A misting device for facilitating courtship behavior of green-tailed pheasant
By using a natural fog generation, dispersal, and recovery mechanism, fog with humidity and temperature close to that of natural fog is generated and disseminated, solving the problem that existing devices cannot simulate natural fog, promoting the courtship behavior of green-tailed pheasants and reducing environmental impact.
Patent Information
- Application Number
- CN202511183150.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-22
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2045-08-22
AI Technical Summary
Existing atomizing devices are unable to generate fog with humidity, temperature, and flow similar to natural fog in the captive environment of the green-tailed pheasant, thus affecting its courtship behavior.
The system employs a natural fog generation mechanism, a cooling and pushing mechanism, and a natural fog recovery mechanism. Warm and humid air with near-saturation humidity is generated in the generation channel through a cooling component, a water vapor generation component, and a micro-wind generation component. After cooling, natural fog is formed, and the fog is pushed and recovered in the cage by the cooling and pushing mechanism to simulate the flow of natural fog.
In the captive environment of the green-tailed monal pheasant, a stable natural fog was generated and maintained to simulate the flow of natural fog, promote courtship behavior, and at the same time avoid the negative impact of fog on the external environment.
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Figure CN120660643B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of atomization device technology, and more specifically, to an atomization device for promoting the courtship behavior of the green-tailed pheasant. Background Technology
[0002] Compared to their native habitat, the captive environment for Green-tailed Pheasants offers more stable temperature and humidity with less diurnal variation. In contrast, their native habitat experiences lower temperatures and higher humidity between 7:00 AM and 9:00 AM daily from March to May. During this time, the native habitat features naturally occurring fog, which enhances visual haziness, improves the iridescence of the Green-tailed Pheasant's feathers, and transmits olfactory information. Consequently, courtship behavior in Green-tailed Pheasants is most prevalent during this period. Therefore, the natural fog generated in the captive environment of Green-tailed Pheasants is conducive to promoting their courtship behavior.
[0003] Natural fog formation requires air humidity to be close to saturation. When near-saturated air cools, its capacity to hold water vapor decreases, and excess water vapor condenses into countless tiny water droplets, thus forming fog. However, existing atomizing devices mechanically pulverize water into tiny droplets of 10-100 micrometers, forcibly dispersing them into the air to increase the liquid water content and humidity. But the mechanically pulverized droplets are much larger than the droplets condensed in natural fog, and the sprayed droplets do not have the near-saturated humidity atmosphere. Therefore, existing atomizing devices produce a spray that resembles natural fog, but can only be generated briefly in a small area and does not possess the humidity, temperature, fluidity, and refraction effects of natural fog.
[0004] Therefore, how to generate natural fog in the captive environment of the green-tailed pheasant is an urgent problem to be solved in this technical field. Summary of the Invention
[0005] The purpose of this invention is to provide an atomizing device that promotes the courtship behavior of the green-tailed pheasant, thereby improving the aforementioned problems. To achieve this objective, the technical solution adopted by this invention is as follows:
[0006] This application provides an atomizing device for promoting courtship behavior in green-tailed pheasants, comprising:
[0007] Natural fog generation mechanism, cooling and diffusion mechanism, and natural fog recovery mechanism;
[0008] The natural fog generating mechanism is used to generate natural fog in the breeding cages of green-tailed pheasants. The natural fog generating mechanism includes a generating channel, a cooling component at the head of the generating channel, a water vapor generating component in the middle of the generating channel, and a breeze generating component at the tail end of the generating channel.
[0009] The first end of the cooling and moving mechanism corresponds to the generation channel, and the cooling and moving mechanism is arranged in the breeding cage of the green-tailed pheasant, cools and humidifies the breeding cage, and moves the natural fog in the breeding cage.
[0010] The natural fog recovery mechanism is arranged at the tail end of the cooling and moving mechanism, and the natural fog recovery mechanism is used for dissipating and recovering the natural fog.
[0011] Preferably, the refrigeration assembly comprises a refrigeration table, and a liquid storage tank is arranged on the refrigeration table, the liquid storage tank is arranged through the generation channel, the liquid storage tank is used for storing liquid, and the liquid in the liquid storage tank is cooled by the refrigeration table to cool the air in the head of the flow generation channel.
