Intelligent lightweight glass bottle
The intelligent lightweight glass bottle, with its dual-structure design and built-in sensor module, solves the problems of buffer protection and real-time monitoring of pressure changes inside the bottle, enabling real-time monitoring of the bottle's internal state and improving safety while reducing production costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YANTAI NBC GLASS PACKAGING CO LTD
- Filing Date
- 2025-06-03
- Publication Date
- 2026-04-17
AI Technical Summary
Existing smart lightweight glass bottles are inadequate in terms of cushioning protection and real-time monitoring of internal pressure changes, and their production costs are relatively high.
It adopts a dual-structure design, which includes a combination of a glass bottle and an inner bottle. The intelligent coating and mesh support structure on the front of the bottle are combined with a soft silicone cushioning layer. It has built-in sensor modules and communication components to achieve real-time monitoring and data transmission, and ensures airtightness through a leak-proof mechanism.
It effectively disperses external forces, reduces the risk of bottle breakage, enables real-time monitoring of the bottle's internal condition, improves ease of use and safety, and reduces production costs.
Smart Images

Figure CN224131567U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass product manufacturing technology, and in particular to an intelligent lightweight glass bottle. Background Technology
[0002] Smart lightweight glass bottles are a new type of packaging container that improves functionality while reducing bottle weight through material optimization, structural design, and the integration of smart technologies. The bottle is lighter than traditional glass bottles, making it easier for consumers to hold with one hand and reducing transportation energy consumption. The bottle integrates an NFC tag or QR code, which consumers can scan to view information such as raw material traceability, shelf life, and drinking recommendations. Brands can also use the scan data to track user preferences and optimize product strategies.
[0003] A search revealed a Chinese publication (CN205256887U) disclosing a corrosion-resistant glass bottle. The bottle body has a first corrosion-resistant layer on the outer side of the bottle opening, and a second corrosion-resistant layer on the inner side of the bottle cap. Both the first and second corrosion-resistant layers are made of nano-silver. An acid-alkali barrier layer is present between the first corrosion-resistant layer and the bottle body, and between the second corrosion-resistant layer and the bottle cap. This effectively improves the corrosion resistance between the bottle body and the bottle cap, extends the lifespan of the glass bottle, and reduces usage costs. Furthermore, an impact-resistant layer filled with carbon fiber is located between the bottle body and the alkali-resistant layer. This impact-resistant layer enhances the bottle's drop resistance, reducing the probability of breakage when the user accidentally drops the bottle, thus improving safety during use.
[0004] The patent description mentions that "when the user accidentally drops the glass bottle, it can reduce the probability of the glass bottle breaking and improve the safety of use." The integration of the mesh support structure and the buffer layer may require complex mold processes or multi-layer material composite technology, which increases the production process and equipment requirements, leading to higher manufacturing costs. The miniaturized design of the sensor module and communication module requires precision assembly, which may affect the yield due to insufficient process precision, further increasing costs. In response to the above problems, a smart lightweight glass bottle is proposed. Utility Model Content
[0005] This invention proposes an intelligent lightweight glass bottle, which aims to improve the problems of some existing intelligent lightweight glass bottles that cannot provide cushioning protection for the bottle body, cannot monitor changes in internal pressure in real time through sensor modules, and cannot transmit data to external devices through communication modules.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A smart lightweight glass bottle includes a glass bottle body, an inner liner bottle fixedly connected inside the glass bottle body, a reinforcing mechanism fixedly connected to the front side of the outer side of the glass bottle body, and a leak-proof mechanism fixedly connected to the inner top side of the inner liner bottle.
[0008] The reinforcing mechanism includes a smart coating, which is externally fixedly connected to the front side of the glass bottle body. A mesh support structure is externally fixedly connected to the inner liner bottle, and a silicone buffer layer is externally fixedly connected to the mesh support structure. A communication component is internally fixedly connected to the glass bottle body.
