Air conditioning apparatus with visual effects
By integrating misting, lighting, and dripping devices into air conditioning equipment, and combining the visual effects of mist and droplets, a vivid and three-dimensional flame visual is created, solving the problem of single-function equipment and enhancing market competitiveness and user experience.
Patent Information
- Application Number
- CN202411674085.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-21
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2044-11-21
Smart Images

Figure CN119412764B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of air conditioning equipment, in particular to an air conditioning equipment with visual special effect. BACKGROUND
[0002] The air conditioning equipment can improve air quality by emitting aromatherapy substances or moisture into the environment space to make the air fresher and adjust the environmental humidity. When the human body is in an environment with too low humidity for a long time, symptoms such as dry mouth, dry throat, and dry eyes may occur. Indoor decorations and furniture may also have problems such as static electricity and cracking when they are in an environment with too low humidity for a long time. Too low humidity in the environment may also increase the risk of fire. When the indoor environment humidity is too low, the air conditioning equipment can be used to adjust the environmental humidity to keep the environmental humidity within a suitable range. When the environment space is in a closed state for a long time, people may feel stuffy and have a headache, which reduces their work efficiency and makes them feel listless. Emitting aromatherapy substances into the environment space can improve air freshness and have a refreshing effect.
[0003] With the development of society, people's pursuit of life interest has gradually increased, and they are pursuing a more colorful spiritual life. The air conditioning equipment with single function can only improve the environmental air quality by emitting mist, which cannot meet people's pursuit of colorful life, and thus the market competitiveness of the air conditioning equipment is reduced.
[0004] Therefore, how to improve the market competitiveness of the air conditioning equipment is a technical problem to be solved. SUMMARY
[0005] The air conditioning equipment with visual special effect provided by the present application aims to solve the technical problem of how to improve the market competitiveness of the air conditioning equipment in the prior art.
[0006] The air conditioning equipment with visual special effect provided by the present application comprises:
[0007] A mist supply device for providing mist;
[0008] A light projection device for providing projected light to the mist;
[0009] A background piece for highlighting the mist with the projected light, the first color of the background piece at least towards the side of the mist being different from the second color of the mist after being projected with the projected light;
[0010] A liquid drop device for realizing the visual effect of liquid drops.
[0011] Optionally, the background piece is provided with a mist outlet hole and a background column;
[0012] The mist outlet hole is used to provide a channel for the mist to be discharged;
[0013] The number of the background columns is at least two, and the background columns are dispersedly arranged around the mist outlet hole, and the color of the side of all the background columns facing the mist outlet hole is configured as the first color.
[0014] Optionally, the first color is deeper than the second color.
[0015] Optionally, the first color gradually becomes lighter in the direction away from the mist outlet hole.
[0016] Optionally, the liquid drop device comprises:
[0017] A liquid supply device is used to provide the liquid drop to be dropped;
[0018] A flashing device is used to provide the flashing light to the liquid drop;
[0019] Wherein, the dropping frequency of the liquid drop and the flashing frequency of the flashing light are both adjustable.
[0020] Optionally, the projection light provided by the light projection device and the flashing light provided by the flashing device are the same in color and flashing frequency.
[0021] Optionally, the mist supply device comprises:
[0022] A liquid storage bin is used to load the atomized liquid, and the mist outlet hole is in liquid communication with the liquid storage bin;
[0023] An atomization assembly is used to atomize the atomized liquid;
[0024] The liquid supply device comprises:
[0025] A generating assembly is used to generate the liquid drop;
[0026] A pumping assembly is used to transport the atomized liquid in the liquid storage bin to the generating assembly;
[0027] Wherein, the liquid drop is dropped to the mist outlet hole.
[0028] Optionally, the generating assembly comprises:
[0029] A liquid collecting bin is connected with the pumping assembly in liquid communication, and the liquid collecting bin is provided with a liquid drop opening;
[0030] A vibration assembly for generating vibrations to cause liquid in the sump to drip from the drip outlet.
[0031] Optionally, the flash device is provided with at least three lamp beads.
[0032] The lamp beads are arranged in a circumferential array along the center of the drip outlet.
[0033] Optionally, the lamp beads are in contact with the outer wall of the sump.
[0034] The application has the beneficial effects that: the fog device provides fog to adjust the humidity of the environment space through the fog. The light projection device provides projected light to the fog to make the liquid beads in the fog refract and reflect the projected light, so that the fog presents a visual effect of emitting light. The background piece highlights to eliminate the influence of environmental objects on the light emitting effect of the fog. The first color of the background piece is different from the second color of the fog after being projected by the projected light, so that the light emitting effect of the fog is more obvious. In the process of the fog drifting to the environment space, the liquid beads in the fog drift due to the influence of the airflow, and then present a visual effect of a flame. The background piece highlights and the color of the background piece are configured, so that the visual effect of the flame is more vivid, obvious and stereoscopic. The liquid drop movement visual effect of the air conditioning equipment is realized through the liquid drop device, which further enriches the visual special effect function of the air conditioning equipment. In this way, while adjusting the environmental humidity through the air conditioning equipment provided by the application, a vivid and stereoscopic flame effect is presented, and the market competitiveness of the air conditioning equipment is improved. BRIEF DESCRIPTION OF DRAWINGS
[0035] Figure 1 is a schematic diagram of the stereoscopic structure of the air conditioning equipment in the embodiment of the application;
[0036] Figure 2 is a schematic diagram of the stereoscopic structure of the air conditioning equipment in the embodiment of the application;
[0037] Figure 3 is a schematic diagram of the stereoscopic structure of the air conditioning equipment in the embodiment of the application; Figure 2 is an enlarged view of A in the embodiment of the application;
[0038] Figure 4 is a module structure block diagram of the control system of the air conditioning equipment in the embodiment of the application.
