Warmer

By designing a humidification module in the heater, including atomizing part and mist outlet pipes with additional mist holes, the problem of indoor drying and mist output during heating of the heater is solved, and better humidification effect and user comfort are achieved.

CN222836971UActive Publication Date: 2025-05-06BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Application Number
CN202421461041.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2025-05-06
Estimated Expiration
2034-06-25

AI Technical Summary

Technical Problem

Existing heaters can easily cause indoor dryness when heated, reduce user comfort, and uneven fog output, affecting the humidification effect.

Method used

A heater is designed, including a heating module and a humidification module, the latter including an atomization part and a mist outlet pipe, and a multiple mist outlet holes are provided on the mist outlet pipe to achieve uniform discharge of water mist.

Benefits of technology

Through uniform water mist discharge, the uniformity of the fog output and humidification effect of the heater are improved, and the user's comfort is enhanced.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to a warmer which comprises a heating module and a humidifying module, and the heating module is used for generating heat; the humidifying module comprises an atomizing part and a mist outlet pipeline connected with the atomizing part, and a plurality of mist outlet holes are formed in the mist outlet pipeline in the axial direction of the mist outlet pipeline, so that water mist can be uniformly discharged from the mist outlet holes, the mist outlet uniformity of the warmer is improved, and the humidifying effect of the warmer is effectively improved.
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Description

Technical Field

[0001] The present disclosure relates to the field of household appliances, and in particular to a heater. Background Art

[0002] Since the use of heaters will cause indoor dryness, the user's comfort level is reduced. Based on this, the heaters in the related art are provided with a humidification module, so that the heaters can increase the humidity of the air while heating, thereby improving the user's comfort level. However, the heaters in the related art have the problem of uneven misting. Utility Model Content

[0003] In order to overcome the problems existing in the related art, the present disclosure provides a heater.

[0004] The present disclosure provides a heater, which includes a heating module for generating heat; a humidifying module, wherein the humidifying module includes an atomizing part and a mist outlet pipe connected to the atomizing part, and a plurality of mist outlet holes are arranged on the mist outlet pipe along the axial direction of the mist outlet pipe.

[0005] In some embodiments of the present disclosure, the atomization part includes a water tank and an atomization device, and the atomization device is used to atomize the water in the water tank, and the atomized water mist flows toward the mist outlet pipe.

[0006] In some embodiments of the present disclosure, the water tank includes a water storage chamber and an atomization chamber, the water storage chamber is used to supply water to the atomization chamber, and the atomization device is used to atomize the water in the atomization chamber.

[0007] In some embodiments of the present disclosure, the atomization device is disposed in the atomization chamber to atomize water in the atomization chamber, the water tank further includes a mist outlet chamber connected to the atomization chamber, and the mist outlet pipe is connected to the mist outlet chamber.

[0008] In some embodiments of the present disclosure, the mist outlet chamber and the water storage chamber are arranged side by side, the atomization chamber is located below the mist outlet chamber and the water storage chamber, and the mist outlet pipe is connected to the cavity wall of the mist outlet chamber away from the water storage chamber.

[0009] In some embodiments of the present disclosure, the water tank includes an outer water tank and an inner water tank, the space between the bottom wall of the inner water tank and the bottom wall of the outer water tank constitutes the atomization chamber, and the atomization device is arranged on the bottom wall of the outer water tank; a partition is arranged in the inner water tank, and the partition divides the inner cavity of the inner water tank into the water storage chamber and the mist outlet chamber, and a mist outlet structure is arranged on the bottom wall of the inner water tank at the mist outlet chamber, and the mist outlet structure is arranged opposite to the atomization device, and the mist outlet chamber is connected with the atomization chamber through the mist outlet structure.

[0010] In some embodiments of the present disclosure, the mist outlet pipe is connected to the side wall of the inner water tank and communicates with the mist outlet cavity; or, the mist outlet pipe is connected to the bottom wall of the inner water tank and communicates with the mist outlet cavity.

[0011] In some embodiments of the present disclosure, the inner water tank and the outer water tank are an integrated structure; or, the inner water tank is also provided with a first interface at the mist outlet chamber, and a mounting port connected to the first interface is provided at a position corresponding to the first interface on the outer water tank, and the mounting port is higher than the mist outlet structure, and the mist outlet pipe is connected to the first interface via the mounting port, so that the water mist in the mist outlet chamber flows into the mist outlet pipe via the first interface and the mounting port.

[0012] In some embodiments of the present disclosure, the humidification module also includes a first adapter pipe, which includes a first adapter pipe section and a second adapter pipe section arranged at an angle, the first adapter pipe section is installed at the installation port and plug-connected to the first interface, and the second adapter pipe section is connected to the mist outlet pipe.

[0013] In some embodiments of the present disclosure, the humidification module further includes: a water collecting structure, which is used to collect condensed water in the mist outlet pipe and guide the collected condensed water back to the external water tank.

