Flow guiding structure and heater fan having the same
By designing the diversion structure of the diversion groove and shield in the fan, the problem of water overflow when the fan is inclined is solved, and the effect of improving the safety and cleanliness of electricity is achieved.
Patent Information
- Application Number
- CN202110150220.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-02-03
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2041-02-03
AI Technical Summary
Existing air heaters are prone to overflow when they are tilted, resulting in lower power safety.
A flow guide structure is designed, including a flow guide groove and a shield member. The shield members are arranged at intervals along the extension direction of the flow guide groove, forming a plurality of shielding surfaces to block the flow of liquid, and an arc-shaped shielding surface and a bending plate are arranged at the corner to form a water storage area to prevent liquid from overflowing.
When the fan is inclined, the design of the shielding member and water storage area is avoided, the overflow of liquid is improved, the safety and cleanliness of electricity are improved, and the risk of bacterial growth is reduced.
Smart Images

Figure CN112815378B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of fluid guiding, and in particular, to a fluid guiding structure and a heater fan having the same. Background Art
[0002] With the continuous progress of technology and consumption upgrading, people have higher and higher requirements for household appliances. Taking the heater fan as an example, it not only needs to have a beautiful appearance and an affordable price, but also needs to provide healthy heating. Since the indoor environment is cold and dry in winter, heater fans with a humidifying function have emerged to meet people's usage needs.
[0003] Currently, for a heater fan with a humidifying function, a wet curtain made of non-woven fabric is generally arranged at the air outlet. The wet curtain has a good self-absorbing effect. The washing cotton sucks water from the water tank and wets the wet curtain. When the heater fan works, the air passes through the wet curtain and takes away and evaporates the moisture on the wet curtain to achieve humidification.
[0004] However, when the user lifts the whole machine or places the heater fan on an uneven table or ground, the water is likely to tilt to one side, resulting in water overflow, and further causing a potential safety hazard in electricity use of the heater fan, so that the use safety of the heater fan is relatively low. Summary of the Invention
[0005] The main object of the present invention is to provide a fluid guiding structure and a heater fan having the same, so as to solve the problem of relatively low electricity use safety of the existing heater fan.
[0006] To achieve the above object, according to one aspect of the present invention, a fluid guiding structure is provided, including: a fluid guiding groove; a shielding member disposed in the fluid guiding groove, the shielding member having a shielding surface, the shielding surface being opposite to the first side wall surface of the fluid guiding groove, and / or, the shielding surface being opposite to the second side wall surface of the fluid guiding groove; the shielding member is plural, and the plural shielding members are arranged at intervals along the extending direction of the fluid guiding groove.
[0007] Further, the shielding member includes: a first shielding member disposed in the fluid guiding groove, the first shielding member having a first shielding surface opposite to the first side wall surface of the fluid guiding groove; a second shielding member disposed in the fluid guiding groove, the second shielding member having a second shielding surface opposite to the second side wall surface of the fluid guiding groove, and the first shielding member and the second shielding member are alternately arranged at intervals.
[0008] Further, the fluid guiding groove is a fluid guiding loop, and the shielding member further includes: a third shielding member disposed in the fluid guiding groove and located in the corner area of the fluid guiding groove, the third shielding member having a third shielding surface, the third shielding surface being opposite to the second side wall surface of the fluid guiding groove.
[0009] Further, the third shielding surface is an arc surface.
[0010] Further, the diversion structure further includes: a first connecting plate, the first end of the first connecting plate is connected to the first side wall surface of the diversion groove, the second end of the first connecting plate is connected to the connecting end surface of the third shielding member, and the connecting end surface faces the third shielding surface.
[0011] Further, the diversion structure further includes: a first bending plate, disposed in the diversion groove and on the first side of the third shielding member, the first bending plate having a fixed side and a free side, the fixed side being connected to the second side wall surface of the diversion groove, and the free side being bent toward the space between the first connecting plate and the third shielding member.
[0012] Further, the first bending plate includes: a first plate segment, the fixed side being disposed on the first plate segment, the first plate segment being connected to the second side wall surface; a second plate segment, having a first included angle with the first plate segment, the second plate segment being connected to the first plate segment; a third plate segment, having a second included angle with the second plate segment, the free side being located on the third plate segment, and at least a part of the third plate segment being located between the third shielding member and the first connecting plate.
