Negative oxygen ion integrated medical oxygen generation equipment
Through the combination of molecular sieve oxygen generator, air purification and negative oxygen ion generation mechanism, the problems of low oxygen purification and high ozone content in existing equipment are solved, and the generation of high-quality oxygen and negative oxygen ions is achieved, which has the effect of activate cells and enhance immunity.
Patent Information
- Application Number
- CN202311857517.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-29
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2043-12-29
AI Technical Summary
The oxygen output from existing negative oxygen ion oxygen-generating equipment is low in purification and may contain ozone, making it difficult to produce negative oxygen ions that are effective for the human body.
The combination of a molecular sieve oxygen generator, an air purification mechanism and a negative oxygen ion generation mechanism is adopted to separate nitrogen and impurities through a molecular sieve oxygen generator, negative oxygen ions are generated using the reaction chamber, and the efficient operation of the molecular sieve oxygen generator is maintained through a heat dissipation mechanism to avoid ozone production.
The quality of oxygen and negative oxygen ions is improved, a large number of ecologically-level negative oxygen ions are generated, cells are activated, immunity and disease resistance are enhanced, and ozone is not contained.
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Figure CN117504533B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of oxygen-making equipment, and particularly relates to an integrated negative oxygen ion medical oxygen-making equipment. Background Art
[0002] The integrated negative oxygen ion medical oxygen-making equipment is a device used to separate oxygen from other components in the air. It uses a molecular sieve material with a special pore structure to selectively adsorb nitrogen and other impurities in the air, generating negative oxygen ions beneficial to the human body. Research shows that negative oxygen ions can react with free radicals in the body, helping to neutralize the activity of free radicals, thereby reducing oxidative stress and oxidative damage, which helps maintain the health of cells and tissues; negative oxygen ions can have a positive impact on the immune system, promoting the activity and function of immune cells and enhancing the defense ability of the immune system; negative oxygen ions are considered to have a sedative and relaxing effect, which can improve the mental state, reduce stress and anxiety, and make people feel fresher, more energetic and refreshing after exposure to negative oxygen ions; and negative oxygen ions can adsorb fine particulate matter, microorganisms and harmful gases in the air, reducing the concentration of pollutants in the air.
[0003] At present, most negative oxygen ion oxygen-making equipment realizes the adsorption and desorption cycle by changing the pressure of the adsorber and desorber. When the pressure is low, the molecular sieve adsorption material can adsorb nitrogen and impurities in the air, so that the oxygen can be purified. When the pressure is high, the molecular sieve material in the adsorber releases nitrogen and impurities through the desorption operation; the oxygen purified by this method has a low purity and may contain ozone, and it is difficult to generate effective ions for the human body, resulting in a low effective component content of the output gas. Summary of the Invention
[0004] The main object of the present invention is to provide an integrated negative oxygen ion medical oxygen-making equipment, aiming to improve the quality of oxygen and negative oxygen ions produced by the equipment.
[0005] To achieve the above object, the present invention provides an integrated negative oxygen ion medical oxygen-making equipment, including:
[0006] A housing, the bottom plate of the housing and a plurality of interconnected side plates jointly enclose an installation space;
[0007] An oxygen-making mechanism, the oxygen-making mechanism is located in the installation space, the oxygen-making mechanism includes a compression pump and a molecular sieve oxygen generator, the molecular sieve oxygen generator is disposed adjacent to the inner wall of the housing, and the compression pump is communicated with the molecular sieve oxygen generator;
[0008] An air purification mechanism, the air purification mechanism is disposed adjacent to the oxygen-making mechanism and is communicated with the oxygen-making mechanism; and
[0009] A negative oxygen ion generating mechanism, which is located on the outer wall of the housing. The negative oxygen ion generating mechanism includes an output pipe and a reaction chamber. The output pipe is connected to the air purification mechanism and extends along the outer wall of the housing. The reaction chamber is located at the gas output end of the output pipe, and a part of the output pipe is connected to the reaction chamber.
[0010] In an embodiment of the present invention, the circulation component includes:
[0011] The oxygen generating mechanism further includes a humidifying bottle, which is located between the molecular sieve oxygen generator and the air purification mechanism, and the humidifying bottle is connected to the molecular sieve oxygen generator.
[0012] In an embodiment of the present invention, the air purification mechanism includes:
[0013] A purification box, which is connected to the oxygen generating mechanism; and
[0014] A air supply component, which passes through the purification box, and the air supply end of the air supply component faces the cavity of the purification box.
[0015] In an embodiment of the present invention, an oxygen outlet hood is connected to the output pipe near the end where the gas is released, and the oxygen outlet hood is connected to the output pipe.
