Zirconium oxide protection device

By using a multi-layered buffer structure and material combination, the problems of easy corrosion of zirconium oxide in high acid and alkali environments and the fragility of glass bottles have been solved, thus achieving safe transportation of zirconium oxide.

CN223765047UActive Publication Date: 2026-01-06EDGAR INTELLIGENT EQUIPMENT (JIANGSU) CO LTD
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Patent Information

Application Number
CN202520399844.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2026-01-06
Estimated Expiration
2035-03-10

AI Technical Summary

Technical Problem

Existing zirconia protection devices are easily corroded in high acid and alkali environments, and the glass bottles are easily broken under impact, thus failing to effectively protect zirconia.

Method used

It adopts a multi-layered cushioning structure, including a shock-absorbing ring, an inner cushioning sleeve, a shock-absorbing spring, an outer cushioning sleeve, and a base. Combined with storage bottles and cushioning sleeves made of different materials, it absorbs and disperses the impact force to prevent the glass bottle from breaking.

Benefits of technology

It effectively protects zirconium oxide from corrosion, prevents glass bottles from breaking, and ensures stability and safety during transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a protective device for zirconia, which relates to the technical field of zirconia protection and comprises a storage bottle, a damping ring is arranged on the outer side of the storage bottle, the inner wall of the damping ring is attached to the outer wall of the storage bottle, an inner buffer sleeve is fixedly mounted on the outer side of the damping ring, and a plurality of damping springs are fixedly mounted on the outer side of the inner buffer sleeve. The storage bottle is protected through the damping ring, the inner buffering sleeve, the damping spring and the outer buffering sleeve absorb impact force layer by layer, the impact force is gradually reduced layer by layer, the impact force can be completely absorbed by the damping ring when reaching the damping ring, the damping pad can prevent the bottle cap from making direct contact with the top cap, and the situation that the storage bottle is broken due to the impact force generated during collision is avoided. The fixing ring is used as a part in direct contact with the outside, and has the characteristics of high strength, good wear resistance and strong impact resistance, so that the zirconium oxide protection device can be better protected, the glass bottle is prevented from being broken, internal zirconium oxide is prevented from being in contact with an object with strong corrosivity, and the zirconium oxide is protected from being corroded.
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Description

Technical Field

[0001] This utility model relates to the field of zirconium oxide protection technology, specifically to a zirconium oxide protection device. Background Technology

[0002] Zirconia, as an important inorganic non-metallic material, is widely used in many fields due to its excellent physicochemical properties. With technological advancements and market expansion, the application prospects of zirconia and its ceramic materials will be even broader.

[0003] As a chemical industrial product, zirconium oxide inevitably comes into contact with high-acid and alkaline environments during transportation. These environments corrode zirconium oxide. The usual protection device for zirconium oxide is to put it in a glass bottle to prevent corrosion. However, glass bottles often break due to external stress and cannot provide good protection for zirconium oxide under large impacts. Utility Model Content

[0004] The purpose of this invention is to provide a zirconium oxide protection device to solve the problems mentioned in the background art.

[0005] To solve the above-mentioned technical problems, this utility model provides a zirconium oxide protection device, including a storage bottle. A shock-absorbing ring is provided on the outside of the storage bottle. The inner wall of the shock-absorbing ring is attached to the outer wall of the storage bottle. An inner buffer sleeve is fixedly installed on the outside of the shock-absorbing ring. Multiple shock-absorbing springs are fixedly installed on the outside of the inner buffer sleeve. An outer buffer sleeve is fixedly installed on one side of each shock-absorbing spring.

[0006] Furthermore, both the inner and outer buffer sleeves are provided with multiple vent holes, and the top of the storage bottle is threadedly connected to a bottle cap, which is provided with multiple vent holes.

[0007] Furthermore, a base is fixedly installed at the bottom of the outer buffer sleeve, and a fixing ring is fixedly installed at the top of the base, with the fixing ring fixedly installed on the outer buffer sleeve.

