Supporting machine table matched with intelligent detection of machine-made sand balls
By setting left and right and front and rear adjustment components on the supporting machine for intelligent detection of machine sand spheres, adjusting the height of the detection bowl to make it in a horizontal state, the problem that traditional machines cannot guarantee the horizontal state and improving the accuracy and reliability of the detection.
Patent Information
- Application Number
- CN202510644768.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-20
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2045-05-20
AI Technical Summary
The traditional support machine cannot ensure that the detection bowl is in a horizontal state, which affects the accuracy of the lifting device and leads to inaccurate detection of the machine sand sphere.
By setting left and right adjustment components and front and rear adjustment components, these components are used to adjust the left and right and front and rear heights of the detection bowl to make the detection bowl horizontal. The machine also includes a stabilizing assembly to increase the contact area between the frame and the ground and improve the stability of the overall support.
The horizontal state adjustment of the detection bowl is realized, ensuring the accurate push of the lifting device, simplifying the adjustment process, and improving the reliability of the detection. At the same time, the stabilization component improves the stability of overall support.
Smart Images

Figure CN120176795A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of machine platforms, and specifically relates to a support machine platform for intelligent detection of manufactured sand spheres. Background Art
[0002] Manufactured sand spheres are sands processed by sand making machines and other auxiliary equipment. In order to determine whether the size and volume of manufactured sand spheres meet the standards, detection devices are usually used for intelligent detection.
[0003] In related technologies, such as a manufactured sand sphere detection device with the publication number: CN222166821U, it uses a camera to take multiple photos of manufactured sand spheres at different positions, utilizes a backend intelligent device, and calculates the sphere similarity through a formula to determine whether the size and volume of manufactured sand spheres meet the standards.
[0004] When detecting manufactured sand spheres, they are placed in a detection bowl. Ordinary support machine platforms are welded with metal materials. When placing them, due to uneven ground, the manufactured sand spheres are likely to shift to one side of the detection bowl, resulting in a situation where the lifting device cannot accurately push the manufactured sand spheres to flip. Summary of the Invention
[0005] Aiming at the deficiencies of the prior art, the present invention provides a support machine platform for intelligent detection of manufactured sand spheres, which solves the problem that the traditional support machine platform cannot ensure that the detection bowl is in a horizontal state, affecting the accuracy of the lifting device to push.
[0006] To achieve the above objectives, the present invention is realized through the following technical solutions: A support machine platform for intelligent detection of manufactured sand spheres, comprising: A frame body, which is used to provide support and installation positions; Left and right adjustment components, which are symmetrically arranged on the sides of the frame body; the left and right adjustment components include height adjustment parts and connecting parts; Front and back adjustment components, which are arranged inside the left and right adjustment components; The front and back adjustment components include a frame fixedly installed on the connecting part. An arc-shaped part is fixedly connected to the frame. The inside of the frame is rotationally connected to a front and back adjustment plate through a rotating shaft. A guiding claw is fixedly connected to the front and back adjustment plate at a position corresponding to the arc-shaped part. A locking part is arranged inside the front and back adjustment plate at a position located inside the guiding claw. The position of the front and back adjustment plate can be locked through the locking part. A bubble level is fixedly installed in the middle of the front and back adjustment plate. By setting the left and right adjustment components and the front and back adjustment components, the left and right and front and back heights of the detection bowl can be adjusted by using the left and right adjustment components and the front and back adjustment components, so that the detection bowl is in a horizontal state, which is convenient for detecting manufactured sand spheres, and the adjustment is simple and reliable.
[0007] Preferably, the height adjustment component includes a vertical chute and a mounting plate provided on the frame body. A vertical frame is slidably connected in the vertical chute. A control block is fixedly connected to the vertical frame. A lead screw is rotatably mounted on the mounting plate. An adjustment head is fixedly connected to the lower part of the lead screw. The lead screw passes through the control block and is in threaded cooperation with each other.
