A transport device for glass raw materials after mixing

CN224812166UActive Publication Date: 2026-09-29ZHEJIANG FUXIN SOLAR ENERGY CO LTD
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Patent Information

Application Number
CN202522540539.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-29
Publication Date
2026-09-29
Estimated Expiration
2035-11-29

AI Technical Summary

Technical Problem

现有的玻璃原料混合后运输至不同位置及不同高度的上料口较为不便

Benefits of technology

[0015]当内箱体在外箱体内发生位移以精准对接不同位置上料口时,内箱体上的限位滑块可沿外箱体上的限位滑槽滑动,能够有效避免内箱体在滑移过程中出现位置偏移,确保卸料对准上料口;同时,内箱体上设置的推拉架,便于使用者握持并施力,带动内箱体精准完成滑移操作,提升与不同上料口的对接精度。本申请的有益效果是:

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Abstract

The application discloses a conveying device for glass raw materials after mixing, and belongs to the technical field of glass production. The technical scheme points of the conveying device are as follows: the conveying device comprises a supporting frame, a driving device installed on the supporting frame, and a steel cable installed on the driving device; and a material placing assembly is installed on the steel cable. The conveying device can transport the mixed glass materials after mixing to different positions and different height feeding ports, and conveniently and labor-sparingly unload the materials, so as to reduce the labor intensity of users.
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Description

Technical Field

[0001] This application belongs to the technical field of glass production, and in particular relates to a transport device for mixing glass raw materials. Background Technology

[0002] In the glass production process, different materials need to be stirred and mixed. The glass mixture after mixing needs to be transported by a conveyor to the feeding port at different positions and heights. The existing glass raw materials are inconvenient to transport after mixing to different locations and heights of the loading port. Utility Model Content

[0003] The purpose of this application is to address the technical problems of material transportation in the glass production process by providing a transportation device for mixed glass raw materials. This device can transport the mixed glass materials to loading ports at different locations and heights, and achieve convenient and labor-saving unloading, thereby reducing the labor intensity of users.

[0004] The glass raw material transport device provided in this application includes a support frame and the following components: The drive unit is mounted on the support frame; A steel cable, which is mounted on the drive unit; A material placement assembly, which is mounted on a steel cable; During glass production, when the mixed glass material needs to be transported to different loading ports at different locations and heights, the inner box is first pushed along several rotating rollers in a moving trough until it partially slides out from the outer box. The glass material is then loaded into the inner box. After loading, the inner box is reset, and a rod is inserted through corresponding holes on both the inner and outer boxes to fix their positions. At this point, the drive unit is activated, moving a steel cable up and down. The cable then moves the outer and inner boxes up and down synchronously. Combined with adjustments to the device, different positions can be reached, completing the material transport. Once the loading assembly stops at the target loading port at the predetermined location, the user can again partially slide the inner box out from the outer box for easy loading and unloading operations at the corresponding loading port, effectively reducing labor intensity.

[0005] During glass production, when the mixed glass material needs to be transported to different locations and heights of the loading port, the inner box is moved along several rotating rollers on the moving trough until it partially slides out of the outer box. At this point, the glass material is placed in the inner box. After the material is placed in the inner box, the inner box is reset. After resetting, the positions of the inner and outer boxes can be fixed by inserting a rod through the insertion holes on the inner and outer boxes. At this time, the drive device can drive the steel cable to move up and down. Combined with the overall position adjustment of the device, it can adapt to different position requirements. The up and down movement of the steel cable can drive the outer and inner boxes to move up and down to adapt to loading ports of different heights, completing the transportation work. When the material placement component stops at the target loading port at the predetermined position, the user can again partially slide the inner box out of the outer box to facilitate loading and unloading materials to the corresponding loading port, reducing the user's labor intensity.

[0006] Furthermore, the structure of the inner housing includes: A base plate, which is placed on a rotating roller; A first rotating shaft is disposed on the base plate; Side plate, which is mounted on the first rotating shaft.

