A metal mold transportation device with high stability

By combining the design of the pallet and C-shaped outer box of the lithium tram, it is equipped with transmission, lifting and placing components, the problem of poor stability of cylindrical mold transportation is solved, and efficient and stable mold transportation and storage is achieved.

CN120080783BActive Publication Date: 2025-08-05HANGZHOU GESM NEW ENERGY INTELLIGENT EQUIP JOINT CO
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Patent Information

Application Number
CN202510585413.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-08
Publication Date
2025-08-05
Estimated Expiration
2045-05-08

AI Technical Summary

Technical Problem

The existing transportation devices have poor stability when transporting cylindrical molds with large weight and cannot be flexibly adjusted, resulting in low transportation efficiency and safety hazards.

Method used

The lithium tram is equipped with a transmission component, a lifting component and a placement component. The mold is stably conveyed through the transmission component, the lifting component is stored in layers, and stability and safety are ensured through hydraulic rods and cushioning pads.

Benefits of technology

It improves the stability and general applicability of cylindrical molds during transportation, ensures the stability of the molds during storage and removal, and reduces safety risks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a metal mold transportation device with high stability, specifically related to the technical field of transportation devices, including a lithium-powered vehicle. A support plate is fixedly connected to the rear side of the lithium-powered vehicle, a bottom plate is fixedly connected to the upper end of the support plate, a C-shaped outer box is fixedly connected to the upper end of the bottom plate. A transmission component is fixedly installed on the common left inner surface wall and right inner surface wall of the C-shaped outer box. A jacking component is fixedly installed in the middle of the upper end of the bottom plate. A plurality of groups of placement components are fixedly installed on the upper part of the left inner surface wall and the upper part of the right inner surface wall of the C-shaped outer box. The metal mold transportation device with high stability according to the present invention, through the arranged placement components, can cooperate with the jacking component to store the transported cylindrical molds in layers, and can maintain the stability of the molds during transportation when storing. When the molds need to be taken out subsequently, the molds can be uniformly pulled outwards by pulling the baffle, improving the stability during material taking.
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Description

Technical Field

[0001] The present invention relates to the technical field of transportation devices, and particularly to a metal mold transportation device with high stability. Background Art

[0002] A metal mold transportation device is a key equipment for efficiently handling metal molds in industrial production. It usually consists of a transportation track, a carrying platform, a driving system, and a control system. The transportation track is flexibly laid according to the layout of the production workshop to ensure a smooth transportation route and prevent the mold from shaking or displacing during transportation. The driving system provides power to make the carrying platform run smoothly along the track and can adjust the speed according to requirements. The control system realizes precise control of the transportation process, and operators can easily set transportation paths, start and stop operations through the console.

[0003] However, there are many deficiencies in the existing transportation devices for transporting cylindrical molds in the prior art. Traditional transportation methods often use simple rope bundling or ordinary trays for loading, resulting in poor stability. Cylindrical molds are prone to rolling and colliding during transportation, which may not only damage the surface of the mold, affecting its accuracy and service life, but also cause safety accidents due to insecure fixation. Although some devices have fixing structures, they cannot be flexibly adjusted according to cylindrical molds of different sizes, and their applicability is limited.

[0004] Chinese Patent Publication No. CN213413911U discloses a mold transportation device, including a transportation table and a bending-resistant steel plate. The bending-resistant steel plate is installed on the lower wall surface of the transportation table and is connected by four locking screws. An earthquake-resistant protection structure is installed on the lower wall surface of the transportation table, and an adjusting structure is installed on the lower wall surface of the bending-resistant steel plate. A braking structure is sleeved on the outer wall surface of the adjusting structure; the earthquake-resistant protection structure includes: four telescopic columns, four telescopic sleeves, four shock-absorbing springs, and several rubber silent wheels; the above patent document relates to the technical field of molds. In the above patent document, the problem that when the mold is transported, since some metal molds are heavy, if the transportation device is not stopped stably, it is very easy to be taken away by the mold, thus causing harm to the surrounding operators is solved through the braking structure and the brake pad. The problem that when hitting a stone during transportation, the transportation table of the existing mold transportation device is very easy to deform and cause losses is solved through the bending-resistant steel plate and the earthquake-resistant protection structure.

