Drop-resistant electronic atomization assembly outer shell
Through a multi-layered buffer structure design, the limitations of the electronic atomization component's outer shell drop protection design are overcome, achieving more comprehensive protection and aesthetics, and improving safety and stability in use.
Patent Information
- Application Number
- CN202520125258.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-17
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2035-01-17
AI Technical Summary
The existing anti-drop design of electronic atomizing component housings has limitations. The pads have limited coverage and affect aesthetics, while protective covers affect the user experience.
It adopts a multi-layered buffer structure, including components such as support sleeves, mounting parts, return springs, compression springs, buffer rods, counterweights, buffer blocks, and buffer springs. Through magnetic connection and multi-layered buffer design, it absorbs and disperses impact forces, protecting internal electronic components.
It effectively absorbs and disperses impact forces, protects internal electronic components from damage, improves safety and stability, reduces wear, and enhances overall stability and aesthetics.
Smart Images

Figure CN223830387U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of external structure design of electronic atomizers, and in particular to a shockproof electronic atomizing component housing. Background Technology
[0002] Electronic atomizing components are the core of e-cigarettes or vaporizers. They produce inhalable vapor by heating a nicotine-containing liquid (usually called "e-liquid"). The outer casing of the electronic atomizing component is an important part of protecting the internal electronic components and also has a decisive influence on the overall appearance and feel of the product.
[0003] Currently, most outer shells used for electronic atomization components focus on the breathability and anti-slip properties of the outer shell surface. The common methods of drop protection are to place a soft pad on the bottom of the shell, or for the user to use an additional protective cover to cover the outer shell, thereby achieving drop protection for the outer shell.
[0004] While both of the aforementioned drop-proof methods offer some protection, they still have limitations in practical application. The padding has limited coverage and cannot fully protect the entire casing; while protective covers provide good protection, they affect the product's aesthetics and user experience. Therefore, a drop-proof electronic atomizing component casing has been designed. Utility Model Content
[0005] In order to overcome the shortcomings of the prior art, this utility model provides a shockproof electronic atomizing component housing.
[0006] The technical solution of this utility model is: a shockproof electronic atomizing component housing, comprising a component body, a bottom shell, a top shell, a hanging rope, a first magnetic block, a second magnetic block, a support sleeve, a mounting component, a return spring, a compression spring, and a buffer rod. The component body is covered by a bottom shell, and the top shell is magnetically connected to the top of the bottom shell. A groove is provided on the top of the top shell, and a hanging rope is provided at the rear of the bottom shell. The first magnetic block is embedded on both sides of the bottom of the top shell, and the second magnetic block is embedded on both sides of the top of the bottom shell. The first magnetic block and the second magnetic block are magnetically engaged. Support sleeves are provided at each corner of the bottom shell, and mounting components are slidably arranged in each support sleeve. A return spring is provided between the end of each mounting component and the corresponding support sleeve. Compression springs are provided on both sides of the outside of each mounting component, and a buffer rod with a rounded end is slidably arranged inside each mounting component. The compression springs outside the mounting components are all connected to the outside of the corresponding buffer rods.
[0007] Furthermore, it also includes counterweights, with at least two counterweights embedded in the upper part of the bottom shell to cushion the falling force.
[0008] Furthermore, it also includes a buffer block, which is slidably disposed at the bottom of the bottom shell, and the groove of the top shell is adapted to the end of the buffer block.
[0009] Furthermore, it also includes buffer springs, with several buffer springs for shock absorption installed between the upper end of the buffer block and the bottom end of the inner shell.
[0010] Furthermore, it also includes gaskets, with gaskets glued to both lower edges of the bottom shell and both upper corners of the top shell.
[0011] Furthermore, anti-slip grooves are provided on both sides of the middle of the bottom shell for easy handling.
[0012] The beneficial effects are as follows: This utility model, through the combined action of a multi-layer buffer structure (support sleeve, mounting parts, return spring, compression spring, buffer rod, counterweight, buffer block, buffer spring and pad), can effectively absorb and disperse impact force, and protect the internal electronic components from damage. Attached Figure Description
[0013] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0014] Figure 2 This is a partial sectional view of the first embodiment of this utility model.
