Low-carbon low-temperature fired glass bottle storage device
Patent Information
- Application Number
- CN202522227003.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-22
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-10-22
AI Technical Summary
[0005]针对现有技术的不足,本申请提供了一种低碳低温烧制玻璃瓶储存装置,克服了现有技术的不足,旨在解决现有技术未能有效兼顾低温烧制玻璃瓶在运输和储存过程中的低碳要求、低温烧制玻璃瓶的物理保护需求以及经济性的问题
1.玻璃瓶竖直插入外箱体中,使玻璃瓶底与橡胶垫相接触,玻璃瓶两侧的侧板在弹簧的作用下自动抵触在玻璃瓶两侧,滑动立卡板使立卡板与玻璃瓶壁相接触,然后依次安装剩余的玻璃瓶,通过橡胶垫对玻璃瓶底进行减震保护,通过两组侧板在弹簧的作用下对不同瓶径的玻璃瓶进行夹持,通过滑块和滑槽对立卡板进行滑动调节,对不同瓶径的玻璃瓶进行分隔,同时外箱体为可降解复合材料制成,满足低碳要求,温控层通过吸放热维持外箱体内温度稳定,实现被动温控,减少能耗,立卡板和橡胶垫和侧板的组合,降低玻璃瓶运输破损率。
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Figure CN224797620U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of glass product storage technology, and in particular to a storage device for low-carbon, low-temperature fired glass bottles. Background Technology
[0002] Currently, glass bottle storage technology mainly focuses on storage solutions for traditional high-temperature fired glass bottles. These solutions typically rely on energy-intensive temperature control systems and heavy-duty protective structures. With increasing environmental protection requirements, low-carbon, low-temperature fired glass bottles are gradually becoming an industry trend. However, their physical properties, such as increased brittleness and reduced temperature difference resistance, pose new challenges to storage devices.
[0003] Common glass bottle storage solutions include: 1. Rigid metal frame structure: using steel or aluminum alloy frames with cushioning pads. The advantage is strong load-bearing capacity, but the disadvantages are heavy weight, high cost, and inability to adapt to the elastic deformation requirements of low-temperature fired glass bottles; 2. Foam-filled box: fixing glass bottles with customized foam lining. The advantage is good shock absorption, but the disadvantages are that it is not environmentally friendly and difficult to reuse; 3. Air column bag packaging: using inflatable air bags to wrap glass bottles. The advantage is lightweight, but the disadvantages are poor pressure resistance and the need for continuous inflation maintenance.
[0004] Existing technologies fail to effectively balance the low-carbon requirements of low-temperature fired glass bottles during transportation and storage, the need for physical protection of low-temperature fired glass bottles, and economic efficiency. Therefore, this application provides a low-carbon storage device for low-temperature fired glass bottles. Utility Model Content
[0005] In view of the shortcomings of the prior art, this application provides a low-carbon, low-temperature fired glass bottle storage device, which overcomes the shortcomings of the prior art and aims to solve the problem that the prior art fails to effectively take into account the low-carbon requirements, physical protection requirements and economic efficiency of low-temperature fired glass bottles during transportation and storage.
[0006] To achieve the above objectives, this application provides the following technical solution: a low-carbon, low-temperature fired glass bottle storage device, comprising an outer casing made of biodegradable composite material, a temperature control layer embedded in the wall of the outer casing, two sets of locking blocks fixedly installed at the bottom of the outer casing, rubber pads being secured to the bottom of the outer casing by the two sets of locking blocks, four sets of springs installed on the inner wall of the outer casing, a side plate installed on the side of the two sets of springs on the same side away from the outer casing, two sets of sliding grooves provided on the top of the outer casing, several sets of sliders slidably connected to each of the two sets of sliding grooves, a standing plate fixedly installed between the two sets of opposing sliders, and the standing plate slidably connected to the interior of the outer casing.
[0007] By adopting the above technical solution, the glass bottle is vertically inserted into the outer box, so that the bottom of the glass bottle contacts the rubber pad. The side plates on both sides of the glass bottle automatically abut against the sides of the glass bottle under the action of springs. The sliding clamp plate contacts the glass bottle wall, and then the remaining glass bottles are installed in sequence. The bottom of the glass bottle is protected by the rubber pad for shock absorption. The two sets of side plates clamp glass bottles of different diameters under the action of springs. The clamp plate is slidably adjusted by the slider and the slide groove to separate glass bottles of different diameters. At the same time, the outer box is made of biodegradable composite material, which meets the low carbon requirements. The temperature control layer maintains the temperature stability inside the outer box by absorbing and releasing heat, realizing passive temperature control and reducing energy consumption. The combination of the clamp plate, rubber pad and side plates reduces the breakage rate of glass bottles during transportation.