[0014] In some embodiments of the present disclosure, the water collection structure includes a second transition pipe, the second transition pipe includes a third transition pipe section and a fourth transition pipe section arranged at an angle, the third transition pipe section is connected to the first transition pipe section, and the fourth transition pipe section is connected to the external water tank.

[0015] In some embodiments of the present disclosure, the second transfer pipe section includes a first port connected to the first transfer pipe section and a second port facing away from the first port, and the second transfer pipe section gradually tilts downward from the second port to the first port along the axial direction of the second transfer pipe; and / or the mist outlet pipe includes a third port connected to the second transfer pipe section and a fourth port facing away from the third port, and the mist outlet pipe gradually tilts downward from the fourth port to the third port along the axial direction of the mist outlet pipe.

[0016] In some embodiments of the present disclosure, a water outlet is provided on the bottom wall of the inner water tank at the water storage chamber, and a water outlet valve is installed at the water outlet. A matching portion is provided on the bottom wall of the outer water tank, and the matching portion is used to cooperate with the water outlet valve when the inner water tank is installed into the outer water tank to open the water outlet valve.

[0017] In some embodiments of the present disclosure, an air duct structure is provided on the bottom wall of the outer water tank, the air outlet of the air duct structure is located in the atomization chamber, and the air outlet is arranged higher than the water outlet; the humidification module also includes: a fan, which is used to drive the air duct structure to discharge air to the atomization chamber, so as to drive the water mist generated by the atomization device to flow to the mist outlet pipe.

[0018] In some embodiments of the present disclosure, the heating module constitutes the atomization part.

[0019] In some embodiments of the present disclosure, the heating module includes at least one group of heat dissipation fins, the heat dissipation fin group includes a plurality of fins arranged in sequence along the axial direction of the mist outlet pipe, and the mist outlet pipe passes through the plurality of fins.

[0020] In some embodiments of the present disclosure, the heater also includes an outer shell, a first cavity and a second cavity are provided in the outer shell, the humidification module is provided in the first cavity, the heating module is provided in the second cavity, at least part of the mist outlet pipe is provided in the second cavity, and a plurality of heat dissipation holes are provided on the outer shell corresponding to the second cavity.

[0021] The technical solution provided by the embodiments of the present disclosure may have the following beneficial effects:

[0022] The heater provided in the present invention is provided with a humidification module, and a plurality of mist outlet holes are provided on the mist outlet pipe along the axial direction of the mist outlet pipe, so that the water mist can be discharged evenly from each mist outlet hole, thereby improving the uniformity of the mist outlet of the heater and effectively improving the humidification effect of the heater.

[0023] It is to be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present disclosure. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present disclosure and, together with the description, serve to explain the principles of the present disclosure.

[0025] Figure 1 is a schematic structural diagram of a heater according to an exemplary embodiment;

[0026] Figure 2 is a schematic structural diagram of a heater according to another exemplary embodiment;

[0027] Figure 3 yes Figure 2 Partial cross-sectional view along the AA axis;

[0028] Figure 4 yes Figure 3 Isometric section view of;

[0029] Figure 5 yes Figure 4 A partial enlarged view of point C in the middle;

[0030] Figure 6 yes Figure 2 Partial cross-sectional view along the BB direction;

[0031] Figure 7 yes Figure 6 A partial enlarged view of point D in the middle;

[0032] Figure 8 It is a schematic diagram of the assembly structure of the mist outlet pipe and the fins according to an exemplary embodiment.

[0033] In the figure:

[0034] 1-heater; 11-heating module; 12-humidification module; 121-water tank; 1210-first interface; 1211-inner water tank; 1212-outer water tank; 1213-partition; 1214-water storage chamber; 1215-mist outlet chamber; 1216-atomizing chamber; 1217-installation port; 1218-water outlet; 1219-matching part; 122-atomizing device; 123-mist outlet structure; 124-mist outlet pipe; 1241-mist outlet hole; 1242-third port; 1243-fourth port; 125-first transfer pipe; 1251-first transfer pipe section; 1252-second transfer pipe section; 1253-first port; 1254-second port; 126-second transfer pipe; 1261-third transfer pipe section; 1262-fourth transfer pipe section; 13-water outlet valve; 131-valve seat; 1311-through hole; 132-first limiting structure; 133-adjusting rod; 134-valve cover; 135-second limiting structure; 136-elastic member; 14-air duct structure; 141-air outlet; 15-fan; 16-fin; 17-housing; 171-first cavity; 172-second cavity; 173-heat dissipation hole. DETAILED DESCRIPTION

[0035] Exemplary embodiments will be described in detail herein, examples of which are shown in the accompanying drawings. When the following description refers to the drawings, the same numbers in different drawings represent the same or similar elements unless otherwise indicated. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present disclosure. Instead, they are merely examples of devices and methods consistent with some aspects of the present disclosure as detailed in the appended claims.

