Air conditioner and range hood
By integrating the evaporation and condensation components of the air-conditioning hood into one shell and adopting front and rear arrangement, the problem of insufficient installation space of the air-conditioning hood is solved, achieving a larger range of installation applicability and a softer air outlet effect.
Patent Information
- Application Number
- CN202211105694.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-09
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2042-09-09
AI Technical Summary
The installation space of the air conditioning structure and hood structure in traditional air conditioning hoods is limited, resulting in an increase in the installation conditions of the air conditioning hoods and a reduction in its scope of application.
The evaporation assembly and condensation assembly of the air conditioner hood are integrated into one housing, and the incoming air is drained to the evaporation assembly and condensation assembly through the diverter, respectively, and the front and rear arrangement is adopted to improve space utilization and compactness.
It improves the overall compactness of the air conditioner hood, reduces the height size of the entire machine, expands the scope of application of the installation size, and makes the air discharge more dispersed and soft.
Smart Images

Figure CN115406024B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of kitchen appliances, and particularly to an air - conditioner range hood. Background Art
[0002] With the improvement of people's requirements for the quality of life, air - conditioner range hoods are used more and more widely in kitchens. The air - conditioner range hood can not only extract the cooking fumes and purify the kitchen environment, but also adjust the kitchen temperature and improve the cooking experience of users in the kitchen.
[0003] In traditional technologies, the condenser and evaporator of the air - conditioner structure in an air - conditioner range hood usually each require a certain installation space. However, limited by the kitchen space, especially the space where the cooking range is located, the size of the space for installing the air - conditioner range hood is often very limited, and this limited space needs to accommodate both the air - conditioner structure and the range - hood structure. Therefore, without changing the size of the range - hood structure, if the size of the air - conditioner structure is too large, it will increase the installation requirements of the air - conditioner range hood and reduce its applicable range. Summary of the Invention
[0004] Based on this, it is necessary to provide an air - conditioner range hood with a more compact structure in view of the above problems.
[0005] An air - conditioner range hood, the air - conditioner range hood comprising:
[0006] A range - hood structure; and
[0007] An air - conditioner structure, including a housing, a shunt member, an evaporation assembly, and a condensation assembly. The housing includes a front plate and a back plate arranged opposite to each other in the front - to - back direction, and the front plate and the back plate jointly define the internal space of the housing; the evaporation assembly and the condensation assembly are arranged in sequence in the front - to - back direction in the internal space; the shunt member is arranged between the evaporation assembly and the condensation assembly and is used for respectively diverting the air entering the internal space to the evaporation assembly and the condensation assembly.
[0008] In one embodiment, the air - conditioner structure further includes a base for carrying the evaporation assembly, and a cavity is formed by enclosing the base, and the cavity is used for guiding air to the condensation assembly.
[0009] In one embodiment, the base includes a bearing plate for carrying the evaporation assembly and two support end plates. The two support end plates are relatively arranged at both ends of the bearing plate in the width direction intersecting with the front - to - back direction, and the bearing plate and the support end plates enclose to form the cavity;
[0010] Wherein, the support end plate is provided with an air inlet hole.
[0011] In one embodiment, the flow divider and the base are sequentially arranged between the evaporation assembly and the condensation assembly in the height direction intersecting the front-rear direction.
[0012] In one embodiment, the housing further includes a top plate connected to the top sides of the front plate and the rear plate, and an air inlet portion is provided on the top plate, and air enters the internal space through the air inlet portion;
[0013] An air outlet communicating with the internal space is provided on the front plate.
[0014] In one embodiment, the evaporation assembly includes a cross-flow fan and a duct housing, the cross-flow fan is installed in the duct housing, and the duct housing communicates with the air outlet;
[0015] The cross-flow fan forms a cross-flow of air flowing from the air inlet portion to the air outlet in the duct housing.
[0016] In one embodiment, the evaporation assembly further includes an evaporation heat exchanger, and the evaporation heat exchanger is disposed on the periphery of the cross-flow fan and on the air path of the cross-flow of air between the air inlet portion and the cross-flow fan.
[0017] In one embodiment, the evaporation assembly further includes an outer cover, the outer cover covers the surface of the evaporation heat exchanger facing away from the cross-flow fan, and an air passing opening is provided thereon.