[0007] By adopting the above-described inner casing structure, the bottom plate is placed on the rotating roller, the first rotating shaft is set on the bottom plate, and the side plates are installed on the first rotating shaft. When the user needs to load or unload glass mixture into the corresponding feed port, the first rotating shaft is rotated to flip the side plate until the outer surface of the side plate is parallel to the bottom plate. Since the inner surface of the side plate has a certain slope, the user can use this slope to complete the loading and unloading of glass mixture conveniently and effortlessly, further reducing labor intensity and adapting to the feeding requirements of different feed ports.

[0008] Furthermore, the inner housing also includes the following structure: A latch, which is mounted on the side plate; Pin holes are provided on the base plate.

[0009] By adding a pin and a corresponding hole to the inner casing, the pin is installed on the side panel, and the corresponding hole is located on the bottom plate. When the user needs to raise the side panel to limit the glass mixture inside the inner casing, the side panel is rotated until its outer surface is perpendicular to the bottom plate, and then the pin is inserted into the hole to fix the side panel in position. The fixed side panel can reliably limit the glass mixture inside the inner casing, preventing it from tipping over during the lifting and displacement process of the glass mixture as it is transported to different positions and heights of the loading port.

[0010] Furthermore, the structure of the base plate includes: The mounting cavity is disposed on the base plate; A cylinder, wherein the cylinder is installed within a mounting cavity; Top plate, which is installed at the cylinder output end; The second rotating shaft is installed on the mounting cavity and is connected to the top plate.

[0011] When the user needs to unload material into different loading ports at different positions and heights within the inner casing, the cylinder inside the mounting cavity is driven, causing its output end to extend. After the cylinder output end extends, it lifts one side of the top plate, which is rotatably connected to it, allowing the top plate to rotate around the axis of the second rotation shaft. As one side of the top plate lifts and rotates slightly around the second rotation shaft, the glass mixture on the top plate can be precisely poured into the corresponding loading port. After unloading is complete, the cylinder output end resets, restoring the top plate to a horizontal position. This structure makes unloading into different loading ports more convenient and efficient, improving feeding accuracy.

[0012] Furthermore, the structure of the drive device includes: A drive motor, which is mounted on a support frame; A rotating rod frame, which is mounted on a support frame; A transmission rod, which is mounted on the output shaft of a drive motor; The device includes two drums, which are mounted on a rotating rod, and the steel cable is mounted and wound onto the drums.

[0013] When the drive unit needs to raise the steel cable to fit the upper loading port, the drive motor is started, its output shaft rotates, and drives the transmission rod to rotate synchronously. The transmission rod then drives the drum to rotate, and the steel cable is wound around its surface during the rotation of the drum. When the steel cable needs to be lowered to fit the lower loading port or to adjust the lateral position, the drive motor output shaft rotates in the opposite direction, causing the steel cable to be unwound from the drum, thus lowering the steel cable. Combined with the overall lateral movement adjustment of the device, it can adapt to the needs of loading ports at different positions. The structure of this drive unit allows users to conveniently and efficiently control the steel cable, thereby driving the outer and inner housings to complete the lifting and corresponding position adjustment, accurately connecting to different loading ports.

[0014] Furthermore, the inner housing also includes the following auxiliary structures: A limiting slider is mounted on the inner housing; A limiting slide groove is provided on the outer housing, and the limiting slider is slidably installed in the limiting slide groove; A push-pull bracket, which is installed on the inner housing.