[0008] Furthermore, the outer buffer sleeve is provided with a top cover, the top cover is provided with a buckle, the outer buffer sleeve is provided with a buckle groove, the buckle engages with the buckle groove, and a handle is fixedly installed on the top of the top cover.

[0009] Furthermore, a shock-absorbing pad is fixedly installed at the bottom of the top cover, and the shock-absorbing pad fits snugly against the bottle cap.

[0010] Furthermore, the storage bottle is made of glass, the shock-absorbing ring is made of silicone, the inner buffer sleeve is made of TEP, the shock-absorbing spring is made of silicone, the outer buffer sleeve is made of stainless steel, the base is made of metal composite material, the fixing ring is made of steel, and the shock-absorbing pad is made of sponge.

[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: the storage bottle is protected by the shock-absorbing ring, and the inner buffer sleeve, shock-absorbing spring, and outer buffer sleeve absorb the impact force layer by layer, so that the impact force is reduced layer by layer and can be completely absorbed by the shock-absorbing ring when it reaches the shock-absorbing ring. The shock-absorbing pad can prevent the bottle cap from directly contacting the top cap, and prevent the impact force generated during the collision from breaking the storage bottle. As a component that is in direct contact with the outside world, the fixing ring has the characteristics of high strength, good wear resistance, and strong impact resistance, which can better protect the zirconium oxide, prevent the glass bottle from breaking, and prevent the internal zirconium oxide from contacting highly corrosive objects, thus protecting the zirconium oxide from corrosion. Attached Figure Description

[0012] Figure 1 This is an overall structural diagram of a zirconium oxide protection device;

[0013] Figure 2 This is a schematic diagram of the storage bottle installation.

[0014] Figure 3 This is a schematic diagram of the installation of the shock-absorbing spring;

[0015] Figure 4 This is a schematic diagram of the installation of the inner buffer sleeve;

[0016] Figure 5 This is a diagram illustrating the installation of the base;

[0017] Figure 6 This is a diagram illustrating the installation of the clips;

[0018] Figure 7 This is a schematic diagram of the installation of the shock-absorbing pad.

[0019] In the diagram: 1. Storage bottle; 2. Shock-absorbing ring; 3. Inner buffer sleeve; 4. Shock-absorbing spring; 5. Outer buffer sleeve; 6. Shock-absorbing pad; 7. Vent hole; 8. Bottle cap; 9. Vent hole; 10. Base; 11. Fixing ring; 12. Top cap; 13. Buckle; 14. Handle. Detailed Implementation

[0020] 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.

[0021] Please see Figure 1-7 This utility model provides a zirconium oxide protection device:

[0022] See Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, the device includes a storage bottle 1, a shock-absorbing ring 2 on the outside of the storage bottle 1, the inner wall of the shock-absorbing ring 2 being attached to the outer wall of the storage bottle 1, an inner buffer sleeve 3 being fixedly installed on the outside of the shock-absorbing ring 2, a plurality of shock-absorbing springs 4 being fixedly installed on the outside of the inner buffer sleeve 3, and an outer buffer sleeve 5 being fixedly installed on one side of the shock-absorbing springs 4.

[0023] Storage bottle 1 is used to store zirconium oxide. Shock-absorbing ring 2 can protect storage bottle 1. Inner buffer sleeve 3 and outer buffer sleeve 5 can absorb the impact force generated during collision. Shock-absorbing spring 4 can absorb part of the collision energy through its elastic deformation when a collision occurs, thereby reducing the impact force and pressure generated by the collision.

[0024] See Figure 3 The inner buffer sleeve 3 and the outer buffer sleeve 5 are each provided with multiple vent holes 7. The top of the storage bottle 1 is threadedly connected to a bottle cap 8, and the top of the bottle cap 8 is provided with multiple vent holes 9.