[0036] Since the use of the heater will cause indoor dryness, the user's comfort is reduced. Based on this, the heater in the related art is provided with a humidification module, so that the heater can increase the humidity of the air while heating, thereby improving the user's comfort. However, the mist outlet on the heater is usually set at one end of the heater or set as a long strip structure extending along the length direction of the heater. These settings are likely to cause the mist to be discharged only in a local area of ​​the heater, and it is difficult to ensure the uniformity of the heater's mist output.

[0037] In order to solve the above technical problems, the present disclosure provides a heater, which is provided with a humidification module, and a plurality of mist outlet holes are arranged on the mist outlet pipe along the axial direction of the mist outlet pipe, so that the water mist can be discharged evenly from each mist outlet hole, thereby improving the uniformity of the mist outlet of the heater, and further effectively improving the humidification effect of the heater.

[0038] An exemplary embodiment of the present disclosure provides a heater, Figure 1 , Figure 2 , Figure 3 and Figure 8 The heater 1 includes a heating module 11 and a humidifying module 12. The heating module 11 is used to generate heat to heat the surrounding environment where the heater 1 is located. Exemplarily, when the indoor ambient temperature is low, the heater 1 is turned on, and the heat generated by the heating module 11 is used to increase the indoor ambient temperature, thereby effectively improving the user's comfort. The humidifying module 12 includes an atomizing part and a mist outlet pipe 124 connected to the atomizing part. Along the axial direction of the mist outlet pipe 124, a plurality of mist outlet holes 1241 are provided on the mist outlet pipe 124. The water mist generated by the atomizing part enters the mist outlet pipe 124, and is then discharged from the plurality of mist outlet holes 1241, so as to humidify the surrounding environment where the heater 1 is located, increase the humidity of the air, and avoid the heating module 11 causing the air to be too dry when increasing the ambient temperature, thereby further improving the user's comfort.

[0039] In this embodiment, the mist outlet hole 1241 is arranged on the mist outlet pipe 124, which has a simple structure and is easy to process, which is conducive to simplifying the structure of the heater 1, thereby reducing the volume of the heater 1 and facilitating the miniaturization design of the heater 1. At the same time, along the axial direction of the mist outlet pipe 124, a plurality of mist outlet holes 1241 are arranged on the mist outlet pipe 124, so that the water mist can be uniformly discharged from each mist outlet hole 1241, thereby improving the uniformity of the mist outlet of the heater 1, and thus effectively improving the humidification effect of the heater 1.

[0040] Combination Figure 3 and Figure 4In one embodiment, the atomizing unit includes a water tank 121 and an atomizing device 122. The atomizing device 122 is used to atomize the water in the water tank 121, and the atomized water mist flows to the mist outlet pipe 124. Exemplarily, the atomizing device 122 can be an ultrasonic atomizer, which converts electrical energy into ultrasonic energy, and the ultrasonic energy acts on water to atomize the water into tiny mist particles. By storing water in the water tank 121, it is possible to avoid the untimely water supply affecting the humidification of the environment, so that such a design can further improve the humidification effect of the heater 1.

[0041] Combination Figure 3 and Figure 4 In one embodiment, the water tank 121 includes a water storage chamber 1214 and an atomizing chamber 1216. The water storage chamber 1214 is used to supply water to the atomizing chamber 1216, and the atomizing device 122 atomizes the water in the atomizing chamber 1216 to form water mist. Exemplarily, the water in the water storage chamber 1214 first flows into the atomizing chamber 1216, and then the water in the atomizing chamber 1216 is atomized by the atomizing device 122, and the atomized water mist flows to the mist outlet pipe 124. Such a setting form facilitates the atomization of water by the atomizing device 122, and at the same time makes the structure of the atomizing part simple, which is convenient for processing and assembly.

[0042] Combination Figure 3 and Figure 4 In one embodiment, the atomizing device 122 is disposed in the atomizing chamber 1216, and the atomizing device 122 atomizes the water in the atomizing chamber 1216. The water tank 121 also includes a mist outlet chamber 1215 connected to the atomizing chamber 1216, and a mist outlet pipe 124 is connected to the mist outlet chamber 1215. Exemplarily, the mist outlet pipe 124 can be connected to the upper part of the mist outlet chamber 1215, or to the middle position of the mist outlet chamber 1215, or to the lower part of the mist outlet chamber 1215, which is not specifically limited in this embodiment. Such a design can effectively prevent the water flow in the atomizing chamber 1216 from directly flowing into the mist outlet pipe 124, affecting the mist output of the mist outlet pipe 124, thereby further improving the humidification effect of the heater 1.