[0015] Figure 3 This is a second partial sectional view of the present invention.
[0016] Figure 4 This is a third partial cross-sectional view of the present invention.
[0017] Figure 5 This is the fourth partial cross-sectional view of this utility model.
[0018] In the attached diagram, the following are the reference numerals: 1. Component body, 2. Bottom shell, 3. Top shell, 31. Groove, 4. Hanging rope, 5. First magnetic block, 6. Second magnetic block, 7. Counterweight block, 8. Support sleeve, 9. Mounting component, 10. Return spring, 11. Compression spring, 12. Buffer rod, 13. Buffer block, 14. Buffer spring, 15. Gasket. Detailed Implementation
[0019] The preferred technical solution of this utility model will be described in detail below with reference to the accompanying drawings.
[0020] Example: A shockproof electronic atomizing component housing, such as Figures 1-5As shown, the assembly includes a main body 1, a bottom shell 2, a top shell 3, a lanyard 4, a first magnet 5, a second magnet 6, a support sleeve 8, a mounting piece 9, a return spring 10, a compression spring 11, and a buffer rod 12. The main body 1, as the core component of the electronic atomizing assembly, is responsible for heating the e-liquid and generating vapor. The main body 1 is covered by the bottom shell 2, which provides physical protection against external impacts and environmental factors that could damage the internal components. The bottom shell 2 has anti-slip grooves on both sides of the middle section for easy gripping, increasing stability when held by the user. To reduce the possibility of accidental drops and improve safety, the top shell 3 is magnetically connected to the top of the bottom shell 2, ensuring a tight fit in case of a fall and increasing overall stability. The top shell 3 has a groove 31 on its top, and a lanyard 4 is provided at the rear of the bottom shell 2 to reduce the risk of drops due to slippage and improve portability. First magnetic blocks 5 are embedded on both sides of the bottom of the top shell, and second magnetic blocks 6 are embedded on both sides of the top of the bottom shell 2. The first magnetic blocks 5 and the second magnetic blocks 6 are magnetically connected. The top shell 3 and bottom shell 2 are tightly connected to ensure overall stability. Each corner of the bottom shell 2 is provided with a support sleeve 8, which provides sliding space for the mounting parts 9 and protects them from direct impact during a fall. The mounting parts 9 are slidably installed inside each support sleeve 8. When falling, they first contact the ground. Through the sliding and internal shock-absorbing components, the impact force transmitted to the component body 1 is reduced. Each mounting part 9 is provided with a return spring 10 between its end and the corresponding support sleeve 8 to absorb the impact force and reduce the impact transmitted to the mounting part 9, protecting the internal components. Compression springs 11 are provided on both sides of the outside of each mounting part 9 to further absorb the impact force, increase the cushioning effect, and protect the internal components. Each mounting part 9 is also provided with a buffer rod 12 with a rounded end inside. The compression springs 11 on the outside of the mounting part 9 are connected to the corresponding buffer rods 12. The buffer rods 12 can reduce friction with the ground and prevent wear. At the same time, through the cooperation of the sliding and compression springs 11, the impact force is further absorbed.
[0021] like Figures 1-2 As shown, it also includes counterweights 7. At least two counterweights 7 are embedded in the upper part of the bottom shell 2 to buffer the falling force. They play a balancing role when falling, reducing rotation and tumbling, and reducing impact force.
[0022] like Figure 1 and Figure 5 As shown, it also includes a buffer block 13. The buffer block 13 is slidably disposed at the bottom of the bottom shell 2. The groove 31 of the top shell 3 is adapted to the end of the buffer block 13. When the buffer block 13 is impacted, it slides along the bottom shell 2 and protects the internal electronic components through the buffering effect of the buffer spring 14.
[0023] like Figure 5As shown, it also includes a buffer spring 14. Several buffer springs 14 for shock absorption are provided between the upper end of the buffer block 13 and the inner bottom end of the bottom shell 2, which can further absorb the impact force, reduce the impact transmitted to the component body 1, and protect the internal electronic components.