[0005] Although the equipment in the above patent document can achieve the transportation effect of the mold during use, in actual use, it cannot transport cylindrical molds with relatively large weights, and the stability during transportation is poor, thereby reducing the efficiency and stability during transportation. Summary of the Invention

[0006] The main object of the present invention is to provide a metal mold transportation device with high stability, which can effectively solve the problems that in the actual use process, it is impossible to transport cylindrical molds with relatively large weights, and the stability during transportation is poor, thereby reducing the efficiency and stability during transportation.

[0007] To achieve the above object, the technical solution adopted by the present invention is as follows:

[0008] A metal mold transportation device with high stability includes a lithium battery vehicle. A pallet is fixedly connected to the rear side of the lithium battery vehicle. A bottom plate is fixedly connected to the upper end of the pallet. Baffles are rotatably connected to both the left end and the right end of the bottom plate. A C-shaped outer box is fixedly connected to the upper end of the bottom plate. A transmission component is fixedly installed on the common inner surface left side wall and the inner surface right side wall of the C-shaped outer box. A jacking component is fixedly installed in the middle of the upper end of the bottom plate. A number of placement components are fixedly installed on both the upper part of the inner surface right side wall and the upper part of the inner surface right side wall of the C-shaped outer box. A closing door is rotatably connected to the rear end of the bottom plate.

[0009] Preferably, a number of discharge ports penetrating through to the inner cavity of the C-shaped outer box are linearly arranged at both the left end and the right end of the C-shaped outer box. Installation grooves one are opened at the front side and the rear side of both the left and right ends of the discharge port. Installation grooves two are opened at the front side and the rear side of the mutually approaching ends of the two baffles. The installation groove one and the installation groove two located at the front side and the installation groove one and the installation groove two located at the rear side are arranged in alignment. Hydraulic rods one are fixedly connected to the bottom walls of the four installation grooves one. The output ends of the hydraulic rods one on the same side are fixedly connected to the top walls of the installation grooves two on the same side.

[0010] Preferably, the transmission component includes transmission platforms fixedly connected to the lower side of the inner surface left side wall and the lower side of the inner surface right side wall of the C-shaped outer box. A number of arc-shaped limiting grooves are linearly arranged at the upper ends of the two transmission platforms. Drive rods are rotatably connected to both the front part and the rear part of the mutually approaching ends of the two transmission platforms. A motor is fixedly connected to the front part of the inner cavity of the right transmission platform. The left end of the drive rod located at the front part penetrates through the left end of the right transmission platform and is fixedly connected to the output end of the motor through a coupling. Elliptical plates are fixedly connected to both the left side and the right side of the outer surfaces of the two drive rods. A number of arc-shaped blocks are linearly arranged on both the upper part of the right side of the left transmission platform and the upper part of the left side of the right transmission platform. The mutually approaching ends of the arc-shaped blocks on the same side are fixedly connected through connecting plates. The upper parts of the left ends of the two elliptical plates located on the left side and the upper parts of the right ends of the two elliptical plates located on the right side are rotatably connected to the adjacent arc-shaped blocks on the same side.

[0011] Preferably, the number of the arc-shaped blocks is equal to the number of the arc-shaped limiting grooves.

[0012] Preferably, the jacking component includes a hydraulic cylinder, the lower end of the hydraulic cylinder is fixedly connected to the upper end of the bottom plate, the output end of the hydraulic cylinder is fixedly connected to a top plate through a piston rod, and a plurality of V-shaped grooves are linearly arranged on the upper end of the top plate.