[0039] Main unit symbol explanation:
[0040] 10, air conditioning device; 20, fog supply device; 21, liquid storage bin; 22, atomization assembly; 23, light projecting device; 24, fan device; 30, background piece; 31, fog outlet; 32, background column; 40, droplet device; 41, liquid supply device; 411, generating assembly; 412, liquid collection bin; 413, droplet outlet; 414, vibration assembly; 415, pumping assembly; 42, flashing device; 421, lamp bead; 50, air conditioning device control system; 51, pump control unit; 52, vibration control unit; 53, lamp control unit; 54, fog control unit; 55, light control unit; 56, fan control unit; 57, control unit; 60, audio module; DETAILED DESCRIPTION
[0041] In order to make the objects, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to the accompanying drawings and embodiments. The examples of the embodiments are shown in the drawings, wherein the same or similar notations represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present application, and should not be understood as limiting the present application. In addition, it should be understood that the specific embodiments described herein are only used to explain the present application and should not be used to limit the present application.
[0042] In the description of the present application, it should be understood that the terms "length", "width", "upper", "lower", "left", "right", "horizontal", "top", "bottom" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only used to facilitate the description of the present application and simplify the description, and therefore cannot be understood as indicating or implying that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0043] In addition, the terms "first", "second" are only used for description purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise specifically limited.
[0044] In the description of the application, it is necessary to point out that, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "linking" should be understood in a broad sense, for example, it can be fixed connection, or detachable connection, or integrally connected; it can be mechanical connection, or electrical connection or can communicate with each other; it can be directly connected, or indirectly connected through intermediate medium, it can be the internal communication of two units or the interaction relationship between two units. For those skilled in the art, the specific meaning of the above terms in the application can be understood according to the specific circumstances.
[0045] In the present application, unless otherwise explicitly specified and limited, the "upper" or "lower" of the first feature to the second feature can include that the first and second features are in direct contact, or that the first and second features are not in direct contact but are in contact through another feature between them. Moreover, the "upper", "above" and "on" of the first feature to the second feature includes that the first feature is directly above and obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The "under", "below" and "under" of the first feature to the second feature includes that the first feature is directly below and obliquely below the second feature, or only indicates that the horizontal height of the first feature is less than that of the second feature.
[0046] The following disclosure provides many different embodiments or examples for implementing different structures of the application. In order to simplify the disclosure of the application, the components and settings of specific examples are described below. Of course, they are only examples, and the purpose is not to limit the application. In addition, the application can repeatedly refer to numbers and / or letters in different examples. Such repetition is for the purpose of simplification and clarity, and in itself does not indicate the relationship between the various embodiments and / or settings discussed. In addition, the application provides examples of various specific processes and materials, but those skilled in the art can realize the application of other processes and / or the use of other materials.
[0047] Please refer to Figures 1 to 3 In some embodiments of the present application, the air conditioning equipment 10 with visual special effect provided by the present application includes: a fog supply device 20, a light projection device 23, a background piece 30 and a liquid drop device 40. The fog supply device 20 is used to provide fog. The light projection device 23 is used to provide projected light to the fog. The background piece 30 is used to highlight the fog with projected light, and the first color of the background piece 30 at least towards the side of the fog is different from the second color of the fog after being projected with the projected light. The liquid drop device 40 is used to realize the visual effect of liquid drops.
[0048] It can be understood that the mist is provided by the mist providing device 20 to adjust the humidity of the environment space by the mist. The projected light is provided to the mist by the light projecting device 23 to refract and reflect the liquid beads in the mist to the projected light, and then the mist presents the visual effect of emitting light. The influence of the environmental objects on the light emitting effect of the mist is eliminated by the reflection of the background piece 30.
[0049] The light emitting effect of the mist is more obvious by making the first color of the background piece 30 different from the second color of the mist after the mist is projected by the projected light. In the process of the mist drifting to the environment space, the liquid beads in the mist drift due to the influence of the airflow, and then the visual effect of the flame is presented. The visual effect of the flame is more vivid, obvious and stereoscopic by the reflection of the background piece 30 and the configuration of the color of the background piece 30.
[0050] The visual effect of the liquid drop movement of the air conditioning equipment 10 is realized by the liquid drop device 40, and the visual effect function of the air conditioning equipment 10 is further enriched.
[0051] Therefore, while the humidity of the environment is adjusted by the air conditioning equipment 10 provided in the present application, the vivid and stereoscopic flame effect is presented, and the market competitiveness of the air conditioning equipment 10 is improved.
[0052] It can be understood that the factors forming the second color include the color of the mist and the color of the projected light. In general, the atomized liquid is transparent, so the color of the mist is generally white without projecting the light of a special color. When the projected light is provided to the mist by the light projecting device 23, the color of the mist can present the color of the projected light, for example, when the projected light is orange, the mist is orange, that is, the second color is orange. In this case, the first color is configured as dark blue or black to make the first color different from the second color. At this time, the color effect of the mist presented as the second color is more obvious and stereoscopic under the reflection of the first color background piece 30. Under the influence of the airflow, the mist produces the effect of drifting, and then the visual effect of the drifting color is formed. When the mist is projected by the orange light, the mist forms the effect of drifting orange under the action of the airflow, and then the dynamic visual effect of the drifting flame is formed, and the visual effect of the flame is more vivid, obvious and stereoscopic under the reflection of the dark blue or black background piece 30.
[0053] The visual effect of the liquid drop is formed by the liquid drop device 40, and the visual effect of the liquid drop falling downward, the liquid drop moving upward and the liquid drop hovering can be formed by controlling the related parameters of the light and the liquid flow. A plurality of groups of liquid drops can be formed by the liquid drop device 40, and the falling frequency of each group of liquid drops can be controlled respectively, so that the visual effect of the liquid drop is presented in a set manner, and the visual effect of the air conditioning equipment 10 is more enriched, and the use experience of the user is improved.
[0054] The air conditioning device 10 can present more abundant visual effects by combining the visual effect of the liquid drops with the visual effect of the flame.
[0055] In some embodiments of the present application, the background piece 30 is provided with a mist outlet hole 31 and background columns 32. The mist outlet hole 31 is used to provide a channel for the mist to be discharged. The number of the background columns 32 is at least two, and the background columns 32 are dispersedly arranged around the mist outlet hole 31, and the color of the side of all the background columns 32 facing the mist outlet hole 31 is configured as a first color.
