Water conservancy planning and design layout display device based on big data
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ZHEJIANG YIJIA GEOGRAPHIC INFORMATION TECH CO LTD
- Filing Date
- 2024-06-29
- Publication Date
- 2026-05-26
Smart Images

Figure CN118749806B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of display device technology, and in particular to an adjustable layout display device for water conservancy planning and design based on big data. Background Technology
[0002] As big data technology becomes increasingly widely used, water conservancy planning can prevent potential safety hazards during the design process by utilizing large amounts of data, thereby improving the safety of water conservancy planning and design and the reliability of the data.
[0003] In existing general technologies, display devices need to pause for a period of time and replace a new plan after displaying one plan before they can be displayed again. This is not conducive to improving the display efficiency of the planning layout. Therefore, it is necessary to design and improve the display devices in related technologies. Summary of the Invention
[0004] To address the aforementioned issues, this invention provides an adjustable layout display device for water conservancy planning and design based on big data.
[0005] The above-mentioned technical objective of this invention is achieved through the following technical solution: an adjustable layout display device for water conservancy planning and design based on big data, comprising a base, a mounting platform disposed above the base, and a display platform fixed to the top of the mounting platform. The base is provided with a drive assembly for rotating the mounting platform. An annular groove is provided on the top of the display platform near its edge. A straight groove passing through the axis of the annular groove and communicating with both sides of the annular groove is provided on the top of the display platform. The cross-section of the straight groove has the same shape and size as the cross-section of the annular groove. The display stand is equipped with multiple display components that can slide along an annular groove. Each display component includes a sliding member that slides along the annular groove, a connecting plate hinged to the top of the sliding member, and a transparent display box fixed to the side of the connecting plate away from the sliding member. The sliding member is provided with an elastic component for keeping the transparent display box vertical, and a power component for driving the sliding member to slide along the annular groove. The display stand is provided with a pressure component for driving the vertical transparent display box to a horizontal state and a pushing mechanism for driving the sliding member to slide along a straight groove.
[0006] By adopting the above technical solution, the transparent display box remains vertical under the action of the elastic component. The drive component can drive the mounting platform and display platform to rotate, causing the display component to rotate and display the water conservancy planning drawings inside the transparent display box. The power component can drive the sliding member to slide along the annular groove, and the push mechanism can drive the sliding member to slide along the straight groove, so that the transparent display box moves to the center of the display platform for display, which helps to improve the display effect. The pressure component can turn the transparent display box into a horizontal state, making it easier for staff to replace the water conservancy planning drawings inside the transparent display box.
[0007] Furthermore, two symmetrically arranged vertical plates are fixed to the top of the sliding component, and a rotating shaft is rotatably installed between the two vertical plates. The rotating shaft passes through the connecting plate and is fixed to the connecting plate. One of the vertical plates has a mounting groove on its side wall near the other vertical plate. The elastic components include a torsion spring sleeved on the rotating shaft and fixed to the inner wall of the mounting groove, a mounting block fixed to the top of the sliding component, and a rubber block fixed to one side wall of the mounting block. The free end of the torsion spring is fixed to the side wall of the connecting plate. Under the torsion of the torsion spring, the connecting plate abuts against the side of the rubber block away from the mounting block, making the transparent display box vertical.
[0008] By adopting the above technical solution, the connecting plate is pressed against the side of the rubber block away from the mounting block under the torsion of the torsion spring, so that the transparent display box is in a vertical state, which facilitates the display of water conservancy planning drawings in the transparent display box.
[0009] Furthermore, the display stand is provided with an annular groove communicating with the annular slide, and the sliding member is provided with a mounting hole on one side. The power component includes an annular rack fixed to the bottom wall of the annular groove, a power motor fixed to the inner wall of the mounting hole, and a power gear fixed to the output end of the power motor and meshing with the annular rack.