[0018] In one embodiment, the air conditioner structure further includes a swing assembly, and the swing assembly is disposed at the air outlet for controllably changing the direction of the air flow at the air outlet.
[0019] In one embodiment, the range hood structure has a range hood chamber and a centrifugal fan disposed in the range hood chamber, the centrifugal fan has an air suction port and an air exhaust port, and the top plate is further provided with a smoke exhaust hole communicating with the air exhaust port.
[0020] In the above air-conditioning range hood, the evaporation component and the condensation component of the air-conditioning structure are not completely separated into two independent components, but are integrally integrated into a single housing. The airflows required by the evaporation component and the condensation component are separated from the air entering the internal space of the housing under the action of a flow splitter. A more integrated design can effectively improve the utilization rate of the internal space, enhance the compactness of the air-conditioning structure, and thus facilitate the control of the overall dimensions of the air-conditioning range hood to meet the installation size requirements within a wider range. In addition, compared with the arrangement where the evaporation component and the condensation component are arranged vertically, the front-back arrangement can more effectively utilize the space in the front-back direction, i.e., the body thickness direction, of the range hood air conditioner, reducing the overall height dimension. And compared with the left-right arrangement, the front-back arrangement can allow the evaporation component located in the front to have a wide range of outward blowing at the same width dimension, making the air outlet more dispersed and gentle. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0022] Figure 1 FIG. 1 is a schematic structural diagram of an air-conditioning range hood according to an embodiment of the present invention;
[0023] Figure 2 FIG. Figure 1 2 is a schematic cross-sectional view of the air-conditioning range hood shown in FIG. 1;
[0024] Figure 3 FIG. Figure 2 3 is a partial structural exploded view of the air-conditioning structure in the air-conditioning range hood shown in FIG. 1;
[0025] Figure 4 FIG. Figure 3 4 is a schematic structural diagram of another angle of the base in the air-conditioning structure shown in FIG. 3.
[0026] Description of reference numerals: 100, air conditioner range hood; 10, air conditioner structure; 11, housing; 111, front panel; 112, back panel; 113, top panel; 114, bottom panel; 115, side panel; 12, flow divider; 13, evaporation assembly; 131, cross-flow fan; 133, air duct housing; 1351, motor; 1353, motor fixing bracket; 1355, bearing; 137, evaporation heat exchanger; 1371, evaporation fins; 1373, outer cover; 1375, fin fixing bracket; 15, condensation assembly; 151, condensation heat exchanger; 153, condensation fan; 17, base; 171, bearing plate; 173, supporting end plate; 175, reinforcing rib; 19, air-sweeping assembly; 20, range hood structure; 21, centrifugal fan; Z, internal space; J, air inlet part; C, air outlet; Y, range hood duct; P, smoke exhaust hole; K, air passing hole; Q, cavity; S, air intake hole. Detailed implementation manners
[0027] In order to make the above objects, features and advantages of the present invention more obvious and understandable, the following will describe the detailed implementation manners of the present invention with reference to the accompanying drawings. Many specific details are set forth in the following description in order to fully understand the present invention. However, the present invention can be implemented in many other ways different from those described herein, and those skilled in the art can make similar improvements without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.
[0028] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation of the present invention.
[0029] In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one of such features. In the description of the present invention, "a plurality" means at least two, such as two, three, etc., unless otherwise specifically defined.
[0030] In the present invention, unless otherwise clearly defined or limited, the terms "installed", "connected", "joined", "fixed", etc. shall be construed in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the internal communication of two components or the interaction relationship between two components, unless otherwise clearly defined. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0031] In the present invention, unless otherwise clearly defined or limited, the first feature being "on" or "under" the second feature may be that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature being "above", "over" and "on top of" the second feature may be that the first feature is directly above or obliquely above the second feature, or merely indicates that the first feature is at a higher level than the second feature in terms of horizontal height. The first feature being "under", "beneath" and "underneath" the second feature may be that the first feature is directly below or obliquely below the second feature, or merely indicates that the first feature is at a lower level than the second feature in terms of horizontal height.
[0032] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or there may also be an intermediate element. When an element is considered to be "connected" to another element, it can be directly connected to the other element or there may be an intermediate element at the same time. The terms "vertical", "horizontal", "up", "down", "left", "right" and similar expressions used herein are for illustrative purposes only and do not represent the only implementation.