[0013] Further, the diversion structure further includes: a second bending plate, disposed in the diversion groove and on the second side of the third shielding member, the second bending plate being connected to the second side wall surface of the diversion groove, and at least a part of the second bending plate being bent toward the space between the first connecting plate and the third shielding member.
[0014] Further, the second bending plate includes: a fixed plate segment, connected to the second side wall surface of the diversion groove; a bending plate segment, connected to the fixed plate segment, and at least a part of the bending plate segment being bent toward the space between the first connecting plate and the third shielding member.
[0015] Further, the first shielding member includes: a first connecting body, connected to the second side wall surface of the diversion groove; a first shielding body, connected to the first connecting body, having a third included angle between the first shielding body and the first connecting body, and the first shielding surface being disposed on the first shielding body.
[0016] Further, the first shielding body and the first connecting body are perpendicular to each other.
[0017] Further, the second shielding member includes: a second connecting body, connected to the first side wall surface of the diversion groove; a second shielding body, connected to the second connecting body, having a fourth included angle between the second shielding body and the second connecting body, and the second shielding surface being disposed on the second shielding body.
[0018] Further, the second shielding body and the second connecting body are perpendicular to each other.
[0019] Further, the diversion structure further includes: a liquid inlet channel; a drainage channel, the liquid inlet end of the drainage channel being communicated with the liquid inlet channel, and the liquid outlet end of the drainage channel being communicated with the diversion groove.
[0020] Further, the diversion structure further includes: a first baffle plate, which extends along a first predetermined arc trajectory to enclose a liquid inlet channel; a second baffle plate, which extends along a second predetermined arc trajectory, and the second baffle plate is located outside the first baffle plate and is spaced apart from the first baffle plate to form a drainage channel between the second baffle plate and the first baffle plate.
[0021] Further, the diversion structure further includes an installation area, which is arranged on the side of the diversion groove. The liquid inlet channel and the drainage channel are both arranged in the installation area. The installation area includes two oppositely arranged side wall surfaces; the second baffle plate includes a first arc plate and a second arc plate. The first arc plate is located on the first side of the first baffle plate, and both ends of the first arc plate are respectively connected to the two side wall surfaces. The second arc plate is located on the second side of the second baffle plate, and both ends of the second arc plate are respectively connected to the two side wall surfaces.
[0022] Further, the diversion structure further includes: a mounting member, which is arranged in the diversion groove and is arranged between two adjacent shielding members. The mounting member has a mounting cavity for mounting a water absorption component, and the mounting cavity communicates with the diversion groove; a second connecting plate, the first side of the second connecting plate is connected to the first side wall of the diversion groove or the second side wall of the diversion groove, and the second side of the second connecting plate is connected to the mounting member.
[0023] Further, a third baffle plate is arranged on the outer wall of the mounting member, and the third baffle plate extends in a direction away from the mounting member, and at least a part of the third baffle plate faces the shielding member.
[0024] According to another aspect of the present invention, a warm air blower is provided, including: a wet curtain, which is arranged on a wet curtain bracket; a water absorption component, which is connected to the wet curtain; a water tank; the above-mentioned diversion structure, the water tank communicates with the diversion groove of the diversion structure, and at least a part of the water absorption component is immersed in the diversion groove to absorb the liquid in the diversion groove onto the wet curtain.
[0025] Applying the technical solution of the present invention, the diversion structure includes a diversion groove and shielding members. The shielding members are arranged in the diversion groove, and the shielding members have shielding surfaces. The shielding surfaces are opposite to the first side wall surface of the diversion groove, and / or the shielding surfaces are opposite to the second side wall surface of the diversion groove; there are multiple shielding members, and the multiple shielding members are arranged at intervals along the extension direction of the diversion groove. Such a setting blocks the liquid in various directions in the diversion groove through the shielding members. When the diversion structure is tilted, it can prevent the fluid from stacking on one side, thereby avoiding the liquid in the diversion groove from overflowing. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The specification drawings forming a part of this application are used to provide a further understanding of the present invention. The schematic embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation to the present invention. In the drawings:
[0027] Figure 1 The structural schematic diagram of an embodiment of the diversion structure according to the present invention is shown;
[0028] Figure 2 The top view of the diversion structure according to the present invention is shown; and
[0029] Figure 3 The structural schematic diagram of an embodiment of the warm air blower according to the present invention is shown.