[0008] Preferably, the connecting member includes a connecting ball bowl and a connecting ball body. The connecting ball bowl is movably matched with the connecting ball body. The connecting ball bowl is fixedly connected to the height adjustment component. The connecting ball body is fixedly connected to the frame.
[0009] Preferably, the locking member includes a locking shell fixedly installed on the front and rear adjustment plates. An electromagnet, a driving frame and a locking spring are provided in the locking shell. The electromagnet is fixedly installed in the locking shell. The locking spring is arranged between the driving frame and the locking shell. A permanent magnet is fixedly connected to one side of the driving frame close to the electromagnet. The magnetism of the permanent magnet is opposite to that of the electromagnet after being energized. A protection cylinder is fixedly connected to the end of the driving frame away from the locking spring. A locking block is fixedly connected to the end of the protection cylinder away from the driving frame.
[0010] Preferably, a transverse member is provided in the locking shell. The transverse member includes a guiding rail fixedly installed inside the protection cylinder. A sliding block is slidably connected to the guiding rail. A contact frame is fixedly connected to the sliding block. A contact spring is arranged between the sliding block and the protection cylinder. A connecting rope is fixedly connected to the side part of the sliding block. A guiding frame is fixedly connected to the rear part of the locking block. The connecting rope passes through the protection cylinder and the guiding frame and is fixedly connected to a transverse clamping frame. A transverse chute is provided inside the guiding frame at the rear part of the locking block. The transverse clamping frame is slidably matched with the transverse chute. The transverse clamping frame can be engaged with the guiding claw. A transverse spring is fixedly connected between the transverse clamping frame and the guiding frame.
[0011] Preferably, it further includes a stabilizing assembly. The stabilizing assembly includes a suction disc and a stabilizing plate. The suction disc is fixedly installed at the lower part of the frame body. The stabilizing plate is slidably installed at the lower part of the frame body. Fixing screws are provided on the stabilizing plate. Fixing holes are provided on the frame body. The fixing screws are in threaded cooperation with the fixing holes. The suction disc and the stabilizing plate are magnetically adsorbed.
[0012] Preferably, the arc-shaped member is located on a circular track with the rotation axis as the center. Blocking edges are fixedly connected to both the upper and lower ends of the arc-shaped member.
[0013] Preferably, anti-slip patterns are provided on the surfaces of the contact frame and the arc-shaped member that are in contact with each other.
[0014] The present invention provides a support machine platform for intelligent detection of mechanism sand spheres. It has the following beneficial effects: 1. The present invention adjusts the left - right and front - back heights of the detection bowl through the provided left - right adjustment component and front - back adjustment component. By using the left - right adjustment component and the front - back adjustment component, the left - right and front - back heights of the detection bowl can be adjusted, making the detection bowl in a horizontal state, which is convenient for detecting spherical mechanism sand. The adjustment is simple and reliable.
[0015] 2. The present invention can increase the contact area between the frame and the ground and improve the overall support stability through the provided stable component. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is the overall three - dimensional schematic diagram of the present invention; Figure 2 is the overall front view of the present invention; Figure 3 is the three - dimensional schematic diagram of the left - right adjustment component of the present invention; Figure 4 is the three - dimensional schematic diagram of the front - back adjustment component of the present invention; Figure 5 is the partial three - dimensional schematic diagram of the front - back adjustment component of the present invention; Figure 6 is the three - dimensional schematic diagram of the connecting piece of the present invention; Figure 7 is the three - dimensional schematic diagram of the arc - shaped piece of the present invention; Figure 8 is the partial three - dimensional schematic diagram of the front - back adjustment component of the present invention; Figure 9 is the sectional three - dimensional schematic diagram of the locking piece of the present invention; Figure 10 is the sectional three - dimensional schematic diagram of the locking piece and the transverse piece of the present invention; Figure 11 is of the present invention Figure 9 top view; Figure 12 is the sectional three - dimensional schematic diagram of the transverse piece of the present invention; Figure 13 is the three - dimensional schematic diagram of the contact frame and the sliding block of the present invention; Figure 14 is the three - dimensional schematic diagram of the stable component of the present invention; Figure 15 is the three - dimensional schematic diagram of the locking block, the protection cylinder, the driving frame and the permanent magnet of the present invention.