[0043] Combination Figure 3 and Figure 4 In one embodiment, the mist outlet chamber 1215 and the water storage chamber 1214 are arranged side by side, and the atomizing chamber 1216 is located below the mist outlet chamber 1215 and the water storage chamber 1214. In this way, the water in the water storage chamber 1214 can flow into the atomizing chamber 1216 under the action of gravity. While facilitating the water in the water storage chamber 1214 to flow into the atomizing chamber 1216, there is no need to set a guide component, thereby simplifying the structure of the atomizing part. At the same time, the mist outlet chamber 1215 is located above the atomizing chamber 1216. Such a design facilitates the water mist to flow into the mist outlet chamber 1215.

[0044] The mist outlet pipe 124 is connected to the cavity wall of the mist outlet cavity 1215 on the side away from the water storage cavity 1214. With such a configuration, the structure of the heater 1 is made more compact, and interference between the mist outlet pipe 124 and the water tank 121 is avoided, which causes water to flow directly into the mist outlet pipe 124, thereby effectively improving the humidification effect of the heater 1.

[0045] Combination Figure 3 and Figure 4 In one embodiment, the water tank 121 includes an outer water tank 1212 and an inner water tank 1211. The space between the bottom wall of the inner water tank 1211 and the bottom wall of the outer water tank 1212 constitutes an atomizing chamber 1216. The atomizing device 122 is disposed on the bottom wall of the outer water tank 1212. A partition 1213 is disposed in the inner water tank 1211. The partition 1213 divides the inner cavity of the inner water tank 1211 into a water storage chamber 1214 and a mist outlet chamber 1215. The water storage chamber 1214 is used to store water. The water in the water storage chamber 1214 can flow into the atomizing chamber 1216 under the action of gravity. In this way, the atomizing device 122 on the bottom wall of the outer water tank 1212 can atomize the water entering the atomizing chamber 1216. The bottom wall of the inner water tank 1211 is provided with a mist outlet structure 123 at the mist outlet chamber 1215, and the mist outlet structure 123 is arranged opposite to the atomizing device 122, and the mist outlet chamber 1215 is connected with the atomizing chamber 1216 through the mist outlet structure 123. The water mist in the atomizing chamber 1216 flows to the mist outlet chamber 1215 through the mist outlet structure 123, and then flows from the mist outlet chamber 1215 to the mist outlet pipe 124, and then is discharged through the multiple mist outlet holes 1241 on the mist outlet pipe 124. Such a design, on the one hand, makes the structure of the heater 1 simple and more compact, which is conducive to the miniaturization design of the heater 1. On the other hand, it is convenient for the atomizing device 122 to atomize the water in the atomizing chamber 1216, and it is convenient for the water mist to flow into the mist outlet pipe 124, avoiding interference between water and water mist, thereby effectively ensuring the humidification effect of the heater 1.

[0046] In one embodiment, in order to achieve the connection between the mist outlet pipe 124 and the mist outlet chamber 1215, the mist outlet pipe 124 can be connected to the side wall of the inner water tank 1211 or the bottom wall of the inner water tank 1211. In this way, the flexibility of the setting position of the mist outlet pipe 124 can be improved.

[0047] In one embodiment, the inner water tank 1211 and the outer water tank 1212 are an integrated structure, so there is no need to assemble the water tank 121, which improves the assembly efficiency of the heater 1. When the inner water tank 1211 and the outer water tank 1212 are an integrated structure, the mist outlet pipe 124 can be connected to the mist outlet chamber 1215 through a connecting port on the water tank. This arrangement saves the number of openings to be processed, thereby facilitating the processing of the water tank.

[0048] Combination Figure 3 and Figure 5 In another embodiment, the inner water tank 1211 and the outer water tank 1212 are split structures. In this case, the inner water tank 1211 is further provided with a first interface 1210 at the mist outlet chamber 1215, and a mounting port 1217 connected to the first interface 1210 is provided at a position on the outer water tank 1212 corresponding to the first interface 1210. The first interface 1210 and the mounting port 1217 can be connected to each other to achieve the installation between the inner water tank 1211 and the outer water tank 1212, for example, by plugging. The mounting port 1217 is set higher than the mist outlet structure 123. The mist outlet pipe 124 is connected to the first interface 1210 through the mounting port 1217, so that the water mist in the mist outlet chamber 1215 flows into the mist outlet pipe 124 through the first interface 1210 and the mounting port 1217. In this way, it is convenient for the inner water tank 1211 to be loaded and unloaded, and it is convenient for the water mist to flow to the mist outlet pipe 124.

[0049] On this basis, combined with Figure 3 and Figure 5 In one embodiment, the humidification module 12 also includes a first transfer pipe 125, and the first transfer pipe 125 includes a first transfer pipe section 1251 and a second transfer pipe section 1252 set at an angle, and the angle can be, for example, 90°. Exemplarily, the first transfer pipe section 1251 and the second transfer pipe section 1252 can be, for example, an integral structure formed in one piece, or a split structure connected in one piece by gluing or the like. The first transfer pipe section 1251 is installed in the installation port 1217 and plug-connected with the first interface 1210. Exemplarily, the bottom wall of the inner water tank 1211 is provided with a pipe structure protruding outward along the edge of the first interface 1210, and the pipe structure is inserted into the first transfer pipe section 1251, thereby realizing the connection between the first interface 1210 and the first transfer pipe section 1251, that is, realizing the connection and fixation between the inner water tank 1211 and the outer water tank 1212.

