Three-dimensional flow guide structure for fan-shaped blade grid test of turbine blade, design method and system

By designing a three-dimensional flow guide structure, the problem of a single inlet airflow angle in the fan-shaped blade cascade test was solved, realizing the test simulation of the entire radial position, improving the effectiveness and utilization of the test results, and reducing the test cost.

CN121479973AActive Publication Date: 2026-02-06BEIJING XINYUAN ZHICHENG TECH DEV CO LTD +1
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Patent Information

Application Number
CN202512042235.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-31
Publication Date
2026-02-06
Estimated Expiration
2045-12-31

AI Technical Summary

Technical Problem

In existing fan-shaped blade cascade tests, the use of straight guide vanes results in a single inlet airflow angle, making it impossible to obtain full blade test results. This leads to poor comprehensiveness and low utilization rate in test verification.

Method used

A three-dimensional flow guiding structure for turbine blade fan-shaped cascade testing is designed. By obtaining the inlet airflow angle of multiple radial sections, a smooth flow guiding curve and a three-dimensional curved fan segment are constructed. Three-dimensional flow field simulation calculations are performed, and parameters are adjusted until the inlet airflow angle requirement of the test blade is met.

Benefits of technology

This method enables the simulation of the theoretical state of the test blade in all radial positions, improving the effectiveness and utilization of the test results and reducing the test cost.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a three-dimensional flow guide structure, design method and system for a fan-shaped blade grid test of turbine blades, and the method comprises the steps: obtaining inlet airflow angles of a plurality of radial cross sections of a test blade, determining a plurality of fairing flow guide curves, constructing a fairing three-dimensional curved surface, and obtaining a fairing flow guide curve; three-dimensional curved surface sectors are constructed on the basis of the multiple smooth three-dimensional curved surfaces which are arranged in the circumferential direction; judging whether the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade or not; if yes, completing the design; if not, the parameters are adjusted until the requirements are met, and the design is completed; according to the method, the three-dimensional flow field is formed by designing and constructing the three-dimensional curved surface sector, so that the outlet airflow angle of the three-dimensional flow guide structure meets the requirement of the whole inlet airflow angle of the test blade, the theoretical state of the test blade can be simulated on the total radial position of the test blade, and the effectiveness and the utilization rate of the test result are improved.
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Description

TECHNICAL FIELD

[0001] The present application belongs to the technical field of aero-engine and gas turbine turbine blade test research, and particularly relates to a three-dimensional flow guide structure for turbine blade sector cascade test, a design method and a system. BACKGROUND

[0002] The turbine blade is actually composed of a full ring structure, but considering the factors of reducing test difficulty and saving test cost, according to the test verification requirements of the turbine blade, part of the test can be carried out by using part of the full ring, that is, simplified as a sector cascade to carry out the test, such as the film cooling effect test, the comprehensive cooling effect test, the flow characteristic test, the external heat exchange test and the like related to the blade cooling. The inlet of the sector cascade test section is generally connected with a flat flow guide plate to provide an required inlet flow angle for the cascade. The inlet flow angle formed by the flat flow guide plate is only a fixed and single angle, which is approximately acceptable for the guide vane, but for the rotor blade, since the inlet relative flow angle of the blade in the radial direction changes greatly, it will lead to a great difference between the test state and the theoretical state.

[0003] At present, the general scheme of the sector cascade test is still to use the flat flow guide plate to manufacture the inlet flow angle. The fixed flow angle is generally selected as the middle section of the blade to ensure that the flow angle of the middle section is matched with the theoretical state, and the test results of the middle section are also extracted for use. This scheme has two shortcomings: 1) The complete full blade test results cannot be obtained, and the comprehensiveness of the test verification is poor; 2) Only the test results of the middle section can be used, and the test utilization rate is low. SUMMARY

[0004] In order to overcome the shortcomings of the prior art, the present application provides a three-dimensional flow guide structure design method for turbine blade sector cascade test, which comprises: Obtaining the inlet flow angles of a plurality of radial sections of the test blade; Based on the inlet flow angles of a plurality of radial sections, a plurality of smoothing flow guide curves are determined. The tangent direction of the starting point of each smoothing flow guide curve is the same as the gas supply flow direction of the sector cascade test, and the tangent direction of the terminal point of each smoothing flow guide curve is the same as the inlet flow angle direction of the corresponding radial section; Based on a plurality of smoothing three-dimensional curved surfaces formed by the plurality of smoothing flow guide curves, a three-dimensional curved surface sector is constructed; Performing three-dimensional flow field simulation calculation on the three-dimensional curved surface sector to obtain the three-dimensional flow field of the three-dimensional curved surface sector; determining whether the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade; if yes, taking the three-dimensional curved surface sector as a geometric model of the three-dimensional flow guide structure to complete the design; if not, adjusting parameters of the three-dimensional curved surface sector until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade to complete the design of the three-dimensional flow guide structure.