[0017] Among them, 1. Left and right adjustment components; 2. Front and back adjustment components; 3. Frame body; 4. Stabilizing components; 5. Intelligent camera; 6. Detection bowl; 7. Lifting device; 101. Vertical chute; 102. Vertical frame; 103. Mounting plate; 104. Adjusting head; 105. Lead screw; 106. Control block; 201. Frame; 202. Connecting piece; 203. Arc-shaped piece; 2021. Connecting ball bowl; 2022. Connecting sphere; 2031. Blocking edge; 204. Front and back adjustment plate; 205. Rotating shaft; 206. Guide claw; 207. Bubble level; 8. Locking piece; 801. Locking block; 802. Driving frame; 803. Permanent magnet; 804. Electromagnet; 805. Locking spring; 806. Locking shell; 9. Transverse piece; 901. Contact frame; 9011. Sliding block; 902. Contact spring; 903. Connecting rope; 904. Guide frame; 905. Transverse spring; 906. Transverse clamping frame; 907. Protection cylinder; 9071. Guide rail; 908. Transverse chute; 401. Stabilizing plate; 402. Fixing screw; 403. Fixing hole; 404. Suction cup. Detailed implementation mode
[0018] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the protection scope of the present invention.
[0019] As Figures 1 - 15 shown, the embodiment of the present invention provides a support machine platform for intelligent detection of mechanism sand type spheres, including: Frame body 3, and the frame body 3 is used to provide support and installation positions; Referring to Figure 1 , the frame body 3 can be welded by metal parts to provide an installation position for the lifting device 7.
[0020] Left and right adjustment components 1, and the left and right adjustment components 1 are symmetrically arranged on the side parts of the frame body 3; the left and right adjustment components 1 include height adjustment components and connecting pieces 202; The height adjustment components include a vertical chute 101 and a mounting plate 103 arranged on the frame body 3. A vertical frame 102 is slidably connected in the vertical chute 101. A control block 106 is fixedly connected to the vertical frame 102. A lead screw 105 is rotatably installed on the mounting plate 103. The lower part of the lead screw 105 is fixedly connected with an adjusting head 104. The lead screw 105 passes through the control block 106 and is in threaded cooperation with each other; Referring to Figure 1 , Figure 2 , Figure 3, during the height adjustment operation, rotate the control block 106. The control block 106 drives the lead screw 105 to rotate, the lead screw 105 drives the control block 106 to move, and the control block 106 drives the vertical frame 102 to move; when the vertical frame 102 rises, it will drive the detection bowl 6 to rise synchronously through the connecting piece 202. In actual use, if the left side of the detection bowl 6 is lower, the left side of the detection bowl 6 is raised; if the right side of the detection bowl 6 is lower, the right side of the detection bowl 6 is raised.
[0021] The connecting piece 202 includes a connecting ball bowl 2021 and a connecting sphere 2022. The connecting ball bowl 2021 is movably matched with the connecting sphere 2022. The connecting ball bowl 2021 is fixedly connected to the height adjustment component, and the connecting sphere 2022 is fixedly connected to the frame 201; Reference Figure 6 , the connecting ball bowl 2021 can rotate at multiple angles relative to the connecting sphere 2022, so as to meet the need of adjusting the left and right heights of the detection bowl 6.