[0050] Such a configuration facilitates the connection and fixation between the inner water tank 1211 and the outer water tank 1212, thereby facilitating the disassembly and assembly of the inner water tank 1211, and improving the convenience of users when adding water to the inner water tank 1211. At the same time, the second adapter pipe section 1252 is connected to the mist outlet pipe 124, and the atomizing device 122 on the bottom wall of the outer water tank 1212 atomizes the water entering the atomizing chamber 1216. The water mist in the atomizing chamber 1216 flows to the mist outlet chamber 1215 through the mist outlet structure 123, and then flows to the first adapter pipe section 1251 through the first interface 1210, and flows to the mist outlet pipe 124 through the second adapter pipe 126, and then is discharged from the multiple mist outlet holes 1241 on the mist outlet pipe 124. With such a design, the flow direction of the water mist is guided by the first transfer pipe section 1251 and the second transfer pipe section 1252, so that the water mist flows toward the mist outlet pipe 124, thereby improving the smoothness of the water mist flow and further improving the humidification effect of the heater 1.

[0051] During the humidification process of the humidification module 12, the water mist may condense into water droplets on the mist outlet pipe 124, and the water droplets gather at the bottom of the mist outlet pipe 124 to form condensed water. As the condensed water increases, the amount of water mist will be affected to a certain extent, thereby reducing the humidification effect. Figure 3 and Figure 5 In one embodiment, the humidification module 12 also includes a water collection structure, which can collect condensed water in the mist outlet pipe 124 and guide the collected condensed water back to the outer water tank 1212. With such a design, on the one hand, by collecting the condensed water in the mist outlet pipe 124 through the water collection structure, the amount of water mist discharged from the mist outlet pipe 124 can be effectively increased, thereby further improving the humidification effect of the heater 1. On the other hand, by guiding the collected condensed water back to the outer water tank 1212, it can be atomized again by the atomization device 122 on the bottom wall of the outer water tank 1212, thereby realizing the recycling of the condensed water. In this way, water resources can be effectively saved, costs can be reduced, and the user experience can be effectively improved.

[0052] Combination Figure 3 and Figure 5 In one embodiment, the water collection structure includes a second transfer pipe 126, and the second transfer pipe 126 includes a third transfer pipe section 1261 and a fourth transfer pipe section 1262 arranged at an angle, and the angle may be, for example, 90°. For example, the third transfer pipe section 1261 and the fourth transfer pipe section 1262 may be, for example, an integral structure formed in one piece, or a split structure connected to one piece by gluing or the like. The third transfer pipe section 1261 is connected to the first transfer pipe section 1251, and the fourth transfer pipe section 1262 is connected to the outer water tank 1212. The condensed water of the mist outlet pipe 124 flows from the second transfer pipe section 1252 to the first transfer pipe section 1251, then flows to the third transfer pipe section 1261, and finally flows to the outer water tank 1212 through the fourth transfer pipe section 1262. With such a setting, the structure of the water collection structure is simple and easy to process and produce.

[0053] Exemplarily, the axial direction of the first transfer pipe section 1251 is parallel to the installation direction of the inner water tank 1211, for example, both are vertical directions, the third transfer pipe section 1261 is coaxial with the first transfer pipe section 1251, and the third transfer pipe section 1261 is connected to the bottom end of the first transfer pipe section 1251. In this way, the condensed water entering the first transfer pipe section 1251 can flow into the third transfer pipe section 1261 under the action of gravity, and then flow to the outer water tank 1212 through the fourth transfer pipe section 1262. Such a design facilitates the condensed water to flow to the outer water tank 1212, improves the timeliness of the condensed water discharge, and further ensures the humidification effect of the heater 1.

[0054] Combination Figure 3In one embodiment, the second transfer tube section 1252 includes a first port 1253 connected to the first transfer tube section 1251 and a second port 1254 away from the first port 1253, and the second transfer tube section 1252 gradually tilts downward from the second port 1254 to the first port 1253 along the axial direction of the second transfer tube section 1252. With such a configuration, the condensed water in the mist outlet pipe 124 can flow to the first transfer tube section 1251 along the mist outlet pipe 124 under the action of gravity, which facilitates the flow of the condensed water and effectively improves the timeliness of the discharge of the condensed water.