[0005] Preferably, the adjusting parameters of the three-dimensional curved surface sector until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade comprises: adjusting the number of the fairing three-dimensional curved surfaces in the three-dimensional curved surface sector to obtain a new three-dimensional curved surface sector, and repeatedly performing the simulation calculation and the determination until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade; when the adjustment of the number of the fairing three-dimensional curved surfaces in the three-dimensional curved surface sector cannot meet the inlet flow angle requirement, adjusting the length of at least one of the fairing flow guide curves, and re-establishing the three-dimensional curved surface sector, and repeatedly performing the simulation calculation and the determination until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade.

[0006] Preferably, the initial design number of the fairing three-dimensional curved surfaces in the three-dimensional curved surface sector is the same as the number of the test blades in the sector cascade test.

[0007] Preferably, the initial design length of each of the fairing flow guide curves is determined according to the chord length of the test blade.

[0008] Preferably, the adjusting the number of the fairing three-dimensional curved surfaces in the three-dimensional curved surface sector comprises: increasing the number of the fairing three-dimensional curved surfaces in the three-dimensional curved surface sector according to a set increment; the number of the increasing is at least once; the upper limit of the number of the fairing three-dimensional curved surfaces in the three-dimensional curved surface sector is twice the number of the test blades.

[0009] Preferably, the adjusting the length of at least one of the fairing flow guide curves comprises: increasing or decreasing the length of the fairing flow guide curve according to the tangent direction of the starting point and the tangent direction of the end point of at least one of the fairing flow guide curves.

[0010] Preferably, the determining whether the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade comprises: calculating the deviation of the outlet flow angle of the three-dimensional curved surface sector in the three-dimensional flow field from the inlet flow angle of the test blade, and determining whether the deviation meets the set deviation allowable range requirement.

[0011] Preferably, the forming of the fairing three-dimensional surface based on the plurality of fairing flow guide curves comprises: Arranging the plurality of fairing flow guide curves based on the positions and intervals of the plurality of radial sections; Constructing the fairing three-dimensional surface by surface fitting based on the arranged plurality of fairing flow guide curves as contour lines.

[0012] Based on the same inventive concept, the application further provides a three-dimensional flow guide structure for turbine blade sector cascade test, comprising: A plurality of multi-surface flow guide plates arranged in the flow guide channel; The shape, number and arrangement of the multi-surface flow guide plates are determined according to the shape, number and arrangement of the fairing three-dimensional surface in the geometric model; The fairing three-dimensional surface and the geometric model are the fairing three-dimensional surface and the geometric model in the design method as described above.

[0013] Based on the same inventive concept, the application further provides a three-dimensional flow guide structure design system for turbine blade sector cascade test, comprising: A data acquisition module for acquiring the inlet flow angles of a plurality of radial sections of a test blade; A curve determination module for determining a plurality of fairing flow guide curves based on the inlet flow angles of the plurality of radial sections; the tangent direction of the starting point of each fairing flow guide curve is the same as the supply air flow direction of the sector cascade test, and the tangent direction of the terminal point of each fairing flow guide curve is the same as the inlet flow angle direction of the corresponding radial section; A sector construction module for constructing a fairing three-dimensional surface based on the plurality of fairing flow guide curves, and constructing a three-dimensional curved surface sector based on the plurality of fairing three-dimensional surfaces arranged in a circumferential direction; A simulation module for performing three-dimensional flow field simulation calculation on the three-dimensional curved surface sector to obtain the three-dimensional flow field of the three-dimensional curved surface sector; A judgment and adjustment module for judging whether the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade; if yes, the three-dimensional curved surface sector is taken as a geometric model of the three-dimensional flow guide structure, and the design is completed; if not, the three-dimensional curved surface sector is adjusted in parameters until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet flow angle requirement of the test blade, and the three-dimensional flow guide structure design is completed.