[0013] Preferably, each of the plurality of placing components includes a plurality of hydraulic rods II fixedly connected to the upper part of the left inner surface and the upper part of the right inner surface of the C-shaped outer box in a pairwise symmetric distribution. The output ends of the two hydraulic rods II are both fixedly connected to a bearing plate. Installation holes are formed in the upper parts of the front ends of the two bearing plates. The inner surfaces of the two installation holes are rotatably connected to a limiting rod. The two limiting rods are fixedly connected to the adjacent ends of the C-shaped outer box on the same side. Rectangular plates are fixedly connected to the lower parts of the inclined surfaces of the two bearing plates.

[0014] Preferably, a material receiving plate is jointly placed on the upper ends of the plurality of rectangular plates on the left side and the plurality of rectangular plates on the right side. Soft pads are fixedly connected to the left and right sides of the inclined surfaces of the plurality of material receiving plates.

[0015] Preferably, the two hydraulic rods II on the same side are respectively located on the left and right sides of the discharge port on the same side. The left and right ends of the two material receiving plates on the same side are slidably connected to the adjacent ends of the baffle on the same side.

[0016] Preferably, the two bearing plates on the same side are arranged in an inverted V shape, a feeding gap is formed between the two bearing plates on the same side, and buffer pads are fixedly connected to the mutually approaching ends of the two baffles.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] Through the arranged transmission component, the present invention can realize the one-by-one transportation of the cylindrical molds, and during the transportation process, the cylindrical molds can be placed more stably, avoiding shaking during the transmission process. Moreover, the transmission component can also receive cylindrical molds with different diameters. At the same time, through the arranged jacking component, it can cooperate with the transmission component to uniformly transport the transported cylindrical molds upward. And during the upward transportation process, the jacking component can fit the cylindrical molds with different diameters on its inner surface and then transport them upward, thereby improving the overall versatility of the device and the stability of the transmission.

[0019] Through the arranged placing component, the present invention can cooperate with the jacking component to store the transported cylindrical molds in layers, and can maintain the stability of the molds during transportation when storing. When the molds need to be taken out subsequently, the molds can be uniformly pulled out by pulling the baffle, improving the stability during material taking and the stability during storing the molds. Description of the Drawings

[0020] Figure 1Schematic diagram of the overall structure of the present invention;

[0021] Figure 2 Schematic diagram of the partial structure of the present invention;

[0022] Figure 3 Schematic diagram of the rear partial structure of the present invention;

[0023] Figure 4 Schematic diagram of the installation positions of the transmission component, the lifting component and the placement component of the present invention;

[0024] Figure 5 Schematic diagram of the structure of the lifting component of the present invention;

[0025] Figure 6 Schematic diagram of the structure of the transmission component of the present invention;

[0026] Figure 7 Schematic diagram of the structure of the placement component of the present invention;

[0027] Figure 8 Schematic diagram of the partial structure of the placement component of the present invention;

[0028] Figure 9 Schematic diagram of the installation position of the first hydraulic rod of the present invention;

[0029] Figure 10 Of the present invention Figure 9 Schematic diagram of the enlarged structure at position A.

[0030] In the figure: 1, lithium electric vehicle; 2, bottom plate; 3, baffle; 4, C-shaped outer box; 40, first installation groove; 41, discharge port; 42, first hydraulic rod; 43, second installation groove; 5, transmission component; 51, transmission table; 52, arc-shaped limiting groove; 53, transmission rod; 54, elliptical plate; 56, arc-shaped block; 57, connecting plate; 6, lifting component; 61, hydraulic cylinder; 62, top plate; 63, V-shaped groove; 7, placement component; 71, second hydraulic rod; 72, bearing plate; 73, limiting rod; 74, rectangular plate; 75, material receiving plate; 76, soft pad; 8, closing door. Detailed implementation manners

[0031] In order to make the technical means, creative features, achieved purposes and functions of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.

