Impeller dynamic balance detection and leveling equipment
Through the automatic clamping and lifting linkage of the clamping block and elastic parts, combined with the real-time adjustment of the detection components, the problems of inconsistent installation and cumbersome detection in traditional impeller balancing detection are solved, and the automation, precision and efficiency of impeller balancing are achieved.
Patent Information
- Application Number
- CN202511005505.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-22
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2045-07-22
AI Technical Summary
In traditional impeller balancing tests, the installation of the counterweight clamp relies on manual operation, which leads to inconsistent and time-consuming installation, affecting the dynamic balancing effect. In addition, the existing detection methods are cumbersome, time-consuming and experience-dependent, making it difficult to achieve efficient and accurate balancing adjustments.
The clamping block and elastic parts are used in conjunction to achieve automatic clamping and stable fixation of the counterweight clamp. The lifting parts are linked with the pneumatic parts to ensure accurate positioning of the blades. The detection component achieves dynamic compensation and precise adjustment by adjusting the counterweight block in real time.
It significantly improves the installation accuracy and efficiency of impeller balancing detection, realizes the automation and precision installation of counterweight clamps, reduces manual intervention, improves the automation and efficiency of detection, and ensures efficient and reliable balancing of the impeller.
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Figure CN120507086B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of balancing and leveling, and in particular to an impeller dynamic balancing detection and leveling device. Background Art
[0002] During the manufacturing and maintenance of rotating machinery such as fans, turbines, centrifuges and other equipment, the dynamic balance performance of the blades directly affects the stability of the equipment's operation, vibration level and service life. Due to manufacturing errors, uneven materials, or wear and corrosion during use, blades often have uneven mass distribution problems, which can cause faults such as increased vibration, increased noise and even equipment damage. Therefore, dynamic balancing detection and counterweight adjustment of blades are important links to ensure safe and efficient operation of equipment.
[0003] There are certain problems with the traditional balancing clip installation method. For example, the installation of the counterweight clamps for most impellers currently still relies on manual placement and hammering, which is cumbersome and time-consuming, and cannot meet the needs of modern efficient production. Manual installation is easily affected by human factors, and the installation position and depth of the counterweight clamps are difficult to ensure consistency, resulting in unstable dynamic balancing effects and affecting the overall assembly quality. Summary of the Invention
[0004] The present application aims to solve one of the technical problems in the related art at least to a certain extent.
[0005] To this end, one of the purposes of this application is to provide an impeller dynamic balance detection and leveling device, which realizes automatic clamping and stable fixation of the counterweight clamp through the cooperation of the clamping block and the elastic part, avoiding the shaking and errors caused by manual holding, and significantly improving the installation accuracy; at the same time, the lifting parts and pneumatic parts are linked to control the coordinated action of the transmission frame, connecting block and guide groove to ensure that the blade can be accurately guided to the specified position during the movement, thereby realizing the precise positioning of the counterweight clamp.
[0006] To achieve the above-mentioned objectives, the first embodiment of the present application proposes an impeller dynamic balancing detection and leveling device, including a base plate, a support column, a detection assembly and a leveling assembly; the leveling assembly includes a lifting member installed on the support column; a transmission frame is installed on the lifting member; a pneumatic member is installed on the transmission frame; a push rod is fixedly installed on the output end of the pneumatic member; a connecting block is installed on the pneumatic member housing; a first clamping block is rotatably connected in the connecting block; an elastic member is installed on one side of the top of the first clamping block; a second clamping block is installed on the bottom of the connecting block and on one side of the first clamping block; a counterweight clamp is arranged between the first clamping block and the second clamping block; a guide groove is provided on the connecting block and on one side of the second clamping block; an adsorption member is installed on the side of the second clamping block close to the counterweight clamp.
[0007] In addition, the impeller dynamic balancing detection and leveling device proposed in the present application may also have the following additional technical features:
[0008] In one embodiment of the present application, the guide groove is triangular, and when the guide groove is engaged with a blade of an impeller, the counterweight clamp is located directly above the adjacent blade of the blade.
[0009] In one embodiment of the present application, the bottoms of the first clamping block and the second clamping block that are away from each other are designed as inclined surfaces, the push rod is located directly above the counterweight clamp, and the push rod is slidably connected to the connecting block.