[0014] Preferably, the judgment and adjustment module comprises: The first adjustment submodule is used to adjust the number of smooth three-dimensional surfaces in the three-dimensional curved surface sector to obtain a new three-dimensional curved surface sector, and to repeatedly perform simulation calculations and judgments until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade. The second adjustment submodule is used to adjust the length of at least one of the smooth guide curves and reconstruct the three-dimensional curved surface sector when adjusting only the number of smooth three-dimensional curved surfaces in the three-dimensional curved surface sector cannot meet the inlet airflow angle requirement. The simulation calculation and judgment are repeated until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade.

[0015] Preferably, the initial design number of smooth three-dimensional curved surfaces in the three-dimensional curved sector is the same as the number of test blades in the sector blade cascade test.

[0016] Preferably, the initial design length of each of the smooth guide curves is determined based on the chord length of the test blade.

[0017] Preferably, the first adjustment submodule is specifically used for: Increase the number of smooth three-dimensional surfaces in the three-dimensional surface sector according to the set increment; The number of increases is at least once; The maximum number of smooth three-dimensional surfaces in the three-dimensional curved surface sector is twice the number of the test blades.

[0018] Preferably, the second adjustment submodule is specifically used for: The length of the smoothed flow guide curve may be increased or decreased according to the starting tangent direction and the ending tangent direction of at least one of the smoothed flow guide curves.

[0019] Preferably, the judgment and adjustment module further includes: The judgment submodule is used to calculate the deviation between the outlet airflow angle of the three-dimensional curved fan segment and the inlet airflow angle of the test blade in the three-dimensional flow field, and to determine whether the deviation meets the set allowable deviation range requirements.

[0020] Preferably, the sector construction module is specifically used for: Based on the positions and spacing of the multiple radial sections, the corresponding multiple smooth flow guiding curves are arranged; Using the arranged smooth flow guide curves as contour lines, a smooth three-dimensional surface is constructed through surface fitting.

[0021] Based on the same inventive concept, the present invention also provides a computer device, comprising: one or more processors; Memory, used to store one or more programs; When the one or more programs are executed by the one or more processors, a three-dimensional flow guide structure design method for turbine blade fan-shaped cascade experiments is implemented as described above.

[0022] Based on the same inventive concept, the present invention also provides a computer-readable storage device having a computer program stored thereon, wherein when the computer program is executed, it implements the three-dimensional flow guide structure design method for turbine blade fan-shaped cascade test as described above.

[0023] Compared with the closest existing technology, the present invention has the following beneficial effects: This invention provides a three-dimensional flow guiding structure, design method, and system for turbine blade fan-shaped cascade testing. The method includes: obtaining the inlet airflow angles of multiple radial sections of the test blade; determining multiple smooth flow guiding curves based on the inlet airflow angles of the multiple radial sections; the starting tangent direction of each smooth flow guiding curve is the same as the airflow direction of the fan-shaped cascade test, and the ending tangent direction of each smooth flow guiding curve is the same as the inlet airflow angle direction of the corresponding radial section; constructing a smooth three-dimensional surface based on the multiple smooth flow guiding curves, and constructing a three-dimensional surface fan segment based on the multiple circumferentially arranged smooth three-dimensional surfaces; performing three-dimensional flow field simulation calculations on the three-dimensional surface fan segment to obtain the three-dimensional flow field of the three-dimensional surface fan segment; and determining whether the three-dimensional flow field of the three-dimensional surface fan segment is suitable for the test. The method satisfies the inlet airflow angle requirement of the test blade. If satisfied, the three-dimensional curved sector is used as the geometric model of the three-dimensional guide structure to complete the design. If not satisfied, the parameters of the three-dimensional curved sector are adjusted until the three-dimensional flow field of the three-dimensional curved sector meets the inlet airflow angle requirement of the test blade, thus completing the design of the three-dimensional guide structure. This method constructs a three-dimensional flow field by designing and building a three-dimensional curved sector, so that the outlet airflow angle of the three-dimensional guide structure meets the overall inlet airflow angle requirement of the test blade. This allows the theoretical state of the test blade to be simulated at all radial positions. This makes the simulation of the inlet flow field of the test blade more accurate, improves the effectiveness and utilization of the test results, obtains more test data in a single test, and indirectly reduces the test cost. Attached Figure Description