[0032] Example 1, as Figure 1 , Figure 2 And Figure 3As shown in the figure, a metal mold transportation device with high stability includes a lithium-powered vehicle 1. A pallet is fixedly connected to the rear side of the lithium-powered vehicle 1. A bottom plate 2 is fixedly connected to the upper end of the pallet. Baffles 3 are rotatably connected to both the left end and the right end of the bottom plate 2. A C-shaped outer box 4 is fixedly connected to the upper end of the bottom plate 2. A transmission component 5 is fixedly installed on the common inner surface left wall and the inner surface right wall of the C-shaped outer box 4. By means of the provided transmission component 5, the cylindrical molds can be conveyed one by one, and during the conveying process, the cylindrical molds can be placed more stably, avoiding shaking during transmission. Moreover, the transmission component 5 can also receive cylindrical molds with different diameters;

[0033] A jacking component 6 is fixedly installed in the middle of the upper end of the bottom plate 2. By means of the provided jacking component 6, it can cooperate with the transmission component 5 to uniformly convey the conveyed cylindrical molds upward. And during the upward conveyance, the jacking component 6 can fit cylindrical molds with different diameters on its inner surface and then convey them upward, thereby improving the overall versatility of the device and the stability of transmission;

[0034] A number of sets of placement components 7 are fixedly installed on both the upper part of the inner surface right wall and the upper part of the inner surface right wall of the C-shaped outer box 4. By means of the provided placement components 7, they can cooperate with the jacking component 6 to store the conveyed cylindrical molds in layers. And during storage, the stability of the molds during transportation can be maintained. When the molds need to be taken out subsequently, the molds can be uniformly pulled outwards by pulling the baffle 3, improving the stability during material taking and the stability during storing the molds;

[0035] A closing door 8 is rotatably connected to the rear end of the bottom plate 2.

[0036] The above-mentioned lithium-powered vehicle 1 is a conventional setting in the prior art. In this solution, it is combined with the pallet, and the weight it can bear is 25 tons. Therefore, in this solution, by combining the lithium-powered vehicle 1 and the pallet, it can carry and transport a large number of cylindrical molds. Therefore, both the lithium-powered vehicle 1 and the pallet are conventional designs in the prior art, and their specific working principles and control methods will not be elaborated in detail in this solution.

[0037] Embodiment 2. On the basis of Embodiment 1, for the purpose of achieving the stable conveyance of cylindrical molds one by one.

[0038] Specifically, refer to Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 6The transmission component 5 includes a transmission platform 51 fixedly connected to the lower side of the left side wall and the lower side of the right side wall of the inner surface of the C-shaped outer box 4. A plurality of arc-shaped limit grooves 52 are provided on the upper ends of the two transmission platforms 51 in a linear array. The front and rear parts of the ends of the two transmission platforms 51 close to each other are rotatably connected to transmission rods 53. The front part of the inner cavity of the right transmission platform 51 is fixedly connected to a motor. The left end of the front transmission rod 53 passes through the left end of the right transmission platform 51 and is fixedly connected to the output end of the motor through a coupling. The left and right sides of the outer surfaces of the two transmission rods 53 are fixedly connected to an elliptical plate 54. A plurality of arc blocks 56 are provided in a linear array on the upper right side of the left transmission platform 51 and the upper left side of the right transmission platform 51. The ends of the plurality of arc blocks 56 on the same side close to each other are fixedly connected by a connecting plate 57. The upper left ends of the two elliptical plates 54 on the left and the upper right ends of the two elliptical plates 54 on the right are rotatably connected to the arc blocks 56 adjacent to the same side.

[0039] Furthermore, the number of the arc blocks 56 is equal to the number of the arc limiting grooves 52 .

[0040] By rotating to open the closed door 8, the cylindrical mold to be stored is then placed on the rear end of the upper end of the transfer table 51. At this time, the motor can be started, and then the output end of the motor drives the transmission rod 53 fixedly connected to it to rotate through the coupling. When one of the transmission rods 53 rotates, it can be seen from the above that the upper left ends of the two elliptical plates 54 on the left and the upper right ends of the two elliptical plates 54 on the right are rotatably connected to the adjacent arc blocks 56 on the same side. Therefore, when the transmission rod 53 on the front side rotates, the elliptical plates 54 fixedly connected to their surfaces can be driven to rotate at the same time. When the elliptical plates 54 rotate, since the arc blocks 56 are fixedly connected to them, and the ends of several arc blocks 56 on the same side that are close to each other are fixedly connected by the connecting plate 57, and the two elliptical plates 54 on the rear side are fixedly connected to the corresponding arc blocks 56 on the same side, the elliptical plates 54 on the rear side can be driven to rotate, and the elliptical plates 54 on the same side rotate in a circle with the center point of the transmission rod 53 on the same side as the center point.