[0022] The front and rear adjustment assembly 2 is arranged inside the left and right adjustment assembly 1; The front and rear adjustment assembly 2 includes a frame 201 fixedly installed on the connecting piece 202. An arc-shaped piece 203 is fixedly connected to the frame 201. The arc-shaped piece 203 is located on a circular track with the rotation axis 205 as the center. Blocking edges 2031 are fixedly connected to both the upper and lower ends of the arc-shaped piece 203. A front and rear adjustment plate 204 is rotatably connected to the inside of the frame 201 through a rotation axis 205. A guiding claw 206 is fixedly connected to the front and rear adjustment plate 204 at a position corresponding to the arc-shaped piece 203. A locking member 8 is arranged inside the guiding claw 206 on the front and rear adjustment plate 204. The position of the front and rear adjustment plate 204 can be locked through the locking member 8. A bubble level 207 is fixedly installed in the middle of the front and rear adjustment plate 204; Reference Figure 4 、 Figure 5 、 Figure 7 、 Figure 8 , the arc-shaped piece 203 is used to guide the guiding claw 206 to make front and rear adjustments with the rotation axis 205 as the center. The blocking edge 2031 is used to limit the moving range of the locking member 8, so as to prevent the front and rear adjustment plate 204 from being adjusted excessively. The bubble level 207 is used to intuitively reflect whether the front and rear adjustment plate 204 is in a horizontal state, which is convenient for observation; the cross-sectional shape of the guiding claw 206 is L-shaped and is used to match the arc-shaped piece 203; among them, a detection bowl 6 is installed in the middle of the front and rear adjustment plate 204 for the mechanism sand spherical bodies to be detected.
[0023] The locking member 8 includes a locking housing 806 fixedly mounted on the front and rear adjustment plate 204. An electromagnet 804, a driving frame 802, and a locking spring 805 are provided inside the locking housing 806. The electromagnet 804 is fixedly mounted inside the locking housing 806. The locking spring 805 is disposed between the driving frame 802 and the locking housing 806. A permanent magnet 803 is fixedly connected to one side of the driving frame 802 close to the electromagnet 804. The magnetism of the permanent magnet 803 is opposite to that of the electromagnet 804 after being energized. A protection cylinder 907 is fixedly connected to the end of the driving frame 802 away from the locking spring 805. A locking block 801 is fixedly connected to the end of the protection cylinder 907 away from the driving frame 802; Reference Figure 8 、 Figure 9 , in the locked state, under the control of the external power supply and the controller, the electromagnet 804 is not working. Under the elastic force of the locking spring 805, a thrust can be applied to the driving frame 802, and through the protection cylinder 907, the locking block 801 is in contact with the arc-shaped member 203. Using the frictional force between the locking block 801 and the arc-shaped member 203, the front and rear adjustment plate 204 can be fixed; In the non-locked state, the electromagnet 804 is energized and works. The electromagnet 804 adsorbs the permanent magnet 803, and the magnetic force is greater than the elastic force of the locking spring 805, thereby driving the driving frame 802, the protection cylinder 907, and the locking block 801 away from the arc-shaped member 203, so that the front and rear adjustment plate 204 is in a state where it can be adjusted back and forth.