[0024] Figure 1 A schematic diagram of the design method for a three-dimensional flow guiding structure for turbine blade fan-shaped cascade testing provided by the present invention; Figure 2 A schematic diagram of a three-dimensional flow guiding structure for turbine blade fan-shaped cascade testing provided by the present invention; Figure 3 A top view of the inlet section and guide section provided for this invention; Figure 4A schematic diagram of a three-dimensional flow guiding structure design system for turbine blade fan-shaped cascade testing provided by the present invention; Figure 5 A schematic diagram of an electronic device structure provided by the present invention; Among them, 1. Guide channel; 2. Multi-curved guide plate; 3. Inlet section; 4. Blade cascade test section; 5. Test blade. Detailed Implementation

[0025] The specific embodiments of the present invention will be further described in detail below with reference to the accompanying drawings.

[0026] Example 1 This invention provides a three-dimensional flow guide structure design method for turbine blade fan-shaped cascade experiments, such as... Figure 1 As shown, it includes: S1. Obtain the inlet airflow angle of multiple radial sections of the test blade; S2. Based on the inlet airflow angles of the multiple radial sections, determine multiple smooth guide curves; the starting tangent direction of each smooth guide curve is the same as the airflow direction of the fan-shaped blade test, and the ending tangent direction of each smooth guide curve is the same as the inlet airflow angle direction of the corresponding radial section. S3. Based on multiple smooth flow guide curves, a smooth three-dimensional surface is constructed, and based on multiple smooth three-dimensional surfaces arranged in a circumferential direction, a three-dimensional surface sector is constructed. S4. Perform three-dimensional flow field simulation calculation on the three-dimensional curved surface sector to obtain the three-dimensional flow field of the three-dimensional curved surface sector; S5. Determine whether the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade; if it does, use the three-dimensional curved fan segment as the geometric model of the three-dimensional guide structure to complete the design; if it does not meet the requirement, adjust the parameters of the three-dimensional curved fan segment until the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade to complete the design of the three-dimensional guide structure.

[0027] To address the issue of a single inlet airflow angle in fan-shaped blade tests, this invention designs and constructs a three-dimensional curved fan segment to form a three-dimensional flow field. This ensures that the outlet airflow angle of the three-dimensional guide structure meets the overall inlet airflow angle requirements of the test blade, thereby simulating the theoretical state of the test blade at all radial positions. This makes the inlet flow field simulation of the test blade more accurate, improves the effectiveness and utilization of the test results, and allows for more test data to be obtained in a single test, indirectly reducing test costs.

[0028] It should be noted that, depending on the different structures and requirements of the test blades, the designed geometric model can take different forms, thereby ensuring that the three-dimensional flow guide structure produced according to the geometric model has an outlet airflow angle in the radial direction that is consistent with the inlet airflow angle required by the test blade.

[0029] Considering the mainstream inlet parameter requirements of the test blade, in S1 above, n radial sections of the test blade are selected, where n is the number of sections of the test blade that are required to maintain the inlet airflow angle. Then, the inlet airflow angle of each radial section is extracted from the mainstream inlet parameters of the test blade to complete the data acquisition. For example, n≥5.

[0030] To ensure the three-dimensional guide structure meets the inlet airflow angle requirements of each radial section, S2 needs to be designed individually for each inlet airflow angle, resulting in a smooth spline curve for each radial section, serving as the smooth guide curve. The smooth guide curve acts as an airflow deflector, its task being to smoothly and seamlessly transform the upstream, fixed-direction parallel airflow (the supply airflow for the fan-shaped blade test) into the inlet airflow at the specific angle required by the test blade at that radial section.

[0031] Specifically, in S2 above, the starting and ending tangent directions of the smoothed guide curves are restricted. Meanwhile, in this embodiment, the initial design length of each smoothed guide curve is determined based on the chord length of the test blade; specifically, the initial design length of the smoothed guide curve can be approximately equal to the chord length of the test blade, avoiding large-angle bends. This is the physical prerequisite for ensuring airflow adhesion, preventing separation, and thus forming a high-quality three-dimensional flow field.

[0032] In this embodiment, the initial design number of smooth three-dimensional curved surfaces in the three-dimensional curved sector is the same as the number of test blades in the sector blade cascade experiment.

[0033] It should be noted that the length and number of smooth guide curves are adjustable parameters in the design process. By clarifying the initial design length and number in the design process of the above initial parameters, the subsequent iterative optimization process has a clear starting point and adjustment direction, thereby efficiently and reliably obtaining a geometric model design that meets the airflow angle requirements.