[0010] In one embodiment of the present application, the detection component includes a support plate fixed on the substrate; a detection piece is installed on the surface of one side of the support plate; a detection shaft is connected to the detection piece; a protective cover is provided on the detection shaft; an adsorption disk is installed on the surface of the detection shaft; a plurality of adsorption grooves are provided on the circular surface of the adsorption disk; a first adsorption plate is installed in each of the plurality of adsorption grooves; a counterweight block is adsorbed in each of the plurality of adsorption grooves through the corresponding first adsorption plate; a counterweight plate is fixedly installed on the detection shaft; a plurality of counterweight grooves are provided in a circular array on one side of the counterweight plate; a second adsorption plate is installed in each of the plurality of counterweight grooves.
[0011] In one embodiment of the present application, a positioning member is provided on the detection shaft, and the positioning member is used to position the part to be detected installed on the detection shaft.
[0012] In one embodiment of the present application, a fixed cover is installed on the detection shaft, and a plurality of warning lights are installed on the fixed cover; and trigger switches are installed in the plurality of counterweight slots.
[0013] In one embodiment of the present application, the plurality of trigger switches correspond one-to-one to the plurality of prompt lights.
[0014] In one embodiment of the present application, a stabilizing mechanism is provided in the adsorption plate; the stabilizing mechanism includes a mounting groove opened in the adsorption plate; a plurality of mounting plates are fixedly installed in the mounting groove; a mounting rod is installed on each of the plurality of mounting plates; a magnetic block is slidably connected to the surface of the mounting rod; and a push spring is provided on the surface of the mounting rod.
[0015] In one embodiment of the present application, the plurality of magnetic blocks are respectively arranged on one side of the corresponding adsorption slot, and the push spring is located between the mounting plate and the magnetic block.
[0016] In one embodiment of the present application, an adjustment component is provided on the protective cover; the adjustment component includes a plurality of magnetic slots opened in the protective cover; a driving motor is fixedly mounted on the protective cover; a transmission gear is fixedly mounted on the output end of the driving motor; a passive gear is fixedly mounted on the detection shaft, and the passive gear is engaged with the transmission gear.
[0017] The impeller dynamic balancing detection and leveling equipment of the embodiment of the present application can dynamically compensate for unbalanced parts during the dynamic balancing detection process by adjusting the counterweight block in real time, thereby realizing continuous and efficient dynamic balancing testing and significantly improving the detection efficiency. At the same time, according to the counterweight position indicated by the counterweight block, the counterweight clamp is installed in the corresponding area of the impeller, thereby accurately adjusting the local mass distribution of the impeller and realizing precise adjustment of the impeller balance state, further improving the accuracy of dynamic balancing adjustment and the convenience of operation, and achieving efficient and reliable mass balancing effect.
[0018] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become apparent from the description below, or will be learned through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the following description of the embodiments in conjunction with the accompanying drawings, in which:
[0020] Figure 1 This is a structural diagram of an impeller dynamic balancing detection and leveling device according to one embodiment of the present application;
[0021] Figure 2 A three-dimensional diagram of a pneumatic component according to an embodiment of the present application;
[0022] Figure 3 This is a cross-sectional view of a pneumatic component according to an embodiment of the present application;
[0023] Figure 4 for Figure 3 Enlarged view of point A in the middle;
[0024] Figure 5 This is an exploded view of a leveling assembly according to one embodiment of the present application;
[0025] Figure 6 for Figure 5 Enlarged view of point B in the middle;
[0026] Figure 7 A three-dimensional diagram of a substrate according to an embodiment of the present application;
[0027] Figure 8 This is a diagram showing a usage scenario of a leveling assembly according to an embodiment of the present application;
[0028] Figure 9A side view of a substrate according to an embodiment of the present application;
[0029] Figure 10 for Figure 9 Enlarged view of point C in the middle;
[0030] Figure 11 A cross-sectional view of a protective cover according to an embodiment of the present application;
[0031] Figure 12 for Figure 11 Enlarged view of point D in the middle;
[0032] Figure 13 This is a cross-sectional view of an adsorption disk according to an embodiment of the present application;
[0033] Figure 14 This is a schematic diagram of the partial structure of a stabilizing mechanism according to an embodiment of the present application.