[0009] The above solution creates a dual structure with the glass bottle and the inner liner. The intelligent coating on the front of the bottle has both protective and sensing functions, allowing real-time monitoring of external impacts or temperature changes. The mesh support structure outside the inner liner is made of high-strength materials and is paired with a soft silicone cushioning layer to effectively disperse external forces and reduce the risk of bottle breakage. The communication components inside the bottle enable data transmission, allowing users to monitor the bottle's internal status at any time, thus balancing safety and intelligent features.
[0010] As a further description of the above technical solution:
[0011] The communication component includes a sensor module, which is externally and fixedly connected to the inside of the glass bottle. The bottom of the glass bottle is also fixedly connected to the communication module.
[0012] The above solution utilizes a communication component as the core for data interaction. The sensor module is tightly embedded in the inner wall of the glass bottle, enabling precise sensing of parameters such as temperature, pressure, and liquid level of the liquid inside the bottle, and real-time data collection. The communication module at the bottom of the bottle integrates wireless transmission capabilities, allowing for rapid transmission of sensor data to user terminals or cloud platforms. The two work together to allow users to remotely monitor the status inside the bottle, providing real-time data support for intelligent storage, transportation, and other scenarios, thereby improving ease of use and safety.
[0013] As a further description of the above technical solution:
[0014] The leak-proof mechanism includes a cross-shaped placement plate, which is externally fixedly connected to the top of the inner liner bottle. A mounting housing is fixedly connected to the bottom of the cross-shaped placement plate. A limit plate is slidably connected inside the mounting housing. A sliding rod is fixedly connected to the bottom of the limit plate. A return spring is sleeved on the outside of the sliding rod.
[0015] The above solution involves a cross-shaped placement plate securely mounted on the top of the inner bottle, providing a base for the leak-proof mechanism. Inside the mounting housing at its bottom, a limiting plate and a sliding rod form a linkage structure. A return spring is sleeved on the outside of the sliding rod, giving the mechanism elastic reset capability. When the bottle cap is tightened, external force pushes the sliding rod upward, compressing the return spring. Simultaneously, the limiting plate rises to lock the bottle cap. When the bottle cap is loose, the spring releases potential energy, pushing the sliding rod downward. The limiting plate then presses against the inside of the bottle cap, ensuring a seal at the bottle opening and effectively preventing liquid leakage, thus improving the sealing performance and reliability of the glass bottle.
[0016] As a further description of the above technical solution:
[0017] A sealing plate is fixedly connected to the outer bottom end of the sliding rod, and a sealing ring is fixedly connected to the inside of the inner liner bottle. The outer side of the sealing plate is in contact with the outer side of the sealing ring.
[0018] The above solution achieves a double sealing structure: the sealing plate at the bottom of the sliding rod and the sealing ring inside the inner bottle form a double sealing structure. The sealing plate moves up and down with the sliding rod, and its surface fits tightly against the sealing ring, forming a physical sealing barrier. When the bottle cap is subjected to force, the sliding rod causes the sealing plate to move upward and compress the return spring. When the bottle cap is loose, the spring pushes the sealing plate downward. Through the tight contact between the sealing plate and the sealing ring, the sealing performance of the bottle mouth is further enhanced, effectively preventing liquid leakage. At the same time, the limiting plate locks the bottle cap, ensuring the leak-proof performance of the glass bottle during transportation and storage in all aspects.
[0019] As a further description of the above technical solution:
[0020] A bottle cap is fixedly connected to the top of the glass bottle, a mounting bracket is fixedly connected to the bottom of the bottle cap, and a pull ring is fixedly connected to the outside of the mounting bracket.
[0021] The above solution ensures a tight seal between the bottle cap and the glass bottle body via threads or clips, while the mounting bracket at the bottom of the cap provides stable support for the pull ring. The pull ring is made of high-strength material with an anti-slip surface, making it easy for users to open or close with one hand. This design satisfies the need for portability, enhances the connection between the pull ring and the bottle cap through the mounting bracket to prevent breakage when pulled forcefully, and maintains the lightweight characteristics of the bottle body, thus balancing practicality and user experience.
[0022] As a further description of the above technical solution:
[0023] An elastic rope is fixedly connected to the outer bottom end of the pull ring, and the outer side of the elastic rope passes through the outer side of the cross placement plate and is fixedly connected to the outer top end of the limiting plate.