[0034] In this embodiment, when constructing a smooth three-dimensional surface based on multiple smooth flow guide curves in S3 above, it may include: Based on the positions and spacing of the multiple radial sections, the corresponding multiple smooth flow guiding curves are arranged; Using the arranged smooth flow guide curves as contour lines, a smooth three-dimensional surface is constructed through surface fitting.

[0035] It should be noted that the multiple smooth flow guiding curves can be arranged proportionally according to the positions and spacing of multiple radial sections, or the spatial relationship between the multiple smooth flow guiding curves can be determined by other equivalent mathematical methods based on the positions and spacing of multiple radial sections.

[0036] When performing three-dimensional flow field simulation calculations using the above S4, it is necessary to refer to... Figure 2 and Figure 3 The actual installation of the multi-curved guide vane 2 was simulated with boundary conditions. In actual installation, multiple multi-curved guide vanes 2 were circumferentially installed in the fan-shaped guide channel 1. The inlet and wall of the guide channel 1, as well as the wall of the multi-curved guide vane 2, were the key boundaries. Three-dimensional flow field simulation calculations could be performed using numerical simulation software such as CFX or FLUENT. This simulation could accurately calculate the three-dimensional flow field and outlet airflow angle of the three-dimensional curved fan segment, providing an objective and quantitative data basis for subsequent judgment on whether the design of the three-dimensional guide structure met the aerodynamic performance requirements of the test blade.

[0037] In this embodiment, when determining whether the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade in S5 above, it may include: Calculate the deviation between the outlet airflow angle of the three-dimensional curved fan segment and the inlet airflow angle of the test blade in the three-dimensional flow field, and determine whether the deviation meets the set allowable deviation range requirements.

[0038] Specifically, the outlet airflow angle of the simulated three-dimensional curved fan segment is used as the test inlet airflow angle, and the allowable deviation from the theoretically required inlet airflow angle of the test blade is calculated. For example, the deviation is allowed to be 1%, meaning the allowable deviation range is required to be no more than 1%.

[0039] In S5 above, the parameters of the three-dimensional curved surface sector are adjusted, including the number of smoothed three-dimensional curved surfaces and / or the length of the smoothed flow guide curve.

[0040] In this embodiment, adjusting the parameters of the three-dimensional curved surface sector in S5 until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade can include: S501. Adjust the number of smooth three-dimensional surfaces in the three-dimensional curved surface sector to obtain a new three-dimensional curved surface sector, and perform simulation calculations and judgments repeatedly until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade. S502. When adjusting only the number of smooth three-dimensional surfaces in the three-dimensional curved fan segment cannot meet the inlet airflow angle requirement, adjust the length of at least one of the smooth guide curves and reconstruct the three-dimensional curved fan segment. Repeatedly perform simulation calculations and judgments until the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade.

[0041] It should be noted that in S502, after adjusting the length of the smoothing guide curve, the smoothing three-dimensional surface is updated, and it is necessary to return to S3. The three-dimensional surface sector is reconstructed according to the initial design quantity of the smoothing three-dimensional surface, and the simulation calculation and judgment are repeated. If the design requirements are still not met at this time, S501 is executed based on the adjusted length of the smoothing guide curve. When the number of smoothing three-dimensional surfaces is increased to the upper limit and the design requirements are still not met, the length of the smoothing guide curve is readjusted again until the three-dimensional flow field of the three-dimensional surface sector meets the inlet airflow angle requirement of the test blade.

[0042] In this embodiment, adjusting the number of smooth three-dimensional surfaces in the three-dimensional surface sector in S501 above may include: Increase the number of smooth three-dimensional surfaces in the three-dimensional surface sector according to the set increment; The number of increases is at least once; The maximum number of smooth three-dimensional surfaces in the three-dimensional curved surface sector is twice the number of the test blades.

[0043] For example, the increment is set to 1. Each time the quantity is adjusted, a smooth three-dimensional surface is added and the simulation is re-performed until the upper limit of the quantity is reached or the three-dimensional flow field of the three-dimensional surface sector meets the inlet airflow angle requirement of the test blade.

[0044] In this embodiment, adjusting the length of at least one of the smooth flow guiding curves in S502 above may include: The length of the smoothed flow guide curve may be increased or decreased according to the starting tangent direction and the ending tangent direction of at least one of the smoothed flow guide curves.