[0010] By adopting the above technical solution, after the power motor works, it drives the power gear to rotate. Since the power gear meshes with the ring rack, the power motor is fixed to the sliding part, so that the sliding part slides along the ring groove, thereby causing the transparent display box to rotate and be displayed along the axis of the display platform.
[0011] Furthermore, the pressure assembly includes an L-shaped plate fixed to the top of the display stand, a pressure motor fixed to the L-shaped plate, a push rod fixed to the output end of the pressure motor, an L-shaped connecting rod fixed to the top of the display stand, and an arc-shaped pressure rod fixed to the end of the L-shaped connecting rod. The end of the push rod away from the pressure motor can push the side wall of the transparent display box closer to the bottom of the transparent display box and make the transparent display box turn into a horizontal state. The distance between the bottom of the arc-shaped pressure rod and the top of the display stand is equal to the thickness of the transparent display box.
[0012] By adopting the above technical solution, after the pressure motor works, it drives the push rod to rotate, which pushes the top side wall of the display stand close to the bottom of the transparent display box and makes the transparent display box turn into a horizontal state. Under the action of the arc-shaped pressure rod, the sliding part and the transparent display box remain in a horizontal state during the rotation, which makes it easier for staff to take out the water conservancy planning drawings in the transparent display box and replace them with new drawings, thus improving the efficiency of drawing display.
[0013] Furthermore, the pushing mechanism includes a first plate fixed to one side of the display stand, a first cylinder fixed to the top of the first plate, a second plate fixed to the other side of the display stand, a second cylinder fixed to the top of the second plate, and an electromagnet fixed to the end of the piston rod of the second cylinder. The piston rod of the first cylinder passes through the side wall of one side of the display stand and cooperates with the display stand. A through hole is provided on the side wall of the display stand away from the first cylinder, which communicates with the annular slide groove and through which the electric magnet passes. The extension and retraction directions of the piston rods of the first and second cylinders are parallel to the length direction of the slide groove. The electromagnet is magnetically attracted to the sliding member.
[0014] By adopting the above technical solution, after the first cylinder works, the piston rod of the first cylinder pushes the power gear, causing the sliding part to slide from the annular slide groove to the straight slide groove, until the sliding part slides to the center of the display stand, so that the transparent display box can display it.
[0015] Furthermore, a controller and a battery are fixed on the top of the mounting platform, and the power motor, pressure motor, first cylinder, second cylinder and electromagnet are all electrically connected to the controller and the battery.
[0016] By adopting the above technical solution, the controller and battery are fixed to the top of the mounting platform, and the mounting platform is fixed to the display platform. When the mounting platform rotates, the controller and battery can still supply power to the power motor, pressure motor, first cylinder, second cylinder and electromagnet, avoiding the phenomenon of power supply cables getting tangled.
[0017] Furthermore, the drive assembly includes a drive motor fixed to the top of the base, a drive gear fixed to the output end of the drive motor, a central shaft rotatably mounted on the top of the base, and a driven gear fixedly sleeved on the central shaft and meshing with the drive gear.
[0018] By adopting the above technical solution, the drive motor drives the drive gear to rotate after it starts working, which in turn causes the driven gear and the central shaft to rotate, thereby causing the mounting platform to rotate so that the transparent display box can rotate and display the water conservancy planning drawings.
[0019] Furthermore, the multiple sets of display components are evenly distributed about the axis of the display stand.
[0020] In summary, the present invention has the following beneficial effects:
[0021] 1. In this application, the transparent display box is kept vertical by the elastic component. The drive component can drive the mounting platform and display platform to rotate, causing the display component to rotate and display the water conservancy planning drawings inside the transparent display box. The power component can drive the sliding member to slide along the annular slide groove, and the push mechanism can drive the sliding member to slide along the straight slide groove, so that the transparent display box moves to the center of the display platform for display, which helps to improve the display effect. The pressure component can turn the transparent display box into a horizontal state, thereby facilitating the replacement of the water conservancy planning drawings inside the transparent display box by the staff.
