RUBBER BUCKET AND TIRE REPAIRING AND INFLATION DEVICE
20230166696 · 2023-06-01
Inventors
- Jui Hung Wesley Hong (Causeway Bay, HK)
- Koon Fung LAM (Hong Kong, CN)
- Jianghua Yan (Causeway Bay, HK)
- Huilong JI (Causeway Bay, HK)
Cpc classification
B60S5/04
PERFORMING OPERATIONS; TRANSPORTING
B29C73/166
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present application discloses a sealant container and a tire repair and inflation device using the sealant container. The sealant container comprises: a container body having an internal space for storing sealant and a container mouth with an inner wall; and a core component installed onto the container mouth and extending toward the internal space after installation. The core component has an outer end, an inner end, and a first channel between the outer end and the inner end inside the core component for passage of gas, wherein the outer end is provided with an interface, and the inner end is provided with at least one openable outlet to communicate with the internal space when the outlet is opened; and wherein the inner wall further defines a second channel for passage of sealant. The sealant container has a simplified structure and good sealing performance.
Claims
1. A sealant container, comprising: a container body having an internal space for storing sealant and a container mouth comprising a first part and a second part with an inner wall ; and a core component configured to be inserted into the container mouth and extend toward the internal space after insertion, the core component having an outer end, an inner end, and a first channel between the outer end and the inner end inside the core component for passage of gas, wherein the outer end is provided with an interface, and the inner end is provided with at least one openable outlet to communicate with the internal space when the outlet is opened; wherein the inner wall of the first part and the second part further defines a second channel for passage of sealant.
2. The sealant container according to claim 1, wherein the second channel is an annular channel defined by a gap between the inner wall and the core component.
3. The sealant container according to claim 1, further comprising a first valve mechanism, comprising: a first valve seat, wherein at least a portion of the inner wall forms the first valve seat; a first valve core, wherein the first valve core is the core component, and the first valve core is repeatedly movable relative to the first valve seat and has an initial position, and a container mouth sealing element arranged between the first valve seat and the first valve core for closing the second channel.
4. The sealant container according to claim 3, wherein the container mouth sealing element is fixed on the first valve seat, and the second channel is provided with a first spring element, wherein the first spring element is configured so that when the first valve core is in the initial position, the first spring element presses a part of the first valve core against the container mouth sealing element, so that the container mouth sealing element closes the second channel .
5. The sealant container according to claim 3, wherein the first part and the second part are fit and connected, wherein the first part is integrally formed with the container body, and the second part is made of nylon material to increase strength.
6. The sealant container according to claim 1, wherein the core component is provided with a deformable first sealing element at the inner end, wherein the first sealing element covers the outlet to close the outlet when not deformed, and expands to open the outlet when deformed.
7. The sealant container according to claim 6, wherein the first sealing element is made of silicone and sleeved on the inner end.
8. The sealant container according to claim 7, wherein the inner end is provided with a groove to receive the first sealing element.
9. The sealant container according to claim 7, wherein the inner end is further provided with a conical head to facilitate the installation of the first sealing element onto the core component.
10. The sealant container according to claim 8, wherein a plurality of the outlets are arranged symmetrically on the groove.
11. A tire repair and inflation device, comprising: an inflator having a connecting portion; and the sealant container according to claim 1, wherein the sealant container is installed onto the connecting portion through the interface.
12. The tire repair and inflation device according to claim 11, wherein the inflator comprises a third channel to communicate with the first channel; and a fourth channel to selectively communicate with the second channel and the third channel, wherein the fourth channel is configured to receive gas from the third channel or sealant from the second channel, so as to deliver gas or sealant to a tire.
13. The tire repair and inflation device according to claim 11, wherein the inflator further comprises a locking device, wherein when the sealant container and the inflator are installed in place, the locking device fastens the sealant container and the inflator.
14. The tire repair and inflation device according to claim 13, wherein the locking device is arranged in the inflator, and snaps the sealant container and the connecting portion together at the side of the container mouth .
15. The tire repair and inflation device according to claim 12, wherein the connecting portion has a second valve mechanism, comprising: a second valve core configured to be inserted into the core component to engage with the interface; a second valve seat for receiving the second valve core, wherein the second valve seat is configured to move relative to the second valve core, and a connecting portion sealing element arranged on the second valve core or the second valve seat to prevent gas from the third channel from passing through.
16. The tire repair and inflation device according to claim 15, wherein the second valve core is fixed in the inflator, and the second valve mechanism further comprises a second spring element respectively connected with the second valve core and the second valve seat, so that the second valve seat moves back and forth relative to the second valve core.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The present application will be more fully understood by referring to the following detailed description of specific embodiments in combination with the drawings. The same reference numerals always denote the same elements in the drawings, where:
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION
[0039] In order to help those skilled in the art to accurately understand the subject matter claimed in the present application, the specific embodiments of the present application are described in detail below in conjunction with the accompanying drawings.
[0040] The tire repair and inflation device according to the present application is used for inflating or repairing tires. The tire repair and inflation device comprises an inflator and a sealant container. When an inflating operation is in progress, a connection is established between the inflator and the tire to deliver compressed air to the tire. When a tire repairing operation is in progress, the sealant container is connected with the inflator, and the inflator is connected with the tire. The inflator is responsible for delivering compressed air to the sealant container, thus forcing the sealant to leave the sealant container for delivery to the tire through the inflator.