[0034] As shown in the figure: 10, base plate; 11, support column; 20, detection component; 201, support plate; 202, detection member; 203, detection shaft; 204, protective cover; 205, adsorption disk; 206, adsorption slot; 207, first adsorption plate; 208, counterweight; 209, counterweight plate; 2010, counterweight slot; 2011, second adsorption plate; 30, fixed cover; 301, warning light; 302, trigger switch; 40, stabilizing mechanism; 401, installation slot; 402, installation Plate; 403, mounting rod; 404, magnetic block; 405, push spring; 5, adjustment assembly; 51, magnetic groove; 52, drive motor; 53, transmission gear; 54, passive gear; 50, leveling assembly; 501, lifting component; 502, transmission frame; 503, pneumatic component; 504, push rod; 505, connecting block; 506, first clamping block; 507, elastic component; 508, second clamping block; 509, counterweight clamp; 5010, guide groove; 5011, adsorption component. DETAILED DESCRIPTION
[0035] The following describes in detail embodiments of the present application, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present application, and should not be construed as limiting the present application.
[0036] The following describes the impeller dynamic balance detection and leveling device according to an embodiment of the present application with reference to the accompanying drawings.
[0037] like Figures 1-6As shown, an impeller dynamic balance detection and leveling device includes a base plate 10, a support column 11, a detection assembly 20 and a leveling assembly 50, wherein: the leveling assembly 50 includes a lifting member 501 installed on the support column 11; a transmission frame 502 is installed on the lifting member 501; a pneumatic member 503 is installed on the transmission frame 502; a push rod 504 is fixedly installed on the output end of the pneumatic member 503; a connecting block 505 is installed on the housing of the pneumatic member 503; a pneumatic member 503 is rotatably connected to the connecting block 505. A clamping block 506; an elastic member 507 is installed on one side of the top of the first clamping block 506; a second clamping block 508 is installed at the bottom of the connecting block 505 and on one side of the first clamping block 506; a counterweight clamp 509 is provided between the first clamping block 506 and the second clamping block 508; a guide groove 5010 is provided on the connecting block 505 and on one side of the second clamping block 508; an adsorption member 5011 is installed on one side of the second clamping block 508 close to the counterweight clamp 509.
[0038] It should be noted that the counterweight clamp 509 is U-shaped, and the two ends of the counterweight clamp 509 are arranged to extend outward with an inclination, which can avoid mutual conflict when one end of the counterweight clamp 509 is in direct contact with the blade. By utilizing the outward inclined surface, the opening of the counterweight clamp 509 can be increased due to extrusion, making it easier to fix the counterweight clamp 509 on the blade.
[0039] It should be noted that the adsorption member 5011 can be fixed by negative pressure adsorption, snap-fit fixation or other fixing methods, preferably magnetic fixation.
[0040] In one embodiment of the present application, Figures 1-6 As shown, the guide groove 5010 is triangular, and when the guide groove 5010 is engaged with a blade of an impeller, the counterweight clamp 509 is located directly above the adjacent blade of the blade.
[0041] It should be noted that when a blade is in the guide groove 5010 , the blade adjacent to the blade is located below the counterweight clamp 509 and does not contact the counterweight clamp 509 .
[0042] In one embodiment of the present application, Figures 1-6 As shown, the bottoms of the first clamping block 506 and the second clamping block 508 that are away from each other are designed as inclined surfaces, the push rod 504 is located directly above the counterweight clamp 509, and the push rod 504 is slidably connected to the connecting block 505.
[0043] It should be noted that the inclined surfaces of the second clamping block 508 and the guide groove 5010 can push the blades when moving downward, so that the blades corresponding to the impeller rotate into the guide groove 5010, avoiding the second clamping block 508 and the connecting block 505 squeezing the blades when the blades are partially dislocated, causing damage to the blades.