[0022] 2. In this application, the connecting plate is pressed against the side of the rubber block away from the mounting block under the torsion of the torsion spring, so that the transparent display box is in a vertical state, which facilitates the display of water conservancy planning drawings by the transparent display box.
[0023] 3. In this application, the controller and battery are fixed to the top of the mounting platform, which is also fixed to the display stand. Even when the mounting platform rotates, the controller and battery can still supply power to the drive motor, pressure motor, first cylinder, second cylinder, and electromagnet, preventing the power cables from becoming tangled. The controller incorporates a big data-based chip, enhancing the intelligence of the display device. Attached Figure Description
[0024] Figure 1 and Figure 2 These are all schematic diagrams of the overall structure of embodiments of the present invention. Figures 1 to 2 Used to demonstrate the transition of a transparent display box as it slides from an annular groove to a straight groove;
[0025] Figure 3 This is a schematic diagram of the structure of the slider in an embodiment of the present invention;
[0026] Figure 4 This is a schematic diagram illustrating the structure of the driving component in an embodiment of the present invention;
[0027] Figure 5 yes Figure 4 Enlarged view of point A in the middle;
[0028] Figure 6 This is an exploded structural diagram illustrating the connection between the slider and the transparent display box in an embodiment of the present invention;
[0029] Figure 7 yes Figure 6 Enlarged diagram of point B in the middle.
[0030] In the diagram: 1. Base; 2. Mounting platform; 21. Controller; 22. Battery; 3. Display stand; 31. Annular slide; 32. Straight slide; 33. Annular groove; 34. Through hole; 4. Drive assembly; 41. Drive motor; 42. Drive gear; 43. Central shaft; 44. Driven gear; 5. Display assembly; 51. Sliding component; 511. Vertical plate; 512. Rotating shaft; 513. Mounting slot; 514. Mounting hole; 52. Connecting plate; 53. 6. Transparent display box; 7. Elastic component; 8. Torsion spring; 9. Mounting block; 10. Rubber block; 11. Power component; 2. Ring rack; 12. Power motor; 13. Power gear; 24. Pressure component; 15. L-shaped plate; 26. Pressure motor; 37. Push rod; 48. L-shaped connecting rod; 59. Arc-shaped pressure rod; 20. Pushing mechanism; 21. First plate; 22. First cylinder; 33. Second plate; 44. Second cylinder; 59. Electromagnet. Detailed Implementation
[0031] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.
[0032] like Figure 1-7 As shown in the figure, this application discloses an adjustable layout display device for water conservancy planning and design based on big data. It includes a base 1, a mounting platform 2 positioned above the base 1, and a display platform 3 fixed to the top of the mounting platform 2. The base 1 is equipped with a drive assembly 4 for rotating the mounting platform 2. An annular groove 31 is located near the edge of the top of the display platform 3. A straight groove 32, passing through the axis of the annular groove 31 and communicating with both sides of the annular groove 31, is located on the top of the display platform 3. The cross-section of the straight groove 32 is identical in shape and size to the cross-section of the annular groove 31. The display platform 3 is equipped with multiple sets of display components 5 that can slide along the annular groove 31. The display components 5 are evenly distributed about the axis of the display platform 3. Each set of display components 5 includes a sliding member 51 that slides with the annular slide groove 31, a connecting plate 52 that is hinged to the top of the sliding member 51, and a transparent display box 53 that is fixed to the side of the connecting plate 52 away from the sliding member 51. The sliding member 51 is provided with an elastic component 6 for keeping the transparent display box 53 in a vertical state. The sliding member 51 is provided with a power component 7 for driving the sliding member 51 to slide along the annular slide groove 31. The display platform 3 is provided with a pressure component 8 for driving the vertical transparent display box 53 to change to a horizontal state and a pushing mechanism 9 for driving the sliding member 51 to slide along the straight slide groove 32.
