Tire inflator for vehicles
12092308 ยท 2024-09-17
Inventors
Cpc classification
F04B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60S5/043
PERFORMING OPERATIONS; TRANSPORTING
F04B39/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B35/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60S5/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60S5/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A tire inflator includes an inner housing, a lighting assembly, an outer housing, and an air pump; the inner housing includes a chamber; the air pump is disposed in the chamber; the air pump includes an air outlet end embedded in the inner housing and extending out of the chamber; the lighting assembly is disposed in the chamber and adjacent to the air outlet end; the outer housing surrounds the inner housing to dissipate heat; the outer housing includes a through hole; the air outlet end is disposed through the through hole; and at least a part of the lighting assembly abuts against the outer housing.
Claims
1. A tire inflator, comprising: 1) an air pump; the air pump comprising an air outlet end; 2) an inner housing, the inner housing comprising a chamber and the air pump being disposed in the chamber; the air outlet end being embedded in the inner housing and extending out of the chamber; 3) A lighting assembly, the lighting assembly being disposed in the chamber and adjacent to the air outlet end; and 4) An outer housing for heat dissipation, the outer housing surrounding the inner housing and comprising a through hole; the air outlet end being disposed through the through hole, and at least a part of the lighting assembly abutting against the outer housing; wherein the lighting assembly comprises: a lighting element disposed in the chamber and being attached to an inner wall of the inner housing; a heat dissipation element connected to the lighting element; and a thermal conduction element comprising a first end connected to the heat dissipation element and a second end connected to the outer housing.
2. The tire inflator of claim 1, wherein the air outlet end is surrounded by a silicone grease, and the silicone grease is further attached to edges of two ends of the through hole.
3. The tire inflator of claim 1, wherein the inner housing further comprises an opening, and the lighting element is disposed towards the opening.
4. The tire inflator of claim 1, wherein the heat dissipation element comprises: a base connected to the lighting element; and a plurality of radiating ribs connected to the base, and the plurality of radiating ribs being spaced apart and perpendicular to the base.
5. The tire inflator of claim 4, wherein the plurality of radiating ribs comprises: a front rib group connected to the base, and the front rib group being next to the inner wall of the inner housing; and a tail rib group connected to the base, the tail rib group being side by side with the front rib group, and being away from the inner wall of the inner housing; and the front rib group is uneven with the tail rib group, so that a space is formed by the front rib group and the tail rib group.
6. The tire inflator of claim 4, wherein the thermal conduction element comprises: a first conductive end connected to one of the plurality of radiating ribs, and being disposed between two adjacent radiating ribs of the plurality of radiating ribs; a second conductive end connected to the outer housing through a hole disposed on the inner housing; and a connection part connecting the first conductive end and the second conductive end; and both the first conductive end and the second conductive end are perpendicular with respect to the connection part, and the first conductive end is not in a line with the second conductive end.
7. The tire inflator of claim 6, wherein the inner housing comprises a first side wall comprising at least one first ventilation hole; the outer housing comprises a second side wall comprising at least one second ventilation hole; and the at least one first ventilation hole is matched with the at least one second ventilation hole.
8. The tire inflator of claim 7, wherein the at least one first ventilation hole comprises a plurality of front ventilation holes and a plurality of tail ventilation holes; the plurality of front ventilation holes is closer to the lighting element than the plurality of tail ventilation holes; the plurality of tail ventilation holes is away from the lighting element; and the plurality of front ventilation holes and the plurality of tail ventilation holes form an air passage for heat dissipation.
9. The tire inflator of claim 7, further comprising a plurality of grilles disposed between the inner housing and the outer housing in positions corresponding to the at least one first ventilation hole and the at least one second ventilation hole.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8) In the drawings, the following reference numbers are used:
(9) 1. Tire inflator; 100. Inner housing; 110. Chamber; 120. Opening; 130. First ventilation hole; 131. Front ventilation hole; 132. Tail ventilation hole; 200. Lighting assembly; 210. Lighting element; 220. Heat dissipation element; 221. Base; 222. Radiating rib; 2221. Front rib group; 2222. Tail rib group; 2223. Space; 230. Thermal conduction element; 231. First conductive end; 232. Second first conductive end; 233. Connection part; 300. Outer housing; 310. Through hole; 320. Silicone grease; 330. Second ventilation hole; 400. Air pump; 410. Air outlet end; 500. Grille; 600. First position.