[0045] It should be noted that since the solution of the smooth three-dimensional curved surface is not unique, the length of the smooth guide curve may increase or decrease during the adjustment process, while avoiding large-angle bends in the curve. Following the adjustment sequence of S5, different attempts are made and then simulation calculations are performed to ensure that the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirements of the test blade.

[0046] Example 2 Based on the same inventive concept, this invention also provides a three-dimensional flow guiding structure for turbine blade fan-shaped cascade testing, such as... Figure 2 andFigure 3 As shown, it includes: Multiple curved guide vanes 2 are arranged in the guide channel 1; The shape, quantity, and arrangement of the multi-curved guide vanes 2 are determined based on the shape, quantity, and arrangement of the smooth three-dimensional curved surfaces in the geometric model; The smooth three-dimensional surface and the geometric model are the smooth three-dimensional surface and geometric model in the above embodiment of a three-dimensional flow guide structure design method for turbine blade fan-shaped cascade test.

[0047] Specifically, guided by the geometric model, the multi-curved guide vane 2 is manufactured according to the smooth three-dimensional curved surface in the geometric model. The guide channel 1 connects the inlet section 3 and the blade cascade test section 4. The axial airflow of the fan-shaped blade cascade test, i.e., the mainstream, enters the guide channel 1 through the fan-shaped channel of the inlet section 3. Figure 2 The diagram illustrates the cross-sectional positional relationship between the inlet section 3, the guide channel 1, and the test section 4 of the blade cascade, as well as the arrangement of the multi-curved guide vanes 2 within the guide channel 1. The guide channel 1 is also a fan-shaped channel, with multiple multi-curved guide vanes 2 arranged circumferentially along it, such as... Figure 3 As shown, multiple curved guide vanes 2 divide the guide channel 1 into multiple airflow channels, forcibly turning the mainstream to form a designed three-dimensional flow field, thus achieving a correspondence between the outlet airflow angle of the guide channel 1 and the inlet airflow angle required by the test blade 5. At this time, the inlet conditions experienced by each radial section of the test blade 5 from the blade root to the blade tip are highly consistent with its design requirements.

[0048] It should be noted that the multi-curved guide plate 2 is specifically a multi-curved thin plate.

[0049] Example 3 Based on the same inventive concept, this invention also provides a three-dimensional flow guiding structure design system for turbine blade fan-shaped cascade testing, such as... Figure 4 As shown, it includes: The data acquisition module is used to acquire the inlet airflow angles of multiple radial sections of the test blade; The curve determination module is used to determine multiple smooth guide curves based on the inlet airflow angles of multiple radial sections; the starting tangent direction of each smooth guide curve is the same as the air supply airflow direction of the fan-shaped blade test, and the ending tangent direction of each smooth guide curve is the same as the inlet airflow angle direction of the corresponding radial section. The sector construction module is used to construct a smooth three-dimensional surface based on multiple smooth flow guide curves, and to construct three-dimensional surface sectors based on multiple smooth three-dimensional surfaces arranged in a circumferential direction. The simulation module is used to perform three-dimensional flow field simulation calculations on the three-dimensional curved surface sector to obtain the three-dimensional flow field of the three-dimensional curved surface sector; The judgment and adjustment module is used to determine whether the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade. If it does, the three-dimensional curved fan segment is used as the geometric model of the three-dimensional guide structure to complete the design. If it does not meet the requirement, the parameters of the three-dimensional curved fan segment are adjusted until the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade to complete the design of the three-dimensional guide structure.

[0050] In this embodiment, the determination and adjustment module includes: The first adjustment submodule is used to adjust the number of smooth three-dimensional surfaces in the three-dimensional curved surface sector to obtain a new three-dimensional curved surface sector, and to repeatedly perform simulation calculations and judgments until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade. The second adjustment submodule is used to adjust the length of at least one of the smooth guide curves and reconstruct the three-dimensional curved surface sector when adjusting only the number of smooth three-dimensional curved surfaces in the three-dimensional curved surface sector cannot meet the inlet airflow angle requirement. The simulation calculation and judgment are repeated until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade.

[0051] In this embodiment, the initial design number of smooth three-dimensional curved surfaces in the three-dimensional curved sector is the same as the number of test blades in the sector blade cascade experiment.

[0052] In this embodiment, the initial design length of each smooth guide curve is determined based on the chord length of the test blade.

