PULL TYPE ROTARY MASSAGE NOZZLE
20240122800 ยท 2024-04-18
Assignee
Inventors
Cpc classification
A61H33/06
HUMAN NECESSITIES
A61H9/0071
HUMAN NECESSITIES
International classification
A61H33/00
HUMAN NECESSITIES
A61H33/06
HUMAN NECESSITIES
Abstract
A pull type rotary massage nozzle sequentially includes a nozzle holder, a nozzle core seat, a nozzle surface cover, and a nozzle core assembly. The nozzle core seat is detachably mounted on the nozzle holder. The nozzle surface cover is fixedly mounted on the nozzle core seat. The nozzle core assembly is mounted in the nozzle core seat and may circumferentially rotate about a mounting axle relative to the nozzle core seat and the nozzle surface cover, and may also axially float or sink along the mounting axle relative to the nozzle core seat and nozzle surface cover. The nozzle surface cover is provided with a static torsion rib. The nozzle core assembly is provided with a dynamic torsion rib. The dynamic torsion rib is selectively engaged with or separated from the static torsion rib along with floating or sinking of the nozzle core assembly.
Claims
1. A pull type rotary massage nozzle, sequentially comprising a nozzle holder, a nozzle core seat, a nozzle surface cover, and a nozzle core assembly; wherein the nozzle core seat is detachably mounted on the nozzle holder; the nozzle surface cover is fixedly mounted on the nozzle core seat; the nozzle core assembly passes through the nozzle surface cover to be mounted in the nozzle core seat, the nozzle core assembly is capable of circumferentially rotating about a mounting axle relative to the nozzle core seat and the nozzle surface cover, and is also capable of axially floating or sinking along the mounting axle relative to the nozzle core seat and nozzle surface cover; and an inner surface of the nozzle surface cover is provided with a static torsion rib extending toward the nozzle core assembly, an outer surface of the nozzle core assembly is provided with a dynamic torsion rib extending toward the nozzle surface cover, and the dynamic torsion rib is selectively engaged with or separated from the static torsion rib along with floating or sinking of the nozzle core assembly.
2. The pull type rotary massage nozzle according to claim 1, wherein the nozzle core assembly comprises a nozzle core and a steel needle; the steel needle acts as the mounting axle and has a first end fixedly connected to the nozzle core and a second end arranged in a cavity of the nozzle core seat; the cavity defines an axial path; the second end of the steel needle is capable of freely rotating in the cavity such that the nozzle core assembly can circumferentially rotate; and the second end of the steel needle is capable of sliding along the axial path such that the nozzle core assembly can axially float or sink.
3. The pull type rotary massage nozzle according to claim 2, wherein the second end of the steel needle is provided with an external thread and is detachably mounted in the cavity by threaded connection with a rotary ball head.
4. The pull type rotary massage nozzle according to claim 2, wherein a bottom of the nozzle core seat is detachably provided with a pull core seat, the pull core seat is provided with the cavity which is recessed in a direction from a bottom of the pull core seat to the nozzle core assembly, the cavity is communicated with an interior of the nozzle core seat via an axial hole, and the second end of the steel needle is arranged in the cavity after passing through the axial hole.
5. The pull type rotary massage nozzle according to claim 4, wherein the pull core seat is an integrated wear-resistant plastic.
6. The pull type rotary massage nozzle according to claim 3, wherein a bottom of the nozzle core seat is detachably provided with a pull core seat, the pull core seat is provided with the cavity which is recessed in a direction from a bottom of the pull core seat to the nozzle core assembly, the cavity is communicated with an interior of the nozzle core seat via an axial hole, and the second end of the steel needle is arranged in the cavity after passing through the axial hole.
7. The pull type rotary massage nozzle according to claim 6, wherein the pull core seat is an integrated wear-resistant plastic.
8. The pull type rotary massage nozzle according to claim 2, wherein a rotary support is arranged in the nozzle core seat and is positioned between the cavity and the nozzle core, a central axial hole matched with the steel needle is arranged in the rotary support, and the second end of the steel needle passes through the central axial hole of the rotary support to be received in the cavity.
9. The pull type rotary massage nozzle according to claim 8, wherein an outer end of the rotary support around the central axial hole is provided with an axial hole boss extending toward the nozzle core.