DETAILED DESCRIPTION OF THE EMBODIMENTS
Example 1
(10) Referring to
(11) In the example, the inner housing 100 comprises plastic which is a lightweight material for reducing weight of the tire inflator 1; the outer housing 300 comprises a ring structure that allows the outer housing 300 to be removed from the inner housing 100; the outer housing 300 comprises a thermally conductive metal, preferably aluminum; aluminum is a lightweight metal and has relatively good thermal conductivity; the lighting assembly 200 gives off heat and transfers it to the outer housing 300 for heat dissipation; the inner housing 100 is surrounded by the outer housing 300 for maximum contact area; the air moves across the outer housing 300 and picks up the heat accumulated in the tire inflator 1.
(12) Further, the inner housing 100 comprises a hard material for preventing the outer housing 300 from deforming and holds the air pump 400 and the lighting assembly 200 in the chamber 110. Because the outer housing 300 is made of aluminum, it may deform when the tire inflator operates in a high power state. The inner housing 100 is further used to prevent vibration from transferring from the air pump to the outer housing 300, thus enhancing the user experience.
(13) Notably, the air pump 400 generates a flow of air and pumps it out of the tire inflator 1 through the air outlet end 410; and the lighting assembly 200 is disposed next to the air outlet end 410 to provide a light source while the air pump is running.
(14) The air outlet end 410 is embedded in the inner housing 100, which keeps the air outlet end 410 from vibrating as much when the air pump works.
Example 2
(15) As shown in
(16) In the example, the lighting element 210 comprises at least one light bulb with a high wattage, preferably an 8-watt bulb; the at least one light bulb produces a brighter light and is more efficient than a conventional lighting element.
(17) The heat dissipation element 220 further dissipates the heat produced by the lighting element 210, thus maintaining the brightness of the at least one light bulb; the heat dissipation element 220 comprises a heat dissipation material, preferably aluminum.
(18) The thermal conduction element 230 comprises a first end connected to the heat dissipation element 220 and a second end connected to the outer housing 300. The heat is transferred from the heat dissipation element 220 to outer housing 300 via the thermal conduction element 230. The thermal conduction element 230 comprises a thermally-conductive material, preferably copper. In the example, the thermal conduction element 230 is a piece of copper.
(19) Further, the lighting element 210 is disposed in the chamber and attached to the inner wall of the inner housing 100, which prevents vibrations from transferring from the air pump to the lighting element 210, thus maintaining a steady beam of light.
Example 3
(20) As shown in
(21) In the example, the through hole 310 is disposed in the outer housing 300; the air outlet end 410 is embedded in the inner housing 100 and is disposed through the through hole 310; the heat is transferred from the air outlet end 410 to the outer housing 300 via the silicone grease 320 and dissipated into the air.
Example 4
(22) As shown in
(23) In the example, the inner housing 100 is an open top casing with the opening 120 as an open top; the lighting element 210 is disposed towards the opening 210; the outer housing 300 surrounds the inner housing without covering the opening 210 and the lighting element 210, thus allowing more light through the opening 210.
(24) Further, the lighting element 120 and the air outlet end 410 are disposed on two adjacent side walls of the inner housing 100, respectively. As shown in
Example 5
(25) As shown in
(26) In the example, the base 221 is a flat plate from which the plurality of radiating ribs 222 extends to dissipate heat.
Example 6
(27) As shown in
Example 7
(28) As shown in
(29) In the example, as shown in
(30) Preferably, the thermal conduction element 230 is connected to the first rib group 2221 for maximum contact area, which facilitates heat transfer.
(31) The connection part 233 is connected to the first conductive end 231 and the second conductive end 232 to form a Z-shaped structure that enables the user to grip and operate the thermal conduction element 230.
(32) Further, the first conductive end and the second conductive end are perpendicular with respect to the connection part 233, reducing a physical contact between the thermal conduction element 230 and other components in the inner housing 100.
Example 8
(33) As shown in
(34) In the example, the plurality of first ventilation holes 130, the plurality of second ventilation holes 330, the heat dissipation element 220, and the outer housing 300 constitute a heat dissipation system by which the heat is moved away from the tire inflator 1 into the surrounding environment. Further, the plurality of first ventilation holes 130 has the same shape as the second ventilation holes 330.
(35) Further, the plurality of first ventilation holes 130 and the second ventilation holes 330 refers to a plurality of elliptical holes spaced apart for heat dissipation while maintaining the strengths of inner housing 100 and the outer housing 300.
Example 9
(36) As shown in
(37) Further, the air passage is formed between the first ventilation holes 130 or the second ventilation holes 330, thus improving ventilation for heat dissipation.
(38) Further, as shown in
Example 10
(39) As shown in
(40) Each of the plurality of grilles 500 is a small mesh, preferably a metal mesh; the plurality of grilles 500 prevents the external debris from entering the chamber 110 while maintaining air ventilation in the air passage, thus improving the service life of the tire inflator 1.
(41) It will be obvious to those skilled in the art that changes and modifications may be made, and therefore, the aim in the appended claims is to cover all such changes and modifications.