[0053] In this embodiment, the first adjustment submodule is specifically used for: Increase the number of smooth three-dimensional surfaces in the three-dimensional surface sector according to the set increment; The number of increases is at least once; The maximum number of smooth three-dimensional surfaces in the three-dimensional curved surface sector is twice the number of the test blades.

[0054] In this embodiment, the second adjustment submodule is specifically used for: The length of the smoothed flow guide curve may be increased or decreased according to the starting tangent direction and the ending tangent direction of at least one of the smoothed flow guide curves.

[0055] In this embodiment, the determination and adjustment module further includes: The judgment submodule is used to calculate the deviation between the outlet airflow angle of the three-dimensional curved fan segment and the inlet airflow angle of the test blade in the three-dimensional flow field, and to determine whether the deviation meets the set allowable deviation range requirements.

[0056] In this embodiment, the sector construction module is specifically used for: Based on the positions and spacing of the multiple radial sections, the corresponding multiple smooth flow guiding curves are arranged; Using the arranged smooth flow guide curves as contour lines, a smooth three-dimensional surface is constructed through surface fitting.

[0057] Example 4 like Figure 5 As shown, the present invention also provides an electronic device, which may be a computer device, a microcontroller device, a smart mobile device, etc. The electronic device in this embodiment may include a processor, a memory, a transceiver component, etc. The memory, processor, and transceiver component are connected via a bus; the memory can be used to store executable programs, and an exemplary executable program may include instructions; the processor is used to execute the instructions stored in the memory. The memory can also be used to store data, which can be accessed and / or modified when instructions are executed.

[0058] The processor may be a Central Processing Unit (CPU), or it may be other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. It is the computing core and control core of the terminal, and it is suitable for implementing one or more instructions. Specifically, it is suitable for loading and executing one or more instructions in the storage medium to realize the corresponding method flow or corresponding function, so as to realize the steps of the three-dimensional guide structure design method for turbine blade fan-shaped cascade test in the above embodiment.

[0059] Example 5 Based on the same inventive concept, this invention also provides a readable storage device, specifically an electronic device readable storage medium (Memory). This readable storage medium is a memory device within an electronic device used to store programs and data. It is understood that the storage medium here can include both the built-in storage medium of the electronic device and extended storage media supported by the electronic device. The storage medium provides storage space, which stores the terminal's operating system. Furthermore, this storage space also stores one or more instructions suitable for loading and execution by a processor. These instructions can be one or more executable programs (including program code). It should be noted that the storage medium here can be high-speed RAM or non-volatile memory, such as at least one disk storage device. Loading and executing one or more instructions stored in the storage medium by the processor can implement the steps of the three-dimensional guide structure design method for turbine blade fan-shaped cascade experiments described in the above embodiments.

[0060] Those skilled in the art will understand that embodiments of the present invention can be provided as methods, systems, or computer program products. Therefore, the present invention can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, the present invention can take the form of a computer program product embodied on one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0061] This invention is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of the invention. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, generate instructions for implementing the flowchart illustrations and / or block diagrams. Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.

[0062] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1The function specified in one or more boxes.

[0063] These computer program instructions may also be loaded onto a computer or other programmable data processing equipment to cause a series of operational steps to be performed on the computer or other programmable equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.

[0064] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit its protection scope. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that after reading the present invention, they can still make various changes, modifications or equivalent substitutions to the specific implementation methods of the application, but these changes, modifications or equivalent substitutions are all within the protection scope of the claims of the present invention.

Claims

1. A three-dimensional flow guiding structure design method for turbine blade fan-shaped cascade experiments, characterized in that, include: Obtain the inlet airflow angles of multiple radial sections of the test blade; Based on the inlet airflow angles of the multiple radial sections, multiple smooth guide curves are determined; the starting tangent direction of each smooth guide curve is the same as the air supply airflow direction of the fan-shaped blade test, and the ending tangent direction of each smooth guide curve is the same as the inlet airflow angle direction of the corresponding radial section. A smooth three-dimensional surface is constructed based on multiple smooth flow guide curves, and a three-dimensional surface sector is constructed based on multiple smooth three-dimensional surfaces arranged circumferentially. A three-dimensional flow field simulation calculation is performed on the three-dimensional curved surface sector to obtain the three-dimensional flow field of the three-dimensional curved surface sector; Determine whether the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade; if it does, use the three-dimensional curved fan segment as the geometric model of the three-dimensional guide structure to complete the design; if it does not meet the requirement, adjust the parameters of the three-dimensional curved fan segment until the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade to complete the design of the three-dimensional guide structure.