[0030] Among them, the above-mentioned drawings include the following reference numerals:
[0031] 1. Diversion groove;
[0032] 2. Shielding member; 21. First shielding member; 210. First connection body; 211. First shielding body; 22. Second shielding member; 220. Second connection body; 221. Second shielding body; 23. Third shielding member;
[0033] 3. First connecting plate; 4. First bending plate; 41. First plate segment; 42. Second plate segment; 43. Third plate segment;
[0034] 5. Second bending plate; 51. Fixed plate segment; 52. Bending plate segment; 6. Liquid inlet channel; 7. Drainage channel; 71. First blocking plate; 72. Second blocking plate; 721. First arc plate; 722. Second arc plate;
[0035] 8. Installation area; 9. Installation part; 90. Installation cavity; 91. Second connecting plate; 92. Third blocking plate;
[0036] 100. Wet curtain; 200. Wet curtain bracket; 300. Water absorption component; 400. Water tank; 500. Diversion structure. Detailed implementation manners
[0037] It should be noted that, without conflict, the embodiments in the present application and the features in the embodiments may be combined with each other. The present invention will be described in detail below with reference to the drawings and in combination with the embodiments.
[0038] It should be noted that the terms used herein are only for describing the specific implementation manners and are not intended to limit the exemplary implementation manners according to the present application. As used herein, unless otherwise clearly specified in the context, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or their combinations.
[0039] The present invention provides a diversion structure. Please refer to Figures 1 to 3, comprising: a diversion channel 1; a shielding member 2 disposed within the diversion channel 1, the shielding member 2 having a shielding surface that faces the first side wall surface of the diversion channel 1, and / or, the shielding surface faces the second side wall surface of the diversion channel 1; the shielding member 2 is plural, and the plural shielding members 2 are spaced apart along the extending direction of the diversion channel 1.
[0040] According to the diversion structure provided by the present invention, it includes a diversion channel 1 and a shielding member 2. The shielding member 2 is disposed within the diversion channel 1. The shielding member 2 has a shielding surface that faces the first side wall surface of the diversion channel 1, and / or, the shielding surface faces the second side wall surface of the diversion channel 1; the shielding member 2 is plural, and the plural shielding members 2 are spaced apart along the extending direction of the diversion channel 1. By arranging it like this, the shielding member 2 blocks the liquid in various directions within the diversion channel 1. When the diversion structure is tilted, it can prevent the fluid from piling up on one side, thereby avoiding the liquid in the diversion channel 1 from overflowing.
[0041] Specifically, the shielding member 2 includes: a first shielding member 21 disposed within the diversion channel 1, the first shielding member 21 having a first shielding surface that faces the first side wall surface of the diversion channel 1; a second shielding member 22 disposed within the diversion channel 1, the second shielding member 22 having a second shielding surface that faces the second side wall surface of the diversion channel 1, and the first shielding member 21 and the second shielding member 22 are alternately spaced apart. By arranging it like this, when the diversion structure is tilted in the relative direction of the first side wall surface and the second side wall surface, part of the liquid is blocked by the first shielding surface or the second shielding surface. At the same time, part of the liquid will flow towards the tilted direction. In this way, a first water storage area for storing the converging water is formed between the first shielding member 21 and the second shielding member 22 to avoid liquid overflow. Preferably, there are plural first shielding members 21, and the plural first shielding members 21 are spaced apart along the extending direction of the diversion channel 1; there are plural second shielding members 22, and the plural second shielding members 22 are spaced apart along the extending direction of the diversion channel 1.
[0042] In the embodiment provided by the present invention, the diversion channel 1 is a diversion loop, and the shielding member 2 further includes: a third shielding member 23 disposed within the diversion channel 1 and located in the corner area of the diversion channel 1, the third shielding member 23 having a third shielding surface that faces the second side wall surface of the diversion channel 1. It should be noted here that the diversion channel 1 is in a square shape, and there is a corner area between two adjacent flow channels. By arranging the third shielding member 23, when the diversion structure is tilted in the diagonal direction of the diversion channel 1, the third shielding member 23 blocks the liquid. The third shielding member 23 cooperates with the first shielding member 21 and the second shielding member 22 and acts together to be able to block the liquid flowing in various directions when the diversion structure is tilted.
[0043] To ensure the shielding effect of the third shielding member 23 while preventing the third shielding member 23 from blocking the liquid flow during the normal operation of the diversion structure, the third shielding surface is an arc surface.
