experiment of ignition characteristics of RP-3 kerosene
ZENG Wen, LI Hai-xia, MA Hong-an, CHEN Bao-dong
2014, 29(3): 481-488. doi: 10.13224/j.cnki.jasp.2014.03.001
Abstract:
The ignition delay times of RP-3 kerosene/O2/Ar mixtures within the ignition temperature range of 1100-1600K, at pressures of 0.1, 0.2, 0.3MPa, and equivalence ratios of 0.5, 1.0, 1.5, were measured behind reflected shock waves, using side-wall pressure and OH auto-luminescence signal measurements in a chemical shock tube. The effects of ignition temperature, pressure and equivalence ratio on the ignition delay time were investigated and the Arrhenius correlations for the ignition delay time of the mixture under different pressures and equivalence ratios were also deduced. The results show that the correlation between the logarithm of the ignition delay time of the mixture and the reciprocal ignition temperature is linear under different pressures and equivalence ratios. At the same time, with the increase of ignition temperature and pressure and the decrease of equivalence ratio, the ignition delay time of the mixture is shortened.
Analysis on swirl cup combustor near lean blow out point with flamelet model
CAO Wen-Yu, YUAN Yi-xiang, XIE Peng-fu, YU Chao, CHEN Cong, ZHAN De-jun, TAN Chun-qing
2014, 29(3): 489-494. doi: 10.13224/j.cnki.jasp.2014.03.002
Abstract:
The experimental data on lean blow out fuel/air ratio of a single-dome swirl cup combustor was obtained at 388 K inlet temperatures and atmospheric pressure with different inlet air velocities.Using flamelet combustion model with detailed chemical mechanism,numerical simulations were performed to get the details of local hot flow field.Results show that,near the lean blow out point,with the decline of fuel/air ratio,the vortex core is separated from high temperature zone,and the temperature in recirculation zone drops,and the ignition point moves backward,so the ignition distance increases.With the increase of inlet air velocity and decrease of the fuel mass flow rate,the mass flow rate of the recirculation and the temperature difference between two sides of the vortex core become greater,but the ignition point stays further back,showing that the flame has greater tolerance with their difference.
Experiment on effect of cone angle on ice accretion of rotating spinner
HU Ya-ping, JI Hong-hu, WANG Jian, CHEN Ning-li, CAO Guang-zhou, TONG Hui, PANG Li-gang
2014, 29(3): 495-503. doi: 10.13224/j.cnki.jasp.2014.03.003
Abstract:
Simulated ice accretion tests on four sub-scale rotating spinner models with different cone angles were conducted in icing wind tunnel. The similarity parameters of ice accretion were derived for rotating surface. And the ice accretion test parameters for sub-scale spinner models were determined according to the matching of important similarity parameters. The ice accretion and final ice shapes were recorded by a high speed video system in the test. The test results show that the ice accreted on these four models is composed of early formed glaze ice which entirely covers the clean surface and subsequent white rime ice which grows rapidly. For the spinner model with cone angle is no larger than 74°, the rime ice appears in the form of needle or grain, which is relatively thinner. For the spinner model with cone angle larger than 80°, the rime ice is feather shaped which is thicker and could be partly shed from the icing surface. The position of shedding for the spinner model with larger cone angle moves downstream.
Calculating method of knock factors based on method of intrinsic mode function high-frequency integral energy for kerosene engine
SHENG Jing, WEI Min-xiang, LIU Guo-man, LI Yu-fang
2014, 29(3): 504-510. doi: 10.13224/j.cnki.jasp.2014.03.004
Abstract:
The method of intrinsic mode function high-frequency integral energy was proposed. In this method,the cylinder combustion pressure signals of the electronic controlled two-stroke kerosene engine were decomposed into a finite number of intrinsic mode function components and the residual function using the empirical mode decomposition method. The knock high frequency signal component was obtained by analyzing the intrinsic mode function components using the fast Fourier transform(FFT). The crank angle corresponding to the peak of the residual function peak was chosen as the starting crank angle of the knock window. Then the knock factors were calculated using the method of intrinsic mode function high frequency integral energy based on the knock high frequency signal component. By analyzing the knock window width, it's learnt is that a reasonable constant crank angle of knock window width is 30°. Knock factors of cylinder combustion pressure signals for four cycles were calculated using the method of intrinsic mode function high-frequency integral energy. Four cycles include non-knocking cycle, slight knock cycle, moderate knock cycle and strong knock cycle. The knock factors of four cycles include 0.6642, 1.8191, 3.0275 and 5.3717, which could represent the strength of knock. Research shows that the method of intrinsic mode function high-frequency integral energy in the process of knock factors calculation for the electronic controlled two-stroke kerosene engine is practical and effective.
