Multi-dimensional data fusion analysis device
By designing a flexible layout multi-dimensional data fusion analysis device, using the coordination of multiple sets of main and secondary screens and the deployment of connecting components, the problems of large space occupied by display devices and difficult to flexibly adjust screen layout in the prior art are solved, and flexible display and fusion of multi-dimensional data is realized, and the efficiency and space utilization of data analysis are improved.
Patent Information
- Application Number
- CN202510056203.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-14
- Publication Date
- 2025-05-16
AI Technical Summary
When existing multidimensional data analysis devices display and converge multidimensional data, fixed display devices take up a lot of space and it is difficult to flexibly adjust the screen layout to meet the needs of different data sources.
A multi-dimensional data fusion analysis device is designed to achieve flexible layout and spatial optimization of the screen through the coordination of multiple sets of main and secondary screens, as well as the expansion of connecting components. The directions of the main screen and the secondary screen are different. Through the design of edge ear plates and connection shafts, the side connection and angle adjustment of the screen are realized, forming a polygonal structure to display multidimensional data.
It realizes flexible display and fusion of multi-dimensional data, reduces the space occupied by unnecessary screens, and improves the efficiency and space utilization of data analysis.
Smart Images

Figure CN120010624A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of data fusion analysis devices, and in particular to a multidimensional data fusion analysis device. Background Art
[0002] Multidimensional data refers to data organized according to multiple dimensions, which can be time, geographic location, product type, etc. Each dimension represents a feature or attribute of the data. Since multidimensional data usually contains a large number of dimensions and dimension values, while the actual data may only account for a small part of them, multidimensional data is often sparse. An important attribute of multidimensional data is that it supports data aggregation operations, that is, grouping, summing, averaging and other aggregation operations on data in some or more dimensions. In addition, multidimensional data also supports data slicing and dicing operations, that is, filtering and screening according to the values of some or more dimensions to analyze data more finely.
[0003] In order to effectively organize and store multidimensional data, multidimensional data models and data cubes are usually used to represent and operate. Multidimensional data models consist of dimensions, measures, and hierarchies. Dimensions are the characteristics or attributes of data, and measures are indicators that quantify data.
[0004] Multidimensional data analysis can be applied to fields such as sales and market research. For example, in the field of sales, by analyzing sales data of different regions, different products, and different time periods, we can find out the best sales period, the most popular products, and potential sales markets, so as to formulate more accurate marketing strategies. In this process, it is necessary to receive data information from different regions and different time periods and conduct fusion analysis. Usually, these will be collected in the control center, and display devices such as display screens need to be used. Conventional display devices are fixedly installed and opened when in use. When not in use, they will occupy a large space, which is not conducive to reasonable space planning and display of multidimensional data. Summary of the invention
[0005] In view of the shortcomings of the prior art, the purpose of the present invention is to provide a multidimensional data fusion and analysis device to solve the problems raised in the above-mentioned background technology. The present invention has a novel structure. Through the cooperation of multiple groups of main screens and sub-screens, and the expansion of connecting components, the multidimensional data can be displayed on different screens according to the source, so as to better distinguish and compare. In the subsequent fusion process, the number of main screens and sub-screens used is determined according to the number of required display areas. For unnecessary screens, the storage method is used to reduce the occupied space. The expanded main screen and sub-screen can be enclosed in a polygonal structure according to the number, which is convenient for display.
[0006] In order to achieve the above-mentioned purpose, the present invention is implemented through the following technical scheme: a multidimensional data fusion analysis device, including a chassis, a storage slot is arranged on the top of the chassis, and a display assembly is accommodated inside the storage slot, the display assembly includes a main screen and a sub-screen, the main screen is provided with two groups, and the sub-screen is provided with three groups, the main screen and the sub-screen are stacked and stored in the storage slot, the main screen and the sub-screen are oriented in opposite directions, the chassis is located at the top of the storage slot and is provided with a cover plate by hinge rotation, the cover plate and the top surface of the chassis are provided with a slide plate assembly, the slide plate assembly includes a first horizontal plate, the first horizontal plate and the second horizontal plate. A horizontal plate is installed on the cover plate, second horizontal plates are provided on both sides of the first horizontal plate, and the second horizontal plates slide along the top of the chassis, two sets of slide seats are symmetrically slidably installed on the long plate composed of the first horizontal plate and the second horizontal plate, and the main screen can be installed on the top of the slide seat, a connecting component is provided on the back of the chassis, the connecting component includes a connecting frame, the connecting frame is located at the top of the back of the chassis and is rotatably installed with a connecting column, the auxiliary screen can be installed on the connecting column, heat dissipation grooves are opened on both sides of the chassis, and the outer side of the heat dissipation grooves is covered with baffles, the chassis is fixed with slide rails at the bottom of the baffle, and the baffle slides along the slide rails.