[0015] When the inner casing moves within the outer casing to precisely align with different feeding ports, the limiting slider on the inner casing can slide along the limiting groove on the outer casing. This effectively prevents the inner casing from shifting position during sliding, ensuring that the unloading is aligned with the feeding port. Simultaneously, the push-pull bracket on the inner casing facilitates the user's grip and application of force, driving the inner casing to precisely complete the sliding operation and improving the alignment accuracy with different feeding ports. The beneficial effects of this application are: 1. The vertical displacement of the steel cable can drive the outer and inner boxes to rise and fall synchronously. Combined with the lateral position adjustment, it can be adapted to the loading port at different positions and heights to complete the transportation of glass mixture materials. When the material placement component stops at the predetermined loading port, the inner box can be partially slid out from the outer box to facilitate loading and unloading to the corresponding loading port, effectively reducing labor intensity. 2. The inner surface of the side panel is inclined, which allows users to conveniently and effortlessly load and unload glass mixtures into the inner box or unload them into the corresponding feeding port, further reducing labor intensity and adapting to the feeding angle requirements of different feeding ports. 3. The top plate can rotate slightly around the second rotating axis. By driving one side of the top plate with the cylinder, the glass mixture can be accurately poured into the corresponding feeding port. After unloading, the cylinder resets, making the unloading operation to feeding ports at different positions and heights more convenient and efficient, and improving the feeding accuracy. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of this application; Figure 2 This is a schematic diagram of the overall structure of this application; Figure 3 This is a sectional view of the base plate of this application; Figure 4 This application is Figure 1 Enlarged view of part A; The reference numerals in the figure are as follows: 100, support frame; 200, drive device; 210, drive motor; 220, rotating rod frame; 230, transmission rod; 240, drum; 300, steel cable; 400, material feeding assembly; 410, outer casing; 420, moving groove; 430, rotating roller; 440, inner casing; 441, bottom plate; 442, first rotating shaft; 443, side plate; 444, pin; 445, pin hole; 446, mounting cavity; 447, cylinder; 448, top plate; 449, second rotating shaft; 450, insertion hole; 461, limiting slider; 462, limiting slide groove; 463, push-pull frame. Detailed Implementation

[0017] The technical solutions of the embodiments of this application will be clearly described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application are within the scope of protection of this application.

[0018] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and the number of objects is not limited; for example, a first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.

[0019] The embodiments of this application are described in detail below with reference to the accompanying drawings, through specific examples and application scenarios.

[0020] Example 1: like Figure 1 , Figure 2 As shown in the embodiment of this application, the glass raw material mixing and transport device includes a support frame 100 and the following components: Drive device 200, which is mounted on support frame 100; Steel cable 300, which is mounted on drive device 200; Material placement assembly 400, which is mounted on steel cable 300; The material feeding assembly 400 includes an outer housing 410, a moving trough 420, a rotating roller 430, an inner housing 440, and a socket 450. The outer housing 410 is mounted on the steel cable 300, the moving trough 420 is opened in the outer housing 410, several rotating rollers 430 are installed in the moving trough 420, the inner housing 440 is assembled on the outer housing 410, and a socket 450 is opened on both the inner housing 440 and the outer housing 410, for a total of two sockets 450.

[0021] When glass production requires transporting the mixed glass material to different loading ports at different locations and heights, the inner box 440 is first pushed along several rotating rollers 430 within the moving trough 420 until it partially slides out from the outer box 410. At this point, the glass material is loaded into the inner box 440. After loading, the inner box 440 is pushed back into its original position, and then a rod is inserted through the insertion holes 450 on the inner and outer boxes to fix the positions of the inner box 440 and the outer box 410. Subsequently, the drive device 200 is activated, causing the steel cable 300 to move up and down to match the loading port height. Combined with the overall lateral movement of the device to the corresponding position, the steel cable 300 then drives the outer box 410 and the inner box 440 to rise and fall synchronously, completing the material transport. Once the material placement component 400 stops at the designated loading port, the user can again partially slide the inner box 440 out from the outer box 410, facilitating loading and unloading operations at the corresponding loading port and effectively reducing labor intensity.

[0022] Example 2: like Figure 2 , Figure 3 , Figure 4 As shown, the glass raw material mixing transport device provided in this application embodiment, in addition to possessing the above-mentioned technical features, has the following structure for the inner box 440: Base plate 441, which is placed on rotating roller 430; The first rotating shaft 442 is disposed on the base plate 441; Side plate 443, which is mounted on the first rotating shaft 442.