Cooling characteristics of full coverage film holes with opposite lateral ejection angles
DING Yang, CHANG Hai-ping, DU Zhi-neng
2014, 29(3): 511-518. doi: 10.13224/j.cnki.jasp.2014.03.005
Abstract:
Numerical investigations were performed to study the full coverage film cooling structure on the flow field characteristics, wall surface heat transfer coefficient, adiabatic wall film cooling effectiveness and integrated cooling effectiveness under consideration of heat conduction. Results indicates that kidney vortex pair generated in the flow field of film cooling with opposite lateral ejection angles makes the film spread wider laterally. Despite of raised heat transfer in this condition, the integrated cooling effectiveness increases as high adiabatic wall cooling effectiveness reduces the heat conduction. Under blowing ratio of 1.0, the slant hole with opposite lateral ejection angle of 45° has the highest integrated cooling effectiveness. The integrated cooling effectiveness of slant hole with opposite lateral ejection angle of 30° is the highest when blowing ratio of 1.5 and 2.0. Compared with corresponding slant hole with single lateral ejection angle, the film cooling with opposite lateral ejection angle of 15° has lower integrated cooling effectiveness. The cooling effectiveness of slant hole with opposite lateral ejection angles of 45° and 60° respectively are both comparable to the integrated cooling effectiveness of the corresponding structures with single lateral ejection angle. When compared with slant hole with single lateral ejection angle of 30°, the film cooling with opposite lateral ejection angle of 30° has higher integrated cooling effectiveness.
Effects of ventilation, shelter and thermal resistance in nacelle of helicopter on infrared radiation characteristics
PAN Cheng-xiong, ZHANG Jing-zhou, SHAN Yong, WANG Xing-tao, WANG Xian-wei
2014, 29(3): 519-525. doi: 10.13224/j.cnki.jasp.2014.03.006
Abstract:
To reduce the temperature on helicopter nacelle skin and lower the helicopter infrared radiation,numerical investigation was conducted to study the temperature distribution on the nacelle skin and the helicopter infrared radiation characteristics for helicopter under hovering state in consideration of the rotor down wash.Several improved schemes for the nacalle were presented based on the baseline nacalle configuration,such as adopting radiation shelter,adding ventilation slots,improving trailing edge of mixed exhaust duct,and making thermal resistance layer. The effects of above treatments on the temperature distribution and infrared radiation characteristics were assessed.Conclusions can be listed as follows:(1) With the adopted radiation shelter,infrared radiation intensity of the helicopter is enhanced by 25% in 3-5μm band but remained almost the same in 8-14μm band.(2) With the added ventilation slots,infrared radiation intensity of the helicopter is reduced by 12% in 3-5μm band but remained almost the same in 8-14μm band.(3) With the added ventilation slots,improved trailing edge and thermal resistance layer,infrared radiation intensity of the helicopter is reduced by 70% and 10%,respectively,in 3-5μm and in 8-14μm bands.
Heat transfer experiment and computation of a gas turbine vane
LUO Jian-xia, ZHU Hui-ren, ZHANG Zong-wei
2014, 29(3): 526-531. doi: 10.13224/j.cnki.jasp.2014.03.007
Abstract:
The surface pressure coefficient and velocity ratio coefficient were tested on a gas turbine vane,and the surface heat transfer coefficient was measured with transient liquid crystal technique.For the same structure vane cascade,the performances of four turbulence models(SST, k-ω, k-ε and RNG k-ε) were simulated the flow and heat trasfer, and compared data with experimental results.The result shows that, pressure coefficient declined on the pressure side along the acr direction,however, droped quickly to the minimum on the suction side and then slowly increased,which is the adverse pressure gradient. The distribution of heat transfer coefficient is strongly influenced by the complex flow pattern around the blade in the cascade passage.For pressure coefficient and velocity ratio coefficient,the results of four turbulence models have no big difference and are all very close to experimental data.Surface heat transfer coefficient distribution of SST model has similar trend with experimental data,while the other three models cannot simulate the effect of boundary layer separation on the suction side.