[0007] Furthermore, a vertical groove is opened inside the storage groove, and a screw is rotatably installed inside the vertical groove through a bearing, a connecting plate is threadedly sleeved on the surface of the screw, and clamp frames are fixed at both ends of the connecting plate, and buckle plates are fixed on the top and bottom of the clamp frame.
[0008] Furthermore, a stopper is fixed at the bottom of the lower end buckle plate of the clamp frame, and the storage groove is located at the bottom of the clamp frame to open a storage cavity, and the stopper and the bottom of the clamp frame are stored in the storage cavity.
[0009] Furthermore, side grooves are opened on the top and bottom inner walls of both sides of the storage groove, and sliding rods are fixed in the side grooves. A push plate is slidably sleeved on the sliding rod. A spring is sleeved on the surface of the sliding rod, and both ends of the spring are fixedly connected to the push plate and the inner wall of the side groove.
[0010] Furthermore, the connection component also includes an insertion frame, the insertion frames are fixed on the outer walls of both sides of the chassis, and the two sides of the connection frame are slidably inserted into the insertion frame, the connection frame is fixed with a motor at the bottom of the connecting column, and the motor output end is fixedly connected to the connecting column.
[0011] Furthermore, the skateboard assembly also includes a connecting rod, the top of the slide seat is rotatably mounted with the connecting rod, and the other end of the connecting rod is inserted with a locking bolt, the bottom of the main screen is provided with a screw hole, and the locking bolt is threadedly inserted into the bottom of the main screen.
[0012] Furthermore, a longitudinal guide plate is fixed on the surface of the cover plate, and the first transverse plate slides along the guide plate, plug blocks are fixed on both sides of the first transverse plate, and slots are opened on the second transverse plate corresponding to the positions of the plug blocks, and the plug blocks are plugged into the second transverse plate.
[0013] Furthermore, a fixing block is fixed on the top surface of the baffle plate of the connecting frame, and the fixing block is fixedly connected to the baffle plate.
[0014] Furthermore, the display component also includes a slide groove, the back side of the secondary screen is provided with a slide groove, and a slider is slidably connected in the slide groove, a telescopic plate is rotatably installed on the outer surface of the slider through a rotating shaft, a fixed frame is installed at the extended end of the telescopic plate, and the fixed frame is sleeved on the connecting column.
[0015] Furthermore, ear plates are slidably inserted at the four corners of the back of the main screen and the auxiliary screen, the ear plates of adjacent main screens and auxiliary screens are staggered up and down, and a connecting shaft is inserted inside the ear plates.
[0016] Beneficial effects of the present invention:
[0017] 1. In the present invention, because the main screen and the auxiliary screen are in different directions, the two groups of main screens face the front of the chassis when pulled out for use, while the auxiliary screen faces the back of the chassis. The edge ear plates of the main screen and the auxiliary screen are connected with a connecting shaft, so that the two adjacent groups of display screens can be connected at the side and the angle between them can be adjusted. Specifically, the surface of the connecting shaft is a smooth cylinder inserted into the two ear plates, and the ear plates can rotate on the surface of the connecting column. The top and bottom of the connecting shaft are locked by nuts to prevent the connecting shaft from detaching from the ear plates.