[0044] Specifically, according to the position where the impeller is unbalanced, the blade at that position is rotated to the bottom of the pneumatic part 503, and then the counterweight clamp 509 is inserted between the first clamping block 506 and the second clamping block 508. Then, the elastic part 507 pushes the top of the first clamping block 506 to make the bottom end of the first clamping block 506 rotate toward the direction of the second clamping block 508, so that the first clamping block 506 and the second clamping block 508 can clamp the counterweight clamp 509. At the same time, the adsorption part 5011 is used to fix the counterweight clamp 509 to improve the stability of the counterweight clamp 509, and then the output end of the lifting part 501 is controlled to move downward. The output end of the lifting member 501 drives the transmission frame 502 and the pneumatic member 503 to move downward, and then drives the connecting block 505 to move downward. When the connecting block 505 moves downward, the corresponding blades are guided by the guide groove 5010 and the second clamping block 508, so that the corresponding blades enter the guide groove 5010, and then the impeller can be positioned through the guide groove 5010. After positioning, the output end of the pneumatic member 503 is controlled to move downward, and then the output end of the pneumatic member 503 drives the push rod 504 to push the counterweight clamp 509, so that the counterweight clamp 509 moves downward and is clamped on the corresponding blade, thereby completing the counterweighting of the impeller.
[0045] The counterweight clamp is automatically clamped and stably fixed by cooperating with the clamping block and the elastic part, avoiding the shaking and error caused by manual holding and improving the installation accuracy; secondly, the lifting parts and the pneumatic parts are linked to drive the transmission frame, the connecting block and the guide groove to move in coordination, so as to achieve precise guidance and positioning of the blades, ensure that the counterweight clamp is accurately connected to the specified position, and greatly improve the assembly efficiency and consistency; at the same time, the adsorption parts further enhance the stability of the counterweight clamp during the installation process and reduce the risk of falling off. The overall structure realizes the automation, precision and efficiency of the counterweight clamp installation, effectively reduces manual intervention, reduces labor intensity, and improves the reliability of impeller balance adjustment.
[0046] like Figure 7-14As shown, the detection component 20 includes a support plate 201 fixed on the substrate 10; a detection part 202 is installed on the surface of one side of the support plate 201; a detection shaft 203 is connected to the detection part 202; a protective cover 204 is provided on the detection shaft 203; an adsorption disk 205 is installed on the surface of the detection shaft 203; a plurality of adsorption grooves 206 are provided on the circular surface of the adsorption disk 205; a first adsorption plate 207 is installed in each of the plurality of adsorption grooves 206; a counterweight block 208 is adsorbed in each of the plurality of adsorption grooves 206 through the corresponding first adsorption plate 207; a counterweight plate 209 is fixedly installed on the detection shaft 203; a plurality of counterweight grooves 2010 are provided in a circular array on one side of the counterweight plate 209; a second adsorption plate 2011 is installed in each of the plurality of counterweight grooves 2010.
[0047] It should be noted that the first adsorption plate 207 is controlled individually, that is, when the detection part 202 detects the direction of impeller deviation, the corresponding first adsorption plate 207 is controlled according to the direction of deviation, so that the first adsorption plate 207 is closed, and the remaining first adsorption plates 207 are in the open state. Different first adsorption plates 207 can be closed continuously to release the counterweight blocks 208 at different positions, so as to achieve the purpose of balancing the impeller. The first adsorption plate 207 is controlled individually, that is, when the detection part 202 detects the direction of impeller deviation, the corresponding first adsorption plate 207 is controlled according to the direction of deviation, so that the first adsorption plate 207 is opened, and the remaining first adsorption plates 207 are in the closed state. Different first adsorption plates 207 can be opened continuously to fix the counterweight blocks 208 at different positions, so as to achieve the purpose of balancing the impeller.
[0048] In one embodiment of the present application, Figure 7-14 As shown, a positioning member is provided on the detection shaft 203 , and the positioning member is used to position the to-be-detected member mounted on the detection shaft 203 .
[0049] In one embodiment of the present application, Figure 7 and Figure 12 As shown, a fixed cover 30 is installed on the detection shaft 203 , and a plurality of warning lights 301 are installed on the fixed cover 30 ; and trigger switches 302 are installed in the plurality of counterweight slots 2010 .