Effects of rotor downwash and exhaust direction on infrared radiation characteristics of helicopter
REN Li-feng, ZHANG Jing-zhou, SHAN Yong, WANG Xu, WANG Xing-tao
2014, 29(3): 532-540. doi: 10.13224/j.cnki.jasp.2014.03.008
Abstract:
The hot exhaust plume flow characteristics under the action of helicopter rotor downwash were investigated based on numerical calculations.And the effects of rotor downwash velocity and exhaust direction on the infrared radiation characteristics of helicopter were analyzed.The results show that:under different exhaust directions,influences of rotor downwash on the hot exhaust plume differ a lot;when the hot exhaust is ejected upwards,the exhaust plume can come into collision with rear fuselage under the action of rotor downwash,leading to the rise of temperature of rear fuselage;when the exhaust is ejected upwards,the infrared radiation intensity of solid under rotor downwash velocity of 10m/s is larger than that without rotor downwash,the infrared radiation intensities show a gradual decreasing trend with the increase of rotor downwash velocity for oblique exhaust of 45° and sideward exhaust ways.The exhaust direction shows significant influence on the infrared radiation distribution.When the exhaust is ejected in oblique direction, the infrared radiation intensity detected from top direction is almost the same as that from lateral direction.While exhaust is ejected upwards or sidewards,strong infrared radiation occurs at some viewing directions.
Performance of extravehicular spacesuit life-support system based on cooling-heat-power integration
ZHOU Hang, LI Yun-ze, WANG Sheng-nan, ZHOU Guo-dong
2014, 29(3): 541-548. doi: 10.13224/j.cnki.jasp.2014.03.009
Abstract:
Based on the study of proton exchange membrane fuel cell (PEMFC) and heat driven cooling technologies,an extravehicular spacesuit life-support system resulting from cooling-heat-power integration was presented.A typical case was calculated using the thermodynamic analysis theories and cooling-heat-power integration methods on the basis of mathematics of metal hydrogen storage,PEMFC,heat driven cooling system and radiation cooling device.The influence of the core components on the performance of the integration system was deeply analyzed.Compared with the typical spacesuit life-supported system based on cool,heat,power systems separated from each other,this system only consumes 84.6g of hydrogen without loss of working materials,and the energy efficiency is as high as 85.29%. This combined system has a greater advantage in the loss of working materials and energy efficiency.
Experiment on leakage characteristics in labyrinth seal
HU Dong-xu, JIA Li, YANG Li-xin
2014, 29(3): 549-555. doi: 10.13224/j.cnki.jasp.2014.03.010
Abstract:
A labyrinth seal test setup with a data acquisition system was designed and established to investigate the leakage characteristics of a typical straight-through labyrinth seal with engineering size. The effects of sealing clearance, tooth number, cavity depth and cavity width on the leakage rate and chamber pressure distribution were measured at the pressure ratios with range of 1.1-2.0. Result shows that, the leakage coefficient increased with increasing pressure ratio and sealing clearance,but the increasing trend gradually slowed down when the pressure ratio reached 1.6. The leakage rate decreased rapidly as the tooth number increased. But the tooth number's effects on leakage rate decreased gradually with growing tooth number. The shallow and broad cavity was help to decrease the leakage rate. The decrease of the pressure coefficient became slower in the flow direction. The pressure ratio, sealing clearance and cavity depth had little effect on the cavity pressure coefficient distribution. The upstream cavities mode more contributions to reducing the leakage loss and had key effects on the labyrinth seal performance.
Experiment on transpiration cooling with phase change of liquid water
MA Jie, LIN Jia, WANG Jian-hua
2014, 29(3): 556-562. doi: 10.13224/j.cnki.jasp.2014.03.011
Abstract:
An experimental investigation of transpiration cooling characteristics with phase change of liquid water was carried out.The specimen used in the experiments was made of porous materials sintered by refractory steel powder.The surface temperature of the specimen was measured by an infrared thermal imaging system.The variety of pressure and temperature in coolant chamber detected by the thermocouples and pressure sensor were used to analyze the phase change process of cooling water.The results indicate that average cooling efficiency is improved gradually with the increase of cooling water injection rate;but when liquid vapor phase change happens on the specimen surface exposed in hot gas,average cooling efficiency tends gradually to be stable;main flow temperature and cooling water injection rate determine the phase change position of cooling water,thus affecting pressure variation in the coolant chamber.
Structure optimization of a certain type of gas turbine sealing disk
LIU Ben-wu, WANG Jian-jun, SUI Xue-bing
2014, 29(3): 563-570. doi: 10.13224/j.cnki.jasp.2014.03.012
Abstract:
To systematically study the crack failure of the pressure-balanced holes on sealing disk,and increase the fatigue life of a certain type of gas turbine, failure phenomenon and local structural modification of sealing disk were analyzed. Finite element analysis model was established and the vibration stress distribution features and resonance characteristics were analyzed.From the analysis,it showed that the high static stress on edges of the pressure-balanced holes was the main cause of the fatigue crack and improvement measures were put forward.Structure strength comparison analysis were done based on the original structure and several local modifications to the pressure-balanced holes under assembly conditions,and finally the local structure modification scheme for sealing disk of a certain type of gas turbine was put forward. And then the stress on edges of the pressure-balanced holes reduced by 16%, the yield strength reserve coefficient increased from 0.891 to 1.069.