[0018] 2. The present invention slides the slide seat along the surface of the first horizontal plate and the second horizontal plate and rotates the connecting rod to adjust the angle between the two sets of main screens, so as to facilitate the subsequent connection with the auxiliary screen to form a polygon. Because the opening of the plug block faces upward, the opening of the cover plate will not be affected by the existence of the second horizontal plate. The first horizontal plate slides out of the guide plate by being pulled outward by the connecting frame, and the connecting column can drive the main screen to rotate together at this time.
[0019] 3. The present invention slides the connecting frame along the insertion frame to adjust the position of the connecting column, which is convenient for selecting the corresponding center point position according to different polygons to form an enclosed display screen assembly. The more screens are sent out, the further the position of the connecting column needs to be moved back, and the baffle will gradually open to release the heat dissipation groove to improve the heat dissipation capacity.
[0020] 4. Compared with the prior art, the present invention can display the multi-dimensional data on different screens according to the source of the data through the coordination of multiple groups of main screens and sub-screens and the expansion of connected components, so as to facilitate better distinction and comparison. In the subsequent fusion, the number of main screens and sub-screens used in the process is determined according to the number of required display areas. For the unnecessary screens, the storage method is adopted to reduce the occupied space. The expanded main screen and sub-screen can be enclosed in a polygonal structure according to the number, which is convenient for display. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the overall structure of a multi-dimensional data fusion analysis device of the present invention;
[0022] Figure 2 This is a schematic diagram of the structure of connection components of a multi-dimensional data fusion analysis device of the present invention;
[0023] Figure 3 This is a schematic diagram of the structure of a display component of a multi-dimensional data fusion analysis device of the present invention;
[0024] Figure 4 It is a schematic diagram of the structure of a slide plate assembly of a multi-dimensional data fusion analysis device of the present invention;
[0025] Figure 5 A schematic diagram of display screen connection of a multi-dimensional data fusion analysis device of the present invention;
[0026] Figure 6 A schematic diagram of the internal structure of a chassis of a multi-dimensional data fusion analysis device of the present invention;
[0027] Figure 7 It is a schematic diagram of the side structure of a storage tank of a multi-dimensional data fusion analysis device of the present invention;
[0028] Figure 8 This is a schematic diagram of the connection between the first horizontal plate and the second horizontal plate of a multi-dimensional data fusion analysis device of the present invention.
[0029] In the figure: 1, chassis; 11, baffle; 12, slide rail; 13, heat sink; 14, cover plate; 15, storage slot; 16, storage cavity; 17, screw; 18, vertical slot; 19, connecting plate; 110, clamp frame; 111, buckle plate; 112, side slot; 113, push plate; 114, slide bar; 115, spring; 116, stopper; 2, display assembly; 21, main screen; 22, auxiliary screen; 2 3. Slide groove; 24. Slider; 25. Telescopic plate; 26. Fixed frame; 27. Ear plate; 28. Connecting shaft; 3. Connecting assembly; 31. Insert frame; 32. Connecting frame; 33. Fixed block; 34. Motor; 35. Connecting column; 4. Slide plate assembly; 41. First horizontal plate; 42. Second horizontal plate; 43. Sliding seat; 44. Connecting rod; 45. Locking bolt; 46. Insert block; 47. Guide plate. DETAILED DESCRIPTION
[0030] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further explained below in conjunction with specific implementation methods.