[0033] The transparent display box 53 is kept vertical by the elastic component 6. The drive component 4 drives the mounting platform 2 and the display platform 3 to rotate, causing the display component 5 to rotate and display the water conservancy planning drawings inside the transparent display box 53. The power component 7 drives the sliding member 51 to slide along the annular groove 31, and the push mechanism 9 drives the sliding member 51 to slide along the straight groove 32, so that the transparent display box 53 moves to the center of the display platform 3 for display, which helps to improve the display effect. The pressure component 8 can turn the transparent display box 53 into a horizontal state, making it easier for staff to replace the water conservancy planning drawings inside the transparent display box 53.
[0034] Two symmetrically arranged vertical plates 511 are fixed to the top of the sliding member 51. A rotating shaft 512 is rotatably mounted between the two vertical plates 511. The rotating shaft 512 passes through the connecting plate 52 and is fixed to the connecting plate 52. An installation groove 513 is provided on the side wall of one of the vertical plates 511 near the other vertical plate 511. An elastic component 6 is fitted onto the rotating shaft 512 and fixed to the inner wall of the installation groove 513. A torsion spring 61, a mounting block 62 fixed to the top of the sliding member 51, and a rubber block 63 fixed to one side wall of the mounting block 62 are also included. The free end of the torsion spring 61 is fixed to the side wall of the connecting plate 52. Under the torsion of the torsion spring 61, the connecting plate 52 abuts against the side of the rubber block 63 away from the mounting block 62, making the transparent display box 53 vertical. This facilitates the display of water conservancy planning drawings in the transparent display box 53.
[0035] The display stand 3 has an annular groove 33 communicating with the annular slide 31. A mounting hole 514 is provided on one side of the sliding member 51. The power assembly 7 includes an annular rack 71 fixed to the bottom wall of the annular groove 33, a power motor 72 fixed to the inner wall of the mounting hole 514, and a power gear 73 fixed to the output end of the power motor 72 and meshing with the annular rack 71. When the power motor 72 operates, it drives the power gear 73 to rotate. Because the power gear 73 meshes with the annular rack 71, and the power motor 72 is fixed to the sliding member 51, the sliding member 51 slides along the annular slide 31, thereby causing the transparent display box 53 to rotate and be displayed along the axis of the display stand 3.
[0036] The pressure assembly 8 includes an L-shaped plate 81 fixed to the top of the display stand 3, a pressure motor 82 fixed to the L-shaped plate 81, a push rod 83 fixed to the output end of the pressure motor 82, an L-shaped connecting rod 84 fixed to the top of the display stand 3, and an arc-shaped pressure rod 85 fixed to the end of the L-shaped connecting rod 84. The end of the push rod 83 away from the pressure motor 82 can push the side wall of the transparent display box 53 closer to the bottom of the transparent display box 53 and make the transparent display box 53 turn into a horizontal state. The distance between the bottom of the arc-shaped pressure rod 85 and the top of the display stand 3 is equal to the thickness of the transparent display box 53. After the pressure motor 82 is working, it drives the push rod 83 to rotate, which pushes the top side wall of the display stand 3 close to the bottom of the transparent display box 53 and makes the transparent display box 53 turn into a horizontal state. Under the action of the arc-shaped pressure rod 85, the sliding part 51 and the transparent display box 53 remain in a horizontal state during the rotation, which makes it easier for staff to take out the water conservancy planning drawings in the transparent display box 53 and replace them with new drawings, thus improving the efficiency of drawing display.
[0037] The driving mechanism 9 includes a first plate 91 fixed to one side of the display stand 3, a first cylinder 92 fixed to the top of the first plate 91, a second plate 93 fixed to the other side of the display stand 3, a second cylinder 94 fixed to the top of the second plate 93, and an electromagnet 95 fixed to the end of the piston rod of the second cylinder 94. The piston rod of the first cylinder 92 passes through the side wall of one side of the display stand 3 and cooperates with the display stand 3. A through hole 34 is provided on the side wall of the display stand 3 away from the first cylinder 92, which communicates with the annular slide groove 31 and through which the electromagnet 95 passes. The extension and retraction directions of the piston rods of the first cylinder 92 and the second cylinder 94 are parallel to the length direction of the straight slide groove 32. The electromagnet 95 is magnetically attracted to the sliding member 51. After the first cylinder 92 is activated, the piston rod of the first cylinder 92 pushes the power gear 73, causing the sliding member 51 to slide from the annular slide groove 31 into the straight slide groove 32 until the sliding member 51 slides to the center of the display stand 3, so that the transparent display box 53 can display the product.