Interval analysis method of rotordynamics based on Taylor expansion method
HAO Yong, CHEN Meng, HONG Jie, MA Yan-hong
2014, 29(3): 571-577. doi: 10.13224/j.cnki.jasp.2014.03.013
Abstract:
A non-probabilistic interval analysis method was presented to solve the rotordynamics with these uncertain parameters.Based on interval mathematics and 1st step Taylor expansion method,interval analysis method simplified the uncertain parameters such as support stiffness and connecting structure stiffness to interval vectors.The formula of rotor natural frequencies using interval Taylor expansion analysis method was formulated and compared with the probabilistic method.The proposed method can be used to estimate the intervals of rotordynamics requiring the intervals of uncertainties only,so it can be used to solve rotordynamics problems with uncertainties.A numerical example of comparison between Taylor expansion method and probabilistic method was given.The natural frequency regions yielded by interval Taylor expansion method are very close to the accurate ones,and the separation margin is less than 2.2% as the deviation coefficient betta is taken as 20%.A rotordynamic test rig was set up and the test result demonstrates the efficiency of interval analysis method.
Sudden unbalance response analysis of rotor system supported on floating ring squeeze film damper
ZHOU Hai-lun, LUO Gui-huo, AI Yan-ting, SUN Dan
2014, 29(3): 578-584. doi: 10.13224/j.cnki.jasp.2014.03.014
Abstract:
To research the prevention of sudden unbalance response of rotor system supported on floating-ring squeeze film damper (FSFD), a dynamic model of the rotor supported on FSFD was established. In the model, the coupling effect between rotor and FSFD was considered. An efficient numerical integration approach was employed to conduct the investigation into the dynamic response of rotor. The main results are as follow: compared with traditional squeeze film damper, FSFD has better performance in preventing both sudden unbalance response of rotor and transient process when the rotor speed approaches the critical speed; the greater mass of floating ring or viscosity of lubrication oil means better performance of FSFD in preventing sudden unbalance response.
Modeling method and dynamic characteristics of high-dimensional counter-rotating dual rotor system
YANG Xi-guan, LUO Gui-huo, TANG Zhen-huan, WANG Fei
2014, 29(3): 585-595. doi: 10.13224/j.cnki.jasp.2014.03.015
Abstract:
To make up the deficiency of the finite element method in predicting dynamic characteristics of the dual-rotor system with local nonlinear, high-dimensional nonlinear dynamic model of dual-rotor system was established with finite element software and fixed interface modal synthesis method; subsequently an implicit time-domain method was presented to solve the problem using the Newmark algorithm ideas, and the computational efficiency of this method was largely dependent on the number of degrees of freedom at nonlinear forces' location. Considering the nonlinear forces of squeeze film damper and inter-shaft bearing, the nonlinear dynamic response characteristics of the counter-rotating dual rotor system under dual imbalance force were studied. The study shows that there are some combinations of these two rotation frequencies in system response, in addition to rotation frequencies of the internal and external rotors. Besides, bifurcation and chaos emerge in system speed bifurcation diagram and the critical speeds decrease slightly with the increasing inter-shaft bearing radial clearance. The axis orbit of the system will be of a petal shape, which is basically consistent with the experimental results.
Statistical properties of fatigue damage of Gaussian random loadings
CHENG Hong-wei, TAO Jun-yong, CHEN Xun, JIANG Yu
2014, 29(3): 596-603. doi: 10.13224/j.cnki.jasp.2014.03.016
Abstract:
Firstly, the fatigue damages associated with the random loadings were always deemed as high-cycle or very-high-cycle fatigue problems, and based on Chebyshev theorem, the number of rainflow cycles in a given time interval could be recognized as a constant by neglecting its randomness. Secondly, the randomness of fatigue damage induced by the distribution of rainflow cycles was analyzed. According to central limit theorem, the fatigue damage could be assumed to follow Gaussian distribution, and the statistical parameters: mean and variance, were derived from Dirlik's solution. Finally, the proposed method was used to a simulate Gaussian random loading and the measured random loading from an aircraft. Comparisons with observed results were carried out extensively. In the first example, the relative errors of the proposed method are 2.29%, 3.52% and 1.16% for the mean, standard deviation and variation coefficient of fatigue damage, respectively. In the second example, these relative errors are 11.70%, 173.32% and 18.20%, and the larger errors are attributable to non-stationary state of the measured loading to some extent.