[0056] It can be understood that, by surrounding the background columns 32, the background columns 32 circumferentially highlight the mist mixed with the projected light, and thus the flame effect produced by the mist can present a lively and obvious visual effect from all directions, and the visual effect of the flame is more three-dimensional and lively.
[0057] In some embodiments of the present application, the first color is deeper than the second color.
[0058] It can be understood that, if the first color is the same as the second color, the mist mixed with the projected light will be visually integrated with the background piece 30, resulting in that the visual effect of the flame is not obvious and clear. If the first color is lighter than the second color, the mist mixed with the projected light will be visually affected by the environment objects more, thereby reducing the highlighting effect of the background piece 30 on the mist mixed with the projected light, and further affecting the visual effect of the flame. By making the first color deeper than the second color, the mist mixed with the projected light has a color difference with the background piece 30, and the visual effect of the mist mixed with the projected light which is lighter in color is more highlighted and clear in outline under the highlighting of the background piece 30 which is darker in color, and thus the visual effect of the mist mixed with the projected light under the highlighting of the dark background is more obvious and prominent.
[0059] Herein, the lightness and darkness of the color can be the level of brightness and darkness of the color, or the level of dark color and light color.
[0060] In some embodiments of the present application, the first color gradually becomes lighter in the direction away from the mist outlet hole 31.
[0061] The mist disperses outward from the mist outlet hole 31, and the light projecting device 23 makes the projected light shoot outward from the mist outlet hole 31, thereby making the projected light and the mist both disperse from the mist outlet hole 31, and thus presenting the visual effect of the flame dispersing from the mist outlet hole 31. By making the first color gradually become lighter in the direction away from the mist outlet hole 31, the part of the mist mixed with the projected light which is closer to the mist outlet hole 31 is more obvious and prominent under the highlighting of the background piece 30, and the part of the mist mixed with the projected light which is farther away from the mist outlet hole 31 is more transparent and blurred, thereby making the visual effect of the flame more real, three-dimensional and lively.
[0062] It can be understood that, since the mist has certain light transmittance, it is easy to be affected by the surrounding environment, and the background piece 30 is used to avoid the user from observing the surrounding environment through the mist, and to avoid the light from the surrounding environment from affecting the projection light in the mist. When observing the mist, the user can see the background piece 30 through the mist, and the color of the background piece 30 is relatively deep, so as to highlight the mist, and the visual effect of the mist mixed with the projection light is more obvious and prominent under the highlighting of the background piece 30. The first color gradually becomes lighter in the direction away from the mist outlet hole 31, and then the color observed by the user through the mist also gradually becomes lighter in the direction away from the mist outlet hole 31, and then the color of the mist observed by the user gradually becomes lighter in the direction away from the mist outlet hole 31, and the visual effect of the mist gradually becomes blurred and transparent, so as to be more consistent with the visual effect of the flame, and then the visual effect of the flame is more realistic, three-dimensional and vivid.
[0063] Please refer to Figure 2 In some embodiments of the present application, the liquid drop device 40 is located above the mist outlet hole 31.
[0064] It can be understood that, since the mist has certain light transmittance, it is easy to be affected by the surrounding environment, and the background piece 30 is used to avoid the user from observing the surrounding environment through the mist, and to avoid the light from the surrounding environment from affecting the projection light in the mist. When observing the mist, the user can see the background piece 30 through the mist, and the color of the background piece 30 is relatively deep, so as to highlight the mist, and the visual effect of the mist mixed with the projection light is more obvious and prominent under the highlighting of the background piece 30. The first color gradually becomes lighter in the direction away from the mist outlet hole 31, and then the color observed by the user through the mist also gradually becomes lighter in the direction away from the mist outlet hole 31, and then the color of the mist observed by the user gradually becomes lighter in the direction away from the mist outlet hole 31, and the visual effect of the mist gradually becomes blurred and transparent, so as to be more consistent with the visual effect of the flame, and then the visual effect of the flame is more realistic, three-dimensional and vivid.
[0065] It can be understood that, since the mist has certain light transmittance, it is easy to be affected by the surrounding environment, and the background piece 30 is used to avoid the user from observing the surrounding environment through the mist, and to avoid the light from the surrounding environment from affecting the projection light in the mist. When observing the mist, the user can see the background piece 30 through the mist, and the color of the background piece 30 is relatively deep, so as to highlight the mist, and the visual effect of the mist mixed with the projection light is more obvious and prominent under the highlighting of the background piece 30. The first color gradually becomes lighter in the direction away from the mist outlet hole 31, and then the color observed by the user through the mist also gradually becomes lighter in the direction away from the mist outlet hole 31, and then the color of the mist observed by the user gradually becomes lighter in the direction away from the mist outlet hole 31, and the visual effect of the mist gradually becomes blurred and transparent, so as to be more consistent with the visual effect of the flame, and then the visual effect of the flame is more realistic, three-dimensional and vivid.
[0066] Please refer to Figures 2 to 3 In some embodiments of the present application, the liquid drop device 40 includes a liquid supply device 41 and a flashing device 42. The liquid supply device 41 is used to provide the liquid drops. The flashing device 42 is used to provide the flashing light to the liquid drops. The dropping frequency of the liquid drops and the flashing frequency of the flashing light can be adjusted.
[0067] The liquid drop is provided by the liquid supply device 41, and the flashing light is provided by the flashing device 42. The flashing light is formed by the light source being turned on and off. When the light source is turned on, the light irradiates the liquid drop, and the liquid drop presents a bright visual effect, so that the user can observe a clear visual effect of the liquid drop. When the light source is turned off, no light irradiates the liquid drop, and the liquid drop cannot be visually perceived, so that an intermittent visual effect is formed. Thus, under the irradiation of the flashing light, the visual effect of the liquid drop is formed.
[0068] The dynamic effect of the visual effect of the liquid drop can be controlled by controlling the drop frequency of the liquid drop and the flashing frequency of the flashing light.