[0038] A controller 21 and a battery 22 are fixed to the top of the mounting platform 2. The power motor 72, pressure motor 82, first cylinder 92, second cylinder 94, and electromagnet 95 are all electrically connected to the controller 21 and battery 22. The controller 21 and battery 22 are fixed to the top of the mounting platform 2, and the mounting platform 2 is fixed to the display stand 3. When the mounting platform 2 rotates, the controller 21 and battery 22 can still supply power to the power motor 72, pressure motor 82, first cylinder 92, second cylinder 94, and electromagnet 95, avoiding the tangling of power cables.
[0039] The drive assembly 4 includes a drive motor 41 fixed to the top of the base 1, a drive gear 42 fixed to the output end of the drive motor 41, a central shaft 43 rotatably mounted on the top of the base 1, and a driven gear 44 fixedly sleeved on the central shaft 43 and meshing with the drive gear 42. The upper end of the central shaft 43 is fixed to the bottom of the mounting platform 2. After the drive motor 41 operates, it drives the drive gear 42 to rotate, thereby causing the driven gear 44 and the central shaft 43 to rotate, which in turn causes the mounting platform 2 to rotate, so that the transparent display box 53 can rotate and display the water conservancy planning drawings.
[0040] The operating principle of the adjustable layout display device for water conservancy planning and design based on big data in this embodiment is as follows: The transparent display box 53 remains vertical under the action of the elastic component 6. The driving component 4 drives the mounting platform 2 and the display platform 3 to rotate, causing the display component 5 to rotate and display the water conservancy planning drawings inside the transparent display box 53. The power component 7 drives the sliding member 51 to slide along the annular groove 31, and the pushing mechanism 9 drives the sliding member 51 to slide along the straight groove 32, allowing the transparent display box 53 to move to the center of the display platform 3 for display, which improves the display effect. The pressure component 8 can turn the transparent display box 53 into a horizontal state, making it easier for staff to replace the water conservancy planning drawings inside the transparent display box 53.
[0041] The above description is merely a preferred embodiment of the present invention. The scope of protection of the present invention is not limited to the above embodiments. All technical solutions falling within the scope of the present invention's concept are within the scope of protection of the present invention. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principles of the present invention should also be considered within the scope of protection of the present invention.
Claims
1. An adjustable layout display device for water conservancy planning and design based on big data, characterized in that: The system includes a base (1), a mounting platform (2) positioned above the base (1), and a display stand (3) fixed to the top of the mounting platform (2). The base (1) is equipped with a drive assembly (4) for rotating the mounting platform (2). The display stand (3) has an annular groove (31) near its edge on its top. The top of the display stand (3) also has a straight groove (32) passing through the axis of the annular groove (31) and communicating with both sides of the annular groove (31). The cross-section of the straight groove (32) is identical in shape and size to the cross-section of the annular groove (31). The display stand (3) is equipped with multiple sets of display components (5) that can slide along the annular groove (31). The display platform (3) includes a sliding member (51) that slides with the annular groove (31), a connecting plate (52) hinged to the top of the sliding member (51), and a transparent display box (53) fixed to the side of the connecting plate (52) away from the sliding member (51). The sliding member (51) is provided with an elastic component (6) for keeping the transparent display box (53) in a vertical state. The sliding member (51) is provided with a power component (7) for driving the sliding member (51) to slide along the annular groove (31). The display platform (3) is provided with a pressure component (8) for driving the vertical transparent display box (53) to change to a horizontal state and a pushing mechanism (9) for driving the sliding member (51) to slide along the straight groove (32). The top of the sliding member (51) is fixed with two symmetrically arranged