[0024] The above solution uses a linkage structure between the pull ring and the limiting plate via an elastic cord. The elastic cord at the bottom of the pull ring passes through the cross-shaped placement plate and is fixedly connected to the top of the limiting plate. When the pull ring is pulled upwards, the elastic cord simultaneously pulls the limiting plate upwards, compressing the return spring and causing the sliding rod and sealing plate to rise, releasing the lock on the bottle cap. After the pull ring is released, the return spring pushes the limiting plate downwards, and the elastic cord tightens accordingly, ensuring a tight fit between the sealing plate and the sealing ring, achieving automatic sealing of the bottle opening. This design cleverly combines the opening and closing operation with the sealing mechanism, improving ease of use while ensuring sealing reliability through the flexible transmission of the elastic cord.
[0025] As a further description of the above technical solution:
[0026] The outer side of the silicone buffer layer is in contact with the outer side of the inner bottle, and the outer side of the communication module is fixedly connected to the bottom of the outer side of the inner bottle.
[0027] The above solution achieves a flexible protective barrier through close contact between the silicone buffer layer and the inner bottle. The high elasticity of the silicone material effectively cushions external impacts, reducing the risk of breakage of the inner bottle. Simultaneously, its excellent thermal insulation helps maintain a stable internal temperature. The communication module is fixed to the bottom of the inner bottle, avoiding direct contact with the liquid while leveraging the inner bottle material to enhance the signal. This layout makes the communication components concealed and stable, ensuring reliable transmission of sensor data to external devices. This achieves intelligent monitoring while maintaining the overall aesthetics and lightweight design of the bottle.
[0028] As a further description of the above technical solution:
[0029] One end of the reset spring is fixedly connected to the bottom outer end of the mounting housing, and the other end of the reset spring is fixedly connected to the top outer end of the sealing plate.
[0030] The above solution enhances sealing reliability through the connection design of the return spring. One end of the spring is fixed to the bottom of the mounting housing, and the other end is connected to the top of the sealing plate, forming an elastic support structure. When the lifting ring moves the sealing plate upward, the spring is compressed and stores force. After the external force is removed, the spring releases its potential energy to push the sealing plate downward, making it fit tightly with the sealing ring, ensuring that the bottle mouth remains sealed for a long time. This design not only enhances the sealing pressure through mechanical elastic force, but also automatically compensates for gaps when the bottle cap shakes slightly, effectively coping with scenarios such as transportation bumps, and comprehensively improving the anti-leakage performance.
[0031] This utility model has the following beneficial effects:
[0032] 1. In this utility model, when the bottle is impacted by an external force, the mesh support structure first disperses the impact force, the buffer layer absorbs the remaining energy, the built-in sensor module monitors the pressure change inside the bottle in real time, and after preprocessing, the data is transmitted to external devices through the communication module. It can be used in scenarios such as early warning of hazardous chemical transportation and impact tracing of outdoor equipment.
[0033] 2. In this utility model, the sealing plate can then compress the return spring, which in turn causes the return spring to deform, allowing the liquid inside the inner bottle to pour out. When preventing leakage of the glass bottle, by tightening the bottle cap to the glass bottle, the return spring can then rebound, causing the return spring to drive the sealing plate to fit against the sealing ring, thereby achieving leakage prevention of the glass bottle. Attached Figure Description
[0034] Figure 1 This is a three-dimensional schematic diagram of an intelligent lightweight glass bottle proposed in this utility model;
[0035] Figure 2 This is a schematic diagram of the mesh support structure for an intelligent lightweight glass bottle proposed in this utility model.
[0036] Figure 3 This is a schematic diagram of the communication module for an intelligent lightweight glass bottle proposed in this utility model;
[0037] Figure 4 This is a schematic diagram of the intelligent coating structure of an intelligent lightweight glass bottle proposed in this utility model;
[0038] Figure 5 for Figure 4 Enlarged view of point A in the middle.