[0069] It can be understood that when the light source is in the on state, the human eye can observe a clear liquid drop. When the light source is turned off, the liquid drop has fallen a distance. When the light source is turned on again, the human eye can observe a clear liquid drop again. Due to the visual persistence effect, the previously observed liquid drop will not immediately disappear, so that the image of the liquid drop is retained in the human brain for a period of time. Therefore, when the light source is turned on again, there will be two images of the same liquid drop in the human brain, one is the ghost image of the liquid drop that has not disappeared, and the other is the real image of the liquid drop that appears again.
[0070] In the case where the flashing frequency is greater than the drop frequency: since the flashing frequency is greater than the drop frequency, the interval time length of adjacent two times of turning on of the light source will be less than the interval time length of adjacent liquid drops moving to the same position, so that the liquid drop is observed before it reaches the expected position in the human brain, thereby making the human brain mistakenly think that the liquid drop is moving upward. Under the flashing of the flashing light, the human brain will have the illusion that the liquid drop continuously flows backward, that is, the visual effect of the liquid drop flowing backward against gravity is formed. The expected position of the liquid drop in the human brain is the image position of the previous liquid drop left in the human brain. That is, in the case where the flashing frequency is greater than the drop frequency, the next liquid drop will be observed before the ghost image of the previous liquid drop, thereby causing the visual effect of the liquid drop flowing backward against gravity.
[0071] In the case where the flashing frequency is equal to the drop frequency: since the flashing frequency is equal to the drop frequency, the interval time length of adjacent two times of turning on of the light source will be equal to the interval time length of adjacent liquid drops moving to the same position, so that the liquid drop is observed just when it reaches the expected position in the human brain, thereby making the human brain mistakenly think that the liquid drop is stationary. Even if the flashing light flashes continuously and the liquid drop flows continuously, the human brain will still only have the illusion that the liquid drops are in a string. The greater the flashing frequency and the drop frequency, the smaller the distance between the images of the liquid drops in the human brain. The expected position of the liquid drop in the human brain is the image position of the previous liquid drop left in the human brain. That is, in the case where the flashing frequency is equal to the drop frequency, the next liquid drop will be observed at the position of the ghost image of the previous liquid drop, thereby causing the visual effect of the liquid drops staying in a string.
[0072] In the case that the flickering frequency is less than the dropping frequency: since the flickering frequency is less than the dropping frequency, the interval between two adjacent light-on of the light source is greater than the interval between two adjacent drops moving to the same position, so that the drop is observed after passing the position expected by the human brain, and the human brain thinks that the drop is moving downward, and in the case of the flickering light constantly flickering, the human brain will have the feeling that the drop is continuously falling, that is, the visual effect of the drop stringing is formed. The position of the drop expected by the human brain is the image position left by the previous drop in the human brain. That is, in the case that the flickering frequency is less than the dropping frequency, the next drop is observed after the image of the previous drop, so that the visual effect of the drop stringing is formed.
[0073] In some embodiments of the present application, the color and the flickering frequency of the projection light provided by the light projection device 23 and the flickering light provided by the flickering light device 42 are the same.
[0074] It can be understood that the projection light is used to make the fog present the visual effect of the flame, and the flickering light is used to make the atomized liquid present the visual effect of the drop. If the color of the flickering light is inconsistent with the color of the projection light, when the projection light and the flickering light are turned on at the same time, the color of the flickering light will affect the visual effect of the flame. If the frequency of the projection light is inconsistent with the frequency of the flickering light, when the projection light and the flickering light are turned on at the same time, the projection light will affect the visual effect of the drop. By making the color and the flickering frequency of the projection light and the flickering light the same, the good visual effects of the flame and the drop are ensured at the same time.
[0075] Since there is also a certain frequency in the process of the fog being scattered from the fog outlet hole 31, by controlling the frequency of the projection light, the frequency of the projection light and the frequency of the fog movement are different, and a more vivid visual effect of the flame floating is presented.
[0076] In some embodiments of the present application, the fog supply device 20 includes a liquid storage bin 21 and an atomization assembly 22. The liquid storage bin 21 is used to load the atomized liquid, and the fog outlet hole 31 is in liquid communication with the liquid storage bin 21. The atomization assembly 22 is used to atomize the atomized liquid. The liquid supply device 41 includes a generating assembly 411 and a pumping assembly 415. The generating assembly 411 is used to generate the drops. The pumping assembly 415 is used to deliver the atomized liquid in the liquid storage bin 21 to the generating assembly 411. The drops drop to the fog outlet hole 31.
[0077] The atomized liquid is loaded by the liquid storage bin 21, and the atomized liquid is atomized by the atomization assembly 22, and the generated fog is scattered from the fog outlet hole 31. The projection light is provided to the fog from inside the fog outlet hole 31 to outside the fog outlet hole 31 by the light projection device 23, so that the fog presents the flame effect.
[0078] The atomized liquid in the liquid storage bin 21 is transported to the generating assembly 411 by the pumping assembly 415, so that the generating assembly 411 can continuously generate liquid drops, and the liquid drops can form the expected dynamic visual effect of the liquid drops under the irradiation of the flickering light.
[0079] The atomized liquid is dropped to the mist outlet hole 31 and flows back to the liquid storage bin 21 from the mist outlet hole 31, so that the circulation of the atomized liquid is formed, and the continuity of the flame visual effect and the liquid drop visual effect is ensured. By circulating the atomized liquid, the substances in the atomized liquid can always be kept in a uniformly mixed state, so that the uniformity of atomization of the substances in the atomized liquid is ensured.
[0080] In some embodiments of the present application, the height of the liquid inlet of the pumping assembly 415 is set to be higher than the bottom height of the liquid storage bin 21.
[0081] By setting the height of the liquid inlet of the pumping assembly 415 to be higher than the bottom height of the liquid storage bin 21, even if the liquid level of the atomized liquid is lower than the height of the liquid inlet of the pumping assembly 415, there is still atomized liquid in the liquid storage bin 21 for atomization. When the liquid level of the atomized liquid is lower than the height of the liquid inlet of the pumping assembly 415, the pumping assembly 415 cannot continue to provide the atomized liquid to the generating assembly 411, at which time the visual effect of forming liquid drops is stopped. Thus, the situation of no liquid drop formation without stopping the generation of liquid drops indicates that the liquid level in the liquid storage bin 21 is too low, and the user is prompted to supplement the atomized liquid, so that the mist forming function of the air conditioning device 10 can be continuously and effectively performed.