[0044] During the specific implementation process, as Figure 2 shown, the diversion structure further includes: a first connecting plate 3, the first end of the first connecting plate 3 is connected to the first side wall surface of the diversion groove 1, and the second end of the first connecting plate 3 is connected to the connecting end surface of the third shielding member 23, and the connecting end surface faces the third shielding surface. Such a setting can enable the first connecting plate 3 and the third shielding member 23 to jointly block the liquid. Preferably, the connecting end of the first connecting plate 3 is located at the middle of the third shielding member 23, so that a water storage area is formed between the third shielding member 23 and the first connecting plate 3 to store water when the diversion structure is inclined.
[0045] In the embodiment provided by the present invention, the diversion structure further includes: a first bending plate 4, which is arranged in the diversion groove 1 and on the first side of the third shielding member 23. The first bending plate 4 has a fixed side and a free side. The fixed side is connected to the second side wall surface of the diversion groove 1, and the free side bends towards the space between the first connecting plate 3 and the third shielding member 23. Thus, when the diversion structure is inclined, a water storage area is formed between the first bending plate 4 and the third shielding member 23, and the water flow flows towards the third shielding member 23 or towards the first bending plate 4, and the water flow is blocked by the first bending plate 4 and / or the third shielding member 23.
[0046] Specifically, the first bending plate 4 includes: a first plate segment 41, the fixed side is arranged on the first plate segment 41, and the first plate segment is connected to the second side wall surface; a second plate segment 42, having a first included angle with the first plate segment 41, and the second plate segment 42 is connected to the first plate segment 41; a third plate segment 43, having a second included angle with the second plate segment 42, and the free side is located on the third plate segment 43, and at least part of the third plate segment 43 is located between the third shielding member 23 and the first connecting plate 3. Preferably, the third plate segment 43 is parallel to the first connecting plate 3.
[0047] Furthermore, the diversion structure further includes: a second bending plate 5, which is arranged in the diversion groove 1 and on the second side of the third shielding member 23. The second bending plate 5 is connected to the second side wall surface of the diversion groove 1, and at least part of the second bending plate 5 bends towards the space between the first connecting plate 3 and the third shielding member 23. With such a setting, a water storage area is jointly formed among the first bending plate 4, the third shielding member 23 and the second bending plate 5 to store the water flow converging to the corner when the diversion structure is inclined. Since there are also a plurality of first shielding members 21 and second shielding members 22 in the diversion groove 1, the first shielding members 21 and the second shielding members 22 will block most of the water flow in the flow channel, and only a small part of the water flow will converge into the water storage area due to the action of gravity, thus reducing the burden on the water storage area at the corner and avoiding the water flow from overflowing.
[0048] Specifically, the second bending plate 5 includes: a fixing plate section 51 connected to the second side wall surface of the diversion groove 1; a bending plate section 52 connected to the fixing plate section 51, and at least part of the bending plate section 52 is bent towards the space between the first connecting plate 3 and the third shielding member 23. Preferably, the bending plate section 52 is parallel to the first connecting plate 3.
[0049] In the embodiment provided by the present invention, as Figure 1 shown, the first shielding member 21 includes: a first connecting body 210 connected to the second side wall surface of the diversion groove 1; a first shielding body 211 connected to the first connecting body 210, there is a third included angle between the first shielding body 211 and the first connecting body 210, and the first shielding surface is arranged on the first shielding body 211. Preferably, the first shielding body 211 is perpendicular to the first connecting body 210. Such a setting facilitates the installation of the first shielding body 211 while also being able to increase the blocking effect on the water flow when the diversion structure is tilted.
[0050] In specific implementation, the second shielding member 22 includes: a second connecting body 220 connected to the first side wall surface of the diversion groove 1; a second shielding body 221 connected to the second connecting body 220, there is a fourth included angle between the second shielding body 221 and the second connecting body 220, and the second shielding surface is arranged on the second shielding body 221. Preferably, the second shielding body 221 is perpendicular to the second connecting body 220. Such a setting facilitates the installation of the second shielding body 221 while also being able to increase the blocking effect on the water flow when the diversion structure is tilted. Among them, as Figure 2 shown, both the first shielding member 21 and the second shielding member 22 are T-shaped.
[0051] In the process of specific implementation, in order to facilitate the introduction of water flow into the diversion groove 1, the diversion structure further includes: a liquid inlet channel 6; a diversion channel 7, the liquid inlet end of the diversion channel 7 is communicated with the liquid inlet channel 6, and the liquid outlet end of the diversion channel 7 is communicated with the diversion groove 1.