[0041] As can be seen from the above, the number of arc blocks 56 is equal to the number of arc limit grooves 52. Therefore, when the elliptical plate 54 drives the arc blocks 56 on the same side to rotate, the arc block 56 at the rear end will transfer the cylindrical mold placed at the front end of the transfer platform 51 from bottom to top to the next arc limit groove 52, and so on, until the front end arc limit groove 52 is filled, and then the rotation of the motor can be stopped. Therefore, when the cylindrical mold is transported to the corresponding arc limit groove 52, under the shape restriction of the arc limit groove 52, the cylindrical mold within its arc can be taken over, and under the action of the arc shape, the two sides of the cylindrical mold can always be kept in the inner cavity of the arc limit groove 52, and it is not easy to shake, thereby improving the stability during subsequent transmission.

[0042] The motor in the above is a conventional setting in the prior art. In this solution, it only needs to satisfy the driving of the transmission rod 53 fixedly connected to its output end through the piston rod. Therefore, this solution will not elaborate on it in detail.

[0043] Embodiment 3. On the basis of Embodiment 2, this embodiment aims to uniformly convey the cylindrical molds that have completed transmission upward, store them in layers stably, and then uniformly take out the stored cylindrical molds.

[0044] Specifically, refer to Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 7 、 Figure 8 、 Figure 9 and Figure 10 , a plurality of discharge ports 41 penetrating through to the inner cavity of the C-shaped outer box 4 are linearly arrayed and opened at both the left end and the right end of the C-shaped outer box 4. Installation grooves 40 are opened at the front side and the rear side of both the left and right ends of the discharge port 41. Installation grooves 43 are opened at the front side and the rear side of the mutually approaching ends of the two baffles 3. The installation groove 40 at the front side and the installation groove 43 and the installation groove 40 at the rear side and the installation groove 43 are arranged in alignment. The bottom walls of the four installation grooves 40 are fixedly connected with hydraulic cylinders 42, and the output ends of the hydraulic cylinders 42 on the same side are fixedly connected with the top walls of the installation grooves 43 on the same side.

[0045] Furthermore, the jacking component 6 includes a hydraulic cylinder 61. The lower end of the hydraulic cylinder 61 is fixedly connected to the upper end of the bottom plate 2. The output end of the hydraulic cylinder 61 is fixedly connected with a top plate 62 through a piston rod. A plurality of V-shaped grooves 63 are linearly arrayed and opened on the upper end of the top plate 62.

[0046] Furthermore, each of the several groups of placing components 7 includes a plurality of hydraulic cylinders 71 fixedly connected in a pairwise symmetric distribution on the upper part of the left inner surface wall and the upper part of the right inner surface wall of the C-shaped outer box 4. The output ends of the two hydraulic cylinders 71 are fixedly connected with a bearing plate 72. Installation holes are opened at the upper parts of the fronts of the two bearing plates 72. The inner surfaces of the two installation holes are rotatably connected with limiting rods 73. The two limiting rods 73 are fixedly connected to the adjacent ends of the C-shaped outer box 4 on the same side. Rectangular plates 74 are fixedly connected to the lower parts of the inclined surfaces of the two bearing plates 72.

[0047] Furthermore, a material receiving plate 75 is jointly placed on the upper ends of the several rectangular plates 74 on the left side and the several rectangular plates 74 on the right side. Soft pads 76 are fixedly connected to both the left side and the right side of the inclined surfaces of the several material receiving plates 75.