2. The method as described in claim 1, characterized in that, The step of adjusting the parameters of the three-dimensional curved surface sector until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade includes: Adjust the number of smooth three-dimensional surfaces in the three-dimensional curved surface sector to obtain a new three-dimensional curved surface sector, and repeat the simulation calculation and judgment until the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade; When adjusting only the number of smooth three-dimensional surfaces in the three-dimensional curved sector cannot meet the inlet airflow angle requirement, adjust the length of at least one of the smooth guide curves and reconstruct the three-dimensional curved sector. Repeatedly perform simulation calculations and judgments until the three-dimensional flow field of the three-dimensional curved sector meets the inlet airflow angle requirement of the test blade.

3. The method as described in claim 2, characterized in that, The initial design number of smooth three-dimensional curved surfaces in the three-dimensional curved sector is the same as the number of test blades in the sector blade cascade test.

4. The method as described in claim 2 or 3, characterized in that, The initial design length of each of the smoothed flow guide curves is determined based on the chord length of the test blade.

5. The method as described in claim 3, characterized in that, Adjusting the number of smoothed three-dimensional surfaces in the three-dimensional surface sector includes: Increase the number of smooth three-dimensional surfaces in the three-dimensional surface sector according to the set increment; The number of increases is at least once; The maximum number of smooth three-dimensional surfaces in the three-dimensional curved surface sector is twice the number of the test blades.

6. The method as described in claim 4, characterized in that, Adjusting the length of at least one of the smoothing guide curves includes: The length of the smoothed flow guide curve may be increased or decreased according to the starting tangent direction and the ending tangent direction of at least one of the smoothed flow guide curves.

7. The method as described in claim 1 or 2, characterized in that, The determination of whether the three-dimensional flow field of the three-dimensional curved surface sector meets the inlet airflow angle requirement of the test blade includes: Calculate the deviation between the outlet airflow angle of the three-dimensional curved fan segment and the inlet airflow angle of the test blade in the three-dimensional flow field, and determine whether the deviation meets the set allowable deviation range requirements.

8. The method as described in claim 1 or 2, characterized in that, The process of constructing a smooth three-dimensional surface based on multiple smoothed flow guide curves includes: Based on the positions and spacing of the multiple radial sections, the corresponding multiple smooth flow guiding curves are arranged; Using the arranged smooth flow guide curves as contour lines, a smooth three-dimensional surface is constructed through surface fitting.

9. A three-dimensional flow guiding structure for testing turbine blade fan-shaped cascades, characterized in that, include: Multiple curved guide vanes are arranged in the guide channel; The shape, number, and arrangement of the multi-curved guide vanes are determined based on the shape, number, and arrangement of the smooth three-dimensional curved surfaces in the geometric model; The smoothed three-dimensional surface and the geometric model are the smoothed three-dimensional surface and geometric model in the design method according to any one of claims 1-8.

10. A three-dimensional flow guide structure design system for turbine blade fan-shaped cascade experiments, characterized in that, include: The data acquisition module is used to acquire the inlet airflow angles of multiple radial sections of the test blade; The curve determination module is used to determine multiple smooth guide curves based on the inlet airflow angles of multiple radial sections; the starting tangent direction of each smooth guide curve is the same as the air supply airflow direction of the fan-shaped blade test, and the ending tangent direction of each smooth guide curve is the same as the inlet airflow angle direction of the corresponding radial section. The sector construction module is used to construct a smooth three-dimensional surface based on multiple smooth flow guide curves, and to construct three-dimensional surface sectors based on multiple smooth three-dimensional surfaces arranged in a circumferential direction. The simulation module is used to perform three-dimensional flow field simulation calculations on the three-dimensional curved surface sector to obtain the three-dimensional flow field of the three-dimensional curved surface sector; The judgment and adjustment module is used to determine whether the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade. If it does, the three-dimensional curved fan segment is used as the geometric model of the three-dimensional guide structure to complete the design. If it does not meet the requirement, the parameters of the three-dimensional curved fan segment are adjusted until the three-dimensional flow field of the three-dimensional curved fan segment meets the inlet airflow angle requirement of the test blade to complete the design of the three-dimensional guide structure.

Citation Information

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