[0033] Please refer to Figure 1 and Figure 2 , an embodiment of the present invention provides an air-conditioning range hood 100, including an air-conditioning structure 10 and a range hood structure 20. The air-conditioning structure 10 is used to blow cold air or hot air outwards to adjust the external environmental temperature, and the range hood structure 20 is located below the air-conditioning structure 10 and is used to suck the cooking fumes generated below and condense the sucked cooking fumes into liquid oil droplets or directly discharge them to the outside. The air-conditioning structure 10 and the range hood structure 20 are arranged in sequence in the height direction, and the air-conditioning structure 10 is located above the range hood structure 20.
[0034] The air conditioner structure 10 includes a housing 11, a flow divider 12, an evaporation assembly 13, and a condensation assembly 15. The housing 11 includes a front plate 111 and a back plate 112 that are oppositely arranged in the front-rear direction. The front plate 111 and the back plate 112 jointly define an internal space Z of the housing 11. The evaporation assembly 13 and the condensation assembly 15 are sequentially arranged in the internal space Z in the front-rear direction. The flow divider 12 is disposed between the evaporation assembly 13 and the condensation assembly 15 and is used to respectively divert the air entering the internal space Z to the evaporation assembly 13 and the condensation assembly 15.
[0035] Wherein, the front-rear direction is the thickness direction of the entire air conditioner and range hood 100, corresponding to Figure 1 and Figure 2 the X direction in. Specifically, after the air conditioner and range hood 100 is installed, the front plate 111 is in an outer position, and its outer surface faces the indoor space. The back plate 112 is more inward, and its outer surface faces the inner structure such as the wall. The evaporation assembly 13 and the condensation assembly 15 are sequentially arranged in the internal space Z in the front-rear direction, where the evaporation assembly 13 is located in the front and the condensation assembly 15 is located in the rear, and respectively exchange heat with the air flow diverted by the flow divider 12. In addition, it can be understood that, to achieve its normal function, the above air conditioner structure 10 generally also needs to include a compressor, a throttling device, etc., which will not be elaborated here.
[0036] In the above air conditioner and range hood 100, the evaporation assembly 13 and the condensation assembly 15 of the air conditioner structure 10 are not completely separated to form two independent components, but are jointly integrated into a housing 11. The air flows required by the evaporation assembly 13 and the condensation assembly 15 are separated from the air entering the internal space Z of the housing 11 under the action of the flow divider 12. A more integrated design can effectively improve the utilization rate of the internal space Z, improve the compactness of the air conditioner structure 10, and thus facilitate controlling the overall size of the air conditioner and range hood to meet the installation size requirements in a larger range. In addition, compared with the way of arranging the evaporation assembly 13 and the condensation assembly 15 vertically, the way of arranging them in the front-rear direction can more effectively utilize the space of the air conditioner and range hood 100 in the front-rear direction, that is, the body thickness direction, and reduce the height dimension of the whole machine. And compared with the way of arranging them left and right, the way of arranging them in the front-rear direction can allow the evaporation assembly 13 located in the front to obtain a wide blowing range outward under the same width dimension, and the air outlet is more dispersed and gentle.
[0037] Please also refer to Figure 3 , further, the housing 11 further includes a top plate 113 connected to the top sides of the front plate 111 and the back plate 112. The top plate 113 is provided with an air inlet J, and air enters the internal space Z of the housing 11 through the air inlet J. The front plate 111 is provided with an air outlet C communicating with the internal space Z. In addition, the housing 11 further includes a bottom plate 114 connected to the bottom sides of the front plate 111 and the back plate 112. The bottom plate 114 and the top plate 113 are oppositely arranged in the height direction.
[0038] The flow divider 12 is arranged near the air inlet part J so as to respectively divert the air entering from the air inlet part J to the evaporation assembly 13 and the condensation assembly 15. The air inlet part J is a plurality of small holes opened on the top plate 113. In this way, on the one hand, when the number of small holes is sufficient, sufficient air intake can be ensured, and on the other hand, the small holes can also simply filter the air to prevent relatively large sundries from entering the interior of the air conditioner structure 10.