[0048] Further, two hydraulic rods II 71 on the same side are respectively located on the left and right sides of the discharge port 41 on the same side. The left and right ends of the two material receiving plates 75 on the same side are slidably connected to one end of the baffle 3 adjacent on the same side.

[0049] Further, the two bearing plates 72 on the same side are arranged in an inverted V shape. A feeding gap is formed between the two bearing plates 72 on the same side. Buffer pads are fixedly connected to one end of each of the two baffles 3 that are close to each other.

[0050] After the preliminary transportation of the cylindrical mold is completed through the above-mentioned embodiments, the hydraulic cylinder 61 can be started at this time, so that the output end of the hydraulic cylinder 61 drives the piston rod to jack up the top plate 62. When the top plate 62 moves upward, several V-shaped grooves 63 opened at its upper end will jack up the cylindrical mold placed in the inner cavity of the arc-shaped limiting groove 52. Subsequently, when the top plate 62 drives the cylindrical mold to move upward, both sides of the cylindrical mold will first squeeze the bearing plates 72 located on the lower side. As known from the above, the two bearing plates 72 on the same side are arranged in an inverted V shape, and a feeding gap is formed between the two bearing plates 72 on the same side. Therefore, when the cylindrical mold squeezes the two bearing plates 72 on the same side, the two bearing plates 72 will open in an inverted V shape under the limiting effect of the limiting rod 73. For the initial placement, the cylindrical mold needs to be placed between the uppermost bearing plates 72. Therefore, the material receiving plate 75 located on the lower side will be lifted, and the lifted material receiving plate 75 does not affect the placement of the cylindrical mold between each group of uppermost bearing plates 72. When the cylindrical mold moves below the uppermost bearing plates 72, if it continues to move upward at this time, it will squeeze each group of uppermost bearing plates 72 to be arranged in an inverted V shape upward. When the cylindrical mold moves to the uppermost side of the inverted V shape, the hydraulic cylinder 61 can be controlled to drive the top plate 62 to move downward, and the cylindrical mold will lean on the upper side of the material receiving plate 75 on the same side. Subsequently, each group of uppermost bearing plates 72 will return to the initial inverted V shape downward;

[0051] During the process of each group of bearing plates 72 opening and returning to the initial state, to avoid the situation that the weight of the cylindrical mold is too large and the mold is bruised on the surfaces of the bearing plates 72 and the material receiving plates 75, therefore, in this solution, a hydraulic rod II 71 is fixedly connected to the lower end of each bearing plate 72. Under the action of the hydraulic rod II 71, a deceleration and buffering effect can be achieved when opening and returning to the initial state;

[0052] Subsequently, the transmission component 5 is started again, so that the transmission component 5 performs secondary transmission. By repeating the operation steps of the jacking component 6, the top plate 62 can be made to drive the cylindrical mold to move between each group of lowermost bearing plates 72 for placement. The specific operation steps are the same as those above, so this solution will not elaborate on it too much;

[0053] Moreover, under the shape characteristics of the V-shaped grooves 63, cylindrical molds with different diameters can be received and jacked up;

[0054] When the two layers of cylindrical molds are stored, the closed door 8 can be closed and the cylindrical mold can be transported by controlling the lithium battery car 1. When it is transported to the required unloading location, it is only necessary to open the baffle 3 on either side. As can be seen from the above, the two baffles 3 are rotatably connected to the left and right ends of the bottom plate 2, and the left and right ends of several material holding plates 75 are slidingly connected to the baffle 3 on the same side. Therefore, when the baffle 3 on one side is pulled, the material holding plate 75 on the same side will be driven to move in the pulling direction, and in the process of moving, the material holding plate 75 will tilt in the pulling direction, and then the cylindrical mold placed on its upper end will slide out from the corresponding discharge port 41. The material holding plate 75 is tilted and its lower end rests on the surface of the baffle 3 to facilitate the subsequent removal of the cylindrical mold, and the rectangular plate 74 fixedly connected to the inclined surface of the carrying plate 72 can support the material holding plate 75.