[0031] See also Figures 1 to 8 The present invention provides a technical solution: a multidimensional data fusion analysis device, comprising a chassis 1, a storage slot 15 is provided on the top of the chassis 1, and a display assembly 2 is stored inside the storage slot 15, the display assembly 2 comprises a main screen 21 and a sub-screen 22, the main screen 21 is provided with two groups, and the sub-screen 22 is provided with three groups, the main screen 21 and the sub-screen 22 are stacked and stored in the storage slot 15, the main screen 21 and the sub-screen 22 are in opposite directions, the chassis 1 is located at the top of the storage slot 15 and is rotatably installed with a cover plate 14 through a hinge, a slide plate assembly 4 is provided on the top surface of the cover plate 14 and the chassis 1, the slide plate assembly 4 comprises a first transverse plate 41, the first transverse plate 41 is installed on the cover plate 14, second transverse plates 42 are provided on both sides of the first transverse plate 41, and the second transverse plate 42 slides along the top of the chassis 1, two groups of slide seats 43 are symmetrically slidably installed on the long plate composed of the first transverse plate 41 and the second transverse plate 42, and the main screen 21 can be installed on the slide seat 43 At the top, a connecting component 3 is provided on the back of the chassis 1, and the connecting component 3 includes a connecting frame 32. The connecting frame 32 is located at the top of the back of the chassis 1 and is rotatably installed with a connecting column 35. The secondary screen 22 can be installed on the connecting column 35. Heat dissipation grooves 13 are opened on both sides of the chassis 1, and the outer side of the heat dissipation grooves 13 is covered with a baffle 11. The chassis 1 is fixed with a slide rail 12 at the bottom of the baffle 11, and the baffle 11 slides along the slide rail 12. The chassis 1 is also provided with a data storage module, a fusion module and an analysis module for multi-dimensional data fusion analysis. This part is a common prior art and is not described in detail. When the device is used, the data information sent to the chassis 1 in different regions and time periods is displayed through the display component 2. The number of screens used by the display component 2 is determined according to the number of regions or objects, and is sent out from the chassis 1 to enclose a polygonal display device for centralized display, which is convenient for analysis of different regions and different objects and subsequent fusion.
[0032] In this embodiment, a vertical groove 18 is provided inside the storage groove 15, and a screw 17 is rotatably installed inside the vertical groove 18 through a bearing, a connecting plate 19 is threadedly sleeved on the surface of the screw 17, and a clamping frame 110 is fixed at both ends of the connecting plate, a buckle plate 111 is fixed at the top and bottom of the clamping frame 110, and a stopper 116 is fixed at the bottom of the lower buckle plate 111 of the clamping frame 110, and the storage groove 15 is located at the bottom of the clamping frame 110. A storage cavity 16 is provided, and the stopper 116 and the bottom of the clamping frame 110 are stored in the storage cavity 16, and side grooves 112 are provided on the top and bottom inner walls of both sides of the storage groove 15, and a sliding rod 114 is fixed in the side groove 112, and a sliding rod 114 is slidably sleeved on the sliding rod 114. There is a push plate 113, and a spring 115 is sleeved on the surface of the slide bar 114, and the two ends of the spring 115 are fixedly connected to the push plate 113 and the inner wall of the side groove 112. The rotation of the motor drives the screw 17 to drive the connecting plate 19 to move. The clamping frame 110 can clamp the main screen 21 or the auxiliary screen 22. The cover plate 14 covers most of the storage groove 15, and there is still space at the position of the clamping frame 110, which can provide a group of display screens for delivery each time. The main screen 21 or the auxiliary screen 22 is delivered through the clamping frame 110, and the screen at the back is squeezed by the block 116 to prevent it from moving forward. After the clamping frame 110 is reset, the spring 115 drives the push plate 113 to push the screen forward along the slide bar 114 to make it enter the clamping frame 110 again.
[0033] In this embodiment, the connecting component 3 also includes an insertion frame 31, the insertion frames 31 are fixed on the outer walls of both sides of the chassis 1, and the two sides of the connecting frame 32 are slidably inserted into the inside of the insertion frame 31, the connecting frame 32 is located at the bottom of the connecting column 35 and a motor 34 is fixed, and the output end of the motor 34 is fixedly connected to the connecting column 35, the connecting frame 32 is located on the top surface of the baffle 11 and a fixing block 33 is fixed, and the fixing block 33 is fixedly connected to the baffle 11, and the connecting frame 32 is slid along the insertion frame 31, and the position of the connecting column 35 can be adjusted, so that the corresponding center point position can be selected according to different polygons to form an enclosed display screen assembly, and the more screens are sent out, the more the position of the connecting column 35 needs to be moved backward, and the baffle 11 will gradually open to release the heat dissipation slot 13 to improve the heat dissipation capacity.