[0039] The outer surface of the front plate 111 faces the indoor space, and the evaporation assembly 13 is also arranged closer to the front plate 111. Arranging the air outlet C on the front plate 111 can minimize the air outlet path of the evaporation assembly, which is beneficial to the air outlet of the evaporation assembly 13 and reduces wind loss. The reason for arranging the air inlet part J on the top plate 113 is that on the one hand, after the air conditioner range hood 100 is installed, it is usually necessary to form a fit or adhesion with cabinets, walls, etc. on both sides, making it difficult to achieve sufficient air intake. On the other hand, it is because the air inlet part J at the top is far from the smoke inlet of the range hood structure 20, the air is relatively clean, and it is easy to form a smooth and continuous cross-flow of air between the air inlet part J at the top and the air outlet C on the front plate 111.
[0040] It can be understood that the housing 11 should also include side plates 115 on both sides. The front plate 111, the back plate 112, the top plate 113, and the bottom plate 114 jointly enclose and define the internal space Z of the housing 11, so that the internal space Z of the housing 11 can form a complete and relatively closed cavity to carry and install various components.
[0041] Furthermore, the range hood structure 20 has a range hood cavity Y and a centrifugal fan 21 arranged in the range hood cavity Y. The centrifugal fan 21 has an air suction port and an air exhaust port. When it operates, it can suck air flow from the air suction port and then discharge it from the air exhaust port. Correspondingly, the top plate 113 is also provided with a smoke exhaust hole P communicating with the air exhaust port of the centrifugal fan 21. The oil fume sucked by the centrifugal fan 21 through the air suction port is discharged through the smoke exhaust hole P from the air exhaust port.
[0042] Furthermore, the evaporation assembly 13 includes a cross-flow impeller 131 and a duct housing 133. The cross-flow impeller 131 is installed in the duct housing 133, and the duct housing 133 communicates with the air outlet C. The cross-flow impeller 131 forms a cross-flow of air flowing from the air inlet part J to the air outlet C in the duct housing 133
[0043] When the cross-flow impeller 131 rotates at a high speed, it can generate an eccentric eddy current under the restriction of the duct housing 133, and then generate a cross-flow of air along a set route. The duct housing 133 communicates with the air outlet C, and thus realizes the cross-flow of air flowing from the air inlet part J on the top plate 113 to the air outlet C.
[0044] The cross-flow impeller 131 can be used to generate a lateral air current when rotating. Understandably, the cross-flow impeller 131 is horizontally arranged within the internal space Z, that is, the longitudinal direction of the cross-flow impeller 131 is consistent with the width direction of the air-conditioning structure 10. The cross-flow generated by the cross-flow impeller 131 can make full use of the width dimension of the air-conditioning structure 10 in the horizontal direction. Only by opening a suitable air outlet C on the front panel 111 can a wide-coverage crosswind be obtained. Compared with ordinary fans, the coverage range is greatly improved, and the air outlet is more dispersed and gentle, providing a good experience.
[0045] Specifically, the evaporation assembly 13 further includes a motor 1351 and a motor fixing bracket 1353. The motor 1351 is drivingly connected to one end of the cross-flow impeller 131 and is fixedly connected to the air duct housing 133 through the motor fixing bracket 1353. The other end of the cross-flow impeller 131 is rotatably connected to the air duct housing 133 through a bearing 1355, and a buffer rubber ring is provided between the bearing 1355 and the air duct housing 133.
[0046] The motor 1351 is controlled to drive the cross-flow impeller 131 to rotate around its own axis. One end of the cross-flow impeller 131 away from the motor 1351 is ensured to be able to rotate relative to the air duct housing 133 through the bearing 1355, and the vibration during rotation is reduced through the buffer rubber ring, reducing the operating noise. The cross-flow impeller 131 can be constructed with an axial hole along its own axis, and the output shaft of the motor 1351 is installed in the axial hole to form a driving connection with the cross-flow impeller.
[0047] In some embodiments, the evaporation assembly 13 further includes an evaporation heat exchanger 137. The evaporation heat exchanger 137 is arranged on the circumferential side of the cross-flow impeller 131 and is located on the air path of the cross-flow air between the air inlet part J and the cross-flow impeller 131.