[0025] The cap 8 can seal the storage bottle 1 to prevent zirconium oxide from detaching from the storage bottle 1. The vent 7 and the air vent 9 allow the zirconium oxide protection device to exchange gases with the outside world, which can balance the temperature and pressure inside and outside the device and keep the zirconium oxide stable.

[0026] See Figure 1 , Figure 5 The bottom of the outer buffer sleeve 5 is fixedly installed with a base 10, and the top of the base 10 is fixedly installed with a fixing ring 11, which is fixedly installed on the outer buffer sleeve 5.

[0027] The base 10 makes the zirconia protection device more stable, and the fixing ring 11 fixes the outer buffer sleeve 5. When the zirconia protection device is overturned or subjected to violent collisions, the fixing ring 11 can prevent the outer buffer sleeve 5 from directly contacting the ground, thus protecting the storage bottle 1.

[0028] See Figure 1 , Figure 6The outer buffer sleeve 5 is provided with a top cover 12, the top cover 12 is provided with a buckle 13, the outer buffer sleeve 5 is provided with a buckle groove, the buckle 13 is engaged with the buckle groove, and a handle 14 is fixedly installed on the top of the top cover 12.

[0029] The top cover 12 is used to seal the zirconium oxide protection device. The buckle 13 engages with the buckle groove to make it easy for the staff to disconnect the top cover 12 from the outer buffer sleeve 5. The handle 14 makes it easy for the staff to pick up the top cover 12.

[0030] See Figure 7 The bottom of the top cover 12 is fixedly equipped with a shock-absorbing pad 6, which is in contact with the bottle cap 8.

[0031] The shock-absorbing pad 6 can prevent the bottle cap 8 from directly contacting the top cap 12, thus preventing the storage bottle 1 from breaking due to the impact force generated during a collision.

[0032] See Figure 1 , Figure 2 , Figure 3 , Figure 5 , Figure 7 The storage bottle 1 is made of glass, the shock-absorbing ring 2 is made of silicone, the inner buffer sleeve 3 is made of TEP, the shock-absorbing spring 4 is made of silicone, the outer buffer sleeve 5 is made of stainless steel, the base 10 is made of metal composite material, the fixing ring 11 is made of steel, and the shock-absorbing pad 6 is made of sponge.

[0033] Storage bottle 1 is made of glass, which allows staff to easily observe zirconium oxide while also isolating it from strong acid and alkali environments, thus protecting the zirconium oxide.

[0034] The shock absorber ring 2 and the shock absorber spring 4 are made of silicone, which has excellent elasticity, high temperature resistance, corrosion resistance and aging resistance. They are also waterproof and dustproof, and can maintain stable performance in a variety of harsh environments.

[0035] The inner buffer sleeve 3 is made of TEP, a thermoplastic elastomer material with good elasticity, wear resistance and chemical corrosion resistance. It is used in the field of shock absorber rings, especially in occasions where environmental protection and sustainable development are required.

[0036] The outer buffer sleeve 5 is made of stainless steel, which has good corrosion resistance and wear resistance. The hardness of stainless steel also ensures that the outer buffer sleeve 5 will not suffer particularly serious damage when it comes into contact with the outside world.

[0037] The base 10 is made of metal composite material, which is composed of alternating layers of rubber and metal, combining the elasticity of rubber and the strength of metal, and has excellent shock absorption and cushioning performance.

[0038] The fixing ring 11 is made of steel, which has high strength, good wear resistance, and strong impact resistance. As a component that comes into direct contact with the outside world, the high strength, wear resistance, and impact resistance of steel allow the fixing ring 11 to better protect the components within the fixing ring 11 of the zirconia protection device, such as the outer buffer sleeve 5.