[0024] A transverse member 9 is provided inside the locking housing 806. The transverse member 9 includes a guide rail 9071 fixedly mounted inside the protection cylinder 907. A sliding block 9011 is slidably connected to the guide rail 9071. A contact frame 901 is fixedly connected to the sliding block 9011. Anti-slip patterns are provided on the surfaces of the contact frame 901 and the arc-shaped member 203 that are in contact with each other. A contact spring 902 is provided between the sliding block 9011 and the protection cylinder 907. A connecting rope 903 is fixedly connected to the side of the sliding block 9011. A guide frame 904 is fixedly connected to the rear of the locking block 801. The connecting rope 903 passes through the protection cylinder 907 and the guide frame 904 and is fixedly connected to a transverse clamping frame 906. A transverse chute 908 is provided inside the rear of the locking block 801 and inside the guide frame 904. The transverse clamping frame 906 is slidably engaged with the transverse chute 908. The transverse clamping frame 906 can be engaged with the guide claw 206. A transverse spring 905 is fixedly connected between the transverse clamping frame 906 and the guide frame 904; Reference Figure 9 、 Figure 10 、 Figure 11 、 Figure 12 、 Figure 13 、 Figure 15, in the unlocked state, since the locking block 801 is far from the arc-shaped member 203, there is a distance reserved between the locking block 801 and the arc-shaped member 203. The contact frame 901 and the sliding block 9011 are pushed out from the locking block 801 by the elastic force of the contact spring 902. The sliding block 9011 pulls the connecting rope 903, and the connecting rope 903 pulls the transverse clamping frame 906. The transverse clamping frame 906 slides along the transverse chute 908 and approaches the guiding frame 904. The transverse clamping frame 906 moves out of the card slot of the guiding claw 206. Therefore, it will not affect the front-back adjustment of the front-back adjustment plate 204; in the locked state, since the contact frame 901 and the arc-shaped member 203 are in contact and pressed against each other, the contact spring 902 is compressed. Under the elastic force of the transverse spring 905, the transverse clamping frame 906 is pushed out along the transverse chute 908 by the transverse spring 905, and the transverse clamping frame 906 is inserted into the card slot of the guiding claw 206, so as to ensure the stability of the locking block 801, enable the locking block 801 to stably contact with the arc-shaped member 203, and ensure the stability of the locked state; among them, a restricted part for use is provided on one side of the guiding rail 9071 close to the contact frame 901, which is used to restrict the excessive sliding of the sliding block 9011 and ensure the stability of the sliding of the sliding block 9011; the guiding frame 904 is used to provide a guiding effect for the transverse clamping frame 906 and ensure the stability of the extended state of the transverse clamping frame 906.
[0025] It further includes a stabilizing assembly 4. The stabilizing assembly 4 includes a suction disc 404 and a stabilizing plate 401. The suction disc 404 is fixedly installed at the lower part of the frame body 3, the stabilizing plate 401 is slidably installed at the lower part of the frame body 3, a fixing screw 402 is provided on the stabilizing plate 401, a fixing hole 403 is provided on the frame body 3, and the fixing screw 402 is in threaded cooperation with the fixing hole 403. The suction disc 404 and the stabilizing plate 401 are magnetically adsorbed; Reference Figure 14 , during stable operation, remove the fixing screw 402 from the upper fixing hole 403, slide the stabilizing plate 401 off the suction disc 404, then install the fixing screw 402 into the lower fixing hole 403 to lock the stabilizing plate 401, which can increase the contact area between the frame body 3 and the ground and improve the stability of the overall support.
[0026] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirits of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A supporting machine for intelligent detection of machine-made sand balls, characterized in that: include: A frame (3), the frame (3) being used to provide support and a mounting position; A left-right adjustment component (1), the left-right adjustment component (1) being symmetrically arranged on the side of the frame (3); the left-right adjustment component (1) comprising a height adjustment component and a connecting member (202); A front-rear adjustment component (2), wherein the front-rear adjustment component (2) is arranged on the inner side of the left-right adjustment component (1); The front-to-rear adjustment assembly (2) comprises a frame (201) fixedly mounted on a connecting member (202); an arc-shaped member (203) is fixedly connected to the frame (201); a front-to-rear adjustment plate (204) is rotatably connected to the inner side of the frame (201) via a rotating shaft (205); a guide claw (206) is fixedly connected to the front-to-rear adjustment plate (204) at a position corresponding to the arc-shaped member (203); a locking member (8) is provided on the front-to-rear adjustment plate (204) and located on the inner side of the guiding claw (206); the position of the front-to-rear adjustment plate (204) can be locked by the locking member (8); and a bubble level (207) is fixedly mounted in the middle of the front-to-rear adjustment plate (204).