[0052] Specifically, the diversion structure further includes: a first blocking plate 71, the first blocking plate 71 extends along a first predetermined arc trajectory to enclose the liquid inlet channel 6; a second blocking plate 72, the second blocking plate 72 extends along a second predetermined arc trajectory, the second blocking plate 72 is located outside the first blocking plate 71 and is spaced from the first blocking plate 71 to form a diversion channel 7 between the second blocking plate 72 and the first blocking plate 71. Such a setting blocks the water flow through the first blocking plate 71 and the second blocking plate 72. Since both the first blocking plate 71 and the second blocking plate 72 extend along an arc trajectory, an enclosing effect on the water flow is formed, and no matter which angle it is tilted towards, the first blocking plate 71 and the second blocking plate 72 can be used to block the water flow.
[0053] Among them, the diversion structure further includes an installation area 8, which is arranged on the side of the diversion groove 1. The liquid inlet channel 6 and the drainage channel 7 are both arranged in the installation area 8. The installation area 8 includes two oppositely arranged side wall surfaces; the second baffle 72 includes a first arc plate 721 and a second arc plate 722. The first arc plate 721 is located on the first side of the first baffle 71, and both ends of the first arc plate 721 are respectively connected to the two side wall surfaces. The second arc plate 722 is located on the second side of the second baffle 72, and both ends of the second arc plate 722 are respectively connected to the two side wall surfaces. Such a setting can utilize the side walls of the installation area 8 itself to realize the installation of the second baffle 72, reducing the cost.
[0054] In the embodiment provided by the present invention, the diversion structure further includes: a mounting member 9, which is arranged in the diversion groove 1. The mounting member 9 is arranged between two adjacent shielding members 2. The mounting member 9 has a mounting cavity 90 for mounting the water absorption member 300, and the mounting cavity 90 communicates with the diversion groove 1; a second connecting plate 91, the first side of the second connecting plate 91 is connected to the first side wall of the diversion groove 1 or the second side wall of the diversion groove 1, and the second side of the second connecting plate 91 is connected to the mounting member 9. By using the interaction between the second connecting plate 91, the first connecting body 210 and the second connecting body 220 to block the water flow when tilting along the side wall direction of the diversion groove 1, wherein the second connecting plate 91, the first connecting body 210 and the second connecting body 220 are parallel to each other. Preferably, there are multiple mounting members 9, and the multiple mounting members 9 are arranged at intervals along the extending direction of the diversion groove 1.
[0055] Specifically, a third baffle 92 is arranged on the outer wall of the mounting member 9. The third baffle 92 extends in a direction away from the mounting member 9, and at least part of the third baffle 92 faces the shielding member 2. Among them, the third baffle 92 can be one or more, mainly acting together with the shielding member 2 when the diversion structure is tilted to block the water flow from converging towards the tilted direction.
[0056] As Figure 3 shown, the present invention also provides a warm air blower, including: a wet curtain 100, which is arranged on a wet curtain bracket 200; a water absorption member 300, which is connected to the wet curtain 100; a water tank 400; the diversion structure of the above embodiment. The water tank 400 communicates with the diversion groove 1 of the diversion structure 500, and at least part of the water absorption member 300 is immersed in the diversion groove 1 to suck the liquid in the diversion groove 1 onto the wet curtain 100.
[0057] Specifically, the water tank 400 is installed in the installation area 8. An outlet boss is arranged in the liquid inlet channel 6, and a one-way valve is arranged at the water outlet of the water tank 400, so that the water flow in the water tank 400 can continuously flow into the diversion groove 1 to provide a water source for the water absorption member 300.
[0058] In the heater of the present invention, by using the diversion structure 500 of the above embodiment, during the process of carrying the heater, even if the fuselage tilts, under the action of the shielding member 2 in the diversion groove 1, it can be avoided that the water in the diversion groove 1 converges to a certain area under the action of gravity, so as to prevent the water from overflowing the diversion groove and causing damage to the electrical components in the heater or electric shock to the operator. Since a plurality of first shielding members and second shielding members are arranged in the direct current direction of the flow channel, and a third shielding member is also arranged at the corner, the first shielding member, the second shielding member and the third shielding member act together to block the water flowing along the action of gravity, and at the same time form a water storage area where the water is likely to gather, so that there will be no excessive accumulated water in the flow channel to cause the risk of water overflow. When tilted, the water in the water flow channel parts at the bottom and the top still remains in the water storage tanks at the corresponding positions and will not gather with the accumulated water in other places; at the same time, a one-way valve is arranged on the water tank 400, and the water tank 400 will timely supply the consumed water in the diversion groove 1, and the new water source continuously flows into the diversion groove 1, making it not easy for bacteria to breed in the diversion groove 1, and improving the safety and cleanliness of the air blown out by the heater.