[0050] It should be noted that when the counterweight block 208 enters the counterweight slot 2010, the counterweight block 208 will squeeze the trigger switch 302, and then the trigger switch 302 will control the corresponding prompt light 301, so that the corresponding prompt light 301 is in the on state. When the counterweight block 208 is no longer in the counterweight slot 2010, the prompt light 301 is in the off state, and a rubber sleeve is installed on the surface of the counterweight block 208. When the counterweight block 208 collides with the adsorption plate 205 and the protective cover 204, the impact force between the counterweight block and the adsorption plate 205 and the protective cover 204 can be reduced.
[0051] It should be noted that after completing the counterweighting of the impeller, all the first adsorption plates 207 can be opened, and the magnetic adsorption slots 51 corresponding to the empty adsorption slots 206 can be opened, so that the magnetic adsorption slots 51 can fix the counterweight block 208. When the counterweight block 208 follows the magnetic adsorption slots 51 to rotate to the top of the adsorption slots 206, the protective cover 204 and the adsorption plate 205 stop rotating at this time, and then the magnetic adsorption slots 51 are closed, so that the counterweight block 208 falls into the adsorption slots 206, completing the recovery of the counterweight block 208. Repeating the above operations can complete the resetting of multiple counterweight blocks 208.
[0052] In one embodiment of the present application, Figure 7 and Figure 12 As shown, the multiple trigger switches 302 correspond to the multiple prompt lights 301 one by one.
[0053] It should be noted that when the corresponding trigger switch 302 is touched, the corresponding prompt light 301 will light up, and the offset position can be intuitively judged by observing the position where the prompt light 301 lights up.
[0054] In one embodiment of the present application, Figure 13 and Figure 14 As shown, a stabilizing mechanism 40 is provided in the adsorption plate 205; the stabilizing mechanism 40 includes a mounting groove 401 opened in the adsorption plate 205; a plurality of mounting plates 402 are fixedly installed in the mounting groove 401; a mounting rod 403 is installed on each of the plurality of mounting plates 402; a magnetic block 404 is slidably connected to the surface of the mounting rod 403; a push spring 405 is sleeved on the surface of the mounting rod 403.
[0055] It should be noted that a weighting piece is provided on one side of the magnetic block 404 to increase the weight of the magnetic block 404 . The weight of the weighting piece can be selected according to the need for counterweight to ensure the balance of the adsorption plate 205 .
[0056] In one embodiment of the present application, Figure 13 and Figure 14As shown, the plurality of magnetic blocks 404 are respectively arranged on one side of the corresponding adsorption slot 206 , and the push spring 405 is located between the mounting plate 402 and the magnetic block 404 .
[0057] In one embodiment of the present application, Figure 13 and Figure 14 As shown, when the first adsorption plate 207 is powered on, it repels the magnetic block 404 from each other.
[0058] Specifically, since the multiple counterweights 208 on the adsorption disk 205 are evenly distributed, when one or more counterweights 208 fall off, the disk will tilt, which will cause a certain error in the balance detection of the impeller.
[0059] Since the first adsorption plate 207 loses its magnetic force when the counterweight block 208 falls, and the first adsorption plate 207 does not generate a repulsive force on the magnetic block 404 after losing its magnetic force, after the repulsive force disappears, the spring 405 pushes the magnetic block 404 to move toward the adsorption groove 206 where the counterweight block 208 falls. The gravity is adjusted by changing the radius of the magnetic block 404 to achieve the balance of the adsorption plate 205.
[0060] In one embodiment of the present application, Figure 10 and Figure 11 As shown, an adjustment component 5 is provided on the protective cover 204; the adjustment component 5 includes a plurality of magnetic slots 51 opened in the protective cover 204; a driving motor 52 is fixedly mounted on the protective cover 204; a transmission gear 53 is fixedly mounted on the output end of the driving motor 52; a passive gear 54 is fixedly mounted on the detection shaft 203, and the passive gear 54 is engaged with the transmission gear 53.
[0061] It should be noted that a magnetic strip is provided on the inner side of the magnetic slot 51, which can adsorb the counterweight 208 in the magnetic slot 51, and the magnetic strip in the magnetic slot 51 is continuously in an adsorption state, but the suction force in the magnetic slot 51 is smaller than the suction force of the second adsorption plate 2011. When the magnetic slot 51 drives the counterweight 208 to move to the side of the second adsorption plate 2011 which is in the open state, the second adsorption plate 2011 will adsorb the counterweight 208 in the magnetic slot 51 into the counterweight slot 2010.