[0039] Legend:
[0040] 1. Glass bottle body; 2. Inner liner bottle; 3. Reinforcing mechanism; 31. Intelligent coating; 32. Mesh support structure; 33. Silicone buffer layer; 34. Communication components; 3401. Sensor module; 3402. Communication module; 4. Leakage prevention mechanism; 41. Cross placement plate; 42. Mounting housing; 43. Limiting plate; 44. Sliding rod; 45. Return spring; 46. Sealing plate; 47. Sealing ring; 48. Bottle cap; 49. Mounting bracket; 410. Pull ring; 411. Elastic rope. Detailed Implementation
[0041] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0042] Reference Figures 1 to 3 This utility model provides an embodiment of a smart lightweight glass bottle, comprising a glass bottle body 1, formed by precision molding, with a diamond-shaped grid pattern on the exterior to improve hand grip. An inner liner bottle 2 is fixedly connected inside the glass bottle body 1. The inner wall of the inner liner bottle 2 is electrolytically polished, and the outer wall of the inner liner bottle 2 is coated with a titanium dioxide photocatalytic coating, which decomposes organic pollutants under ultraviolet light, providing a self-cleaning effect. A reinforcing mechanism 3 is fixedly connected to the front exterior of the glass bottle body 1, and a leak-proof mechanism 4 is fixedly connected to the inner top of the inner liner bottle 2. The leak-proof mechanism 4 includes a cross-shaped placement plate 41, with four branches of the cross-shaped placement plate 41 embedded in grooves on the inner wall of the inner liner bottle 2, the width of which is consistent with the thickness of the cross-shaped placement plate 41, ensuring... Securely installed, the cross-shaped placement plate 41 has a through hole in the center, providing a smooth movement channel for the elastic rope 411. The outside of the cross-shaped placement plate 41 is fixedly connected to the top of the inner bottle 2. The bottom of the outside of the cross-shaped placement plate 41 is fixedly connected to the mounting housing 42. The inside of the mounting housing 42 is a cylindrical cavity, providing precise sliding guidance for the limiting plate 43. The bottom of the mounting housing 42 has a through hole. The limiting plate 43 is slidably connected inside the mounting housing 42. The top center of the limiting plate 43 has a threaded hole for connecting the elastic rope 411. The bottom of the limiting plate 43 is fixedly connected to a sliding rod 44. The surface of the sliding rod 44 is polished. The top of the sliding rod 44 is pressed into the blind hole of the limiting plate 43 by interference fit, and the bottom is connected to the sealing plate 46 by threads.
[0043] Specifically, the glass bottle body 1 is precision molded, and the diamond-patterned grid pattern on the bottle body enhances the grip friction. The inner liner 2 has an electrolytically polished inner wall and a titanium dioxide photocatalytic coating on the outer wall, achieving self-cleaning with ultraviolet light. In the leak-proof mechanism 4, the cross-shaped placement plate 41 is embedded in the groove of the inner wall of the inner liner 2 for fixation, and the central through hole allows the elastic cord 411 to pass smoothly through. The mounting housing 42 below it provides a sliding guide for the limiting plate 43. The top of the limiting plate 43 is threaded to the elastic cord 411, and the polished sliding rod 44 fixed at the bottom is connected to the limiting plate 43 through an interference fit, and then fixed to the sealing plate 46 through threads to ensure that the liquid inside the bottle is sealed and leak-proof. All components work together to ensure the practicality and functionality of the glass bottle.
[0044] To meet the opening and closing requirements of the sealing plate 46, a return spring 45 is sleeved on the outside of the sliding rod 44. The return spring 45 is sleeved on the outside of the sliding rod 44, with one end in contact with the bottom surface of the limiting plate 43 and the other end in contact with the inner stepped surface of the mounting housing 42, providing stable sealing pressure for the sealing plate 46. The sealing plate 46 is fixedly connected to the bottom of the sliding rod 44. The bottom surface of the sealing plate 46 is designed with an annular sealing protrusion, which can form a line seal with the sealing ring 47. The top center of the sealing plate 46 is threaded. A blind hole is used to connect with the sliding rod 44. A sealing ring 47 is fixedly connected inside the inner bottle 2, which can accurately guide the sealing protrusion of the sealing plate 46 to ensure reliable sealing. The outer circumferential surface of the sealing ring 47 is machined with threads to match the bottom threaded hole of the mounting housing 42. Anaerobic sealant is applied at the connection to prevent liquid leakage. The outer side of the sealing plate 46 fits against the outer side of the sealing ring 47. A bottle cap 48 is fixedly connected to the top of the glass bottle 1. A through hole is provided at the center of the top of the bottle cap 48 for installing the pull ring 410.