[0023] By adopting the aforementioned inner casing 440 structure, the bottom plate 441 is placed on the rotating roller 430, the first rotating shaft 442 is disposed on the bottom plate 441, and the side plate 443 is mounted on the first rotating shaft 442. When the user needs to load or unload the glass mixture into the corresponding feed port, the first rotating shaft 442 is rotated to flip the side plate 443 until the outer surface of the side plate 443 is parallel to the bottom plate 441. Since the inner surface of the side plate 443 is inclined, the user can use this inclination to conveniently and effortlessly load or unload the glass mixture into the inner casing 440 or unload it into the corresponding feed port, reducing labor intensity and adapting to the feeding angle requirements of different feed ports.

[0024] Example 3: like Figure 4 As shown, the glass raw material mixing transport device provided in this application embodiment, in addition to having the above-mentioned technical features, also includes the following structure in its inner box 440: Pin 444 is mounted on side plate 443; Pin hole 445 is provided on base plate 441.

[0025] By adding a pin 444 and a pin hole 445 to the inner housing 440, the pin 444 is installed on the side plate 443, and the pin hole 445 is correspondingly opened in the bottom plate 441. When the user needs to raise the side plate 443 to limit the glass mixture inside the inner housing 440, the side plate 443 is rotated until its outer surface is perpendicular to the bottom plate 441, and then the pin 444 is inserted into the pin hole 445 to fix the position of the side plate 443. The fixed side plate 443 can reliably limit the glass mixture, preventing it from tipping over during the lifting displacement process when transported to the loading port at different positions and heights.

[0026] Example 4: like Figure 3 , Figure 4 As shown, the glass raw material mixing transport device provided in this application embodiment, in addition to having the above-mentioned technical features, includes the following structure for the base plate 441: Mounting cavity 446 is disposed on base plate 441; Cylinder 447, which is installed in mounting cavity 446; Top plate 448, which is installed at the output end of cylinder 447; The second rotating shaft 449 is mounted on the mounting cavity 446 and is connected to the top plate 448.

[0027] When the user needs to unload material into the different loading ports at different positions and heights corresponding to the inner housing 440, the cylinder 447 in the mounting cavity 446 is driven to extend its output end. After the output end of the cylinder 447 extends, it causes one side of the top plate 448, which is rotatably connected to it, to lift upwards. The top plate 448 can rotate around the axis of the second rotating shaft 449. When one side of the top plate 448 is lifted and rotates slightly around the axis of the second rotating shaft 449, the glass mixture on the top plate 448 can be accurately poured into the corresponding loading port. After unloading is completed, the output end of the cylinder 447 returns to its original position, and the top plate 448 returns to a horizontal state. This structure makes the unloading operation to different loading ports more convenient and efficient for users, and improves the docking accuracy with the loading ports.

[0028] Example 5: like Figure 1 As shown, the glass raw material mixing transport device provided in this application embodiment, in addition to having the above-mentioned technical features, includes the following structure for the drive device 200: A drive motor 210 is mounted on a support frame 100; A rotating rod frame 220 is mounted on a support frame 100; A transmission rod 230 is mounted on the output shaft of a drive motor 210; Two drums 240 are provided. The drums 240 are mounted on a rotating rod, and the steel cable 300 is mounted and wound on the drums 240.

[0029] When the drive device 200 needs to raise the steel cable 300 to fit into a higher loading port, the drive motor 210 is started. Its output shaft rotates, driving the transmission rod 230 to rotate synchronously. The transmission rod 230 then drives the drum 240 to rotate, winding the steel cable 300 around its surface. When the steel cable 300 needs to be lowered to fit into a lower loading port or to adjust its lateral position, the output shaft of the drive motor 210 rotates in the opposite direction, causing the steel cable 300 to be unwound from the drum 240, thus lowering the steel cable 300. Combined with the overall lateral movement adjustment of the device, it can adapt to the needs of loading ports at different positions. This drive device 200 allows users to conveniently and efficiently operate the steel cable 300, thereby driving the outer housing 410 and inner housing 440 to complete the lifting and lowering and corresponding position adjustment, accurately connecting to different loading ports.