[0082] In some embodiments of the present application, the generating assembly 411 includes a liquid collecting bin 412 and a vibration assembly 414. The liquid collecting bin 412 is connected to the liquid path of the pumping assembly 415, and the liquid collecting bin 412 is provided with a liquid drop outlet 413. The vibration assembly 414 is used to generate vibration to make the liquid in the liquid collecting bin 412 drop from the liquid drop outlet 413.
[0083] After the pumping assembly 415 pumps the atomized liquid to the generating assembly 411, the atomized liquid is collected by the liquid collecting bin 412, and the vibration assembly 414 generates vibration to make the liquid collecting bin 412 vibrate, so that the atomized liquid drops from the liquid drop outlet 413 of the liquid collecting bin 412, and then the liquid drops are generated. By controlling the vibration frequency of the vibration assembly 414, the frequency of the liquid drops dropping can be controlled.
[0084] It can be understood that, due to the surface tension of the atomized liquid, by designing the size and shape of the drop port 413, it can be ensured that the atomized liquid does not drop from the drop port 413 without external force, or even if the atomized liquid can drop from the drop port 413 by its own weight, the dropping rule of the atomized liquid can still match the vibration rule of the vibration assembly 414 under the vibration of the vibration assembly 414. When the surface tension of the atomized liquid is sufficient to ensure that the atomized liquid does not drop from the drop port 413 without external force, the liquid collection bin 412 is vibrated by the vibration assembly 414, and then the atomized liquid drops from the drop port 413 due to vibration, and then the dropping rule of the atomized liquid can be controlled by controlling the vibration rule of the vibration assembly 414.
[0085] In some embodiments of the present application, the flash device 42 is provided with at least three lamp beads 421. The lamp beads 421 are arranged in a circumferential array along the center of the drop port 413.
[0086] By providing the flash light from the circumferential direction to the liquid drop through the at least three lamp beads 421, when the liquid drop is observed from various directions, the cleaned liquid drop shape can be seen, so that the visual effect of the liquid drop is more three-dimensional, vivid and lifelike.
[0087] In some embodiments of the present application, the lamp beads 421 are in contact with the outer wall of the liquid collection bin 412.
[0088] The atomized liquid in the liquid collection bin 412 is in circulating flow, by making the lamp beads 421 in contact with the outer wall of the liquid collection bin 412, and then the heat generated by the lamp beads 421 when emitting light is absorbed by the atomized liquid, on the one hand, the atomized liquid cools the lamp beads 421 to avoid overheating of the lamp beads 421 and reduce the failure rate of the lamp beads 421 to prolong the service life of the lamp beads 421, on the other hand, the energy contained in the atomized liquid is improved, and the atomized liquid is preliminarily activated, when the atomized liquid returns to the liquid storage bin 21, the activated atomized liquid can be more efficiently atomized by the atomizing assembly 22, thereby improving the atomization effect, making the liquid beads in the atomized gas more uniform and dense, thereby improving the humidifying effect of the air conditioning equipment 10, and making the visual effect of the flame more soft, vivid and three-dimensional.
[0089] Please refer to Figure 4In some embodiments of the present application, the air conditioning device control system 50 provided by the present application comprises a liquid storage tank 21, an atomization assembly 22, a light projection device 23, a fan device 24, a mist control unit 54, a light control unit 55, and a wind control unit 56. The liquid storage tank 21 is used to load atomization liquid. The atomization assembly 22 is used to atomize the atomization liquid to form mist. The light projection device 23 is used to provide projection light to the mist. The fan device 24 is used to deliver the mist outward. The mist control unit 54 is used to control the operating parameters of the atomization assembly 22. The light control unit 55 is used to control the parameters of the projection light. The wind control unit 56 is used to control the operating parameters of the fan device 24. The light projection device 23 emits projection light from inside the mist outlet to outside the mist outlet. The projection light provided by the light projection device 23 has the same flicker frequency as the flicker light provided by the flash device 42. The control unit 57 is configured to send control instructions to at least one of the mist control unit 54, the light control unit 55, or the wind control unit 56 according to relevant instructions or signals.
[0090] It can be understood that, by referring to Figures 1 to 4 , the atomization liquid is loaded by the liquid storage tank 21, the atomization liquid is atomized by the atomization assembly 22, and the airflow is generated by the fan device 24 to make the generated mist disperse from the mist outlet 31. The projection light is provided to the mist by the light projection device 23 from inside the mist outlet 31 to outside the mist outlet 31, thereby making the mist present a flame effect. The operating parameters of the atomization assembly 22 are controlled by the mist control unit 54, thereby controlling the amount of mist generated. The operating parameters of the light projection device 23 are controlled by the light control unit 55, thereby controlling the brightness, color, color temperature, flicker frequency, and other parameters of the projection light. The operating parameters of the fan device 24 are controlled by the wind control unit 56, thereby controlling the wind speed and direction of the airflow delivered by the fan device 24. By making the frequency of the flicker light equal to the frequency of the projection light, the visual effect of the projection light on the movement of the liquid droplets is avoided, thereby achieving the visual effect of the flame while ensuring good visual effect of the movement of the liquid droplets.
[0091] When the control unit 57 receives the control instructions, it sends control instructions to at least one of the mist control unit 54, the light control unit 55, or the wind control unit 56 according to the instruction signals to control the range, clarity, brightness, and other parameters of the flame visual effect.