[0045] Specifically, the sliding rod 44 is fitted with a return spring 45, one end of which rests against the bottom surface of the limiting plate 43, and the other end rests against the stepped surface of the mounting housing 42, providing stable sealing pressure for the sealing plate 46. The bottom surface of the sealing plate 46 at the bottom end of the sliding rod 44 has an annular sealing protrusion, forming a line seal with the sealing ring 47 inside the inner bottle 2. The external thread of the sealing ring 47 mates with the threaded hole at the bottom of the mounting housing 42, and is coated with anaerobic adhesive to prevent leakage. When the bottle cap 48 is opened, pulling the pull ring 410 causes the elastic rope 411 to lift the limiting plate 43, compressing the return spring 45 and causing the sealing plate 46 to disengage from the sealing ring 47. When closed, releasing the pull ring 410 releases the potential energy of the return spring 45, pushing the limiting plate 43 and the sealing plate 46 downwards, and the sealing protrusion embeds into the sealing ring 47, achieving a reliable seal. This structure, through spring pressure and line seal design, ensures no leakage of liquid inside the bottle while also ensuring ease of opening and closing.
[0046] The bottle cap 48 has a silicone sealing gasket embedded inside, which can further enhance the sealing of the bottle mouth. The bottom of the bottle cap 48 is fixedly connected to the mounting bracket 49, and the outside of the mounting bracket 49 is fixedly connected to the pull ring 410. The surface of the pull ring 410 is electrolytically polished, and it has a smooth and comfortable feel. The opening angle range of the pull ring 410 is such that when the opening angle is reached, the elastic rope 411 can generate enough pulling force to fully open the sealing plate 46. The bottom of the pull ring 410 is fixedly connected to the elastic rope 411, and the other end of the elastic rope 411 passes through the central through hole of the cross placement plate 41 and is fixedly connected to the top of the limiting plate 43 through the metal buckle. When the pull ring 410 is opened, it can overcome the elastic force of the return spring 45 and make the sealing plate 46 leave the sealing ring 47, thereby opening the bottle mouth. The outside of the elastic rope 411 passes through the outside of the cross placement plate 41 and is fixedly connected to the top of the limiting plate 43.
[0047] Specifically, a silicone sealing gasket is embedded inside the bottle cap 48 to enhance the sealing of the bottle mouth. The bottom mounting bracket 49 is connected to a pull ring 410, whose surface is electrolytically polished for a comfortable feel. The pull ring 410 has a specific opening angle. When opened, it can pull the limiting plate 43 through the central through hole of the cross placement plate 41 via the elastic cord 411 at the bottom to overcome the elastic force of the return spring 45, causing the sealing plate 46 to separate from the sealing ring 47, thus opening the bottle mouth. When closed, the pull ring 410 is released, and the return spring 45 pushes the limiting plate 43 and the sealing plate 46 down, so that the sealing protrusion fits against the sealing ring 47 to complete the seal. This process ensures that the glass bottle is well sealed and easy to open through the coordinated work of various components.