[0048] The evaporation heat exchanger 137 is composed of a plurality of evaporation fins 1371. The plurality of evaporation fins 1371 are arranged in a surrounding manner on the circumferential side of the cross-flow impeller 131. When the cross-flow impeller 131 rotates at a high speed to generate cross-flow air, the cross-flow air will flow through the evaporation fins 1371 arranged on the air path and exchange heat with them sufficiently.
[0049] Furthermore, the evaporation assembly 13 further includes an outer cover 1373 and a fin fixing bracket 1375. The outer cover 1373 covers the surface of the evaporation heat exchanger 137 facing away from the cross-flow impeller 131, and an air passing opening J is provided thereon. The fin fixing bracket 1375 connects one end of the evaporation heat exchanger 137 for fixing the evaporation heat exchanger 137.
[0050] The shape of the outer cover 1373 should match the shape of the evaporation heat exchanger 137, and there should be a gap between the outer cover and the evaporation heat exchanger 137. Its air inlet K should have a one-to-one correspondence with the evaporation fins 1371. The external air first enters through the air inlet part J, and then is introduced into the evaporation fins 1371 through the air inlet K for heat exchange. Under the guidance of the air inlet K, the air flow can accurately flow to and pass through the evaporation fins 1371 to achieve the purpose of sufficient heat exchange. The fixing frame cooperates with the air duct housing 133, and there is an installation position for the bearing 1355 between them, and the buffer rubber ring is pressed tightly up and down.
[0051] Furthermore, the condensation assembly 15 further includes a condensation heat exchanger 151, a condensation fan 153, etc. Under the action of the condensation fan 153, the air flow enters from the air inlet part J of the top plate 113 and passes through the condensation heat exchanger 151 under the guidance of the flow dividing member 12 for heat exchange with it. The bottom plate is provided with a heat exhaust port communicating with the smoke machine chamber Y in the smoke machine structure. The air flow after heat exchange with the condensation heat exchanger 151 is blown by the condensation fan 153 into the smoke machine chamber Y through the heat exhaust port, and is sucked into the suction port of the centrifugal fan 21 together with the oil fume in the smoke machine chamber Y and discharged from the exhaust port along the smoke exhaust hole P. Among them, in this specific embodiment, the condensation fan 153 is a centrifugal fan, which also has a suction port and an exhaust port. The exhaust port communicates with the heat exhaust port. When it operates, it can drive the air flow to enter from the air inlet part J, flow through the condensation heat exchanger 151 and then enter the suction port, and finally be blown into the smoke machine chamber Y by the exhaust port through the heat exhaust port.
[0052] Please refer to Figure 4 , in some embodiments, the air conditioner structure 10 further includes a base 17 for carrying the evaporation assembly 13. The base 17 encloses a cavity Q, and the cavity Q is used to guide air to the condensation assembly 15. The base 17 is arranged on the bottom plate 114.
[0053] The cavity Q can be used to guide air to the condensation assembly 15 for heat exchange with it, so as to effectively improve the space utilization rate inside the housing 11 and make full use of the part of the space occupied by the base 17. The condensation heat exchanger 151 is erected behind the base 17, and the air in the cavity Q can cool and dissipate heat from the lower end of the condensation heat exchanger 151. In addition, the cavity Q can also be used to install some other components.
[0054] Furthermore, the base 17 includes a bearing plate 171 for carrying the evaporation assembly 13 and two supporting end plates 173. The two supporting end plates 173 are oppositely arranged at both ends of the bearing plate 171 in the width direction intersecting with the front-rear direction. The bearing plate 171 and the supporting end plates 173 enclose the cavity Q.
[0055] The carrier plate 171 directly supports the air duct housing 133, which is located below the air duct housing 133 and has a shape matching that of the air duct housing 133. Since the air duct housing 133 needs to form an air flow towards the air outlet C, its shape is arc-shaped. Correspondingly, the carrier plate 171 is also arc-shaped. The cavity Q is formed below the carrier plate 171. It is easy to know that the cavity Q formed by the carrier plate 171 facing the air duct housing 133 and the support end plates 173 at both ends has an opening facing the condensation assembly 15, and air can flow from the opening towards the condensation assembly 15.
[0056] Further, the support end plate 173 is provided with an air inlet hole S.