Experiment and characteristics extraction of rub-impact in rotor-support-case system
LIANG Zhi-chao, ZHANG Zhen-bo, LIU Shu-guo, HONG Jie
2014, 29(3): 604-611. doi: 10.13224/j.cnki.jasp.2014.03.017
Abstract:
A rotor-support-case system simulated test rig was established by considering the structure characteristics and dynamic characteristics in blade to case rub-impact of aero-engine.The responses of both slight rub-impact and serious rub-impact were measured.Time frequency analysis methods, continuous wavelet transform and wavelet packet energy were used to perform the feature extraction of rotor and case.The results indicate that the response of case contents both high frequency signal and low frequency signal. The high frequency signal in case is mainly attributable to impact during slight rub-impact,and the friction effect is improved in serious rub-impact.As a conclusion,it may play a role in rub-impact fault diagnosis and identification.
Stress field and propagation trend of crack tip in tenon of nickel-based single crystal superalloys turbine blade
GAO Yu-fen, HU Wei-bing, WEN Zhi-xun, YUE Zhu-feng, CHEN Long
2014, 29(3): 612-618. doi: 10.13224/j.cnki.jasp.2014.03.018
Abstract:
A rate-dependent crystal slip finite element program was used to analyze the crack characteristic in tenon of nickel-based single crystal superalloys turbine blade, while the influence of crystallographic orientations was also taken into account. The Mises stress distributions of crack tip in tenon under isotropic condition combined with {001}, {011}, {111} crystal orientations were researched. Then the crack propagation trend was examined. The results show that: significant stress concentration and relatively large stress gradient occur in the crack tip with orientations of {001} [110], {011} [110], {111} [110]. The maximum stress value appears at the crack tip. Crack propagation trend varies with different crystallographic orientations. Under {001} [110],{011} [110], {111} [110] conditions, the crack propagation angle is 45°,54.7°,90°, respectively. It is clear that crystallographic orientation has significant influence on crack propagation trend of nickel-based single crystal superalloys turbine blade.
Research on condensation-preventing problem of intercooled gas turbine
ZHOU Ya-feng, ZHU Zhi-li
2014, 29(3): 619-623. doi: 10.13224/j.cnki.jasp.2014.03.019
Abstract:
In view of the process control of intercooled gas turbine, wet air condensation was put forward. Based on isopiestic and isothermal thermodynamics state change of wet air, wet air state change characteristic of intercooled gas turbine in the compressing and intercooling process was analyzed. The change relationship of state parameters of wet air which was compressed by low pressure compressor and cooled by intercooler was deduced. The conclusion was drawn that wet air can condense only in the intercooling process. The conditional discriminant of wet air condensation was found. Based on the feasibility of acquiring online measuring parameters, multi-parameter logic control method was founded by taking the static temperature after intercooling as the control target. Precision analysis of transformed control static temperature was carried out by combining with a project case. The results indicate the error is within 0.6‰. The control program applicable in project of intercooled gas turbine was developed, and the running control scheme under full conditions was presented.
Optimization analysis of a aircraft piston engine intake and exhaust system
XU Bin, LIU Bo, YANG Shi-chun, JI Fen-zhu
2014, 29(3): 624-630. doi: 10.13224/j.cnki.jasp.2014.03.020
Abstract:
To meet the power requirement of small high altitude aircraft, the intake and exhaust system flow uniform of a aircraft piston engine was analyzed. Simulation model of the aircraft piston engine was established, and the effects of intake and exhaust pipe structural parameters on engine performance were analyzed. The intake mass flow unevenness and pressure fluctuations were chosen as evaluating indicators to optimize the structural parameters of the engine's intake and exhaust system. By changing the length of intake manifold and duct, the unevenness is reduced to less than 5%, and the biggest decrease amplitude is 38%; the engine power and torque are improved by 5%.
Inlet and engine compatibility in transonic speed low-flow state
SHI Lei, ZHU Yu, ZHAO Su
2014, 29(3): 631-636. doi: 10.13224/j.cnki.jasp.2014.03.021
Abstract:
The compatibility analysis of the inlet and engine was conducted,according to the phenomenon of surge and stall in state of transonic speed and low-flow during flight test.The research indicates that,the instability boundaries of the engine from flight tests agree with those of the inlet from the wind tunnel tests,proving there is something wrong in the compatibility of the inlet and engine.Two methods from the perspective of the inlet and engine were presented.One was used to adjust the inlet regulation of the ramp to enlarge the instability boundary of supersonic speed and low-flow.The other was used to increase the minimum fuel flow and the nozzle area to improve the flow and the stability margin.The validated results show that the methods can relieve the problem of inlet and engine compatibility in low-flow.In future,the rules of inlet and engine compatibility in transonic low-flow state should be built.