[0059] From the above description, it can be seen that the above embodiments of the present invention achieve the following technical effects:
[0060] According to the diversion structure provided by the present invention, it includes a diversion groove 1 and a shielding member 2. The shielding member 2 is arranged in the diversion groove 1. The shielding member 2 has a shielding surface, and the shielding surface is opposite to the first side wall surface of the diversion groove 1, and / or the shielding surface is opposite to the second side wall surface of the diversion groove 1; there are a plurality of shielding members 2, and the plurality of shielding members 2 are arranged at intervals along the extension direction of the diversion groove 1. By setting in this way, the shielding member 2 blocks the liquid in various directions in the diversion groove 1. When the diversion structure tilts, it can be avoided that the fluid accumulates on one side, and further avoids the liquid in the diversion groove 1 from overflowing.
[0061] It should be noted that the terms "first", "second", etc. in the description, claims and drawings of the present application are used to distinguish similar objects, and do not have to be used to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances, so that the embodiments of the present application described here can be implemented in an order other than those illustrated or described here. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or device including a series of steps or units does not have to be limited to those steps or units clearly listed, but may include other steps or units not clearly listed or inherent to these processes, methods, products or devices.
[0062] For ease of description, spatial relative terms, such as "above", "over", "on the upper surface", "upper", etc., may be used herein to describe the spatial positional relationship of one device or feature to other devices or features as shown in the figures. It should be understood that the spatial relative terms are intended to encompass different orientations in use or operation in addition to the orientation depicted in the figures of the device. For example, if the device in the figures is inverted, a device described as "above" or "over" other devices or structures will then be positioned "below" or "beneath" the other devices or structures. Thus, the exemplary term "above" can include both the orientations of "above" and "below". The device may also be positioned in other different ways (rotated 90 degrees or at other orientations), and the corresponding interpretations of the spatial relative descriptions used herein will be made accordingly.
[0063] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention may have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A diversion structure, characterized in that, Comprising: A diversion groove (1), the diversion groove (1) being a diversion circuit formed by inner and outer circumferential walls; the inner and outer circumferential walls of the diversion groove (1) respectively form opposite first side wall surfaces and second side wall surfaces; A shielding member (2); The shielding members (2) are multiple, and the multiple shielding members (2) are arranged at intervals along the extending direction of the diversion groove (1); The shielding member (2) comprises: A first shielding member (21) and a second shielding member (22), which are alternately arranged at intervals in the diversion groove (1). The first shielding member (21) has a first shielding surface opposite to the first side wall surface; the second shielding member (22) has a second shielding surface opposite to the second side wall surface; a third shielding member (23), which is arranged in the diversion groove (1) and located in the corner area of the diversion groove (1), and the third shielding member (23) has a third shielding surface opposite to the second side wall surface; The first shielding member (21) comprises: A first connecting body (210), which is connected to the second side wall surface; A first shielding body (211), which is connected to the first connecting body (210). There is a third included angle between the first shielding body (211) and the first connecting body (210), and the first shielding surface is arranged on the first shielding body (211); The second shielding member (22) comprises: A second connecting body (220), which is connected to the first side wall surface; A second shielding body (221), which is connected to the second connecting body (220). There is a fourth included angle between the second shielding body (221) and the second connecting body (220), and the second shielding surface is arranged on the second shielding body (221); The diversion structure further comprises: A first connecting plate (3), the first end of the first connecting plate (3) is connected to the first side wall surface, and the second end of the first connecting plate (3) is connected to the third shielding member (23); A first bending plate (4), which is arranged in the diversion groove (1) and located on the first side of the third shielding member (23). The first bending plate (4) has a fixed side and a free side. The fixed side is connected to the second side wall surface of the diversion groove (1), and the free side bends towards the connection between the first connecting plate (3) and the third shielding member (23).