[0092] In some embodiments of the present application, the relevant instructions include: an instruction for increasing the range of the flame, an instruction for decreasing the range of the flame, an instruction for increasing the definition of the flame, an instruction for decreasing the definition of the flame, an instruction for increasing the brightness of the flame, and an instruction for decreasing the brightness of the flame. The operating parameter of the atomization assembly 22 includes the atomization amount, the operating parameter of the fan device 24 includes the wind speed, and the parameter of the projected light includes the brightness of the projected light. If the control unit 57 receives the instruction for increasing the range of the flame, the control unit 57 sends a control instruction to the wind control unit 56 to increase the wind speed. If the control unit 57 receives the instruction for decreasing the range of the flame, the control unit 57 sends a control instruction to the wind control unit 56 to decrease the wind speed. If the control unit 57 receives the instruction for increasing the definition of the flame, the control unit 57 sends a control instruction to the mist control unit 54 to increase the atomization amount. If the control unit 57 receives the instruction for decreasing the definition of the flame, the control unit 57 sends a control instruction to the mist control unit 54 to decrease the atomization amount. If the control unit 57 receives the instruction for increasing the brightness of the flame, the control unit 57 sends a control instruction to the light control unit 55 to increase the brightness of the projected light. If the control unit 57 receives the instruction for decreasing the brightness of the flame, the control unit 57 sends a control instruction to the light control unit 55 to decrease the brightness of the projected light.
[0093] It can be understood that, when the wind speed is increased, the airflow generated by the fan device 24 can carry the mist to a farther place, thereby expanding the diffusion range of the mist and further expanding the range of the flame in the visual effect. It should be noted that, under the condition of the same amount of mist, the mist is diffused to a wider range due to the increased wind speed, which can make the mist appear more transparent in vision, thereby making the visual effect of the flame more transparent and further reducing the definition of the flame. At this time, the mist control unit 54 can control the atomization assembly 22 to increase the atomization amount, thereby making the mist more thick, so as to ensure the definition of the flame.
[0094] When the wind speed is decreased, the diffusion range of the mist is reduced, thereby reducing the range of the flame in the visual effect.
[0095] By increasing the brightness of the projected light, the brightness of the light mixed with the mist is increased, thereby increasing the brightness of the flame in the visual effect. Conversely, by decreasing the brightness of the projected light, the brightness of the light mixed with the mist is decreased, thereby decreasing the brightness of the flame in the visual effect.
[0096] When the atomization amount increases, the fog emitted from the fog outlet 31 is thicker, and the transparency of the fog is reduced, so that the projected light can be refracted and reflected between more fog droplets, so that the fog appears more clearly, and the clarity of the flame in the visual effect is improved. Conversely, when the atomization amount decreases, the fog emitted from the fog outlet 31 becomes thin, and the transparency of the fog is increased, so that the projected light can be refracted and reflected between fewer fog droplets, so that the fog appears unclear, and the clarity of the flame in the visual effect is reduced.
[0097] The user can clearly understand the humidification amount of the air conditioning device 10 and the diffusion range of the fog during humidification through the visual effects such as the clarity of the flame, the range of the flame, and the brightness of the flame, so that the vivid flame visual effect is provided, and the humidification amount of the air conditioning device 10 and the diffusion range of the fog are indicated through the form of the flame visual effect.
[0098] Please refer to Figure 4 In some embodiments of the present application, the air conditioning device control system 50 provided by the present application includes a liquid collection bin 412, a vibration assembly 414, a pumping assembly 415, a flashing device 42, a pump control unit 51, a vibration control unit 52, a light control unit 53, and a control unit 57. The liquid collection bin 412 is used to collect atomized liquid, and the liquid collection bin 412 is provided with a liquid drop port 413. The vibration assembly 414 is used to generate vibration to make the atomized liquid in the liquid collection bin 412 drop from the liquid drop port 413. The pumping assembly 415 is used to deliver atomized liquid to the liquid collection bin 412. The flashing device 42 is used to provide flashing light to the liquid droplets dropped from the liquid drop port 413. The pump control unit 51 is used to control the pumping parameters of the pumping assembly 415. The vibration control unit 52 is used to control the vibration parameters of the vibration assembly 414. The light control unit 53 is used to control the light-emitting parameters of the flashing device 42. The control unit 57 is configured to send control instructions to at least one of the pump control unit 51, the vibration control unit 52, or the light control unit 53 according to relevant instructions or signals.
[0099] During the operation of the air conditioning device 10, the atomized liquid is delivered to the liquid collection bin 412 by the pumping assembly 415, and vibration is generated by the vibration assembly 414, so that the atomized liquid in the liquid collection bin 412 drops from the liquid drop port 413, and flashing light is provided to the liquid droplets by the flashing device 42 to present a clear liquid droplet effect. By controlling the pumping parameters, the vibration parameters, and the light-emitting parameters, the visual effect of the liquid droplets is controlled, and the visual effect of the liquid droplets is more rich, so as to reduce the aesthetic fatigue of the user. In this way, the air conditioning device 10 has more rich functions, and the needs of the user are met.
[0100] In some embodiments of the present application, the control unit 57 is configured to send control instructions to at least one of the pump control unit 51, the vibration control unit 52, the lamp control unit 53, the mist control unit 54, the light control unit 55, or the wind control unit 56 according to relevant instructions or signals.
[0101] By linking the flame visual effect and the liquid drop visual effect, the air conditioning device 10 can exhibit more diverse visual forms, realize more diverse functions of the air conditioning device 10, and meet the needs of users.
[0102] In some embodiments of the present application, the vibration parameter includes a vibration frequency, and the light-emitting parameter includes a flickering frequency. Let the vibration frequency be H1 and the flickering frequency be H2, then 1%≤|(H2-H1) / H2|≤5%.
[0103] When the flickering frequency is greater than the vibration frequency, the flickering frequency is higher than the vibration frequency, and the visual effect of the liquid drop flowing against gravity is realized. The principle of forming the visual effect of the liquid drop flowing against gravity has been described in detail in the foregoing content, and thus is not described here.
[0104] It should be noted that when the flickering frequency and the vibration frequency have an integer multiple relationship, the visual effect of the liquid drop staying can also be realized. By limiting the difference between the vibration frequency and the flickering frequency, the visual effect of the liquid drop flowing against gravity is more obvious and vivid.
[0105] When the flickering frequency is less than the vibration frequency, the flickering frequency is lower than the vibration frequency, and the visual effect of the liquid drop moving forward is realized. The principle of forming the visual effect of the liquid drop moving forward has been described in detail in the foregoing content, and thus is not described here.