[0012] Preferably, the water vapor generation assembly comprises a heating chamber, a heating pipe and a silent water pump, the heating chamber is provided with a steam passage, the steam passage is connected with the middle part of the generation channel, the heating pipe is arranged in the heating chamber, and the output end of the silent water pump is arranged through the heating chamber; the silent water pump is used for injecting water into the heating chamber.
[0013] Preferably, the heating chamber is provided with a jet pipe, the jet pipe is communicated with the output end of the silent water pump, and a plurality of atomizing nozzles are connected through the jet pipe.
[0014] Preferably, the breeze generation assembly comprises an air flow channel, a butt joint channel and a fan, one end of the air flow channel is closed, the fan is arranged at the other end of the air flow channel, a plurality of strip-shaped holes are arranged on the peripheral wall of the air flow channel, one end of the butt joint channel is communicated with the tail end of the generation channel, the other end of the butt joint channel is sealingly connected with the peripheral wall of the air flow channel, and the plurality of strip-shaped holes are located in the butt joint channel.
[0015] Preferably, the cooling and moving mechanism comprises a first silent air pump, a refrigeration pipe, a three-way pipe and two heat insulation pipes, the refrigeration pipe is arranged in the refrigeration assembly in a wave shape, one end of the refrigeration pipe is communicated with the output end of the first silent air pump, the other end of the refrigeration pipe is communicated with the first interface of the three-way pipe, one end of each of the two heat insulation pipes is closed, the other end of each of the two heat insulation pipes is communicated with the second interface and the third interface of the three-way pipe respectively, a plurality of first flat nozzles are arranged on the heat insulation pipes, the first flat nozzles are arranged in an inclined manner, and the two heat insulation pipes are arranged at the two side edges of the green-tailed pheasant breeding cage.
[0016] Preferably, a flow distribution cover is arranged in the generation channel, the flow distribution cover is located between the refrigeration assembly and the water vapor generation assembly, the input end of the first silent air pump is communicated with the flow distribution cover, and the flow distribution cover is used for distributing the air with increased humidity in the generation channel.
[0017] Preferably, a plurality of heat insulation branch pipes are arranged on the heat insulation pipes, second flat nozzles are arranged at the ends of the heat insulation branch pipes, the second flat nozzles are connected to the camouflage objects, and the heat insulation branch pipes of the two heat insulation pipes are arranged alternately.
[0018] Preferably, the natural fog recycling mechanism comprises a collecting tank, a second silent air pump, a heat conduction pipe and a flow guide pipe, the collecting tank is provided with a collecting cover, the flow guide pipe is arranged in the collecting cover, a plurality of air blowing nozzles are connected through the flow guide pipe, the air blowing nozzles are arranged towards the collecting tank, one end of the flow guide pipe is closed, and the other end of the flow guide pipe is communicated with the tail end of the heat conduction pipe through a first heat preservation pipe.
[0019] Preferably, the collecting tank is used for storing water injected into the heating chamber, the collecting tank is provided with a heat conduction sheet, the top end of the collecting tank is connected with a filter screen plate, the output end of the silent water pump is communicated with the bottom of the collecting tank through a second heat preservation pipe.
[0020] The beneficial effects of the present application are:
[0021] The present application mixes water vapor with air in the generating channel to form warm and humid air with a humidity close to saturation, and then the refrigeration assembly cools the warm and humid air to reduce the air's capacity to contain water vapor, so that the excess water vapor condenses into countless tiny water droplets in the air, thereby forming natural fog. The natural fog enters the breeding cage in advance through the temperature reduction and displacement mechanism, and can maintain a stable form after entering the breeding cage. The natural fog is pushed by the temperature reduction and displacement mechanism, so that the natural fog slowly flows in the breeding cage to the natural fog recycling mechanism, thereby simulating the natural flow of natural fog. After the natural fog flows into the natural fog recycling mechanism, the natural fog recycling mechanism dissipates and recycles the natural fog, avoids the negative impact of the natural fog on the environment outside the breeding cage, and realizes the generation of natural fog in the cage breeding environment of the green tail pheasant.