2. The supporting machine for intelligent detection of machine-made sand balls according to claim 1 is characterized in that: The height adjustment component comprises a vertical slide groove (101) and a mounting plate (103) provided on the frame body (3); a vertical frame (102) is slidably connected in the vertical slide groove (101); a control block (106) is fixedly connected to the vertical frame (102); a screw rod (105) is rotatably mounted on the mounting plate (103); an adjustment head (104) is fixedly connected to the lower part of the screw rod (105); the screw rod (105) passes through the control block (106) and is threadedly engaged with each other.
3. The supporting machine for intelligent detection of machine-made sand balls according to claim 1, characterized in that: The connecting member (202) comprises a connecting ball bowl (2021) and a connecting sphere (2022); the connecting ball bowl (2021) and the connecting sphere (2022) are movably matched; the connecting ball bowl (2021) is fixedly connected to a height adjustment component; and the connecting sphere (2022) is fixedly connected to the frame (201).
4. The supporting machine for intelligent detection of machine-made sand balls according to claim 1 is characterized in that: The locking member (8) comprises a locking shell (806) fixedly mounted on the front and rear adjustment plates (204); an electromagnet (804), a drive frame (802), and a locking spring (805) are arranged in the locking shell (806); the electromagnet (804) is fixedly mounted in the locking shell (806); the locking spring (805) is arranged between the drive frame (802) and the locking shell (806); a permanent magnet (803) is fixedly connected to a side of the drive frame (802) close to the electromagnet (804); the magnetism of the permanent magnet (803) is opposite to that of the electromagnet (804) after power is supplied; a protective tube (907) is fixedly connected to one end of the drive frame (802) away from the locking spring (805); and a locking block (801) is fixedly connected to one end of the protective tube (907) away from the drive frame (802).
5. The supporting machine for intelligent detection of machine-made sand balls according to claim 4 is characterized in that: A transverse member (9) is provided in the locking shell (806), and the transverse member (9) comprises a guide rail (9071) fixedly mounted inside the protective tube (907), a sliding block (9011) is slidably connected to the guide rail (9071), a contact frame (901) is fixedly connected to the sliding block (9011), a contact spring (902) is provided between the sliding block (9011) and the protective tube (907), a connecting rope (903) is fixedly connected to the side of the sliding block (9011), and a rear portion of the locking block (801) is fixedly connected to the locking block (801). The guide frame (904) is fixedly connected to the guide frame (904), the connecting rope (903) passes through the protective tube (907), the guide frame (904) is fixedly connected to a transverse clamping frame (906), a transverse sliding groove (908) is provided at the rear of the locking block (801) and on the inner side of the guide frame (904), the transverse clamping frame (906) and the transverse sliding groove (908) are slidably matched, the transverse clamping frame (906) can be mutually engaged with the guide claw (206), and a transverse spring (905) is fixedly connected between the transverse clamping frame (906) and the guide frame (904).
6. The supporting machine for intelligent detection of machine-made sand balls according to claim 1, characterized in that: The device also comprises a stabilizing component (4), the stabilizing component (4) comprising an adsorption plate (404) and a stabilizing plate (401), the adsorption plate (404) being fixedly mounted on the lower part of the frame (3), the stabilizing plate (401) being slidably mounted on the lower part of the frame (3), the stabilizing plate (401) being provided with a fixing screw (402), the frame (3) being provided with a fixing hole (403), the fixing screw (402) being threadedly matched with the fixing hole (403), and the adsorption plate (404) and the stabilizing plate (401) being magnetically adsorbed.
7. The supporting machine for intelligent detection of machine-made sand balls according to claim 1, characterized in that: The arc-shaped member (203) is located on a circular trajectory with the rotating shaft (205) as the center, and the upper and lower ends of the arc-shaped member (203) are fixedly connected to blocking edges (2031).
8. The supporting machine for intelligent detection of machine-made sand balls according to claim 5, characterized in that: The contacting surfaces of the contact frame (901) and the arc-shaped member (203) are both provided with anti-slip grooves.
Citation Information
Patent Citations
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