[0055] In order to prevent the cylindrical mold from being damaged when it hits the surface of the baffle 3 due to its excessive weight when being pulled out, this solution fixes a buffer pad on the surface of the baffle 3 and places a soft pad 76 on the inclined surface of each material receiving plate 75, thereby achieving a buffering effect when the cylindrical mold is taken out;

[0056] At the same time, in order to reduce the force required to open the baffle 3, this solution has a hydraulic rod 1 42 fixedly connected to the bottom wall of the mounting groove 1 40 opened on the surface of the C-shaped outer box 4, and the output end of the hydraulic rod 1 42 is fixedly connected to the top wall of the mounting groove 2 43 opened on the surface of the baffle 3. Therefore, when the baffle 3 is pulled, the force required to pull the baffle 3 can be reduced under the action of the hydraulic rod 1 42.

[0057] The hydraulic rod 1 42 and the hydraulic rod 2 71 mentioned above are both hydraulic rods in the prior art, and their specific working principles are as follows:

[0058] Extension process: When the hydraulic system is working, the hydraulic pump delivers the hydraulic oil in the oil tank through the oil pipe from the oil inlet to the chamber on the side of the rodless chamber piston of the hydraulic rod that is not connected to the piston rod. As the hydraulic oil is continuously injected, the volume of the hydraulic oil in the rodless chamber increases and the pressure rises. According to Pascal's law, this pressure will act evenly on the surface of the piston, generating a force that pushes the piston toward the chamber on the side of the rod chamber piston connected to the piston rod. Under the action of this force, the piston drives the piston rod to extend outward, thereby realizing the extension action of the hydraulic rod and pushing the external components connected to it to move;

[0059] Retraction process: When the hydraulic rod needs to be retracted, the hydraulic system changes the flow direction of the hydraulic oil by controlling valves and other components, so that the hydraulic oil enters from the oil inlet of the rod chamber, and at the same time the hydraulic oil in the rodless chamber flows back to the tank through the oil outlet. The hydraulic oil pressure in the rod chamber increases, pushing the piston toward the rodless chamber, and the piston rod retracts accordingly, completing the retraction action of the hydraulic rod;

[0060] During the whole working process, the movement speed and output force of the hydraulic rod can be controlled by adjusting the flow rate and pressure of the hydraulic oil in the hydraulic system. The greater the flow rate, the faster the movement speed of the hydraulic rod; the higher the pressure, the greater the force output by the hydraulic rod.

[0061] Therefore, both the hydraulic rod - 42 and the hydraulic rod - 71 are conventional designs in the prior art, and their specific installation control methods are all conventional settings in the prior art. This solution will not elaborate on them in detail.

[0062] The above-mentioned buffer pad is a conventional setting in the prior art, and the material of the soft pad 76 is the same as that of the buffer pad. The following is a detailed description of the buffer pad;

[0063] The main function of the buffer pad is to absorb and disperse the impact force, and consume energy through its own deformation, so as to reduce the impact on the protected object.

[0064] Therefore, the above-mentioned buffer pad is a conventional setting in the prior art, so this solution will not elaborate on it in detail.

[0065] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.