[0041] The sealant container according to the present application can also be used together with an existing inflator. Similar to the above, when an inflating operation is in progress, the inflator is connected to the tire; when a tire repairing operation is in progress, the sealant container is connected to the tire through the inflator. The inflator is equipped with at least one pipe for connection with the tire. The pipe can not only deliver gas to the tire during the inflating operation, but also deliver sealant to the tire during the tire repairing operation. According to the idea of the present application, an existing sealant container can also be retrofit to obtain a sealant container according to the present application, and the retrofit sealant container can be used with an existing inflator.
[0042]
[0043] The core component 14 comprises an outer end 22 and an inner end 24. The “outer end” and “inner end” here are named relative to the interior of the container body 12. The outer end 22 is provided with an interface 26, which is used to connect with another object other than the sealant container, such as an inflator. The interface 26 can be connected with the other object in various ways, such as through assembly, contact, and the like. In the illustrated embodiment, the interface 26 is arranged on the inner side of the outer end 22 to allow the other object to extend into the interior of the core component 14 to establish a connection relationship. It can be conceivable, however, that the interface 26 can also be configured so that the outer end 22 of the core component 14 extends into the interior of the other object.
[0044] The inner end 24 of the core component 14 is provided with an openable outlet 28. When the outlet 28 is opened, the outlet 28 communicates with the internal space 16. When the outlet 28 is closed, the outlet 28 does not communicate with the internal space 16.
[0045] The interior of the core component 14 is a hollow structure, thereby defining a first channel 32 between the outer end 22 and the inner end 24. The first channel 32 is used for the passage of gas through the interior of the core component 14. For example, the compressed air from the inflator can enter into the container body 12 through the first channel 32, so the first channel 32 is a gas inlet channel. The configuration of the first channel 32 is not limited to what is illustrated. In the illustrated embodiment, the first channel 32 is connected with the interface 26 and the outlet 28, so that the gas can enter into the internal space 16 through the interface 26, the first channel 32 and the outlet 28, so as to inject high pressure into the sealant container.
[0046] The inner wall 36 of the container mouth 18 defines a second channel 34, which is used for the passage of sealant (i.e., the sealant from the internal space 16). The sealant flows along the container body 12 to the container mouth 18, and continues to flow along the inner wall 36, thus passing through the second channel 34, so as to flow out of the sealant container.
[0047] In the illustrated embodiment, a gap is present between the core component 14 and the inner wall 36, so the second channel 34 is provided between the inner wall 36 of the container mouth 18 and the outer side of the core component 14. In addition, the second channel 34 may be designed so as to define the sealant flow path. Furthermore, the size of the second channel 34 can be defined by designing the gap size between the inner wall 36 and the core component 14. When the sealant container is inverted, the second channel 34 can also be used as a temporary sealant storage due to gravity.
[0048] In the illustrated embodiment, the second channel 34 is annular. The gas enters into the internal space 16 through the first channel 32, and as the pressure in the container increases, the sealant is forced to flow out of the sealant container along the second channel 34, thus forming a “gas-in and sealant-out” mode of gas-entering from the centre and sealant-leaving along the circumference. It is not necessary to arrange an additional sealant outlet or connecting hose for the sealant container.
[0049]
[0050] The container mouth 18, as shown in
[0051] The interface 26 inside the first valve core 44 is configured to have a step 27, so as to receive the other object to drive the first valve core 44 to move. A drive mode is described in detail below.
[0052]
[0053] The connecting portion 66 is connected with the sealant container 62, and is configured as a second valve mechanism, comprising a second valve core 72, a second valve seat 74, a connecting portion sealing element 76 and a second spring element 78. The second valve core 72 is arranged in the second valve seat 74 and fixed in the inflator 64. For a clear illustration,
[0054] In the embodiment shown in
[0055] A locking device 79 is additionally provided in the inflator 64 to lock the sealant container 62 and the inflator 64 after they are installed in place. The sealant container 62 has high pressure during use. The locking device 79 can ensure that the sealant container 62 will not move relative to the inflator 64 or separate from the inflator 64, thereby increasing the safety performance. In the illustrated embodiment, the locking device 79 is arranged on one side of the engagement area between the connecting portion 66 and the sealant container 62 in the inflator 64.
[0056] Returning to
[0057] The pressure from the inflator is far greater than the atmospheric pressure in the sealant container. When under pressure, the first sealing element 59 automatically expands and opens, allowing gas to enter the sealant container. Because the sealant container is inverted for use, high pressure coupled with light density of the gas allows the gas to automatically blow down the sealant when the gas enters the sealant container, so that the gas exists at the top of the sealant container while the sealant is gathered at the bottom of the sealant container in the inverted state.
[0058]
[0059] The outlet 28 comprises a first opening 82 and a second opening 84, which are symmetrically arranged on the groove 81 to help stabilize the gas flow. It is conceivable that the number of outlets 28 is not limited to two, but more. A plurality of outlets can be arranged on the groove circumferentially or in the form of array.
[0060] A conical head 86 is additionally provided at the top of the groove 81 to facilitate the first sealing element to be sleeved from the conical head 86 and concentrically arranged on the groove 81.
[0061]
[0062]
[0063] Although the specific embodiments of the present application have been illustrated and described in detail to explain the principle of the present application, it should be understood, however, that the present application can be implemented in other ways without departing from the principle.