vertical plates (511). A rotating shaft (512) is rotatably installed between the two vertical plates (511). The rotating shaft (512) passes through the connecting plate (52) and is fixed to the connecting plate (52). One of the vertical plates (511) is provided with a mounting groove (513) on the side wall near the other vertical plate (511). The elastic component (6) is fitted on the rotating shaft (512) and fixed to the inner wall of the mounting groove (513). It includes a torsion spring (61), a mounting block (62) fixed to the top of the sliding member (51), and a rubber block (63) fixed to one side wall of the mounting block (62). The free end of the torsion spring (61) is fixed to the side wall of the connecting plate (52). Under the torsion of the torsion spring (61), the connecting plate (52) abuts against the side of the rubber block (63) away from the mounting block (62), so that the transparent display box (53) is in a vertical state. The display stand (3) is provided with an annular groove (33) communicating with the annular slide (31). The sliding member (51) is provided with a mounting hole (514) on one side. The power assembly (7) includes an annular rack (71) fixed to the bottom wall of the annular groove (33), a power motor (72) fixed to the inner wall of the mounting hole (514), and a power gear (73) fixed to the output end of the power motor (72) and meshing with the annular rack (71). The pressure assembly (8) includes an L-shaped plate (81) fixed to the top of the display stand (3), a pressure motor (82) fixed to the L-shaped plate (81), a push rod (83) fixed to the output end of the pressure motor (82), an L-shaped connecting rod (84) fixed to the top of the display stand (3), and an arc-shaped pressure rod (85) fixed to the end of the L-shaped connecting rod (84). The end of the push rod (83) away from the pressure motor (82) can push the side wall of the transparent display box (53) closer to the bottom of the transparent display box (53) and make the transparent display box (53) turn into a horizontal state. The distance between the bottom of the arc-shaped pressure rod (85) and the top of the display stand (3) is equal to the thickness of the transparent display box (53).
2. The adjustable layout display device for water conservancy planning and design based on big data as described in claim 1, characterized in that: The pushing mechanism (9) includes a first plate (91) fixed to one side of the display stand (3), a first cylinder (92) fixed to the top of the first plate (91), a second plate (93) fixed to the other side of the display stand (3), a second cylinder (94) fixed to the top of the second plate (93), and an electromagnet (95) fixed to the end of the piston rod of the second cylinder (94). The piston rod of the first cylinder (92) passes through the side wall of one side of the display stand (3) and cooperates with the display stand (3). The side wall of the display stand (3) away from the first cylinder (92) is provided with a through hole (34) that communicates with the annular slide groove (31) and allows the electric magnet (95) to pass through. The extension and retraction direction of the piston rod of the first cylinder (92) and the extension and retraction direction of the piston rod of the second cylinder (94) are both parallel to the length direction of the slide groove (32). The electromagnet (95) is magnetically attracted to the sliding member (51).
3. The adjustable layout display device for water conservancy planning and design based on big data as described in claim 2, characterized in that: The top of the mounting platform (2) is fixed with a controller (21) and a storage battery (22). The power motor (72), pressure motor (82), first cylinder (92), second cylinder (94) and electromagnet (95) are all electrically connected to the controller (21) and the storage battery (22).
4. The adjustable layout display device for water conservancy planning and design based on big data as described in claim 3, characterized in that: The drive assembly (4) includes a drive motor (41) fixed to the top of the base (1), a drive gear (42) fixed to the output end of the drive motor (41), a central shaft (43) rotatably mounted on the top of the base (1), and a driven gear (44) fixedly sleeved on the central shaft (43) and meshing with the drive gear (42).
5. The adjustable layout display device for water conservancy planning and design based on big data as described in claim 3, characterized in that: The multiple sets of display components (5) are evenly distributed about the axis of the display stand (3).