[0062] Since the detection assembly 20 can detect the unbalanced position and use the indicator light 301 to indicate the imbalance, the counterweight clamp 509 can be accurately installed based on the position of the indicator light 301 .
[0063] Existing dynamic balancing tests are usually carried out in a cycle of "test - stop - add test weight - retest". The entire process requires multiple starts and stops of the equipment, which is cumbersome and time-consuming, seriously affecting the efficiency of the test. In actual operation, the selection of the counterweight position and weight often relies on the experience and judgment of the technicians, and lacks a real-time feedback mechanism, resulting in highly subjective adjustment results and difficulty in achieving high-precision balance.
[0064] Specifically, when the impeller is tested, the impeller is first fixed on the test shaft 203, and then the test piece 202 is controlled to operate. The operation of the test piece 202 can perform a balance test on the impeller. If an imbalance occurs, a first adsorption plate 207 and a second adsorption plate 2011 are controlled according to the test result, so that the first adsorption plate 207 no longer generates a magnetic force to adsorb the counterweight 208. Under the action of gravity, the counterweight 208 falls, and the magnetic suction groove 51 that generates a magnetic force adsorbs and fixes the counterweight 208. Then, the output end selection of the drive motor 52 is controlled by the control switch, and the output end of the drive motor 52 rotates. Drive the transmission gear 53 to rotate. Since the transmission gear 53 is engaged with the passive gear 54, and the passive gear 54 is installed on the detection shaft 203, when the output end of the drive motor 52 rotates, the protective cover 204 will rotate on the surface of the adsorption disk 205. The rotation of the protective cover 204 will drive the magnetic suction groove 51 to rotate, and then drive the counterweight block 208 to rotate. When the counterweight block 208 rotates to the side of the second adsorption plate 2011 that is controlled to open, the second adsorption plate 2011 will adsorb the counterweight block 208, so that the counterweight block 208 enters the counterweight groove 2010, and then observe the offset data. If there is still imbalance, repeat the above operation.
[0065] By adjusting the counterweight block 208 in real time, the unbalanced parts can be dynamically compensated during the dynamic balance detection process, realizing continuous and efficient dynamic balance testing, and significantly improving the detection efficiency. At the same time, this method avoids the increased energy consumption and mechanical loss caused by the frequent start and stop of large equipment in the traditional method, and solves the problems of cumbersome operation, low efficiency and reliance on experience judgment caused by the need to add test weights and measure responses multiple times in the existing technology, making the entire dynamic balance detection process more intelligent, automated and efficient.
[0066] In summary, the impeller dynamic balancing detection and leveling equipment of the embodiment of the present application can dynamically compensate for unbalanced parts during the dynamic balancing detection process by adjusting the counterweight block 208 in real time, thereby realizing continuous and efficient dynamic balancing testing and significantly improving the detection efficiency. At the same time, according to the counterweight position indicated by the counterweight block 208, the counterweight clamp 509 is installed in the corresponding area of the impeller, thereby accurately adjusting the local mass distribution of the impeller, realizing precise adjustment of the impeller balance state, further improving the accuracy of the dynamic balancing adjustment and the convenience of operation, and achieving an efficient and reliable mass balancing effect.
[0067] In the description of this specification, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of the technical features indicated. Therefore, a feature specified as "first" or "second" may explicitly or implicitly include at least one of such features. In the description of this application, "plurality" means at least two, for example, two, three, etc., unless otherwise specifically defined.
[0068] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and features of different embodiments or examples without contradiction.
[0069] Although the embodiments of the present application have been shown and described above, it can be understood that the above embodiments are exemplary and cannot be understood as limitations on the present application. Ordinary technicians in this field can change, modify, replace and deform the above embodiments within the scope of the present application.