[0055] In another embodiment, the mist outlet pipe 124 includes a third port 1242 connected to the second transfer pipe section 1252 and a fourth port 1243 away from the third port 1242, and the mist outlet pipe 124 gradually tilts downward from the fourth port 1243 to the third port 1242 along the axis direction of the mist outlet pipe 124. With such a configuration, the condensed water in the mist outlet pipe 124 can flow to the first transfer pipe section 1251 along the mist outlet pipe 124 under the action of gravity, which facilitates the flow of the condensed water and effectively improves the timeliness of the discharge of the condensed water.

[0056] In another embodiment, the second transfer tube section 1252 includes a first port 1253 connected to the first transfer tube section 1251 and a second port 1254 away from the first port 1253, and the second transfer tube section 1252 gradually tilts downward from the second port 1254 to the first port 1253 along the axial direction of the second transfer tube section 1252. At the same time, the mist outlet pipe 124 includes a third port 1242 connected to the second transfer tube section 1252 and a fourth port 1243 away from the third port 1242, and the mist outlet pipe 124 gradually tilts downward from the fourth port 1243 to the third port 1242 along the axial direction of the mist outlet pipe 124. Such a design further improves the timeliness and smoothness of the discharge of condensed water from the mist outlet pipe 124.

[0057] Exemplarily, the fourth transfer pipe section 1262 includes a fifth port connected to the third transfer pipe section 1261 and a sixth port away from the fifth port, and the fourth transfer pipe section 1262 gradually tilts downward from the fifth port to the sixth port along the axial direction of the fourth transfer pipe section 1262. With such a design, the condensed water entering the fourth transfer pipe section 1262 can also flow out of the fourth transfer pipe section 1262 under the action of gravity, thereby further improving the timeliness of the discharge of the condensed water and improving the humidification effect of the heater 1.

[0058] Combination Figure 5 and Figure 6In one embodiment, a water outlet 1218 is provided on the bottom wall of the inner water tank 1211 at the water storage chamber 1214, and the water in the water storage chamber 1214 flows from the water outlet 1218 to the atomizing chamber 1216, thereby replenishing the atomizing device 122, thereby effectively improving the continuity of the water mist produced by the atomizing device 122, and further ensuring the humidification effect of the heater 1.

[0059] A water outlet valve 13 is installed at the water outlet 1218, and a matching portion 1219 is provided on the bottom wall of the outer water tank 1212. When the inner water tank 1211 is loaded into the outer water tank 1212, the matching portion 1219 matches with the water outlet valve 13 to open the water outlet valve 13, so that the water in the inner water tank 1211 flows to the atomizing chamber 1216 to replenish the atomizing device 122. The water outlet valve 13 and the matching portion 1219 cooperate to realize automatic water replenishment of the atomizing device 122, instead of the user manually adding water to the atomizing chamber 1216, which can effectively improve the convenience of replenishing the atomizing device 122, thereby improving the user experience.

[0060] Combination Figure 6 and Figure 7 In one embodiment, the matching portion 1219 includes a protruding structure protruding outward from the bottom wall of the outer water tank 1212. The water outlet valve 13 includes a valve seat 131 and an adjusting portion. The valve seat 131 is provided with a through hole 1311, and a first limiting structure 132 is provided in the through hole 1311. The adjusting portion includes an adjusting rod 133 and a valve cover 134 and a second limiting structure 135 respectively provided at both ends of the adjusting rod 133. The valve cover 134 is used to open or block the through hole 1311 on the valve seat 131. The adjusting rod 133 is penetrated through the first limiting structure 132, so that the valve cover 134 is located in the water storage chamber 1214, and the second limiting structure 134 is located between the protruding structure and the first limiting structure 132.

[0061] An elastic member 136 is provided between the first limiting structure 132 and the second limiting structure 135. The elastic member 136 may be, for example, a spring. When the inner water tank 1211 is loaded into the outer water tank 1212, the second limiting structure 135 abuts against the protruding structure to move it in a first direction, so that the valve cover 134 opens the through hole 1311. The first direction is opposite to the loading direction of the inner water tank 1211. At this time, the spring is in a contracted state, the water outlet valve 13 is in an open state, and the water in the inner water tank 1211 can flow from the through hole 1311 to the outer water tank 1212.

[0062] When the inner water tank 1211 is taken out, the second limiting structure 135 moves away from the protruding structure, and under the action of the spring, drives the adjusting part to move in the second direction so that the valve cover 134 blocks the through hole 1311. The second direction is opposite to the first direction. At this time, the spring is in an extended state and the water outlet valve 13 is in a closed state to prevent the water in the inner water tank 1211 from flowing out of the through hole 1311.

[0063] By adopting such a configuration, the structure of the matching part 1219 and the water outlet valve 13 is simple, which is convenient for production and processing, and is also convenient for users to use, which effectively improves the convenience of replenishing water to the atomizing device 122.