[0024] like Figure 1 As shown, it also includes gaskets 15. Gaskets 15 are glued to the two lower edges of the bottom shell 2 and the two upper corners of the top shell 3 to increase friction, reduce sliding, and provide additional cushioning to protect the outer shell.
[0025] When the electronic atomizing component is accidentally dropped, the mounting piece 9 inside the support sleeve 8 first contacts the ground. Since a return spring 10 is provided between the mounting piece 9 and the support sleeve 8, the return spring 10 absorbs part of the impact force, reducing the impact transmitted to the component body 1. The compression springs 11 on both sides of the outer side of the mounting piece 9 and the internal buffer rod 12 further absorb the impact force. The rounded end design of the buffer rod 12 can reduce friction with the ground and prevent wear. The counterweight 7 inside the bottom shell 2 plays a certain balancing role when falling, reducing rotation and tumbling, and reducing the impact force. When the bottom buffer block 13 inside the bottom shell 2 is impacted, it will slide along the bottom shell 2. The buffer spring 14 further absorbs the impact force and protects the internal electronic components. The magnetic connection between the top shell 3 and the bottom shell 2 ensures the stability of the top shell 3 and will not easily separate even when falling. The pads 15 on the bottom shell 2 and the top shell 3 increase friction, reduce sliding, and provide additional cushioning effect. The anti-slip grooves on both sides of the middle of the bottom shell 2 increase the stability of the user's grip and reduce the possibility of accidental drops.
[0026] Although this disclosure has been described with respect to only a limited number of embodiments, those skilled in the art who benefit from this disclosure will understand that various other embodiments can be devised without departing from the scope of this invention. Therefore, the scope of this invention should be limited only by the appended claims.
Claims
1. A shockproof electronic atomizing component housing, comprising a component body (1); characterized in that, It also includes a bottom shell (2), a top shell (3), a hanging rope (4), a first magnetic block (5), a second magnetic block (6), a support sleeve (8), a mounting piece (9), a return spring (10), a compression spring (11), and a buffer rod (12). The component body (1) is covered by a bottom shell (2). The top shell (3) is magnetically connected to the top of the bottom shell (2). The top shell (3) has a groove (31) on its top. The hanging rope (4) is provided at the rear of the bottom shell (2). The first magnetic block (5) is embedded in the bottom sides of the top block. The second magnetic block (5) is embedded in the top sides of the bottom shell (2). 6) The first magnetic block (5) and the second magnetic block (6) are magnetically engaged. Each corner of the outer shell (2) is provided with a support sleeve (8). Each support sleeve (8) is slidably provided with an installation part (9). Each installation part (9) is provided with a return spring (10) between its end and the corresponding support sleeve (8). Each installation part (9) is provided with a compression spring (11) on both sides of its outer surface. Each installation part (9) is also provided with a buffer rod (12) with a rounded end inside its interior. The compression spring (11) outside the installation part (9) is connected to the outside of the corresponding buffer rod (12).
2. The shockproof electronic atomizing component housing according to claim 1, characterized in that, It also includes counterweights (7), and at least two counterweights (7) are embedded in the upper part of the bottom shell (2) to buffer the falling force.
3. The shockproof electronic atomizing component housing according to claim 2, characterized in that, It also includes a buffer block (13), which is slidably disposed at the bottom of the bottom shell (2), and the groove (31) of the top shell (3) is adapted to the end of the buffer block (13).
4. The shockproof electronic atomizing component housing according to claim 3, characterized in that, It also includes a buffer spring (14), and several buffer springs (14) for shock absorption are provided between the upper end of the buffer block (13) and the inner bottom end of the bottom shell (2).
5. The shockproof electronic atomizing component housing according to claim 4, characterized in that, It also includes gaskets (15), with gaskets (15) glued to the two lower edges of the bottom shell (2) and the two upper corners of the top shell (3).
6. The shockproof electronic atomizing component housing according to claim 5, characterized in that, The bottom shell (2) has anti-slip grooves on both sides of the middle part for easy handling.