[0106] In some embodiments of the present application, the flickering frequency is configured to be 50Hz≤H2≤70Hz.
[0107] It can be understood that each liquid drop has a certain shape and size. When the distance between the adjacent liquid drops in the vision is too close, the adjacent liquid drops in the vision will overlap, so that the complete shape of the liquid drop cannot be reflected, and the visual effect of the liquid drop is not obvious and clear. By limiting the flickering frequency, the interval distance between the adjacent liquid drops in the vision is controlled, so that the liquid drop effect is more clear and obvious.
[0108] In some embodiments of the present application, the relevant instructions include: reverse flow instruction, forward flow instruction, static instruction, acceleration instruction, deceleration instruction. The vibration parameter includes vibration frequency, and the light-emitting parameter includes flickering frequency. If the control unit 57 receives the reverse flow instruction, the control unit 57 sends control instructions to the vibration control unit 52 and the light control unit 53 to make the flickering frequency greater than the vibration frequency; if the control unit 57 receives the forward flow instruction, the control unit 57 sends control instructions to the vibration control unit 52 and the light control unit 53 to make the flickering frequency less than the vibration frequency; if the control unit 57 receives the static instruction, the control unit 57 sends control instructions to the vibration control unit 52 and the light control unit 53 to make the flickering frequency equal to the vibration frequency; if the control unit 57 receives the acceleration instruction, the control unit 57 sends control instructions to the vibration control unit 52 and the light control unit 53 to make the difference between the flickering frequency and the vibration frequency increase; if the control unit 57 receives the deceleration instruction, the control unit 57 sends control instructions to the vibration control unit 52 and the light control unit 53 to make the difference between the flickering frequency and the vibration frequency decrease.
[0109] It can be understood that when the light source is in the on state, the human eye will observe a clear liquid drop; when the light source is off, the liquid drop has fallen a distance; when the light source is on again, the human eye will observe a clear liquid drop again. Due to the visual persistence effect, the previously observed liquid drop will not immediately disappear, causing the liquid drop image to remain in the human brain for a period of time. Therefore, when the light source is on again, there will be two images of the same liquid drop in the human brain, one being the ghost image of the liquid drop that has not yet disappeared, and the other being the real image of the liquid drop that appears again.
[0110] In the case where the flickering frequency is greater than the drop frequency: since the flickering frequency is greater than the drop frequency, the interval between the adjacent two times that the light source is on will be less than the interval between the adjacent liquid drops moving to the same position, so that the liquid drop is observed before it reaches the expected position in the human brain, thereby making the human brain mistakenly believe that the liquid drop is moving upward. Under the flickering light, the human brain will have the illusion that the liquid drop is continuously flowing in reverse, i.e., forming the visual effect of the liquid drop flowing in reverse against gravity. The expected position of the liquid drop in the human brain is the image position left by the previous liquid drop in the human brain. That is, in the case where the flickering frequency is greater than the drop frequency, the next liquid drop will be observed before the ghost image of the previous liquid drop, thereby causing the visual effect of the liquid drop flowing in reverse against gravity.
[0111] In the case that the flickering frequency is equal to the dropping frequency: since the flickering frequency is equal to the dropping frequency, the interval between the adjacent two times of the light source being on will be equal to the interval between the adjacent two drops moving to the same position, so that the drop is observed just when it reaches the position expected by the human brain, thus the human brain mistakenly thinks that the drop is static, even though the flickering light is flickering and the drop is continuously flowing, the human brain will only have the illusion that the drops are staying in a string, the greater the flickering frequency and the dropping frequency, the smaller the distance between the drop images in the human brain. The position expected by the human brain is the position of the previous drop image left in the human brain. That is, in the case that the flickering frequency is equal to the dropping frequency, the next drop is observed at the position of the previous drop image, thus the visual effect of the drops staying in a string is formed.
[0112] In the case that the flickering frequency is less than the dropping frequency: since the flickering frequency is less than the dropping frequency, the interval between the adjacent two times of the light source being on will be greater than the interval between the adjacent two drops moving to the same position, so that the drop is observed after it passes the position expected by the human brain, thus the human brain thinks that the drop is moving downward, under the flickering light, the human brain will have the feeling that the drops are continuously falling, that is, the visual effect of the drops falling in a string is formed. The position expected by the human brain is the position of the previous drop image left in the human brain. That is, in the case that the flickering frequency is less than the dropping frequency, the next drop is observed after the previous drop image, thus the visual effect of the drops falling in a string is formed.
[0113] In the case that the difference between the flickering frequency and the vibration frequency increases, the distance between the position of the next drop observed and the position of the previous drop image left increases, thus the drop appears to move a greater distance in a unit of time in the vision, thus the visual effect of the drop moving at an increased speed is presented. When the flickering frequency is greater than the vibration frequency, the difference between the flickering frequency and the vibration frequency increases, which appears to be the drop flowing against gravity at an accelerated speed in the vision; when the flickering frequency is less than the vibration frequency, the difference between the flickering frequency and the vibration frequency increases, which appears to be the drop flowing with gravity at an accelerated speed in the vision.
[0114] In the case that the difference between the flickering frequency and the vibration frequency decreases, the distance between the position of the next drop observed and the position of the previous drop image left decreases, thus the drop appears to move a smaller distance in a unit of time in the vision, thus the visual effect of the drop moving at a decreased speed is presented. When the flickering frequency is greater than the vibration frequency, the difference between the flickering frequency and the vibration frequency decreases, which appears to be the drop flowing against gravity at a decelerated speed in the vision; when the flickering frequency is less than the vibration frequency, the difference between the flickering frequency and the vibration frequency decreases, which appears to be the drop flowing with gravity at a decelerated speed in the vision.
[0115] In some embodiments of the present application, the pumping parameter comprises a flow rate of the pumping assembly 415, and the vibration parameter comprises a vibration frequency and a vibration amplitude. In some embodiments of the present application, the flow rate is positively correlated with the vibration frequency and the vibration amplitude.