[0022] Other features and advantages of the present application will be set forth in the following description, and in part will become apparent to those skilled in the art from the description, or can be learned by practice of the application as described in the written description and claims. The objects and other advantages of the present application will be realized and attained by the structure particularly pointed out in the written description and claims. BRIEF DESCRIPTION OF DRAWINGS
[0023] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.
[0024] Figure 1 The structural schematic diagram of the present application is shown in the figure;
[0025] Figure 2Structure diagram of natural fog generating mechanism of the present application;
[0026] Figure 3 Structure diagram of refrigeration assembly of the present application;
[0027] Figure 4 Structure diagram of heating chamber interior of the present application;
[0028] Figure 5 Structure diagram of micro-fog generating assembly of the present application;
[0029] Figure 6 Sectional view of generating channel of the present application;
[0030] Figure 7 Connection diagram of second flat nozzle of the present application;
[0031] Figure 8 Connection diagram of flow guide pipe of the present application;
[0032] Figure 9 Connection diagram of collection groove of the present application;
[0033] Marked in the figure: natural fog generating mechanism 1, generating channel 11, flow distribution cover 111, refrigeration assembly 12, refrigeration table 121, liquid storage groove 122, water vapor generating assembly 13, heating chamber 131, heating pipe 132, silent water pump 133, vapor channel 134, jet pipe 135, atomizing nozzle 136, micro-fog generating assembly 14, air flow channel 141, docking channel 142, air blower 143, strip-shaped hole 144, cooling displacement mechanism 2, first silent air pump 21, refrigeration pipe 22, three-way pipe 23, heat insulation pipe 24, first flat nozzle 25, heat insulation branch pipe 26, second flat nozzle 27, camouflage 28, natural fog recycling mechanism 3, collection groove 31, second silent air pump 32, heat conduction pipe 33, flow guide pipe 34, collection cover 35, air blowing nozzle 36, first heat preservation pipe 37, heat conduction sheet 38, filter screen plate 39, second heat preservation pipe 310. DETAILED DESCRIPTION
[0034] In order to make the objects, technical solutions and advantages of the embodiments of the present application clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present application with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some but not all of the embodiments of the present application. The components of the embodiments of the present application described and shown in the drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the scope of protection of the present application.
[0035] It should be noted that: similar reference numerals and letters represent similar items in the following drawings, therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings. Meanwhile, in the description of the present application, the terms "first", "second" and the like are only used to distinguish description, and cannot be understood as indicating or implying relative importance.
[0036] As shown in the Figures 1-2 The present embodiment provides an atomization device for promoting the courtship behavior of green-tailed pheasant, comprising:
[0037] a natural fog generating mechanism 1, a temperature reduction and moving mechanism 2 and a natural fog recycling mechanism 3;
[0038] The natural fog generating mechanism 1 is used for generating natural fog in the breeding cage of green-tailed pheasant, and the natural fog generating mechanism 1 comprises a generating channel 11, a refrigeration assembly 12 is arranged at the head of the generating channel 11, a water vapor generating assembly 13 is arranged at the middle of the generating channel 11, and a breeze generating assembly 14 is arranged at the tail end of the generating channel 11;
[0039] The temperature reduction and moving mechanism 2 is arranged at the head corresponding to the generating channel 11, and is used for being arranged in the breeding cage of green-tailed pheasant, reducing and humidifying the breeding cage, and moving the natural fog in the breeding cage;
[0040] The natural fog recycling mechanism 3 is arranged at the tail end corresponding to the temperature reduction and moving mechanism 2, and is used for dissipating and recycling the natural fog.