Test of low aspect ratio wing equipped with Gurney flaps at low Reynolds numbers
CUI Zhao, LI Jian-bo, ZHAO Hong
2014, 29(3): 637-644. doi: 10.13224/j.cnki.jasp.2014.03.022
Abstract:
Aerodynamic characteristics of low aspect ratio wing equipped with Gurney flaps were studied by wind tunnel test at low Reynolds numbers of 2.0×105 and 5.0×105. Aspect ratio of the low aspect ratio wing was 1.67, with 1%-4% chord height Gurney flaps. Balance force measurements and surface pressure distribution investigation were implemented. The results suggest that lift coefficient of the low aspect ratio wing equipped with Gurney flaps was improved significantly at low Reynolds number. The lift drag ratio of wing was improved also when the wing was equipped with 1% chord height Gurney flaps. This is due to the increased lift of the wing introduced by the suitable height of the Gurney flap, while the drag has not been increased significantly at the Reynolds numbers in test. Comparing the effect of Gurney flaps with different Reynolds numbers in test, it indicates that Gurney flaps can diminish the negative effect of flow separation at low Reynolds number, and this mechanism takes more effect when the Reynolds number is lower. It requires more fine flow visualization technique to study the impact on the laminar separation phenomenon of wings with Gurney flaps at low Reynolds numbers.
Influence on radar cross-section of S-shaped two dimensional convergent nozzles with different outlet width-height ratios
LI Yue-feng, YANG Qing-zhen, HUAN Xia, GAO Xiang
2014, 29(3): 645-651. doi: 10.13224/j.cnki.jasp.2014.03.023
Abstract:
S-shaped two-dimensional(2-D) convergent nozzle with different width-height ratios were designed by the self-adaptive super-ellipse method when the inlet and outlet area,the eccentricity,area variation and the centerline variation of nozzles were kept constant.Combining iterative physical optic method with equivalent edge currents method,a code capable of calulating the edge diffraction and total scattering field was developed to simulate the radar scattering characteristics of cavities.The accuracy and reliability of the code was verified by comparing the experimental data from references with calculated data.Under horizontal and vertical polarization ways,radar cross-section(RCS) characteristics of S-shaped 2-D convergent nozzles were analyzed.The results show that the width-height ratio has little effect on the edge diffraction field of S-shaped 2-D convergent nozzle under horizontal and vertical polarization ways,and the difference of the outlet width-height ratio of the S-shaped 2-D convergent nozzles' RCS is less than 4dB.The nozzles' outlet width-height ratio has a large influence on total scattering field.At the positive detection angle within the large range of the detection angle the total scattering filed has lower RCS while the width- height ratio is 1.5,and at the negative detection angle,it has lower RCS while the ratio is 3.5.
Gliding aerodynamic characteristics of insect-size corrugated airfoils
ZHANG Rui, ZHOU Chao-ying
2014, 29(3): 652-656. doi: 10.13224/j.cnki.jasp.2014.03.024
Abstract:
In order to investigate the effect of upper and lower surface corrugations on the aerodynamic forces respectively,the gliding aerodynamic characteristics of both surfaces of a corrugated airfoil were studied at chord Reynolds number of 1200 when the angle of attack (AOA) varied from 0° to 20° with the finite volume method, compared with the smooth airfoil,corrugated airfoil with the smooth upper surface and corrugated airfoil with the smooth lower surface. The computed results indicate that the lift coefficient of corrugated airfoil improves by 10% than that of smooth airfoil. Within a suitable AOA, the lift of an airfoil with corrugated lower surface is always higher than that of an airfoil with smooth lower surface. The corrugation of lower suface play more important role of increasing the lift. At high AOA, a smooth upper surface increases the lift than a corrugated one. The corrugation of both upper and lower surfaces has little effect on the drag.
Computational method of ball bearing’s service-reliability ratio based on LS-DYNA
LI Chang, HAN Xing, SONG Hua, MA Xiao-gang
2014, 29(3): 657-662. doi: 10.13224/j.cnki.jasp.2014.03.025
Abstract:
Using the response surface method (RSM), input parameters-output responses equations of a type 6408 ball bearing were created to simulate different random error distributions; meanwhile, using matrix test method, sample point positions in input parameters spacing were located, and then it carried out a series of deterministic fitting tests to get the input parameters-output responses equations compositions and coefficients, by the method of regression analysis (least square method), in software LS-DYNA dynamic simulations for the ball bearing. To solve these stochastic functional equations, the ball bearing service-reliability ratio at any time was calculated. Result shows that the service-reliability ratio of 6408 ball bearing at 0.020008s is 97.062%.