[0064] Combination Figure 3 and Figure 5 In one embodiment, an air duct structure 14 is provided on the bottom wall of the outer water tank 1212, and an air outlet 141 of the air duct structure 14 is located in the atomizing chamber 1216, and the air outlet 141 is arranged higher than the water outlet 1218. Exemplarily, the bottom wall of the inner water tank 1211 is recessed inwardly corresponding to the position of the air outlet 141, so that the air outlet 141 is higher than the water outlet 1218. Such a design can effectively prevent water from flowing into the air duct structure 14, while ensuring the air volume, the reliability and safety of the heater 1 are improved. The humidification module 12 also includes a fan 15, which drives the air flow and discharges air to the atomizing chamber 1216 through the air duct structure 14, so as to drive the water mist generated by the atomizing device 122 to flow to the mist outlet pipe 124. Under the action of the fan 15, the water mist is helped to flow in the direction of the mist outlet pipe 124, which improves the efficiency of the water mist flow, thereby further improving the humidification effect of the heater 1.

[0065] In the above embodiment, water is atomized by a specially arranged atomizing device 122. In another embodiment, the heating module 11 constitutes an atomizing unit. Exemplarily, the mist outlet pipe 124 is arranged close to the heating module 11, water is injected into the mist outlet pipe 124, and the mist outlet pipe 124 is heated by the heat generated by the heating module 11, so that the water in the mist outlet pipe 124 boils to generate water vapor and is discharged from the multiple mist outlet holes 1241 on the mist outlet pipe 124, so as to humidify the surrounding environment of the heater 1 and increase the humidity of the air.

[0066] In this embodiment, the atomizing part is formed by the heating module 11. The heat generated by the heating module 11 can achieve both heating and humidification effects, while making the structure of the heater 1 more compact, which is conducive to the miniaturization design of the heater 1.

[0067] Exemplarily, the mist outlet pipe 124 is arranged horizontally. Such a design prevents the water in the mist outlet pipe 124 from flowing out of the mist outlet hole 1241 due to the tilt of the mist outlet pipe 124, thereby ensuring the reliability and safety of the heater 1 and further improving the user experience.

[0068] Combination Figure 3 and Figure 8 In one embodiment, the heating module 11 includes at least one group of heat dissipation fin groups. Exemplarily, the heating module 11 may be provided with only one group of heat dissipation fin groups, or may be provided with multiple groups of heat dissipation fin groups. This is not specifically limited in this embodiment.

[0069] The heat dissipation fin group includes a plurality of fins arranged in sequence along the axial direction of the mist outlet pipe 124, and the mist outlet pipe 124 is passed through the plurality of fins. With such a setting form, on the one hand, while improving the stability of the mist outlet pipe 124 when it is fixed, the structure of the heater 1 is made more compact, which is conducive to the miniaturization design of the heater 1. On the other hand, the mist outlet pipe 124 is passed through the plurality of fins, and the heat generated by each fin can heat the water mist discharged from the mist outlet pipe 124, thereby increasing the temperature of the water mist to a certain extent, thereby reducing the temperature difference between the water mist temperature and the ambient temperature, avoiding discomfort to the human body due to the low water mist temperature, and further improving the user experience.

[0070] Combination Figure 3 In one embodiment, the heater 1 further includes a shell 17, in which a first cavity 171 and a second cavity 172 are provided, the humidifying module 12 is provided in the first cavity 171, the heating module 11 is provided in the second cavity 172, and at least part of the mist outlet pipe 124 is provided in the second cavity 172. For example, only part of the mist outlet pipe 124 may be provided in the second cavity 172, or the entire structure of the mist outlet pipe 124 may be provided in the second cavity 172. With such a design, the humidifying module 12 and the heating module 11 can be protected by the shell 17, thereby effectively improving the reliability of the heater 1. At the same time, by providing the shell 17, the overall appearance of the heater 1 can also be improved. A plurality of heat dissipation holes 173 are provided on the shell 17 corresponding to the second cavity 172. In this way, it is conducive to the discharge of heat, thereby effectively improving the heating effect and heating efficiency.

[0071] Those skilled in the art will readily appreciate other embodiments of the present disclosure after considering the specification and practicing the invention disclosed herein. This application is intended to cover any variations, uses, or adaptations of the present disclosure that follow the general principles of the present disclosure and include common knowledge or customary techniques in the art that are not disclosed in the present disclosure. The specification and examples are intended to be exemplary only, and the true scope and spirit of the present disclosure are indicated by the following claims.

[0072] It should be understood that the present disclosure is not limited to the exact structures that have been described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present disclosure is limited only by the appended claims.

Claims

1. A heater, characterized in that: The heater comprises: A heating module, used for generating heat; A humidifying module comprises an atomizing part and a mist outlet pipe connected to the atomizing part, and a plurality of mist outlet holes are arranged on the mist outlet pipe along the axial direction of the mist outlet pipe.

2. The heater according to claim 1, characterized in that: The atomizing part includes a water tank and an atomizing device, wherein the atomizing device is used to atomize the water in the water tank, and the atomized water mist flows toward the mist outlet pipe.