[0034] In this embodiment, the slide assembly 4 also includes a connecting rod 44, the top of the slide seat 43 is rotatably mounted with the connecting rod 44, and the other end of the connecting rod 44 is plugged with a locking bolt 45, the bottom of the main screen 21 is provided with a screw hole, and the locking bolt 45 is threadedly plugged into the bottom of the main screen 21, a longitudinal guide plate 47 is fixed on the surface of the cover plate 14, and the first transverse plate 41 slides along the guide plate 47, plug blocks 46 are fixed on both sides of the first transverse plate 41, and the second transverse plate 42 is provided with a slot corresponding to the position of the plug block 46, the plug block 46 is plugged into the second transverse plate 42, and when the cover plate 14 covers the upper end of the storage slot 15, the two ends of the first transverse plate 41 The plug block 46 is inserted into the slot of the second transverse plate 42, and the first transverse plate 41 and the second transverse plate 42 form a whole. After the two main screens 21 can be fixedly installed with the connecting rod 44 by the locking bolts 45, the slide 43 is slid along the surface of the first transverse plate 41 and the second transverse plate 42 and the connecting rod 44 is rotated to adjust the angle between the two groups of main screens 21, so as to facilitate the subsequent connection with the auxiliary screen 22 to form a polygon. Because the opening of the plug block 46 faces upward, the opening of the cover plate 14 will not be affected by the existence of the second transverse plate 42. By pulling it outward through the connecting frame 32, the first transverse plate 41 slides out of the guide plate 47, and the connecting column 35 can drive the main screen 21 to rotate together.
[0035] In this embodiment, the display assembly 2 further includes a slide groove 23, a slide groove 23 is provided on the back of the secondary screen 22, and a slider 24 is slidably connected in the slide groove 23, a telescopic plate 25 is rotatably installed on the outer surface of the slider 24 through a rotating shaft, a fixed frame 26 is installed on the extended end of the telescopic plate 25, and the fixed frame 26 is sleeved on the connecting column 35, and ear plates 27 are slidably inserted at the four corners of the back of the main screen 21 and the secondary screen 22, and the ear plates 27 of the adjacent main screen 21 and the secondary screen 22 are connected to each other up and down. The main screen 21 and the auxiliary screen 22 are arranged in a staggered manner, and a connecting shaft 28 is inserted inside the ear plate 27. Because the main screen 21 and the auxiliary screen 22 have different directions, the two sets of main screens 21 face the front of the chassis 1 when pulled out for use, while the auxiliary screen 22 faces the back of the chassis 1. The edge ear plates 27 of the main screen 21 and the auxiliary screen 22 are connected by the connecting shaft 28, so that the two adjacent sets of display screens can be connected at the side and the angle between the two can be adjusted. Specifically, the surface of the connecting shaft 28 is a smooth cylinder inserted into the two ear plates 27, and the ear plates 27 can be Rotate on the surface of the connecting column 35, the top and bottom of the connecting shaft 28 are locked by nuts to prevent the connecting shaft 28 from detaching from the ear plate 27. The ear plate 27 is slidably inserted on the back of the plane and will not detach. It can be put into the back of the screen to facilitate the storage of the main screen 21 and the auxiliary screen 22. The main screen 21 is installed on the chassis 1 through the slide plate assembly 4, and the auxiliary screen 22 is opened by rotating the back telescopic plate 25. The clamping frame 110 is sleeved on the connecting column 35 and installed after being locked by bolts. The two sides are connected to the side edges of the remaining screens. When multiple groups of auxiliary screens 22 are installed at the same time, the slide plate can be slid along the slide groove 23 to adjust the telescopic plate 25 to connect with the connecting column 35 at different heights. The positions of the telescopic plate 25, the clamping frame 110 and the slide plate are fixed respectively by bolts. Because of the elasticity of the telescopic plate 25 and the sliding of the slide plate along the slide groove 23, a polygon can be formed around the connecting column 35 according to the number of screens sent out of the chassis 1. The effect of rotating and displaying multiple groups of screens can be achieved by rotating the connecting column 35.