[0039] The shock-absorbing pad 6 is made of sponge. The shock-absorbing pad 6 can prevent the bottle cap 8 from directly contacting the top cap 12, thus preventing the storage bottle 1 from breaking due to the impact force generated during a collision. The sponge is breathable and will not block the vent 9. Due to its porous structure and soft texture, the sponge has good elasticity and shock absorption performance.

[0040] Working principle:

[0041] Step 1: The worker unscrews bottle cap 8 to open storage bottle 1, adds zirconium oxide into storage bottle 1, then tightens bottle cap 8 to seal storage bottle 1. Storage bottle 1 is then placed inside inner buffer sleeve 3, and top cap 12 is placed on top of outer buffer sleeve 5. Clip 13 is then fastened into the clip groove, and the top cap 12 is connected to the outer buffer sleeve 5 through the engagement of clip 13 and the clip groove. Assembly is complete.

[0042] Step 2: When the zirconia protection device is impacted during transportation, the base 10 and the fixing ring 11 first come into contact with the outside world and absorb the first layer of impact force. Due to the excellent hardness of the base 10 and the fixing ring 11, the zirconia protection device is protected. Then the outer buffer sleeve 5 absorbs the second layer of impact force. Then the shock-absorbing spring 4 absorbs part of the collision energy through its elastic deformation, thereby reducing the impact force and pressure generated by the collision. The remaining impact force is transmitted to the inner buffer sleeve 3, and then the shock-absorbing ring 2 absorbs the remaining impact force, protecting the storage bottle 1. The shock-absorbing pad 6 can prevent the bottle cap 8 from directly contacting the top cap 12, and prevent the impact force generated during the collision from breaking the storage bottle 1.

[0043] Step 3: When staff need to observe the zirconium oxide, they can de-engage the top cover 12 with the outer buffer sleeve 5 by disengaging the buckle 13 from the buckle slot. Staff can then lift the top cover 12 using the handle 14 to observe the zirconium oxide inside the storage bottle 1.

Claims

1. A zirconium oxide protection device, characterized by: Including storage bottle (1), the outer side of storage bottle (1) is equipped with shock absorbing ring (2), the inner wall of shock absorbing ring (2) is attached to the outer wall of storage bottle (1), the outer side of shock absorbing ring (2) is fixedly installed with inner buffer sleeve (3), the outer side of inner buffer sleeve (3) is fixedly installed with multiple shock absorbing springs (4), one side of shock absorbing spring (4) is fixedly installed with outer buffer sleeve (5).

2. A zirconium oxide protection device as claimed in claim 1, characterized in that: Multiple air holes (7) are formed in the inner buffer sleeve (3) and the outer buffer sleeve (5), the top of storage bottle (1) is threadedly connected with bottle cap (8), multiple air holes (9) are formed in the top of bottle cap (8).

3. A zirconium oxide protection device as claimed in claim 2, characterized in that: The bottom of outer buffer sleeve (5) is fixedly installed with base (10), the top of base (10) is fixedly installed with fixing ring (11), fixing ring (11) is fixedly installed on outer buffer sleeve (5).

4. A zirconium oxide protection device as claimed in claim 3, characterized in that: The top of outer buffer sleeve (5) is provided with top cover (12), buckle (13) is arranged on top cover (12), buckle slot is formed in outer buffer sleeve (5), buckle (13) is clamped with buckle slot, the top of top cover (12) is fixedly installed with handle (14).

5. A zirconium oxide protection device as claimed in claim 4, characterized in that: The bottom of top cover (12) is fixedly installed with shock pad (6), shock pad (6) is attached to bottle cap (8).

6. A zirconium oxide protection device as claimed in claim 5, characterized in that: The material of storage bottle (1) is glass, the material of shock absorbing ring (2) is silica gel, the material of inner buffer sleeve (3) is TEP, the material of shock absorbing spring (4) is silica gel, the material of outer buffer sleeve (5) is stainless steel, the material of base (10) is metal composite material, the material of fixing ring (11) is steel, and the material of shock pad (6) is sponge.