[0048] Reference Figures 2 to 4 The reinforcing mechanism 3 includes a smart coating 31, which is uniformly applied to the outer front side of the glass bottle 1 using a plasma spraying process. The coating consists of a silica matrix and dispersed zirconium oxide nanoparticles. This structure gives the coating pencil hardness, effectively resisting scratches and impacts. The smart coating 31 is externally fixed to the outer front side of the glass bottle 1. A mesh support structure 32 is externally fixed to the inner bottle 2. This mesh structure can evenly distribute external forces. When the bottle is impacted, the high modulus and low coefficient of thermal expansion of the aramid fiber ensure that the support structure and the inner bottle 2 maintain a good fit during temperature changes, preventing peeling due to thermal expansion and contraction. A silicone buffer layer 33 is fixedly connected to the outside of structure 32. When the bottle is impacted, the silicone buffer layer 33 can absorb energy and effectively protect the inner bottle 2 and the glass bottle 1. In addition, the silicone material has excellent aging resistance. A communication component 34 is fixedly connected inside the glass bottle 1. The communication component 34 includes a sensor module 3401. The pressure sensor adopts MEMS technology and the liquid level sensor adopts the capacitive principle. The sensor module 3401 is packaged through a PCB circuit board. The surface of the circuit board is coated with a three-proof paint, which can prevent moisture, mildew and salt spray. The sensor module 3401 is fixedly connected to the inside of the glass bottle 1. A communication module 3402 is fixedly connected to the bottom of the glass bottle 1.
[0049] Specifically, the front of the glass bottle 1 is coated with a smart coating 31 using a plasma spraying process. The combination of a silica matrix and zirconium oxide nanoparticles enhances its resistance to scratches and impacts. The mesh support structure 32 outside the inner bottle 2 is made of aramid fiber, which can evenly distribute external forces and, due to the properties of aramid, maintains contact with the inner bottle 2 during temperature changes. The external silicone buffer layer 33 further absorbs impact energy, protecting the bottle. In the internal communication component 34, the sensor module 3401 uses a MEMS pressure sensor and a capacitive liquid level sensor, packaged on a PCB circuit board and coated with conformal coating, to monitor the bottle's internal status. The communication module 3402 at the bottom is responsible for data transmission. This multi-structure synergy enhances the bottle's performance and intelligence level.
[0050] Reference Figures 3 to 5 The outer surface of the silicone buffer layer 33 contacts the outer surface of the inner liner bottle 2. The edges of the silicone buffer layer 33 are tapered to effectively prevent external liquids from seeping into the interlayer. The communication module 3402 is externally fixedly connected to the bottom of the inner liner bottle 2. The connection is sealed with a silicone sealing ring to ensure waterproof performance. The top of the communication module 3402 is designed with a thermally conductive silicone pad to conduct the heat generated by the module to the inner liner bottle 2. One end of the return spring 45 is fixedly connected to the bottom of the mounting housing 42, and the other end of the return spring 45 is fixedly connected to the top of the sealing plate 46. The spring and the groove are interference-fitted to ensure that the spring will not fall off during reciprocating motion.
[0051] Specifically, the silicone buffer layer 33 fits tightly against the inner bottle 2, and its gradually thinning edge design prevents external liquids from seeping into the interlayer. It absorbs impact while improving sealing. The communication module 3402 is fixed to the bottom of the inner bottle 2, and the connection is sealed with a silicone sealing ring for waterproofing. The top thermally conductive silicone pad conducts the heat of the module to the inner bottle 2 to prevent overheating. One end of the return spring 45 is interference-fitted with the bottom of the mounting housing 42, and the other end is connected to the top of the sealing plate 46 to ensure that the spring is stable and does not fall off during reciprocating motion, providing continuous return force for the sealing plate 46. Through the synergistic effect of material properties and structural design, the components enhance the impact resistance of the bottle while ensuring the stable operation and waterproof performance of the communication component 34, achieving a balance between functionality and reliability.
[0052] Working principle: When the bottle is subjected to an external impact, the external mesh support structure 32 takes effect first. The crisscrossing mesh is tightly connected and can quickly and evenly distribute the concentrated impact force to the bottle, effectively reducing the local stress intensity and reducing the risk of direct damage. Then, the silicone buffer layer 33 takes over. This layer is made of high-polymer memory foam and multi-layer honeycomb composite material. With its unique microporous structure and high elasticity, it can efficiently absorb the remaining energy after dispersion, further weakening the impact on the contents of the bottle and ensuring the stability and integrity of the contents. At the same time, the high-precision sensor module 3401 built into the bottle is activated instantly. It can accurately sense subtle changes in the pressure inside the bottle in real time. Once the pressure fluctuates abnormally, the sensor immediately transmits detailed data, including pressure value, impact intensity, duration, and bottle tilt angle, to the externally connected smart device terminal, such as dedicated monitoring software on mobile phones and tablets, with a millisecond response speed, through the low-power Bluetooth communication module 3402. This provides users with intuitive and timely feedback on the bottle's internal status, making it easy to take appropriate protective measures in time.