Processing principle and tooth surface determination of equal base circle bevel gear using disc cutter
WANG Bin, DENG Xiao-zhong, DANG Yu-gong, LI Tian-xing, LI Geng-geng
2014, 29(3): 663-671. doi: 10.13224/j.cnki.jasp.2014.03.026
Abstract:
The equal base circle bevel gear was machined with a disc cutter. Based on the equal base circle bevel gear theory, its feasibility was analyzed, the mathematical model of the disc cutter was established; then the processing coordinate system of this special bevel gear was constructed based on disc cutter, while the mutual transformation of the cutting coordinate system was analyzed and obtained. The expression of tooth surface was obtained through solving the meshing equation of conjugate contact point when cutting this gear with a disk cutter. This new tooth surface was compared with a theoretical tooth surface based on finger cutter theory, and the machining and the theroretical tooth surface are simulated. The results show that: by reasonable design of the disc cutter section shape, the rotary angle in machining, the tilt angle and tilt center in machining, the actual tooth surface using disc cutter machining and the theroretical tooth surface are similar to the meet engineering requirments, and the equal base circle bevel gear can be processed using disc cutter.
Theory and experiment of foil bearing limiting load capacity based on Coulomb friction effect
XU Fang-cheng, LIU Zhan-sheng, ZHANG Guang-hui, MA Rui-xian
2014, 29(3): 672-681. doi: 10.13224/j.cnki.jasp.2014.03.027
Abstract:
The foil structural finite element model of bump-type gas foil journal bearing was developed in consideration of Coulomb friction in foil structure.The compressible gas lubricated Reynolds equation and the film thickness equation were solved together by using finite element method and finite difference method.The Coulomb friction effect on bearing limiting load capacity were studied when the journal eccentricity reached the limit.The test bed was established to test the limiting load capacity for two bump-type gas foil journal bearings with different roughness of bearing housing cylindrical hole surface by using temperature method.The numerical and experimental results were compared,indicating that the bearing limiting load capacities with roughness of bearing housing cylindrical hole surface 0.4μm at speed 10000r/min and 20000r/min are 15.5N and 42.3N respectively,while the bearing limiting load capacities with roughness 1.6μm are 10.9N and 29.6N respectively.The bearing limiting load capacity decreases with the increasing of roughness of bearing housing cylindrical hole surface due to the enhanced stiffness of bump foil caused by Coulomb friction force in foil structure,and the trend of numerical results agrees well with the experimental results.
A modified method for determining mesh stiffness of gears based on finite element method and elastic contact theory
CHANG Le-hao, LIU Geng, ZHENG Ya-ping, DING Yun-fei
2014, 29(3): 682-688. doi: 10.13224/j.cnki.jasp.2014.03.028
Abstract:
A method for determining mesh stiffness of gears was presented using a combination of the finite element method and elastic contact theory. The contact point bending deformations were separated from the original compliances matrix which was obtained using sub-structure method, while contact deformations were derived using an analytical formula of elastic line contact deformation. The time-varying mesh stiffness and load distributions of tooth could be obtained by solving the nonlinear deformation compatibility equations. Taking a gear pair as an example, the mesh stiffness using the presented method is within 6% difference with the aerospace standard. As finite element method has an obvious advantage in predicting global deflection and the elastic contact theory can compute local contact deformation accurately, the method pressented combines these advantages to increase the computation efficiency compared to conventional finite element method. Given the nonlinearity of contact deformations problem, the mesh stiffness is increasing nonlinearly with the increase of total mesh force.
Fault diagnosis of gas path components of turbofan engine based on spherical square root unscented Kalman filter algorithm
HU Yu, ZHANG Shi-ying, YANG Yue-cheng, ZHU Jie-tang, YANG Zheng-wei
2014, 29(3): 689-695. doi: 10.13224/j.cnki.jasp.2014.03.029
Abstract:
A spherical square root unscented Kalman filter algorithm was investigated to effectively track the health parameters of the gas path components of turbofan engine with the gradual and rapid faults. In this algorithm, a spherical simplex sampling was exploited to decrease the computational complexity. And the square root of measurement residuals covariance matrix was used instead of variance matrix during recursive arithmetic to improve the calculation efficiency and numerical stability of algorithm. Then, the simulation of a turbofan engine was conducted by extended Kalman filter, unscented Kalman filter and spherical square root unscented Kalman filter algorithms. The results show that filter time consumption by spherical square root unscented Kalman filter algorithm is cut by about 50%, with accurate estimation of health parameters in gradual and rapid faults, thus adapting to the parameters estimation and fault diagnosis of gas path components of turbofan engine.