[0116] When the vibration frequency is increased, the consumption of the atomized liquid in the sump 412 is increased, and thus the flow rate of the pumping assembly 415 needs to be increased to increase the supply of the atomized liquid in the sump 412, so as to ensure that the sump 412 is always filled with the atomized liquid, thereby ensuring the continuity of the visual effect of the liquid drops.
[0117] When the vibration frequency is decreased, the consumption of the atomized liquid in the sump 412 is decreased, and thus the flow rate of the pumping assembly 415 needs to be decreased to decrease the supply of the atomized liquid in the sump 412, so as to avoid the liquid level of the atomized liquid in the sump 412 from rising too high, thereby avoiding the atomized liquid from overflowing from the sump 412.
[0118] In some embodiments of the present application, the related instructions comprise a liquid drop increase instruction and a liquid drop decrease instruction. The vibration parameter comprises a vibration amplitude. If the control unit 57 receives the liquid drop increase instruction, the control unit 57 sends a control instruction to the vibration control unit 52 to increase the vibration amplitude. If the control unit 57 receives the liquid drop decrease instruction, the control unit 57 sends a control instruction to the vibration control unit 52 to decrease the vibration amplitude.
[0119] When the vibration amplitude of the vibration assembly 414 is increased, even if the vibration amplitude of the sump 412 is increased, the amount of the atomized liquid that is dripped from the liquid drop port 413 at a time is increased, and thus the size of the liquid drops is increased, so that the visual effect of the liquid drops appears to be larger. Conversely, when the vibration amplitude of the vibration assembly 414 is decreased, even if the vibration amplitude of the sump 412 is decreased, the amount of the atomized liquid that is dripped from the liquid drop port 413 at a time is decreased, and thus the size of the liquid drops is decreased, so that the visual effect of the liquid drops appears to be smaller.
[0120] Please refer to Figure 4 In some embodiments of the present application, the air conditioning device control system 50 provided by the present application further comprises an audio module 60. The audio module 60 is configured to play audio. The control unit 57 is configured to send a control instruction to at least one of the pump control unit 51, the vibration control unit 52, the lamp control unit 53, the mist control unit 54, the light control unit 55, or the air control unit 56 according to an audio signal of the audio module 60.
[0121] The air conditioning device 10 is provided with the function of playing audio through the audio module 60, the control unit 57 generates a control instruction according to the audio signal through the audio signal, and then controls the related parameters of at least one of the pump control unit 51, the vibration control unit 52, the lamp control unit 53, the fog control unit 54, the light control unit 55, or the air control unit 56 to change according to the change of the audio signal, and then at least one of the liquid drop visual effect and the flame visual effect changes with the change of the audio parameter, thereby combining the auditory effect of the audio with the visual effect of the flame and / or the liquid drop, and making the performance form of the air conditioning device 10 more diverse.
[0122] The audio parameter can be controlled by the audio control unit 57, thereby enriching the performance form of the auditory effect of the audio of the air conditioning device 10.
[0123] In the mute mode, the loudspeaker of the air conditioning device 10 does not produce sound, but the audio module 60 continues to work, so that the visual effect of the flame and / or the liquid drop can still be controlled by the audio signal, and a more diverse visual effect can be exhibited.
[0124] On the other hand, in some embodiments of the present application, the present application also provides an air conditioning device 10 comprising an air conditioning device control system 50.
[0125] In the description of the present specification, the description of the terms "some embodiments", "illustrative embodiments", "examples", "specific examples", or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiments or examples are included in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0126] In addition, the above only describes the preferred embodiments of the present application and does not limit the present application. Any modification, equivalent replacement and improvement made within the spirit and principle of the present application shall be included in the protection scope of the present application. Therefore, the protection scope of the present application shall be subject to the protection scope of the claims.
Claims
1. An air conditioning apparatus having a visual special effect, characterized by, The fog supply device is used for providing fog; The light projection device is used for providing projected light to the fog; The background piece is used for highlighting the fog projected with the projected light, the first color of at least one side of the background piece towards the fog being different from the second color of the fog after being projected with the projected light; The liquid drop device is used for realizing a visual effect of liquid drops; The background piece is provided with a fog outlet hole and background columns; The fog outlet hole is used for providing a channel for the fog to be discharged; The number of the background columns is at least two, the background columns being dispersedly arranged around the fog outlet hole, and the colors of all the sides of the background columns towards the fog outlet hole being configured as the first color; The first color is deeper than the second color; The first color gradually becomes lighter in the direction away from the fog outlet hole; The liquid drop device comprises: The liquid supply device is used for providing liquid drops; The flashing device is used for providing flashing light to the liquid drops; The color and the flashing frequency of the projected light provided by the light projection device are the same as those of the flashing light provided by the flashing device; The liquid drop device is located above the fog outlet hole, so that the farther the first color is from the fog outlet hole, the lighter the first color is, and the closer the first color is to the liquid drop device, the lighter the first color is. The dropping frequency of the liquid drops and the flashing frequency of the flashing light can be adjusted.
2. The air conditioning apparatus having a visual effect according to claim 1, wherein The fog supply device comprises:
3. The air conditioning apparatus having a visual effect according to claim 2, wherein The liquid storage bin is used for loading atomized liquid, the fog outlet hole being in liquid communication with the liquid storage bin; The atomization assembly is used for atomizing the atomized liquid; The liquid supply device comprises: The generating assembly is used for generating the liquid drops; The pumping assembly is used for conveying the atomized liquid in the liquid storage bin to the generating assembly; The liquid drops drop to the fog outlet hole. The generating assembly comprises:
4. The air conditioning apparatus having a visual effect according to claim 3, wherein The liquid collection bin is in liquid communication with the pumping assembly, and is provided with a liquid drop opening; The vibration assembly is used for generating vibration to make the liquid in the liquid collection bin drop from the liquid drop opening. The flashing device is provided with at least three lamp beads; 5. The air conditioning apparatus having a visual effect according to claim 4, wherein The lamp beads are arranged in a circumferential array along the center of the liquid drop opening. The lamp beads are in contact with the outer wall of the liquid collection bin.
6. The air conditioning apparatus having a visual effect according to claim 5, wherein
Citation Information
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