[0041] It can be understood that when the green-tailed pheasant courtship behavior is promoted, first, the temperature reduction pushing mechanism 2 is started, and the inside of the breeding cage of the green-tailed pheasant is cooled and humidified through the temperature reduction pushing mechanism 2; then the natural fog generating mechanism 1 is started, the refrigeration assembly 12 is cooled at the head of the generation channel 11, the air in the generation channel 11 is continuously introduced by the air generating assembly 14, the air flow in the generation channel 11 is pushed, the water vapor generating assembly 13 generates water vapor into the generation channel 11, the water vapor mixes with the air in the generation channel 11, increases the humidity and temperature of the air, and makes the humidity of the air close to the saturation state, forming warm and humid air. When the warm and humid air passes through the head of the flow generation channel 11, the refrigeration assembly 12 cools the warm and humid air. After the warm and humid air is cooled, the capacity to contain water vapor decreases, and the excess water vapor condenses into countless tiny water droplets in the air, thereby forming natural fog. The natural fog enters the breeding cage of the green-tailed pheasant from the generation channel 11 under the pushing of the air generating assembly 14, and maintains a stable form after entering the breeding cage under the cooling and humidification of the breeding cage by the temperature reduction pushing mechanism 2. The natural fog will not dissipate under the action of dry air, and is pushed by the temperature reduction pushing mechanism 2 to flow slowly in the breeding cage to the natural fog recovery mechanism 3, thereby simulating the natural flow of natural fog. After the natural fog flows into the natural fog recovery mechanism 3, the natural fog recovery mechanism 3 dissipates and recovers the natural fog to avoid negative effects of the natural fog on the environment outside the breeding cage. In this technical solution, the water vapor is mixed with the air in the generation channel 11 to form warm and humid air with humidity close to the saturation state, the refrigeration assembly 12 cools the warm and humid air, the capacity of the air to contain water vapor decreases, and the excess water vapor condenses into countless tiny water droplets in the air, thereby forming natural fog. The natural fog can maintain a stable form after entering the breeding cage under the cooling and humidification of the breeding cage by the temperature reduction pushing mechanism 2, and is pushed by the temperature reduction pushing mechanism 2 to flow slowly in the breeding cage to the natural fog recovery mechanism 3, thereby simulating the natural flow of natural fog. After the natural fog flows into the natural fog recovery mechanism 3, the natural fog recovery mechanism 3 dissipates and recovers the natural fog to avoid negative effects of the natural fog on the environment outside the breeding cage. The natural fog is generated in the cage breeding environment of the green-tailed pheasant.
[0042] As shown in Figure 3 The refrigeration assembly 12 includes a refrigeration table 121, and the refrigeration table 121 is provided with a liquid storage groove 122. The liquid storage groove 122 is arranged through the generation channel 11, and is used for storing liquid. The liquid in the liquid storage groove 122 is cooled by the refrigeration table 121 to cool the air in the head of the flow generation channel 11.
[0043] It can be understood that after the liquid is injected into the liquid storage tank 122, the refrigeration table 121 cools the liquid in the liquid storage tank 122, and the cooled liquid generates a low-temperature environment in the first part of the flow generation channel 11. When the warm and humid air flows into the first part of the flow generation channel 11, the low-temperature environment generated by the liquid cools the warm and humid air. After the warm and humid air is cooled, the capacity of containing water vapor decreases, and the excess water vapor condenses into countless tiny water droplets in the air, thereby promoting the formation of natural fog by the warm and humid air.
[0044] As shown in Figure 1 and Figure 4 , the water vapor generation assembly 13 includes a heating chamber 131, a heating pipe 132, and a silent water pump 133. The heating chamber 131 is provided with a steam passage 134, which is connected with the middle part of the flow generation channel 11. The heating pipe 132 is arranged in the heating chamber 131, and the output end of the silent water pump 133 is arranged through the heating chamber 131. The silent water pump 133 is used to inject water into the heating chamber 131.
[0045] It can be understood that after the silent water pump 133 extracts water and injects it into the heating chamber 131, the heating pipe 132 continuously heats the water in the heating chamber 131, so that water vapor is generated in the heating chamber 131. After the water vapor rises in the heating chamber 131, it enters the middle part of the flow generation channel 11 through the steam passage 134. The water vapor mixes with the air in the flow generation channel 11, and the water vapor increases the humidity and temperature of the air, so that the humidity of the air approaches the saturation state, forming warm and humid air.
[0046] As shown in Figure 4 , the heating chamber 131 is provided with a jet pipe 135, which is in communication with the output end of the silent water pump 133. A plurality of atomizing nozzles 136 are connected through the jet pipe 135.
[0047] It can be understood that the water in the heating chamber 131 is in a state of continuous consumption with the generation of natural fog. During the generation of natural fog, supplementing a large amount of water into the heating chamber 131 will cause a blank period of water vapor generation, resulting in the interruption of the generation of natural fog. Therefore, the spray pipe 135 is arranged in the heating chamber 131, and a plurality of atomizing nozzles 136 are connected through the spray pipe 135. Before the generation of water vapor, the silent water pump 133 is started for a certain time to extract a certain amount of preheated water to be sprayed into the heating chamber 131 through the plurality of atomizing nozzles 136. During the generation of water vapor, when the water in the heating chamber 131 is consumed to a set value, the silent water pump 133 extracts preheated water to be injected into the spray pipe 135, and then sprayed into one side of the heating chamber 131 through the plurality of atomizing nozzles 136. The hot air in the heating chamber 131 further heats the preheated water sprayed out, so as to reduce the temperature difference between the newly injected water and the original water in the heating chamber 131, so that the newly injected water can be heated to the temperature of the original water in a short time, thereby ensuring that water vapor can be continuously and uninterruptedly generated, and avoiding the interruption of the generation of natural fog.
[0048] As shown in Figure 5 The breeze generating assembly 14 includes an air flow channel 141, a docking channel 142, and a fan 143. One end of the air flow channel 141 is closed, and the fan 143 is arranged at the other end of the air flow channel 141. A plurality of strip-shaped holes 144 are formed in the peripheral wall of the air flow channel 141. One end of the docking channel 142 is in communication with the tail end of the generating channel 11, and the other end of the docking channel 142 is sealingly connected to the peripheral wall of the air flow channel 141. The plurality of strip-shaped holes 144 are located in the docking channel 142.
[0049] It can be understood that the fan 143 pushes air into the air flow channel 141, and the air flow channel 141 weakens the flow rate of the air injected by the fan 143. When the amount of air entering the air flow channel 141 is large, the air flows into the docking channel 142 through the plurality of strip-shaped holes 144, and then flows into the generating channel 11 through the docking channel 142, so as to generate a breeze flow in the generating channel 11, simulate the breeze flow environment in the natural environment, and mix the generated breeze flow with water vapor in the generating channel 11, increase the humidity and temperature of the breeze flow, and make the humidity of the breeze flow close to the saturation state, so as to form a flowing warm and humid air flow. When the flowing warm and humid air flow flows through the head of the generating channel 11, the refrigeration assembly 12 cools the flowing warm and humid air flow. After the flowing warm and humid air flow is cooled, the capacity of containing water vapor decreases, and the excess water vapor condenses into countless tiny water droplets, so as to form flowing natural fog. The flowing natural fog flows into the breeding cage of the green-tailed pheasant through the generating channel 11, so as to avoid the dispersion of natural fog caused by strong wind environment.
[0050] As shown in Figures 1-2As shown, the cooling pushing mechanism 2 comprises a first silent air pump 21, a refrigeration pipe 22, a three-way pipe 23 and two heat insulation pipes 24. The refrigeration pipe 22 is arranged in a wave shape in the refrigeration assembly 12. One end of the refrigeration pipe 22 is communicated with the output end of the first silent air pump 21. The other end of the refrigeration pipe 22 is communicated with the first interface of the three-way pipe 23. One end of each of the two heat insulation pipes 24 is closed. The other end of each of the two heat insulation pipes 24 is communicated with the second interface and the third interface of the three-way pipe 23 respectively. A plurality of first flat nozzles 25 are arranged on the heat insulation pipe 24. The first flat nozzles 25 are arranged in an inclined manner. The two heat insulation pipes 24 are arranged on the two side edges of the green-tailed pheasant breeding cage.
[0051] As can be understood, after the first silent air pump 21 is started, the air with increased humidity is extracted into the refrigeration pipe 22. The air with increased humidity in the refrigeration pipe 22 is cooled by the refrigeration assembly 12. The cooling time of the air with increased humidity is prolonged by arranging the refrigeration pipe 22 in a wave shape in the refrigeration assembly 12. The air with increased humidity is fully cooled in the refrigeration pipe 22. After cooling, the air enters the two heat insulation pipes 24 through the three-way pipe 23. The heat insulation pipe 24 reduces the influence of the external temperature on the cooled air. The cooled air in the heat insulation pipe 24 is sprayed out by the plurality of first flat nozzles 25 in a fan shape. The cooled air sprayed out cools and humidifies the breeding cage of the green-tailed pheasant. The natural fog can maintain a stable state after entering the breeding cage and will not dissipate under the action of dry air. The cooled air sprayed out by the first flat nozzles 25 arranged in an inclined manner forms a pushing air curtain. The natural fog slowly flows in the breeding cage to the natural fog recovery mechanism 3 through the pushing of the pushing air curtain, thereby simulating the natural flow of the natural fog.
[0052] As shown in Figure 2 and Figure 6 , the generation channel 11 is provided with a flow distribution cover 111. The flow distribution cover 111 is located between the refrigeration assembly 12 and the water vapor generation assembly 13. The input end of the first silent air pump 21 is communicated with the flow distribution cover 111. The flow distribution cover 111 is used to distribute the air with increased humidity in the generation channel 11.
[0053] As can be understood, after the humidity of the air is additionally increased, the first silent air pump 21 is used for extraction, which will increase the equipment cost and noise. Therefore, the flow distribution cover 111 is arranged in the generation channel 11. The fan 143 pushes the air into the air flow channel 141 to mix with the water vapor to form warm and humid air. Part of the warm and humid air flows to the refrigeration assembly 12. The other part of the warm and humid air enters the flow distribution cover 111. After the first silent air pump 21 is started, the warm and humid air in the flow distribution cover 111 is extracted into the refrigeration pipe 22. The warm and humid air in the refrigeration pipe 22 is cooled by the refrigeration assembly 12, thereby reducing the equipment cost and noise.
[0054] like Figure 7 As shown, multiple heat-insulating branch pipes 26 are connected to the heat-insulating pipe 24, and a second flat nozzle 27 is connected to the end of the heat-insulating branch pipe 26. The second flat nozzle 27 is connected to the camouflage 28, and the heat-insulating branch pipes 26 of the two heat-insulating pipes 24 are arranged alternately.
[0055] Understandably, when the width of the breeding cage for green-tailed pheasants is large, the pushing air curtain sprayed by the two heat insulation pipes 24 through the first flat nozzle 25 cannot cover the entire ground area of the breeding cage, leaving a blank area in the middle of the cage without a pushing air curtain. The generated natural mist, pushed by the pushing air curtain sprayed by the first flat nozzle 25, flows towards the blank area and dissipates under the action of dry air. Therefore, multiple heat insulation branch pipes 26 are connected to the heat insulation pipes 24, and the heat insulation branch pipes 26 are connected to the second flat nozzles 27. The second flat nozzles 27 are positioned in the middle of the breeding cage through camouflage 28, so that the pushing air curtain sprayed by the first flat nozzle 25 on one side pushes the generated natural mist to the second flat nozzle 27 on the other side. The second pushing air curtain ejected from the flat nozzle 27 pushes the generated natural fog to the pushing air curtain ejected from the first flat nozzle 25 on the other side. When the generated natural fog flows into the range of the pushing air curtain ejected from the first flat nozzle 25 on the other side, the pushing air curtain ejected from the first flat nozzle 25 on the other side pushes the generated natural fog to the second flat nozzle 27 on the other side. The second pushing air curtain ejected from the second flat nozzle 27 then pushes the generated natural fog to the pushing air curtain ejected from another first flat nozzle 25 on one side. Multiple first flat nozzles 25 and second flat nozzles 27 push in sequence until the generated natural fog flows into the natural fog recovery mechanism 3, so that the generated natural fog forms an S-shaped flow path in the breeding cage, ensuring the flow effect of the generated natural fog in the breeding cage.
[0056] like Figure 1 and Figure 8 As shown, the natural fog recovery mechanism 3 includes a collection tank 31, a second silent air pump 32, a heat-conducting pipe 33, and a guide pipe 34. The collection tank 31 is provided with a collection cover 35, and the guide pipe 34 is installed inside the collection cover 35. Multiple air blowing nozzles 36 are connected through the guide pipe 34 and are positioned facing the collection tank 31. One end of the guide pipe 34 is closed, and the other end of the guide pipe 34 is connected to the tail end of the heat-conducting pipe 33 through a first heat-insulating pipe 37. The heat-conducting pipe 33 is arranged in a wavy shape in the heating chamber 131, and the first end of the heat-conducting pipe 33 is connected to the output end of the second silent air pump 32.
[0057] It can be understood that after the second mute air pump 32 is started, the air is extracted into the heat conduction pipe 33, the heat conduction pipe 33 is heated by the heating pipe 132 in the heating chamber 131, so that the extracted air forms hot air after flowing through the heating pipe 132, the hot air is transported into the flow guide pipe 34 by the first heat preservation pipe 37, the hot air in the flow guide pipe 34 is sprayed out by the plurality of air blowing nozzles 36, and a hot air curtain is formed, the natural fog generated by the natural fog generating mechanism 1 flows into the collecting cover 35 under the pushing of the cooling pushing mechanism 2, the natural fog is dispersed under the action of the hot air after contacting with the hot air curtain, and the water formed is collected in the collecting groove 31, so that the negative influence of the natural fog on the environment outside the breeding cage is avoided.
[0058] As shown in Figure 1 and Figure 9 , the collecting groove 31 is used for storing water injected into the heating chamber 131, the collecting groove 31 is provided with a heat conduction sheet 38, the top end of the collecting groove 31 is connected with a filter screen plate 39, and the output end of the mute water pump 133 is communicated with the bottom of the collecting groove 31.
[0059] It can be understood that the hot air in the flow guide pipe 34 is sprayed into the collecting groove 31 after being sprayed out by the plurality of air blowing nozzles 36, the heat energy of the hot air is heat-conducted to the water stored in the collecting groove 31 by the heat conduction sheet 38, so that the water stored in the collecting groove 31 is preheated, the heat energy in the hot air is recycled, the preheated water in the collecting groove 31 is extracted into the second heat preservation pipe 310 when the mute water pump 133 is started, the preheated water is heat-preserved in the second heat preservation pipe 310, and the preheated water enters the heating chamber 131 after flowing through the second heat preservation pipe 310, so that the temperature difference between the newly injected water and the original water in the heating chamber 131 is reduced, the newly injected water can be heated to the temperature of the original water in a short time, the generation of water vapor is ensured to be continuous and uninterrupted, and the generation of natural fog is avoided to be interrupted; the filter screen plate 39 connected to the top end of the collecting groove 31 can block the dregs from entering the collecting groove 31 and block the water vapor generated in the collecting groove 31, the water droplets are condensed on the filter screen plate 39 and then fall back to the collecting groove 31, so that the heat energy in the hot air is fully utilized, and the consumption of water resources is reduced.
[0060] The above only describes the preferred embodiments of the present application and is not used to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
[0061] The above merely illustrates the specific embodiments of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can easily think of the changes or replacements within the technical range disclosed by the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. An atomizing device for promoting courtship behavior in green-tailed monal pheasants, characterized in that, The application relates to a natural fog generating mechanism, a temperature reducing and moving mechanism and a natural fog recycling mechanism. The natural fog generating mechanism is used for generating natural fog in a breeding cage of a green-tailed pheasant, and the natural fog generating mechanism comprises a generating channel, a refrigeration assembly is arranged at the head of the generating channel, a water vapor generating assembly is arranged at the middle of the generating channel, and a breeze generating assembly is arranged at the tail end of the generating channel. The tail end of the temperature reducing and moving mechanism corresponds to the generating channel, the temperature reducing and moving mechanism is arranged in the breeding cage of the green-tailed pheasant, is used for reducing the temperature and humidifying the breeding cage, and moves the natural fog in the breeding cage. The tail end of the temperature reducing and moving mechanism corresponds to the generating channel, the temperature reducing and moving mechanism is arranged in the breeding cage of the green-tailed pheasant, is used for reducing the temperature and humidifying the breeding cage, and moves the natural fog in the breeding cage. The tail end of the temperature reducing and moving mechanism corresponds to the generating channel, the temperature reducing and moving mechanism is arranged in the breeding cage of the green-tailed pheasant, is used for reducing the temperature and humidifying the breeding cage, and moves the natural fog in the breeding cage. The temperature reducing and moving mechanism comprises a first mute air pump, a refrigeration pipe, a three-way pipe and two heat insulation pipes, the refrigeration pipe is arranged in the refrigeration assembly in a wave shape, one end of the refrigeration pipe is communicated with the output end of the first mute air pump, the other end of the refrigeration pipe is communicated with the first interface of the three-way pipe, one end of the two heat insulation pipes is closed, the other end of the two heat insulation pipes is respectively communicated with the second interface and the third interface of the three-way pipe, a plurality of first flat nozzles are arranged on the heat insulation pipes in communication, the first flat nozzles are arranged in an inclined mode, and the two heat insulation pipes are arranged at the two side edges of the breeding cage of the green-tailed pheasant. A plurality of heat insulation branch pipes are arranged on the heat insulation pipes in communication, the tail ends of the heat insulation branch pipes are communicated with second flat nozzles, the second flat nozzles are connected to a camouflage object, and the heat insulation branch pipes of the two heat insulation pipes are arranged in an interlaced mode.
2. The atomizing device for facilitating the courtship behavior of the green-tailed rainbow, according to claim 1, wherein, The refrigeration assembly comprises a refrigeration table, a liquid storage groove is arranged on the refrigeration table, the liquid storage groove is arranged in the generating channel in a through mode, the liquid storage groove is used for storing liquid, and the liquid in the liquid storage groove is cooled by the refrigeration table, so that the air in the head of the generating channel is cooled.
3. The atomizing device for facilitating the courtship behavior of the green-tailed rainbow, according to claim 1, wherein, The water vapor generating assembly comprises a heating cavity, a heating pipe and a mute water pump, the heating cavity is arranged with a vapor channel in a through mode, the vapor channel is connected with the middle of the generating channel in a through mode, the heating pipe is arranged in the heating cavity, and the output end of the mute water pump is arranged in the heating cavity in a through mode.
4. The atomizing device for facilitating the courtship behavior of the green-tailed ruby bird according to claim 3, wherein, The heating cavity is arranged with a jet pipe, the jet pipe is communicated with the output end of the mute water pump, and a plurality of atomizing nozzles are arranged on the jet pipe in a through mode.
5. The atomizing device for facilitating the courtship behavior of the green-tailed rainbow according to claim 1, wherein, The breeze generating assembly comprises an air flow channel, a butt joint channel and a fan, one end of the air flow channel is closed, the fan is arranged at the other end of the air flow channel, a plurality of strip-shaped holes are arranged on the peripheral wall of the air flow channel, one end of the butt joint channel is communicated with the tail end of the generating channel, the other end of the butt joint channel is sealingly connected with the peripheral wall of the air flow channel, and the plurality of strip-shaped holes are located in the butt joint channel.
6. The atomizing device for facilitating the courtship behavior of the green-tailed rainbow, according to claim 1, wherein, The generating channel is arranged with a flow distribution cover, the flow distribution cover is located between the refrigeration assembly and the water vapor generating assembly, the input end of the first mute air pump is communicated with the flow distribution cover, and the flow distribution cover is used for distributing the air with increased humidity in the generating channel.
7. The atomizing device for facilitating the courtship behavior of the green-tailed rainbow according to claim 3, wherein, The natural fog recycling mechanism comprises a collecting tank, a second silent air pump, a heat conduction pipe and a flow guide pipe, the collecting tank is provided with a collecting cover, the flow guide pipe is arranged in the collecting cover, a plurality of air blowing nozzles are connected through the flow guide pipe, the air blowing nozzles are arranged towards the collecting tank, one end of the flow guide pipe is closed, the other end of the flow guide pipe is communicated with the tail end of the heat conduction pipe through a first heat preservation pipe, the heat conduction pipe is arranged in a wave shape in the heating chamber, and the head end of the heat conduction pipe is communicated with the output end of the second silent air pump.
8. The atomizing device for facilitating the courtship behavior of the green-tailed rainbow according to claim 7, wherein, The collecting tank is used for storing water injected into the heating chamber, the collecting tank is provided with a heat conduction sheet, the top end of the collecting tank is connected with a filter screen plate, the output end of the silent water pump is provided with a second heat preservation pipe between the output end and the heating chamber, and the input end of the silent water pump is communicated with the bottom of the collecting tank.
Citation Information
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