A real-time piecewise linear dynamic model of aeroengine
WANG Bin, WANG Xi, SHI Yu-lin, WANG Hua-wei
2014, 29(3): 696-701. doi: 10.13224/j.cnki.jasp.2014.03.030
Abstract:
Aiming at establishing a real-time linear model of a turbofan engine with a fixed nozzle, a method of applying particle swarm optimization (PSO) algorithm to optimize state space model was proposed. The high pressure rotor corrected speed was selected as the gain scheduling parameter,a real-time piecewise linear dynamic model (RPLDM) which covers the entire operating envelop was built. The proposed optimizing method was validated by the similarity between the simulation results of the optimized linear model and the nonlinear model running in the entire flight envelop. Specifically, the comparative errors like pressure, temperature, and shaft speed of the turbofan engine are all within 3.5%.
High speed solenoid valve with the application of AMESim
WANG Qiu-xia, FAN Ding, PENG Kai
2014, 29(3): 702-707. doi: 10.13224/j.cnki.jasp.2014.03.031
Abstract:
The issue of modeling and simulation of a kind of high speed solenoid valve used for an electronic control system of a certain engine was discussed.According to the analysis of the operating principle of the high speed solenoid valve,the mathematical model of high accuracy for the high speed solenoid valve was built by use of the simulation software AMESim.The analysis on the duty ratio-volume flow characteristic was completed according to the simulation result of the model.By comparison of the experimental data of the electrical valve,the accuracy and precision of the mathematical model were analyzed.Simulation results show that the error of the duty ratio-volume flow characteristic of mathematical model for high speed solenoid valve is no more than 8%,thus satisfying the accuracy requirements set by the products.
Aerodynamic design principle and verification for subsonic axial-flow compressor with low reaction based on enhanced axial velocity at rotor outlet
HU Ying-jiao, WANG Song-tao
2014, 29(3): 708-718. doi: 10.13224/j.cnki.jasp.2014.03.032
Abstract:
An aerodynamic design principle for subsonic axial-flow compressor with low reaction based on enhanced axial velocity was proposed to solve the internal flow problems when the stage load was further enhanced by increasing the turning angle of the flow in the rotor. The mutual interactions between each aerodynamic parameter were analyzed based on this aerodynamic design principle, and a verification stage had been designed. The three-dimensional viscous numerical simulation results show that a compressor design of stage pressure ratio of 1.5 with efficiency of 92.5% at tip tangential speed of 213m/s has been attained.
Design principles and experiment on gas generator and high-temp gas release valve for aviation
SHAO Fei, WANG Hong-ming
2014, 29(3): 719-726. doi: 10.13224/j.cnki.jasp.2014.03.033
Abstract:
The design thoughts of gas generator and high-temp gas release valve were introduced, and their design principles were developed and confirmed experimentally. The experimental results show that, the gas generator can work steadily in the environment where the air mass flow rate is 0.025kg/s, the work temperature being up to 950℃, and the fluctuation of combustion temperature being ±10℃, and high-temp gas release valve has the characteristics of no leakage at 1200℃. The indexes above are higher than those of experiments for vehicles and grounds. Using the gas generator and high-temp gas release valve, the turbocharger characteristic can be obtained accurately and completely, helping to realize optimum altitude performance of state of art aero-piston engine.
Review of research on solid fuel regression rate of scramjet combustion
WANG Ning-fei, LIU Chang-xiu, WEI Zhi-jun
2014, 29(3): 727-736. doi: 10.13224/j.cnki.jasp.2014.03.034
Abstract:
The status and progress of solid fuel regression rate in scramjet combustion were elaborated, respectively. The progress and difficulties on regression rate was discussed, including type of solid fuel, combustion configuration, theoretical prediction model, numerical simulation and experimental analysis. The experience and methods from ramjet, thermal protection, insulation ablation can be used in solid fuel scramjet. The following perspectives were proposed: (1) thermal behavior of solid fuel under supersonic flow, heat and mass transfer process should be paid more attention; (2) research on characteristic of regression rate should be explored in depth; (3) the software should be developed and experiments should be conducted systematically. The objective of this work is to provide a reference for research in this field.
2014, 29(3): 737-737.
Abstract: