MICROBUBBLE TREATMENT AGENT CARTRIDGE ASSEMBLY AND WASHING EQUIPMENT HAVING SAME
20220411985 · 2022-12-29
Assignee
- QINGDAO HAIER WASHING MACHINE CO., LTD. (Qingdao, Shandong, CN)
- Haier Smart Home Co., Ltd. (Qingdao, Shandong, CN)
Inventors
Cpc classification
B01F25/4523
PERFORMING OPERATIONS; TRANSPORTING
B01F25/31243
PERFORMING OPERATIONS; TRANSPORTING
B01F23/232
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0425
PERFORMING OPERATIONS; TRANSPORTING
B01F25/3121
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2373
PERFORMING OPERATIONS; TRANSPORTING
International classification
D06F35/00
TEXTILES; PAPER
Abstract
A microbubble treatment agent cartridge assembly and washing equipment having the microbubble treatment agent cartridge assembly. The microbubble treatment agent cartridge assembly includes a housing and a treatment agent cartridge accommodated in the housing. The housing is provided with at least one water inlet pipe portion. The at least one water inlet pipe portion is provided internally with at least one stage of diameter-decreasing tapered portion and a microbubble former, and the pipe wall thereof is further provided with an air inlet hole. The air inlet hole is positioned between the at least one stage of diameter-decreasing tapered portion and the microbubble former, and communicates with an air inlet pipe disposed on the housing. The top of the most downstream stage of diameter-decreasing tapered portion is provided with a spray hole. The spray hole enables the water flow flowing through the at least one stage of diameter-decreasing tapered portion.
Claims
1-20. (canceled)
21. A micro-bubble treatment agent box assembly, comprising a housing and a treatment agent box accommodated in the housing, wherein: at least one water inflow pipe part is provided on the housing, and at least one of the at least one water inflow pipe part is provided therein with an at-least-one-stage diameter-decreased conical part and a micro-bubble bubbler; a pipe wall of the at least one of the at least one water inflow pipe part is also provided with an air inflow hole; and the air inflow hole is positioned between the at-least-one-stage diameter-decreased conical part and the micro-bubble bubbler and communicates with an air inflow pipe provided on the housing; and a spray hole is provided at a top end of a most-downstream-stage diameter-decreased conical part; the spray hole is arranged such that a water flow flowing through the at-least-one-stage diameter-decreased conical part can be expanded and sprayed through the spray hole and generate a negative pressure near the air inflow hole, so that air can be sucked into the water inflow pipe part from the air inflow pipe and mix with the water flow to generate bubble water; and the bubble water flows through the micro-bubble bubbler to become micro-bubble water, which is then sprayed into the treatment agent box.
22. The micro-bubble treatment agent box assembly according to claim 21, wherein a flow disturbing part is provided on an inner wall of the at-least-one-stage diameter-decreased conical part.
23. The micro-bubble treatment agent box assembly according to claim 22, wherein the flow disturbing part is at least one radial protrusion arranged on the inner wall of the at-least-one-stage diameter-decreased conical part or at least one flow disturbing rib extending longitudinally along the inner wall of the at-least-one-stage diameter-decreased conical part.
24. The micro-bubble treatment agent box assembly according to claim 22, wherein the flow disturbing part is positioned on an inner wall of the most-downstream-stage diameter-decreased conical part.
25. The micro-bubble treatment agent box assembly according to claim 21, wherein the at-least-one-stage diameter-decreased conical part comprises two or more stages of diameter-decreased conical parts.
26. The micro-bubble treatment agent box assembly according to claim 21, wherein at least one spray cavity is also provided in the housing, and the at least one spray cavity is arranged between the at least one water inflow pipe part and the treatment agent box so that the micro-bubble water is sprayed into the treatment agent box through the at least one spray cavity.
27. The micro-bubble treatment agent box assembly according to claim 21, wherein the at least one water inflow pipe part comprises a main water inflow pipe part and an auxiliary water inflow pipe part, and the treatment agent box comprises a detergent chamber and at least one care agent chamber; wherein the main water inflow pipe part is configured to provide micro-bubble water for the detergent chamber, and the auxiliary water inflow pipe part is configured to provide micro-bubble water for the at least one care agent chamber.
28. The micro-bubble treatment agent box assembly according to claim 21, wherein the micro-bubble bubbler is a hole mesh structure, and the hole mesh structure has at least one fine hole having a diameter reaching a micron scale.
29. The micro-bubble treatment agent box assembly according to claim 28, wherein the hole mesh structure comprises plastic fence, metal mesh, or macromolecular material mesh.
30. A washing apparatus, comprising the micro-bubble treatment agent box assembly according to claim 21, wherein the micro-bubble treatment agent box assembly is arranged in the washing apparatus to provide the washing apparatus with a micro-bubble water mixture with a treatment agent dissolved.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0034] Preferred embodiments of the present disclosure will be described below with reference to the accompanying drawings, in which:
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
DETAILED DESCRIPTION
[0042] Preferred embodiments of the present disclosure will be described below with reference to the accompanying drawings. It should be understood by those skilled in the art that these embodiments are only used to explain the technical principle of the present disclosure, and are not intended to limit the scope of protection of the present disclosure.
[0043] It should be noted that in the description of the present disclosure, terms indicating directional or positional relationships, such as “upper”, “lower”, “left”, “right”, “inner”, “outer” and the like, are based on the directional or positional relationships shown in the accompanying drawings. They are only used for ease of description, and do not indicate or imply that the device or element must have a specific orientation, or be constructed or operated in a specific orientation, and therefore they should not be considered as limitations to the present disclosure. In addition, terms “first” and “second” are only used for descriptive purposes, and should not be interpreted as indicating or implying relative importance.
[0044] In addition, it should also be noted that in the description of the present disclosure, unless otherwise clearly specified and defined, terms “install”, “arrange” and “connect” should be understood in a broad sense; for example, the connection may be a fixed connection, or may also be a detachable connection, or an integral connection; it may be a direct connection, or an indirect connection implemented through an intermediate medium, or it may be internal communication between two elements. For those skilled in the art, the specific meaning of the above terms in the present disclosure can be interpreted according to specific situations.
First Embodiment
[0045] In order to solve the technical problem that that a generation rate of micro-bubbles in the existing water injection box is not high, the present disclosure provides a micro-bubble treatment agent box assembly 52. In the first embodiment, the micro-bubble treatment agent box assembly includes a housing 521 and a treatment agent box 522 accommodated in the housing 521. At least one water inflow pipe part is provided on the housing 521. At least one of the at least one water inflow pipe part is provided therein with an at-least-one-stage diameter-decreased conical part and a micro-bubble bubbler. A pipe wall of at least one of the at least one water inflow pipe part is also provided with an air inflow hole, and the air inflow hole is positioned between the at-least-one-stage diameter-decreased conical part and the micro-bubble bubbler and communicates with an air inflow pipe arranged on the housing 521. A spray hole is provided on a top end of a most-downstream-stage diameter-decreased conical part, and the spray hole is arranged such that a water flow passing through the at-least-one-stage diameter-decreased conical part can be expanded and sprayed through the spray hole and generate a negative pressure near the air inflow hole, so that air can be sucked into the water inflow pipe part from the air inflow pipe and mix with the water flow to produce bubble water. The bubble water flows through the micro-bubble bubbler to become micro-bubble water, which is then sprayed into the treatment agent box 522. Therefore, as compared with the water injection box with a micro-bubble generator in the prior art, the ability of generating micro-bubbles of the micro-bubble treatment agent box assembly of the present disclosure is greatly improved, thereby improving a dissolution speed, a dissolution rate and a mixing degree of the treatment agent in the water, which can save the amount of treatment agent used.
[0046] In one or more examples, the at-least-one-stage diameter-decreased conical part and the micro-bubble bubbler are provided in one or more water inflow pipe parts. Alternatively, the at-least-one-stage diameter-decreased conical part and the micro-bubble bubbler are provided in each of the water inflow pipe parts.
[0047] The “diameter-decreased conical part” as used herein refers to a structure in which a diameter of passage formed inside this part is gradually decreased so that the passage has a conical shape.
[0048]
[0049] Referring to
[0050] As shown in
[0051]
[0052] Referring to
[0053] In an alternative example, more than one stage of diameter-decreased conical parts, such as two or more stages of diameter-decreased conical parts, may be provided in the main water inflow pipe part 525, so as to further accelerate the water flow. In this case, the spray hole is arranged at the top of the diameter-decreased conical part of the most downstream stage in the water flow direction.
[0054] In one or more examples, a flow disturbing part (not shown in the figure) can be formed on the inner wall of the one-stage diameter-decreased conical part 252. In one or more examples, the flow disturbing part may be at least one flow disturbing rib, such as a plurality of flow disturbing ribs, extending longitudinally along the inner wall of the diameter-decreased conical part of this stage. In an alternative embodiment, the flow disturbing part may be at least one radial protrusion, such as one or more cylindrical protrusions, provided on the inner wall of the diameter-decreased conical part of this stage. In an alternative example, the flow disturbing part may be formed on the inner wall of the diameter-decreased conical part of the most downstream stage, or formed on the inner wall of the diameter-decreased conical part of each stage.
[0055] In one or more examples, an outer wall of the one-stage diameter-decreased conical part 252 is separate from the inner wall of the main water inflow pipe part 525, so that an annular gap (not marked in the figure) is formed between the outer wall of the one-stage diameter-decreased conical part 252 and the inner wall of the main water inflow pipe part 525. This annular gap is helpful for the mixing of air and water flow, which further generates more micro-bubbles.
[0056] In one or more examples, the micro-bubble bubbler 253 is a hole mesh structure, and the hole mesh structure is fixed inside the main water inflow pipe part 525 and extends along an inner transverse section of the main water inflow pipe part 525, so that the bubble water coming upstream needs to pass through the hole mesh structure before flowing to the downstream first spray cavity 257. The hole mesh structure has at least one fine hole having a diameter reaching a micron scale. Preferably, the diameter of the fine hole is between 0 and 1000 microns; more preferably, the diameter of the fine hole is between 5 and 500 microns. The hole mesh structure can be a plastic fence, a metal mesh, a macromolecular material mesh, or other suitable hole mesh structures. The plastic fence usually refers to a macromolecular fence, which is integrally injection-molded by using a macromolecular material; or a macromolecular material is first made into a plate, and then a microporous structure is formed on the plate by machining to form the plastic fence. The macromolecular material mesh usually refers to a mesh with a microporous structure made by first making a macromolecular material into wires, and then weaving the wires. The macromolecular material mesh may include nylon mesh, cotton mesh, polyester fiber mesh, polypropylene fiber mesh, and the like. Alternatively, the hole mesh structure may be other hole mesh structures capable of generating micro-bubbles, such as a hole mesh structure composed of two non-micron-scale honeycomb structures. When the bubble water flows through the hole mesh structure, the hole mesh structure mixes and cuts the bubble water, thereby generating micro-bubble water.
[0057] With continued reference to
[0058] In an alternative example, more than one stage of diameter-decreased conical parts, such as two or more stages of diameter-decreased conical parts, may be provided in the auxiliary water inflow pipe part 526, so as to further accelerate the water flow. In this case, the spray hole is arranged at the top of the diameter-decreased conical part of the most downstream stage in the water flow direction.
[0059] In one or more examples, a flow disturbing part (not shown in the figure) can be formed on the inner wall of the one-stage diameter-decreased conical part 262. In one or more examples, the flow disturbing part may be at least one flow disturbing rib, such as a plurality of flow disturbing ribs, extending longitudinally along the inner wall of the diameter-decreased conical part of this stage. In an alternative embodiment, the flow disturbing part may be at least one radial protrusion, such as one or more cylindrical protrusions, provided on the inner wall of the diameter-decreased conical part of this stage. In an alternative example, the flow disturbing part may be formed on the inner wall of the diameter-decreased conical part of the most downstream stage, or formed on the inner wall of the diameter-decreased conical part of each stage.
[0060] In one or more examples, an outer wall of the one-stage diameter-decreased conical part 262 is separate from the inner wall of the auxiliary water inflow pipe part 526, so that an annular gap (not marked in the figure) is formed between the outer wall of the one-stage diameter-decreased conical part 262 and the inner wall of the auxiliary water inflow pipe part 526. This annular gap is helpful for the mixing of air and water flow, which further generates more micro-bubbles.
[0061] In one or more examples, the configuration of the micro-bubble bubbler 263 in the auxiliary water inflow pipe part 526 may be the same as that of the micro-bubble bubbler 253 in the main water inflow pipe part 525; for example, they are both a hole mesh structure, and the hole mesh structure has at least one fine hole having a diameter reaching a micron scale.
[0062] In one or more examples, the first air inflow pipe 254 and the second air inflow pipe 264 are each integrally combined with the housing 521. Alternatively, the first air inflow pipe 254 and/or the second air inflow pipe 264 may be configured independently from the housing 521.
Second Embodiment
[0063] In order to solve the technical problem that a generation rate of micro-bubbles in the existing water injection box is not high, the present disclosure provides a micro-bubble treatment agent box assembly 52. The micro-bubble treatment agent box assembly includes a housing 521 and a treatment agent box 522 accommodated in the housing 521. The housing 521 is provided with at least one water inflow pipe part, and at least one spray cavity positioned above the treatment agent box 522. An at-least-one-stage diameter-decreased conical passage part is provided between at least one of the at least one water inflow pipe part and at least one of the at least one spray cavity in a water flow direction C. A spray hole is provided at a downstream end of the at-least-one-stage diameter-decreased conical passage part. An air inflow passage is also provided on the housing 521, and an outlet of the air inflow passage is positioned close to the spray hole, so that water flow is expanded and sprayed from the spray hole to generate a negative pressure near the outlet, which sucks in outside air through the air inflow passage so that the outside air mixes with the water flow to form bubble water. At least one of the at least one spray cavity is provided therein with a micro-bubble bubbler, so that the bubble water forms micro-bubble water under the action of the micro-bubble bubbler, which is then sprayed into the treatment agent box 522. Therefore, as compared with the water injection box with a micro-bubble generator in the prior art, the ability of generating micro-bubbles of the micro-bubble treatment agent box assembly of the present disclosure is greatly improved, thereby improving a dissolution speed, a dissolution rate and a mixing degree of the treatment agent in the water, which can save the amount of treatment agent used.
[0064] In one or more examples, the at-least-one-stage diameter-decreased conical passage part is provided between each water inflow pipe part and a spray cavity corresponding to this water inflow pipe part, and a micro-bubble bubbler is arranged in this spray cavity. Alternatively, in the case of a plurality of water inflow pipe parts, according to requirements, the at-least-one-stage diameter-decreased conical passage part is provided between some of the plurality of water inflow pipe parts and the corresponding spray cavities.
[0065] The “diameter-decreased conical passage part” as used herein refers to a structure in which a diameter of passage formed inside this part is gradually decreased so that the passage has a conical shape.
[0066]
[0067] Referring to
[0068] As shown in
[0069]
[0070] Referring to
[0071] In an alternative example, the first one-stage diameter-decreased conical passage part 252 may be replaced by more than one stage of diameter-decreased conical passage parts, such as two or more stages of diameter-decreased conical passage parts, so as to further pressurize (accelerate) the water flow. In this case, the spray hole is arranged at the top of the diameter-decreased conical passage part of the most downstream stage in the water flow direction.
[0072] In one or more examples, a flow disturbing part (not shown in the figure) can be formed on the inner wall of the first one-stage diameter-decreased conical passage part 252. In one or more examples, the flow disturbing part may be at least one flow disturbing rib, such as a plurality of flow disturbing ribs, extending longitudinally along the inner wall of the diameter-decreased conical passage part of this stage. In an alternative embodiment, the flow disturbing part may be at least one radial protrusion, such as one or more cylindrical protrusions, provided on the inner wall of the diameter-decreased conical passage part of this stage. In an alternative example, the flow disturbing part may be formed on the inner wall of the diameter-decreased conical passage part of the most downstream stage, or formed on the inner wall of the diameter-decreased conical passage part of each stage.
[0073] In one or more examples, the first micro-bubble bubbler 253 is a hole mesh structure. The hole mesh structure has at least one fine hole having a diameter reaching a micron scale. Preferably, the diameter of the fine hole is between 0 and 1000 microns; more preferably, the diameter of the fine hole is between 5 and 500 microns. The hole mesh structure can be a plastic fence, a metal mesh, a macromolecular material mesh, or other suitable hole mesh structures. The plastic fence usually refers to a macromolecular fence, which is integrally injection-molded by using a macromolecular material; or a macromolecular material is first made into a plate, and then a microporous structure is formed on the plate by machining to form the plastic fence. The macromolecular material mesh usually refers to a mesh with a microporous structure made by first making a macromolecular material into wires, and then weaving the wires. The macromolecular material mesh may include nylon mesh, cotton mesh, polyester fiber mesh, polypropylene fiber mesh, and the like. Alternatively, the hole mesh structure may be other hole mesh structures capable of generating micro-bubbles, such as a hole mesh structure composed of two non-micron-scale honeycomb structures. When the bubble water flows through the hole mesh structure, the hole mesh structure mixes and cuts the bubble water, thereby generating micro-bubble water.
[0074] With continued reference to
[0075] In an alternative example, the second one-stage diameter-decreased conical passage part 262 may be replaced by more than one stage of diameter-decreased conical passage parts, such as two or more stages of diameter-decreased conical passage parts, so as to further pressurize (accelerate) the water flow. In this case, the spray hole is arranged at the top of the diameter-decreased conical passage part of the most downstream stage in the water flow direction.
[0076] In one or more examples, a flow disturbing part (not shown in the figure) can be formed on the inner wall of the second one-stage diameter-decreased conical passage part 262. In one or more examples, the flow disturbing part may be at least one flow disturbing rib, such as a plurality of flow disturbing ribs, extending longitudinally along the inner wall of the diameter-decreased conical passage part of this stage. In an alternative embodiment, the flow disturbing part may be at least one radial protrusion, such as one or more cylindrical protrusions, provided on the inner wall of the diameter-decreased conical passage part of this stage. In an alternative example, the flow disturbing part may be formed on the inner wall of the diameter-decreased conical passage part of the most downstream stage, or formed on the inner wall of the diameter-decreased conical passage part of each stage.
[0077] In one or more examples, the configuration of the second micro-bubble bubbler 263 may be the same as that the first micro-bubble bubbler 253; for example, they are both a hole mesh structure, and the hole mesh structure has at least one fine hole having a diameter reaching a micron scale.
[0078] The present disclosure also provides a washing apparatus, which includes the micro-bubble treatment agent box assembly 52 of the present disclosure. The micro-bubble treatment agent box assembly 52 is arranged in the washing apparatus and configured to provide a mixture of treatment agent and micro-bubble water. The micro-bubble treatment agent box assembly can not only improve the washing ability of the washing apparatus, but also can reduce the amount of detergent used and a residual amount of detergent such as in the clothing, which is not only advantageous for the user's health, but also can improve the user experience.
[0079] Reference is made to
[0080] As shown in
[0081] Reference is made to
[0082] As shown in
[0083] Hitherto, the technical solutions of the present disclosure have been described in connection with the preferred embodiments shown in the accompanying drawings, but it is easily understood by those skilled in the art that the scope of protection of the present disclosure is obviously not limited to these specific embodiments. Without departing from the principles of the present disclosure, those skilled in the art can combine technical features from different embodiments, and can also make equivalent changes or replacements to relevant technical features. All these technical solutions after such changes or replacements will fall within the scope of protection of the present disclosure.