[0057] There is a gap between the support end plate 173 and the side plate 115. The air flow can be drawn by the condensation fan 153 and enter the cavity Q through the air inlet hole S to cool and dissipate heat from the lower end of the condensation heat exchanger 151, improving the heat dissipation effect and heat exchange efficiency of the condensation heat exchanger 151, and then enhancing the overall operating efficiency of the condensation assembly 15.
[0058] Furthermore, at least one reinforcing rib 175 is configured on the surface of the carrier plate 171 facing the cavity Q.
[0059] The carrier plate 171 has a load-bearing function, so there are certain requirements for its structural strength. The reinforcing rib 175 can effectively improve the structural strength of the carrier plate 171 on the premise of minimizing the impact on the size of the cavity Q.
[0060] In some embodiments, the flow divider 12 and the base 17 are sequentially arranged between the evaporation assembly 13 and the condensation assembly 15 in the height direction intersecting the front-rear direction.
[0061] Among them, the flow divider 12 is located above, and the base 17 is located below. Together, they separate the evaporation assembly 13 and the condensation assembly 15 in the front-rear direction, forming two relatively independent air ducts, preventing the air flow flowing towards and exchanging heat with the evaporation heat exchanger 137 and the air flow flowing towards and exchanging heat with the condensation heat exchanger 151 from interfering with each other.
[0062] Further, the flow divider 12 is plate-shaped. Its first end is fixed to the upper end of the base 17, and the second end extends towards the top plate 113. The air entering from the air inlet part J of the top plate 113 is divided by the flow divider 12, forming two air flows that blow downwards along both sides of the flow divider 12 towards the evaporation assembly 13 and the condensation assembly 15 respectively.
[0063] In this specific embodiment, the first end of the flow divider 12 is connected to the outer cover 1373, and the second end opposite to the first end in the height direction extends towards the top plate 113, and the second end is closer to the front plate 111 than the first end. The second end of the flow divider 12 is inclined close to the front plate 111, which can increase the space at the upper end of the condensation heat exchanger 151 and contribute to its heat dissipation. The entire flow divider 12 is located above the air duct housing 133, while the base 17 is located below the air duct housing 133. It can be understood that in some other embodiments, the extension range of the flow divider 12 can be adjusted adaptively. The first end can be connected to the air duct housing 133 or extend downward and be directly connected to the base 17, etc. The distance between the second end and the top plate 113 can also be adjusted adaptively, as long as the air entering the internal space Z can be diverted separately and the interference between the two can be avoided, which is not specifically limited herein.
[0064] Please refer to again Figure 1 , in some embodiments, the air conditioner structure 10 further includes a sweeping component 19, which is arranged at the air outlet C and is used to controllably change the direction of the air flow at the air outlet C.
[0065] The sweeping component 19 can change the direction of the air flow including but not limited to the up and down direction, the left and right direction, etc. The implementation method can be driven by a driver or manually controlled and adjusted by the user, etc., which is not specifically limited herein. The sweeping component 19 can change the air outlet angle and expand the air outlet coverage range, which helps to improve the user experience.
[0066] In the above-mentioned air conditioner structure 10, respectively driven by the high-speed rotation of the cross-flow fan 131 and the condensation fan 153, the air flow enters the internal space Z of the housing 11 from the air inlet part J of the top plate 113, is diverted by the flow divider 12, and forms two air flows that respectively blow downward along both sides of the flow divider 12 towards the evaporation component 13 and the condensation component 15. The air flow blowing towards the evaporation component 13 forms a cross-flow wind flowing towards the air outlet C under the action of the cross-flow fan 131, and exchanges heat with the evaporation heat exchanger 137 during the flowing process, and finally blows towards the room after being adjusted by the sweeping component 19 to adjust the ambient temperature. The air flow blowing towards the condensation component 15 passes through the condensation heat exchanger 151 under the action of the condensation fan 153 and exchanges heat with it. The heat-exchanged air flow is blown by the condensation fan 153 through the heat exhaust port of the bottom plate into the range hood cavity Y, and then flows to be sucked in by the centrifugal fan 21 from the air suction port, and is then discharged outdoors through the exhaust port of the centrifugal fan 21 through the smoke exhaust hole P.