2. The diversion structure according to claim 1, wherein The third shielding surface is an arc surface.
3. The diversion structure according to claim 1, characterized in that The second end of the first connecting plate (3) is connected to the connection end surface of the third shielding member (23), and the connection end surface is opposite to the third shielding surface.
4. The diversion structure according to claim 1, wherein The first bending plate (4) comprises: A first plate segment (41), the fixed side is arranged on the first plate segment (41), and the first plate segment is connected to the second side wall surface; A second plate segment (42), which has a first included angle with the first plate segment (41), and the second plate segment (42) is connected to the first plate segment (41); A third plate segment (43), which has a second included angle with the second plate segment (42), and the free side is located on the third plate segment (43). At least part of the third plate segment (43) is located between the third shielding member (23) and the first connecting plate (3).
5. The diversion structure according to claim 3, characterized in that, The diversion structure further includes: A second bending plate (5), disposed in the diversion groove (1) and on the second side of the third shielding member (23), the second bending plate (5) being connected to the second side wall surface of the diversion groove (1), and at least a part of the second bending plate (5) being bent toward the space between the first connecting plate (3) and the third shielding member (23).
6. The diversion structure according to claim 5, characterized in that The second bending plate (5) includes: A fixed plate section (51), connected to the second side wall surface of the diversion groove (1); A bending plate section (52), connected to the fixed plate section (51), and at least a part of the bending plate section (52) being bent toward the space between the first connecting plate (3) and the third shielding member (23).
7. The diversion structure according to claim 1, characterized in that, The first shielding body (211) is perpendicular to the first connecting body (210).
8. The diversion structure according to claim 1, wherein The second shielding body (221) is perpendicular to the second connecting body (220).
9. The diversion structure according to any one of claims 1 to 6, characterized in that, The diversion structure further includes: A liquid inlet channel (6); A drainage channel (7), the liquid inlet end of the drainage channel (7) being communicated with the liquid inlet channel (6), and the liquid outlet end of the drainage channel (7) being communicated with the diversion groove (1).
10. The diversion structure according to claim 9, characterized in that, The diversion structure further includes: A first blocking plate (71), the first blocking plate (71) extending along a first predetermined arc trajectory to enclose the liquid inlet channel (6); A second blocking plate (72), the second blocking plate (72) extending along a second predetermined arc trajectory, the second blocking plate (72) being located outside the first blocking plate (71) and spaced apart from the first blocking plate (71) to form the drainage channel (7) between the second blocking plate (72) and the first blocking plate (71).
11. The diversion structure according to claim 10, wherein, The diversion structure further includes an installation area (8), the installation area (8) being disposed on the side of the diversion groove (1), the liquid inlet channel (6) and the drainage channel (7) both being disposed in the installation area (8), and the installation area (8) including two oppositely disposed side wall surfaces; The second blocking plate (72) includes a first arc plate (721) and a second arc plate (722), the first arc plate (721) being located on the first side of the first blocking plate (71), both ends of the first arc plate (721) being connected to the two side wall surfaces respectively, the second arc plate (722) being located on the second side of the second blocking plate (72), and both ends of the second arc plate (722) being connected to the two side wall surfaces respectively.
12. The diversion structure according to any one of claims 1 to 6, characterized in that, The diversion structure further includes: An installation member (9), disposed in the diversion groove (1), the installation member (9) being disposed between two adjacent shielding members (2), the installation member (9) having an installation cavity (90) for installing a water absorption member (300), and the installation cavity (90) being communicated with the diversion groove (1); A second connecting plate (91), the first side of the second connecting plate (91) being connected to the first side wall of the diversion groove (1) or the second side wall of the diversion groove (1), and the second side of the second connecting plate (91) being connected to the installation member (9).
13. The diversion structure according to claim 12, wherein A third blocking plate (92) is provided on the outer wall of the mounting member (9). The third blocking plate (92) extends in a direction away from the mounting member (9), and at least a part of the third blocking plate (92) faces the shielding member (2).
14. A heater, characterized in that, Comprising: A wet curtain (100) provided on a wet curtain bracket (200); A water absorption member (300) connected to the wet curtain (100); A water tank (400); The flow guiding structure according to any one of claims 1 to 13, wherein the water tank (400) communicates with the flow guiding groove (1) of the flow guiding structure, and at least a part of the water absorption member (300) is immersed in the flow guiding groove (1) to suck the liquid in the flow guiding groove (1) onto the wet curtain (100).
Citation Information
Patent Citations
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