Claims
1. An impeller dynamic balance detection and leveling device, characterized in that: It comprises a base plate (10), a support column (11), a detection component (20) and a leveling component (50), wherein: The leveling assembly (50) comprises a lifting member (501) mounted on the support column (11); A transmission frame (502) is mounted on the lifting member (501); A pneumatic component (503) is installed on the transmission frame (502); A push rod (504) is fixedly mounted on the output end of the pneumatic component (503); A connecting block (505) is installed on the housing of the pneumatic component (503); A first clamping block (506) is rotatably connected inside the connecting block (505); An elastic member (507) is installed on one side of the top of the first clamping block (506); A second clamping block (508) is installed at the bottom of the connecting block (505) and on one side of the first clamping block (506); A counterweight clamp (509) is provided between the first clamping block (506) and the second clamping block (508); A guide groove (5010) is provided on the connecting block (505) and located on one side of the second clamping block (508); An adsorption member (5011) is installed on one side of the second clamping block (508) close to the counterweight clamp (509); The detection assembly (20) comprises a support plate (201) fixed on the substrate (10); A detection component (202) is installed on the surface of one side of the support plate (201); The detection member (202) is connected to a detection shaft (203); A protective cover (204) is provided on the detection shaft (203); An adsorption disk (205) is installed on the surface of the detection shaft (203); A plurality of adsorption grooves (206) are provided on the circular surface of the adsorption disk (205); A first adsorption plate (207) is installed in each of the plurality of adsorption tanks (206); A counterweight (208) is adsorbed in each of the plurality of adsorption slots (206) via the corresponding first adsorption plates (207); A counterweight plate (209) is fixedly mounted on the detection shaft (203); One side of the counterweight plate (209) is provided with a plurality of counterweight slots (210) in a circular array; A second adsorption plate (2011) is installed in each of the plurality of counterweight slots (2010).
2. The impeller dynamic balance detection and leveling equipment according to claim 1, characterized in that: The guide groove (5010) is triangular in shape, and when the guide groove (5010) is engaged with a blade of an impeller, the counterweight clamp (509) is located directly above the adjacent blade of the blade.
3. The impeller dynamic balance detection and leveling equipment according to claim 1, characterized in that: The bottoms of the first clamping block (506) and the second clamping block (508) on the side away from each other are designed as inclined surfaces, the push rod (504) is located directly above the counterweight clamp (509), and the push rod (504) is slidably connected to the connecting block (505).
4. The impeller dynamic balance detection and leveling equipment according to claim 1, characterized in that: A positioning member is provided on the detection shaft (203), and the positioning member is used to position the part to be detected mounted on the detection shaft (203).
5. The impeller dynamic balance detection and leveling equipment according to claim 1, characterized in that: A fixed cover (30) is mounted on the detection shaft (203), and a plurality of warning lights (301) are mounted on the fixed cover (30); A trigger switch (302) is installed in each of the plurality of counterweight slots (2010).
6. The impeller dynamic balance detection and leveling equipment according to claim 5, characterized in that: The plurality of trigger switches (302) correspond one to one with the plurality of prompt lights (301).
7. The impeller dynamic balance detection and leveling equipment according to claim 1, characterized in that: A stabilizing mechanism (40) is provided in the adsorption disk (205); The stabilizing mechanism (40) includes a mounting groove (401) provided in the adsorption disk (205); A plurality of mounting plates (402) are fixedly mounted in the mounting groove (401); A plurality of the mounting plates (402) are each mounted with a mounting rod (403); The surface of the mounting rod (403) is slidably connected to a magnetic block (404); A push spring (405) is sleeved on the surface of the mounting rod (403).
8. The impeller dynamic balance detection and leveling equipment according to claim 7, characterized in that: The plurality of magnetic blocks (404) are respectively arranged on one side of the corresponding adsorption slot (206), and the push spring (405) is located between the mounting plate (402) and the magnetic blocks (404).
9. The impeller dynamic balance detection and leveling equipment according to claim 1, characterized in that: The protective cover (204) is provided with an adjustment component (5); The adjustment component (5) includes a plurality of magnetic suction grooves (51) provided in the protective cover (204); A driving motor (52) is fixedly mounted on the protective cover (204); A transmission gear (53) is fixedly mounted on the output end of the drive motor (52); A passive gear (54) is fixedly mounted on the detection shaft (203), and the passive gear (54) is meshed with the transmission gear (53).
Citation Information
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