[0053] By opening the bottle cap 48, the bottle cap 48, through the mounting bracket 49 and the pull ring 410, pulls the elastic rope 411 to move the limiting plate 43. This allows the limiting plate 43 to move the sliding rod 44 inside the mounting housing 42, which in turn allows the sealing plate 46 to compress the return spring 45, causing the return spring 45 to deform and allowing the liquid inside the inner bottle 2 to pour out. When preventing leakage of the glass bottle 1, by tightening the bottle cap 48 to the glass bottle 1, the return spring 45 rebounds. Under the action of the return spring 45, the return spring 45 can cause the sealing plate 46 to fit against the sealing ring 47, thereby preventing leakage of the glass bottle 1.
[0054] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model 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 the present utility model should be included within the protection scope of the present utility model.
Claims
1. A smart lightweight glass bottle comprising a glass bottle body (1), characterized in that: The glass bottle body (1) is fixedly connected to an inner liner bottle (2), the glass bottle body (1) is fixedly connected to a reinforcing mechanism (3) on the front side of the outside, and the inner liner bottle (2) is fixedly connected to an anti-leakage mechanism (4) on the inner side of the top. The reinforcing mechanism (3) includes a smart coating (31), which is externally fixed to the front side of the glass bottle body (1). The inner bottle (2) is externally fixed to a mesh support structure (32), which is externally fixed to a silicone buffer layer (33). The glass bottle body (1) is internally fixed to a communication component (34).
2. The intelligent lightweight glass bottle according to claim 1, wherein: The communication component (34) includes a sensor module (3401), which is externally fixedly connected to the inside of the glass bottle (1), and the bottom of the glass bottle (1) is fixedly connected to a communication module (3402).
3. The intelligent lightweight glass bottle according to claim 1, characterized in that: The leak prevention mechanism (4) includes a cross-shaped placement plate (41), which is fixedly connected to the top of the inner bottle (2). The bottom of the cross-shaped placement plate (41) is fixedly connected to a mounting housing (42). A limiting plate (43) is slidably connected inside the mounting housing (42). A sliding rod (44) is fixedly connected to the bottom of the limiting plate (43). A return spring (45) is sleeved on the outside of the sliding rod (44).
4. The intelligent lightweight glass bottle of claim 3, wherein: A sealing plate (46) is fixedly connected to the outer bottom end of the sliding rod (44), and a sealing ring (47) is fixedly connected to the inside of the inner bottle (2). The outer side of the sealing plate (46) is in contact with the outer side of the sealing ring (47).
5. The intelligent lightweight glass bottle according to claim 4, characterized in that: The top of the glass bottle (1) is fixedly connected to a bottle cap (48), the bottom of the bottle cap (48) is fixedly connected to a mounting bracket (49), and the outside of the mounting bracket (49) is fixedly connected to a pull ring (410).
6. The intelligent lightweight glass bottle according to claim 5, characterized in that: An elastic rope (411) is fixedly connected to the outer bottom end of the pull ring (410), and the outer side of the elastic rope (411) passes through the outer side of the cross placement plate (41) and is fixedly connected to the outer top end of the limiting plate (43).
7. The intelligent lightweight glass bottle of claim 2, wherein: The outside of the silicone buffer layer (33) is in contact with the outside of the inner bottle (2), and the outside of the communication module (3402) is fixedly connected to the bottom of the outside of the inner bottle (2).
8. The intelligent lightweight glass bottle of claim 4, wherein: One end of the reset spring (45) is fixedly connected to the bottom outer end of the mounting housing (42), and the other end of the reset spring (45) is fixedly connected to the top outer end of the sealing plate (46).
Citation Information
Patent Citations
Corrosion -resistant glass bottle
CN205256887U