[0067] The technical features of the above-described embodiments can be combined arbitrarily. For the sake of concise description, not all possible combinations of the technical features in the above-described embodiments are described. However, as long as the combinations of these technical features do not conflict, they should all be considered as the scope described in this specification.
[0068] The above-described embodiments merely represent several implementation manners of the present invention. The description thereof is relatively specific and detailed, but it should not be construed as a limitation on the scope of the invention patent. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, several modifications and improvements can still be made, and these all fall within the protection scope of the present invention. Therefore, the protection scope of the present invention patent shall be subject to the appended claims.
Claims
1. An air-conditioning range hood (100), characterized in that, The air - conditioner range hood (100) includes: A range hood structure (20); and An air - conditioner structure (10), including a housing (11), a flow - dividing member (12), an evaporation assembly (13), and a condensation assembly (15). The housing (11) includes a front plate (111) and a back plate (112) arranged opposite to each other in the front - to - rear direction. The front plate (111) and the back plate (112) jointly define an internal space (Z) of the housing (11). The evaporation assembly (13) and the condensation assembly (15) are sequentially arranged in the internal space (Z) in the front - to - rear direction. The flow - dividing member (12) is arranged between the evaporation assembly (13) and the condensation assembly (15) and is used for respectively diverting the air entering the internal space (Z) to the evaporation assembly (13) and the condensation assembly (15). The air - conditioner structure (10) further includes a base (17) for carrying the evaporation assembly (13). The base (17) encloses a cavity (Q), and the cavity (Q) is used for guiding air to the condensation assembly (15).
2. The air-conditioning range hood (100) according to claim 1, characterized in that, The base (17) includes a carrier plate (171) for carrying the evaporation assembly (13) and two support end plates (173). The two support end plates (173) are relatively arranged at both ends of the carrier plate (171) in the width direction intersecting with the front - to - rear direction. The carrier plate (171) and the support end plates (173) enclose the cavity (Q). Wherein, the support end plate (173) is provided with an air inlet hole (S).
3. The air-conditioning range hood (100) according to claim 1, characterized in that, The flow - dividing member (12) and the base (17) are sequentially arranged between the evaporation assembly (13) and the condensation assembly (15) in the height direction intersecting with the front - to - rear direction.
4. The air-conditioning range hood (100) according to any one of claims 1 to 3, characterized in that, The housing (11) further includes a top plate (113) connected to the top sides of the front plate (111) and the back plate (112). An air inlet part (J) is arranged on the top plate (113), and air enters the internal space (Z) through the air inlet part (J). An air outlet (C) communicating with the internal space (Z) is arranged on the front plate (111).
5. The air conditioner range hood (100) according to claim 4, characterized in that, The evaporation assembly (13) includes a cross - flow fan (131) and a duct housing (133). The cross - flow fan (131) is installed in the duct housing (133), and the duct housing (133) communicates with the air outlet (C). The cross - flow fan (131) forms a cross - flow air flow flowing from the air inlet part (J) to the air outlet (C) in the duct housing (133).
6. The air-conditioning range hood (100) according to claim 5, characterized in that, The evaporation assembly (13) further includes an evaporation heat exchanger (137). The evaporation heat exchanger (137) is arranged on the circumferential side of the cross - flow fan (131) and on the air flow path of the cross - flow air flow between the air inlet part (J) and the cross - flow fan (131).
7. The air conditioner and range hood (100) according to claim 6, characterized in that, The evaporation assembly (13) further includes an outer cover (1373). The outer cover (1373) covers the surface of the evaporation heat exchanger (137) facing away from the cross - flow fan (131), and an air passing hole (K) is formed on it.
8. The air conditioner range hood (100) according to claim 4, characterized in that, The air conditioner structure (10) further includes a swing component (19), which is arranged at the air outlet (C) and is used to controllably change the direction of the air flow at the air outlet (C).
9. The air conditioner range hood (100) according to claim 4, characterized in that, The range hood structure (20) has a range hood chamber (Y) and a centrifugal fan (21) arranged in the range hood chamber (Y). The centrifugal fan (21) has an air suction port and an air exhaust port. The top plate (113) is further provided with an exhaust hole (P) communicated with the air exhaust port.
Citation Information
Patent Citations
Air conditioner range hood
CN218348777U