Claims

1. A metal mold transport device with high stability, comprising a lithium battery vehicle (1), characterized in that: The rear side of the lithium-ion vehicle (1) is fixedly connected to a support plate, the upper end of the support plate is fixedly connected to a base plate (2), the left and right ends of the base plate (2) are both rotatably connected to baffles (3), the upper end of the base plate (2) is fixedly connected to a C-shaped outer box (4), the inner left side wall and the inner right side wall of the C-shaped outer box (4) are jointly fixedly mounted with a transmission component (5), the middle part of the upper end of the base plate (2) is fixedly mounted with a lifting component (6), the upper part of the inner right side wall and the upper part of the inner right side wall of the C-shaped outer box (4) are both fixedly mounted with a plurality of placement components (7), and the rear end of the base plate (2) is rotatably connected to a closed door (8); The transmission assembly (5) includes a transmission platform (51) fixedly connected to the lower side of the left side wall and the lower side of the right side wall of the inner surface of the C-shaped outer box (4), and a plurality of arc-shaped limit grooves (52) are provided on the upper ends of the two transmission platforms (51) in a linear array. The front and rear ends of the two transmission platforms (51) close to each other are rotatably connected to a transmission rod (53), and the front of the inner cavity of the right transmission platform (51) is fixedly connected to a motor. The left end of the transmission rod (53) at the front passes through the left end of the right transmission platform (51) and is connected to the output end of the motor through a coupling. The two transmission rods (53) are fixedly connected, and the left and right sides of the outer surfaces are fixedly connected with an elliptical plate (54). The upper right side of the transmission platform (51) on the left and the upper left side of the transmission platform (51) on the right are both provided with a plurality of arc blocks (56) in a linear array. The ends of the arc blocks (56) on the same side that are close to each other are fixedly connected by a connecting plate (57). The upper left ends of the two elliptical plates (54) on the left and the upper right ends of the two elliptical plates (54) on the right are both rotatably connected to the adjacent arc blocks (56) on the same side. The lifting assembly (6) includes a hydraulic cylinder (61), the lower end of the hydraulic cylinder (61) is fixedly connected to the upper end of the bottom plate (2), the output end of the hydraulic cylinder (61) is fixedly connected to the top plate (62) via a piston rod, and the upper end of the top plate (62) is provided with a plurality of V-shaped grooves (63) in a linear array; Several groups of the placement components (7) each include a plurality of hydraulic rods (71) fixedly connected to the upper left side wall and the upper right side wall of the inner surface of the C-shaped outer box (4) in a symmetrical arrangement, the output ends of the two hydraulic rods (71) are fixedly connected to a carrier plate (72), the upper front ends of the two carrier plates (72) are provided with mounting holes, the inner surfaces of the two mounting holes are rotatably connected to limit rods (73), the two limit rods (73) are fixedly connected to an adjacent end of the C-shaped outer box (4) on the same side, and the lower inclined surfaces of the two carrier plates (72) are fixedly connected to a rectangular plate (74); The two bearing plates (72) on the same side are arranged in an inverted eight-shaped configuration, a gap for loading is formed between the two bearing plates (72) on the same side, and a buffer pad is fixedly connected to one end of the two baffles (3) that are close to each other.

2. A metal mold transport device with high stability according to claim 1, characterized in that: The left and right ends of the C-shaped outer box (4) are provided with a plurality of discharge ports (41) extending into the inner cavity of the C-shaped outer box (4) in a linear array. The front and rear ends of the left and right ends of the discharge ports (41) are provided with mounting grooves 1 (40). The front and rear sides of the ends of the two baffles (3) close to each other are provided with mounting grooves 2 (43). The mounting grooves 1 (40) and 2 (43) on the front side and the mounting grooves 1 (40) and 2 (43) on the rear side are aligned. The bottom walls of the four mounting grooves 1 (40) are fixedly connected to hydraulic rods 1 (42), and the output ends of the hydraulic rods 1 (42) on the same side are fixedly connected to the top walls of the mounting grooves 2 (43) on the same side.

3. The metal mold transport device with high stability according to claim 1, characterized in that: The number of the arc-shaped blocks (56) is equal to the number of the arc-shaped limiting grooves (52).

4. A metal mold transport device with high stability according to claim 2, characterized in that: A material holding plate (75) is placed on the upper ends of the plurality of rectangular plates (74) on the left side and the plurality of rectangular plates (74) on the right side, and soft pads (76) are fixedly connected to the left and right sides of the inclined surfaces of the plurality of material holding plates (75).

5. The metal mold transport device with high stability according to claim 4, characterized in that: The two hydraulic rods (71) on the same side are respectively located on the left and right sides of the discharge port (41) on the same side, and the left and right ends of the two material holding plates (75) on the same side are slidably connected to the adjacent end of the baffle (3) on the same side.

Citation Information

Patent Citations

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    CN213413911U

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