[0008] As a preferred technical solution of this application, the top of the outer casing is hinged with a lid, and a pressure balancing valve is installed inside the lid.
[0009] By adopting the above technical solution, the outer casing is sealed by the box cover, and the pressure difference between the inside and outside is automatically adjusted by the air pressure balance valve.
[0010] As a preferred technical solution of this application, the outer casing is made of polylactic acid and bamboo fiber composite, and the temperature control layer is a phase change material interlayer.
[0011] By adopting the above technical solution, the outer casing is made of polylactic acid and bamboo fiber composite, which is a biodegradable casing material and achieves 100% environmental recycling. The temperature control layer is a phase change material interlayer. The phase change material is octadecane with a melting point of 20-25℃, which realizes passive temperature control, reduces energy consumption, and further meets the low carbon requirements.
[0012] As a preferred technical solution of this application, the upright plate is T-shaped, and the two side protrusions of the upright plate are located above the two sets of side plates.
[0013] By adopting the above technical solution, and using a T-shaped upright plate, the glass bottles can be separated without affecting the contact between the side plate and the glass bottles, thus improving the practicality during use.
[0014] As a preferred technical solution of this application, anti-slip layers are fixedly installed on both sides of the card plate.
[0015] By adopting the above technical solution, the friction between the stand plate and the glass bottle is increased through the anti-slip layer, thereby further improving the stability of the glass bottle.
[0016] As a preferred technical solution of this application, four sets of reinforcing ribs are fixedly installed at the bottom of the outer casing, and the four sets of reinforcing ribs are located at the four corners of the outer casing.
[0017] By adopting the above technical solution, the four sets of reinforcing ribs help to enhance the strength and stability of the four corners of the outer casing.
[0018] As a preferred technical solution of this application, lifting slots are provided on both sides of the outer casing, and the two sets of lifting slots are far apart.
[0019] By adopting the above technical solution, two sets of lifting slots provide hand support points for workers to move the outer casing, thus improving its practicality during use.
[0020] As a preferred technical solution of this application, an inner sealing layer is fixedly installed on the inner side of the box cover, and the inner sealing layer abuts against the inner wall of the outer box.
[0021] By adopting the above technical solution, the sealing performance of the box lid after it covers the outer box is improved through the inner sealing layer, thereby enhancing the protection of the glass bottle.
[0022] The beneficial effects of this application are: 1. The glass bottle is vertically inserted into the outer casing, with the bottom of the bottle in contact with the rubber pad. The side plates on both sides of the bottle automatically abut against the sides of the bottle under the action of springs. The sliding clamp plate contacts the bottle wall, and then the remaining glass bottles are installed in sequence. The rubber pad provides shock absorption and protection for the bottom of the bottle. Two sets of side plates clamp glass bottles of different diameters under the action of springs. The clamp plate is adjusted by sliding blocks and grooves to separate glass bottles of different diameters. The outer casing is made of biodegradable composite material, meeting low-carbon requirements. The temperature control layer maintains a stable temperature inside the outer casing by absorbing and releasing heat, achieving passive temperature control and reducing energy consumption. The combination of the clamp plate, rubber pad, and side plates reduces the breakage rate of glass bottles during transportation.
[0023] 2. The outer casing is sealed by the lid, and the pressure difference between the inside and outside is automatically adjusted by the air pressure balance valve. Attached Figure Description
[0024] Figure 1 This is a top view of the structure of this application; Figure 2 This is a schematic cross-sectional view of the outer casing; Figure 3 for Figure 2 Enlarged structural diagram at point A in the middle; Figure 4 This is a side view structural diagram of this application.