10. The pull type rotary massage nozzle according to claim 1, wherein the nozzle core comprises a Y-shaped flow channel which comprises a water inlet and two water outlets communicated with the water inlet, and the dynamic torsion rib is arranged on an outer surface of the Y-shaped flow channel close to the water outlets.
11. The pull type rotary massage nozzle according to claim 10, wherein the nozzle holder comprises an air inlet tube and a water inlet tube, a water inlet in communication with the water inlet tube and an air inlet in communication with the air inlet tube are arranged on the nozzle core seat, and the water inlet of the Y-shaped flow channel is communication with the water inlet and the air inlet of the nozzle core seat.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE EMBODIMENTS
[0027] The technical solution of the present disclosure is further described below in conjunction with the accompanying drawings and the embodiments.
[0028] In the description of the present disclosure, it should be understood that the orientational or positional relationships indicated by the terms upper, lower, left, right, top, bottom, etc. are the orientational or positional relationships shown in the accompanying drawings, merely for the convenience of describing the present disclosure and simplifying the description, rather than indicating or implying that the referred apparatus or element must have a particular orientation or be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the scope of the present disclosure.
Embodiment
[0029] Referring to
[0030] Wherein, the nozzle core seat 2 is detachably mounted on the nozzle holder 1 via the mounting base 6, the nozzle surface cover 3 is fixedly mounted on the nozzle core seat 2, and the nozzle core assembly 4 is mounted in the nozzle core seat 2 and passes through the nozzle surface cover 3. The nozzle core assembly 4 may circumferentially rotate about a mounting axle (i.e., a steel needle 42 in this embodiment) relative to the nozzle core seat 2 and the nozzle surface cover 3, and the nozzle core assembly 4 may also axially float and sink along the mounting axle relative to the nozzle core seat 2 and the nozzle surface cover 3. Referring to
[0031] Specifically, referring to
[0032] Further, the second end of the steel needle 42 is provided with an external thread 421, and the second end of the steel needle 42 is detachably mounted in the pull cavity 93 by threaded connection with a rotary ball head 10. Furthermore, a bottom of the nozzle core seat 2 is detachably provided with a pull core seat 9, the pull core seat 9 is provided with the pull cavity 93 recessed in a direction from the bottom to the nozzle core assembly 4, the pull cavity 93 is connected to an interior of the nozzle core seat 2 via an axial hole 94. The second end of the steel needle 42 is in threaded connection with the rotary ball head 10 after passing through the axial hole 94, and the rotary ball head 10 rotates circumferentially and floats or sinks axially in the pull cavity 93 along with the nozzle core assembly 4. To make the pull core seat have a longer service life, in this embodiment, the pull core seat is an integrated wear-resistant plastic.
[0033] In addition, in combination with
[0034] Preferably, referring to
[0035] Next, other detachable mounting structures of the nozzle are described.
[0036] First, referring to
[0037] Then, with continuing reference to
[0038] Next, referring to
[0039] Finally, referring to
[0040] Next, in combination with
[0041] Finally, in combination with
[0042] In the pull type rotary massage nozzle provided by the present disclosure, with the float and sink design of the nozzle core assembly, the dynamic torsion ribs arranged on the nozzle core assembly and the static torsion ribs arranged on the nozzle surface cover are selectively and rapidly engaging with each other or separated from each other. The nozzle core seat, the nozzle surface cover, and the nozzle core assembly form one rigid body after the dynamic and static torsion ribs abut and match with each other, and the force is exerted on the nozzle core via the water outlets on the nozzle core to drive the surface cover and the nozzle core seat to rotate for disassembly and assembly between the nozzle and the nozzle holder. The pull type rotary massage nozzle retains design of the surface cover with a hollow structure, and still allows the nozzle core assembly to rotate to spray water via the water flow, which not only reduces the thickness of the surface cover and improves the consistency of overall appearance, but also maintains the stability and coordination of rotation. The float and sink design of the nozzle core assembly may also cause the massage nozzle to be rapidly assembled or disassembled and opened or closed, thereby improving the efficiency of disassembly and assembly, reducing the mounting and maintenance costs, and improving the user experience.
[0043] The above description is only the specific embodiment of the present disclosure, but those skilled in the art should understand that here is only an example, and the scope of protection of the present disclosure is defined by the appended claims. Therefore, equivalent changes made in the scope of patent application for the present disclosure still fall within the scope of the present disclosure.