[0036] When the device is used, data information sent to the chassis 1 in different regions and time periods is displayed through the display component 2. The number of screens used in the display component 2 is determined according to the number of regions or objects. The rotation of the screw 17 driven by the motor drives the connecting plate 19 to move. The clamping frame 110 can clamp the main screen 21 or the auxiliary screen 22. The cover plate 14 covers most of the storage slot 15. There is still space at the position of the clamping frame 110, and a group of display screens can be sent out each time. The main screen 21 or the auxiliary screen 22 is sent out through the clamping frame 110, and the rear screen is squeezed by the block 116 to prevent it from moving forward. Until the clamping frame 110 is reset, the spring 115 drives the push plate 113 to push forward along the slide bar 114 The screen moves so that it enters the clamping frame 110 again. When the cover plate 14 covers the upper end of the storage groove 15, the plug blocks 46 at both ends of the first horizontal plate 41 are plugged into the slots of the second horizontal plate 42. The first horizontal plate 41 and the second horizontal plate 42 form a whole. The two main screens 21 can be fixedly installed with the connecting rod 44 by the locking bolts 45, and then the slide seat 43 is slid along the surface of the first horizontal plate 41 and the second horizontal plate 42 and the connecting rod 44 is rotated to adjust the angle between the two groups of main screens 21, so as to facilitate the subsequent connection with the auxiliary screen 22 to form a polygon. Because the opening of the plug block 46 faces upward, the opening of the cover plate 14 will not be affected by the existence of the second horizontal plate 42. The first horizontal plate 41 and the second horizontal plate 42 are pulled outward through the connecting frame 32. The plate 41 slides out of the guide plate 47, and the connecting column 35 can drive the main screen 21 to rotate together. The edge ear plates 27 of the main screen 21 and the auxiliary screen 22 are connected with the connecting shaft 28, so that the two adjacent groups of display screens can be connected at the side and the angle between the two can be adjusted. Specifically, the surface of the connecting shaft 28 is a smooth cylinder inserted into the two ear plates 27, and the ear plates 27 can rotate on the surface of the connecting column 35. The top and bottom of the connecting shaft 28 are locked by nuts to prevent the connecting shaft 28 from detaching from the ear plates 27. The ear plates 27 are slidably inserted on the back of the plane and will not detach. They can be collected on the back of the screen to facilitate the storage of the main screen 21 and the auxiliary screen 22. The main screen 21 is slidable. The plate assembly 4 is installed on the chassis 1, and the auxiliary screen 22 is opened by rotating the telescopic plate 25 at the back. The clamping frame 110 is sleeved on the connecting column 35 and installed after being tightened by bolts. The two sides are connected to the sides of the remaining screens. When multiple groups of auxiliary screens 22 are installed at the same time, the slide plate can be slid along the slide groove 23 to adjust the telescopic plate 25 to connect with the connecting column 35 at different heights. The positions of the telescopic plate 25, the clamping frame 110 and the slide plate are fixed respectively by bolts. Because of the elasticity of the telescopic plate 25 and the sliding of the slide plate along the slide groove 23, a polygon can be formed around the connecting column 35 according to the number of screens sent out of the chassis 1, and the effect of rotating and displaying multiple groups of screens can be achieved by rotating the connecting column 35.
[0037] The basic principles and main features of the present invention and the advantages of the present invention are shown and described above. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic characteristics of the present invention.
[0038] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.
Claims
1. A multidimensional data fusion analysis device, comprising a chassis (1), characterized in that: The top of the case (1) is provided with a storage slot (15), and a display assembly (2) is stored inside the storage slot (15). The display assembly (2) includes a main screen (21) and a secondary screen (22). The main screen (21) is provided with two groups, and the secondary screen (22) is provided with three groups. The main screen (21) and the secondary screen (22) are stacked and stored in the storage slot (15). The main screen (21) and the secondary screen (22) face opposite directions. The case (1) is located at the top of the storage slot (15) and is rotatably mounted with a cover plate (14) through a hinge. A slide plate assembly (4) is provided on the top surface of the cover plate (14) and the case (1). The slide plate assembly (4) includes a first transverse plate (41). The first transverse plate (41) is mounted on the cover plate (14). Second transverse plates (41) are provided on both sides of the first transverse plate (41). The first transverse plate (41) and the second transverse plate (42) slide along the top of the chassis (1); two groups of slide seats (43) are symmetrically slidably installed on the long plate composed of the first transverse plate (41) and the second transverse plate (42); and the main screen (21) can be installed on the top of the slide seats (43); a connecting component (3) is provided on the back of the chassis (1); the connecting component (3) includes a connecting frame (32); the connecting frame (32) is located at the top of the back of the chassis (1) and is rotatably installed with a connecting column (35); the auxiliary screen (22) can be installed on the connecting column (35); heat dissipation grooves (13) are opened on both sides of the chassis (1), and the outer side of the heat dissipation groove (13) is covered with a baffle (11); a slide rail (12) is fixed to the chassis (1) at the bottom of the baffle (11), and the baffle (11) slides along the slide rail (12).