[0025] In the diagram: 1. Outer casing; 2. Temperature control layer; 3. Clamping block; 4. Rubber pad; 5. Spring; 6. Side plate; 7. Slide groove; 8. Slider; 9. Stand plate; 10. Box cover; 11. Air pressure balance valve; 12. Anti-slip layer; 13. Reinforcing rib; 14. Lifting groove; 15. Inner sealing layer. Detailed Implementation
[0026] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0027] Reference Figure 1-4 A low-carbon, low-temperature fired glass bottle storage device includes an outer casing 1 made of biodegradable composite material. A temperature control layer 2 is embedded in the wall of the outer casing 1. Two sets of locking blocks 3 are fixedly installed at the bottom of the outer casing 1. Rubber pads 4 are locked to the bottom of the outer casing 1 by the two sets of locking blocks 3. Four sets of springs 5 are installed on the inner wall of the outer casing 1. A side plate 6 is installed on the side of the two sets of springs 5 located on the same side away from the outer casing 1. Two sets of sliding grooves 7 are opened on the top of the outer casing 1. Several sets of sliders 8 are slidably connected to the two sets of sliding grooves 7. A standing plate 9 is fixedly installed between the two sets of opposing sliders 8. The standing plate 9 is slidably connected to the inside of the outer casing 1. The outer casing 1 is made of polylactic acid and bamboo fiber composite, and the temperature control layer 2 is a phase change material interlayer.
[0028] The glass bottle is vertically inserted into the outer casing 1, so that the bottom of the glass bottle contacts the rubber pad 4. The side plates 6 on both sides of the glass bottle automatically abut against the sides of the glass bottle under the action of the spring 5. The sliding clamping plate 9 contacts the glass bottle wall. Then, the remaining glass bottles are installed in sequence. The rubber pad 4 provides shock absorption protection for the bottom of the glass bottle. The two sets of side plates 6 clamp glass bottles of different diameters under the action of the spring 5. The sliding adjustment of the clamping plate 9 by the slider 8 and the slide groove 7 separates the glass bottles of different diameters. At the same time, the outer casing... The outer box 1 is made of biodegradable composite material, meeting low-carbon requirements. The temperature control layer 2 maintains a stable internal temperature of the outer box 1 by absorbing and releasing heat, achieving passive temperature control and reducing energy consumption. The combination of the upright plate 9, rubber pad 4, and side plate 6 reduces the breakage rate of glass bottles during transportation. The outer box 1 is made of polylactic acid and bamboo fiber composite, which is a biodegradable box material, achieving 100% environmental recycling. The temperature control layer 2 is a phase change material interlayer. The phase change material selected is octadecane, with a melting point of 20-25℃, achieving passive temperature control, reducing energy consumption, and further meeting low-carbon requirements.
[0029] Reference Figure 1-3 The top of the outer casing 1 is hinged with a cover 10, and an air pressure balance valve 11 is installed inside the cover 10; the upright plate 9 is T-shaped, and the two sides of the upright plate 9 protrude above the two sets of side plates 6. The outer casing 1 is sealed by the lid 10, and the pressure difference between the inside and outside is automatically adjusted by the air pressure balance valve 11. The T-shaped upright plate 9 not only separates the glass bottles but also does not affect the contact between the side plate 6 and the glass bottles, thus improving the practicality during use.
[0030] Reference Figure 2-4 Both sides of the upright plate 9 are fixedly equipped with anti-slip layers 12; both sides of the outer box 1 are provided with lifting grooves 14, and the two sets of lifting grooves 14 are far apart; the anti-slip layers 12 increase the friction between the upright plate 9 and the glass bottle, further improving the stability of the glass bottle; the two sets of lifting grooves 14 provide hand support points for workers to move the outer box 1, improving its practicality during use.
[0031] Reference Figure 1-3 Four sets of reinforcing ribs 13 are fixedly installed at the bottom of the outer box 1, and the four sets of reinforcing ribs 13 are located at the four corners of the outer box 1; an inner sealing layer 15 is fixedly installed on the inner side of the lid 10, and the inner sealing layer 15 abuts against the inner wall of the outer box 1; the four sets of reinforcing ribs 13 help to enhance the strength and stability of the four corners of the outer box 1; the inner sealing layer 15 improves the sealing performance of the lid 10 after it covers the outer box 1, thus improving the protection effect on the glass bottle.