3. The heater according to claim 2, characterized in that: The water tank comprises a water storage chamber and an atomization chamber, the water storage chamber is used to supply water to the atomization chamber, and the atomization device is used to atomize the water in the atomization chamber.

4. The heater according to claim 3, characterized in that: The atomizing device is arranged in the atomizing chamber to atomize the water in the atomizing chamber. The water tank also includes a mist outlet chamber communicated with the atomizing chamber, and the mist outlet pipe is communicated with the mist outlet chamber.

5. The heater according to claim 4, characterized in that: The mist outlet cavity and the water storage cavity are arranged side by side, the atomization cavity is located below the mist outlet cavity and the water storage cavity, and the mist outlet pipe is connected to the cavity wall of the mist outlet cavity on a side away from the water storage cavity.

6. The heater according to claim 4, characterized in that: The water tank comprises an outer water tank and an inner water tank, the space between the bottom wall of the inner water tank and the bottom wall of the outer water tank constitutes the atomization chamber, and the atomization device is arranged on the bottom wall of the outer water tank; A partition is arranged in the inner water tank, and the partition divides the inner cavity of the inner water tank into the water storage cavity and the mist outlet cavity. The bottom wall of the inner water tank is provided with a mist outlet structure at the mist outlet cavity. The mist outlet structure is arranged opposite to the atomization device, and the mist outlet cavity is connected with the atomization cavity through the mist outlet structure.

7. The heater according to claim 6, characterized in that: The mist outlet pipe is connected to the side wall of the inner water tank and communicates with the mist outlet chamber; or, The mist outlet pipe is connected to the bottom wall of the inner water tank and communicates with the mist outlet cavity.

8. The heater according to claim 7, characterized in that: The inner water tank and the outer water tank are an integrated structure; or, The inner water tank is further provided with a first interface at the mist outlet chamber, and a mounting port connected to the first interface is provided at a position corresponding to the first interface on the outer water tank, the mounting port is arranged higher than the mist outlet structure, and the mist outlet pipe is connected to the first interface via the mounting port, so that the water mist in the mist outlet chamber flows into the mist outlet pipe via the first interface and the mounting port.

9. The heater according to claim 8, characterized in that: The humidification module also includes a first adapter pipe, which includes a first adapter pipe section and a second adapter pipe section arranged at an angle, the first adapter pipe section is installed at the installation port and plug-connected with the first interface, and the second adapter pipe section is connected to the mist outlet pipe.

10. The heater according to claim 9, characterized in that: The humidification module also includes: A water collecting structure is used to collect condensed water in the mist outlet pipe and guide the collected condensed water back to the outer water tank.

11. The heater according to claim 10, characterized in that: The water collection structure includes a second transfer pipe, and the second transfer pipe includes a third transfer pipe section and a fourth transfer pipe section arranged at an angle, the third transfer pipe section is connected to the first transfer pipe section, and the fourth transfer pipe section is connected to the external water tank.

12. The heater according to claim 11, characterized in that The second transition pipe section comprises a first port connected to the first transition pipe section and a second port away from the first port, and the second transition pipe section gradually slopes downward from the second port to the first port along the axial direction of the second transition pipe; and / or, The mist outlet pipe comprises a third port connected to the second transfer pipe section and a fourth port away from the third port, and the mist outlet pipe gradually slopes downward from the fourth port to the third port along the axial direction of the mist outlet pipe.

13. The heater according to claim 6, characterized in that: The bottom wall of the inner water tank is provided with a water outlet at the water storage cavity, and a water outlet valve is installed at the water outlet. A matching part is provided on the bottom wall of the outer water tank, and the matching part is used to match with the water outlet valve when the inner water tank is installed in the outer water tank to open the water outlet valve.

14. The heater according to claim 13, characterized in that An air duct structure is provided on the bottom wall of the outer water tank, the air outlet of the air duct structure is located in the atomizing chamber, and the air outlet is arranged higher than the water outlet; the humidification module also includes: A fan is used to drive the air duct structure to discharge air to the atomization chamber, so as to drive the water mist generated by the atomization device to flow to the mist outlet pipe.

15. The heater according to claim 1, characterized in that The heating module constitutes the atomization part.

16. The heater according to any one of claims 1 to 15, characterized in that: The heating module includes at least one group of heat dissipation fins, the heat dissipation fin group includes a plurality of fins arranged in sequence along the axial direction of the mist outlet pipe, and the mist outlet pipe passes through the plurality of fins.

17. The heater according to any one of claims 1 to 15, characterized in that: The heater also includes a shell, in which a first cavity and a second cavity are arranged, the humidification module is arranged in the first cavity, the heating module is arranged in the second cavity, at least part of the mist outlet pipe is arranged in the second cavity, and a plurality of heat dissipation holes are arranged on the shell corresponding to the second cavity.