2. A multidimensional data fusion analysis device according to claim 1, characterized in that: A vertical groove (18) is provided inside the receiving groove (15), and a screw rod (17) is rotatably installed inside the vertical groove (18) via a bearing, a connecting plate (19) is threadedly sleeved on the surface of the screw rod (17), and clamping frames (110) are fixed at both ends of the connecting plate, and buckle plates (111) are fixed at the top and bottom of the clamping frame (110).
3. A multidimensional data fusion analysis device according to claim 2, characterized in that: A stopper (116) is fixed to the bottom of the lower end buckle plate (111) of the clamp frame (110); the storage groove (15) is located at the bottom of the clamp frame (110) and is provided with a storage cavity (16); the stopper (116) and the bottom of the clamp frame (110) are stored in the storage cavity (16).
4. The multidimensional data fusion analysis device according to claim 3, characterized in that: Side grooves (112) are provided on the inner walls of the top and bottom of both sides of the storage groove (15), and a sliding rod (114) is fixed in the side groove (112), a push plate (113) is slidably sleeved on the sliding rod (114), a spring (115) is sleeved on the surface of the sliding rod (114), and two ends of the spring (115) are fixedly connected to the push plate (113) and the inner wall of the side groove (112).
5. The multidimensional data fusion analysis device according to claim 1, characterized in that: The connection assembly (3) further comprises an insertion frame (31), the insertion frames (31) being fixed on the outer walls of both sides of the chassis (1), and both sides of the connection frame (32) being slidably inserted into the insertion frame (31), the connection frame (32) being fixed with a motor (34) at the bottom of the connection column (35), and the output end of the motor (34) being fixedly connected to the connection column (35).
6. The multidimensional data fusion analysis device according to claim 1, characterized in that: The slide plate assembly (4) also includes a connecting rod (44), the top of the slide seat (43) is rotatably mounted with the connecting rod (44) via a rotating shaft, and the other end of the connecting rod (44) is plugged with a locking bolt (45), the bottom of the main screen (21) is provided with a screw hole, and the locking bolt (45) is threadedly plugged into the bottom of the main screen (21).
7. The multi-dimensional data fusion analysis device according to claim 6, characterized in that: A longitudinal guide plate (47) is fixed on the surface of the cover plate (14), and the first transverse plate (41) slides along the guide plate (47). Insertion blocks (46) are fixed on both sides of the first transverse plate (41), and a slot is provided on the second transverse plate (42) at a position corresponding to the insertion block (46), and the insertion block (46) is inserted into the second transverse plate (42).
8. The multi-dimensional data fusion analysis device according to claim 5, characterized in that: The connecting frame (32) is located on the top surface of the baffle (11) and is fixed with a fixing block (33), and the fixing block (33) is fixedly connected to the baffle (11).
9. The multi-dimensional data fusion analysis device according to claim 1, characterized in that: The display assembly (2) further comprises a slide groove (23), the back side of the secondary screen (22) is provided with a slide groove (23), and a slider (24) is slidably connected in the slide groove (23), a telescopic plate (25) is rotatably mounted on the outer surface of the slider (24) via a rotating shaft, a fixed frame (26) is mounted on the extended end of the telescopic plate (25), and the fixed frame (26) is sleeved on the connecting column (35).
10. The multi-dimensional data fusion analysis device according to claim 9, characterized in that: Ear plates (27) are slidably plugged at the four corners of the back of the main screen (21) and the auxiliary screen (22), the ear plates (27) of the adjacent main screens (21) and auxiliary screens (22) are staggered up and down, and a connecting shaft (28) is plugged inside the ear plates (27).