[0032] Working principle: The glass bottle is vertically inserted into the outer box 1, so that the bottom of the glass bottle contacts the rubber pad 4. The side plates 6 on both sides of the glass bottle automatically abut against the sides of the glass bottle under the action of the spring 5. The sliding clamping plate 9 contacts the glass bottle wall. Then, the remaining glass bottles are installed in sequence. The bottom of the glass bottle is protected by the rubber pad 4. The two sets of side plates 6 clamp glass bottles of different diameters under the action of the spring 5. The clamping plate 9 is slidably adjusted by the slider 8 and the slide groove 7 to separate glass bottles of different diameters. At the same time, the outer box 1 is made of biodegradable composite material to meet the low carbon requirements. The temperature control layer 2 maintains the temperature stability inside the outer box 1 by absorbing and releasing heat to achieve passive temperature control and reduce energy consumption. The combination of the clamping plate 9, the rubber pad 4 and the side plates 6 reduces the breakage rate of glass bottles during transportation. The box cover 10 seals the outer box 1. The pressure difference between the inside and outside is automatically adjusted by the air pressure balance valve 11. The outer casing 1 is made of polylactic acid and bamboo fiber composite, which is a biodegradable casing material and achieves 100% environmental recycling. The temperature control layer 2 is a phase change material interlayer. The phase change material is octadecane, which has a melting point of 20-25℃, to achieve passive temperature control, reduce energy consumption, and further meet the low carbon requirements. The upright plate 9 is T-shaped, which can not only separate the glass bottles, but also not affect the contact between the side plate 6 and the glass bottles, thus improving the practicality during use. Meanwhile, the anti-slip layer 12 increases the friction between the upright plate 9 and the glass bottle, further improving the stability of the glass bottle; the four sets of reinforcing ribs 13 help to enhance the strength and stability of the four corners of the outer casing 1. In addition, the two sets of lifting slots 14 provide hand support points for workers to move the outer box 1, improving its practicality; the inner sealing layer 15 improves the sealing performance of the lid 10 after it covers the outer box 1, thus enhancing the protection of the glass bottle.
[0033] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A low-carbon, low-temperature fired glass bottle storage device, comprising an outer casing (1), characterized in that, The outer casing (1) is made of biodegradable composite material. A temperature control layer (2) is embedded in the wall of the outer casing (1). Two sets of locking blocks (3) are fixedly installed at the bottom of the outer casing (1). A rubber pad (4) is locked to the bottom of the outer casing (1) by the two sets of locking blocks (3). Four sets of springs (5) are installed on the inner wall of the outer casing (1). A side plate (6) is installed on the side of the two sets of springs (5) located on the same side away from the outer casing (1). Two sets of sliding grooves (7) are opened on the top of the outer casing (1). Several sets of sliders (8) are slidably connected at both sets of sliding grooves (7). A standing plate (9) is fixedly installed between the two sets of opposing sliders (8). The standing plate (9) is slidably connected to the inside of the outer casing (1).
2. The low-carbon, low-temperature fired glass bottle storage device according to claim 1, characterized in that, The top of the outer casing (1) is hinged with a cover (10), and a pressure balancing valve (11) is installed inside the cover (10).
3. The low-carbon, low-temperature fired glass bottle storage device according to claim 1, characterized in that, The outer casing (1) is made of polylactic acid and bamboo fiber composite, and the temperature control layer (2) is a phase change material interlayer.
4. The low-carbon, low-temperature fired glass bottle storage device according to claim 1, characterized in that, The upright plate (9) is T-shaped, and the two protrusions on both sides of the upright plate (9) are located above the two sets of side plates (6).
5. A low-carbon, low-temperature fired glass bottle storage device according to claim 1, characterized in that, Both sides of the upright plate (9) are fixedly installed with anti-slip layers (12).
6. The low-carbon, low-temperature fired glass bottle storage device according to claim 1, characterized in that, Four sets of reinforcing ribs (13) are fixedly installed at the bottom of the outer casing (1), and the four sets of reinforcing ribs (13) are located at the four corners of the outer casing (1).
7. A low-carbon, low-temperature fired glass bottle storage device according to claim 1, characterized in that, The outer casing (1) has lifting slots (14) on both sides, and the two sets of lifting slots (14) are far apart.
8. A low-carbon, low-temperature fired glass bottle storage device according to claim 2, characterized in that, An inner sealing layer (15) is fixedly installed on the inner side of the box cover (10), and the inner sealing layer (15) abuts against the inner wall of the outer box body (1).