[0030] Example 6: like Figure 2 As shown, the glass raw material mixing transport device provided in this application embodiment, in addition to having the above-mentioned technical features, also includes the following auxiliary structures in the inner box 440: Limiting slider 461, the limiting slider 461 is installed on the inner box 440; A limiting slide groove 462 is provided on the outer housing 410, and a limiting slider 461 is slidably installed in the limiting slide groove 462. A push-pull bracket 463 is mounted on the inner housing 440.

[0031] When the inner housing 440 moves within the outer housing 410 to precisely align with different feeding ports, the limiting slider 461 on the inner housing 440 can slide along the limiting groove 462 on the outer housing 410. This effectively prevents the inner housing 440 from shifting position during sliding, ensuring that the unloading material is precisely aligned with the feeding port. At the same time, the push-pull bracket 463 on the inner housing 440 makes it easy for the user to grip and apply force, driving the inner housing 440 to accurately complete the sliding operation, improving the alignment accuracy with different feeding ports, and ensuring accurate feeding of the glass mixture.

[0032] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, it should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functions involved. For example, the described methods may be performed in a different order than described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.

[0033] The embodiments of this application have been described above with reference to the accompanying drawings. However, this application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.

Claims

1. A transport device for mixing glass raw materials, comprising a support frame (100), characterized in that, Also includes: A drive unit (200) is mounted on a support frame (100); A steel cable (300) is mounted on a drive unit (200); A material placement assembly (400) is mounted on a steel cable (300); The material placement assembly (400) includes an outer housing (410), a moving groove (420), a rotating roller (430), an inner housing (440), and a socket (450). The outer housing (410) is fixed on a steel cable (300). The moving groove (420) is opened on the outer housing (410). Several rotating rollers (430) are rotatably installed in the moving groove (420). The inner housing (440) is placed on the rotating rollers (430) of the outer housing (410). There are two sockets (450), and the two sockets (450) are respectively opened on the inner housing (440) and the outer housing (410) and can be connected accordingly.

2. The glass raw material mixing and conveying device according to claim 1, characterized in that, The inner housing (440) includes: A base plate (441) is placed on a rotating roller (430); The first rotating shaft (442) is fixed to the side of the base plate (441); Side plate (443), which is rotatably mounted on base plate (441) via first rotating shaft (442).

3. The glass raw material mixing and transport device according to claim 2, characterized in that, The inner housing (440) also includes: A pin (444) is movably inserted into the side plate (443); A pin hole (445) is provided on the base plate (441), and the pin (444) can be inserted into the pin hole (445).

4. A conveying device for mixing glass raw materials according to claim 3, characterized in that, The base plate (441) includes: The mounting cavity (446) is formed inside the base plate (441); Cylinder (447), the cylinder (447) is fixedly installed in the mounting cavity (446); Top plate (448), said top plate (448) is fixed to the output end of cylinder (447); The second rotating shaft (449) is fixedly mounted on the inner wall of the mounting cavity (446), and the end of the top plate (448) away from the cylinder (447) is rotatably connected to the second rotating shaft (449).

5. A conveying device for mixing glass raw materials according to claim 4, characterized in that, The drive device (200) includes: A drive motor (210) is fixedly mounted on the top of the support frame (100); A rotating rod frame (220) is arranged opposite to the drive motor (210) and fixed to the top of the support frame (100); A transmission rod (230) has one end fixedly connected to the output shaft of a drive motor (210) and the other end rotatably mounted on a rotating rod frame (220). Two drums (240) are provided and symmetrically fixed on the transmission rod (230). One end of the steel cable (300) is fixed to and wound on the drum (240), and the other end is connected to the outer casing (410).

6. A conveying device for mixing glass raw materials according to claim 5, characterized in that, The inner housing (440) also includes: Limiting slider (461), the limiting slider (461) is fixedly mounted on the outer side wall of the inner box (440); The limiting slide groove (462) is opened on the inner side wall of the outer housing (410), and the limiting slider (461) is adapted to slide and be embedded in the limiting slide groove (462); A push-pull bracket (463) is fixedly mounted on the outer side wall of the inner housing (440).