[0016] In an embodiment of the present invention, exhaust holes are provided on the end face of the oxygen outlet hood, and the exhaust holes are respectively connected to the output pipe and the reaction chamber.
[0017] In an embodiment of the present invention, the air supply component includes:
[0018] An air outlet pipe, which extends into the purification box along the direction of the blown air; and
[0019] A fan, which is located inside the air outlet pipe.
[0020] In an embodiment of the present invention, a heat dissipation mechanism is further included. The heat dissipation mechanism is attached to the molecular sieve oxygen generator. The heat dissipation mechanism includes a circulation component, a condenser and heat dissipation fins. The circulation component is laid on the side wall of the molecular sieve oxygen generator, the condenser passes through the circulation component, and the heat dissipation fins are arranged at intervals on the side wall of the molecular sieve oxygen generator.
[0021] In an embodiment of the present invention, the circulation component includes:
[0022] An endothermic box, which is laid on the side wall of the molecular sieve oxygen generator;
[0023] A water tank, which is attached to the side of the heat dissipation device away from the endothermic box;
[0024] A connecting pipe that communicates the water tank and the heat absorption box; and
[0025] A circulation pump connected to the connecting pipe.
[0026] In an embodiment of the present invention, a water inlet is provided on the side of the water tank away from the circulation pump for feeding water source into the water tank.
[0027] In an embodiment of the present invention, there are a plurality of heat dissipation fins, and the plurality of heat dissipation fins are arranged at intervals on the side of the molecular sieve oxygen generator adjacent to the heat absorption box.
[0028] The technical solution of the present invention is to provide a molecular sieve oxygen generator, a heat dissipation mechanism and an air purification mechanism in the housing of the oxygen generation equipment. By setting the molecular sieve oxygen generator, impurities in the air are separated to form ozone-free oxygen, and the reaction in the reaction chamber of the conveying pipeline can generate negative oxygen ions in the gas, and the negative oxygen ions do not contain ozone. Since the heat dissipation mechanism is attached to the side wall of the molecular sieve oxygen generator, the heat dissipation mechanism can keep the water temperature at a relatively low temperature through the circulation component and the condenser therein, and keep the reaction process of the molecular sieve oxygen generator in a relatively efficient state, thus avoiding the oxygen generation equipment from working for a long time and improving the working efficiency of the equipment. This negative oxygen ion integrated medical oxygen generator can not only not generate ozone, but also generate a large number of ecological-level negative ions. The negative ions can not only activate cells, enhance the permeability of cell membranes, enable nutrients to enter cells for metabolism, but also be converted into positive energy beneficial to the human body, timely remove toxins and garbage in the body, and improve immunity and disease resistance. Description of the Drawings
[0029] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.
[0030] Figure 1 It is a schematic structural diagram of the negative oxygen ion integrated medical oxygen generator of the present invention;
[0031] Figure 2 It is an exploded view of the negative oxygen ion integrated medical oxygen generator of the present invention;
[0032] Figure 3 It is Figure 2 The partial enlarged view at A in
[0033] Figure 4This is a schematic structural diagram of the air purification mechanism of the negative oxygen ion integrated medical oxygen generation device of the present invention;
[0034] Figure 5 This is an exploded view of the air purification mechanism of the negative oxygen ion integrated medical oxygen generation device of the present invention.
[0035] Explanation of the reference numerals in the drawings:
[0036] 1. Housing; 23. Humidifying bottle; 3. Air purification mechanism; 31. Purification box; 32. Air supply component; 321. Air outlet pipe; 322. Fan; 4. Negative oxygen ion generation mechanism; 41. Output pipeline; 42. Reaction chamber; 43. Oxygen outlet cover; 5. Heat dissipation mechanism; 51. Circulation component; 511. Heat absorption box; 512. Water tank; 513. Connecting pipe; 514. Circulation pump; 52. Condenser; 53. Heat sink.
[0037] The realization of the purpose, functional characteristics and advantages of the present invention will be further described with reference to the embodiments and the accompanying drawings. Detailed implementation manners
[0038] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0039] It should be noted that all the directional indications (such as up, down, left, right, front, back...) in the embodiments of the present invention are only used to explain the relative position relationship and movement conditions between components in a specific posture (as shown in the drawings). If the specific posture changes, the directional indications will also change accordingly.
[0040] In the present invention, unless otherwise clearly defined and limited, the terms "connection", "fixation", etc. should be understood in a broad sense. For example, "fixation" can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the internal connection of two components or the interaction relationship between two components, unless otherwise clearly limited. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0041] In addition, in the present invention, descriptions such as "first", "second", etc. are only for descriptive purposes and should not be construed as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, the meaning of "and / or" appearing throughout the text is that it includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. In addition, the technical solutions between various embodiments can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.
[0042] To solve the problems in the background technology, as Figures 1 to 5 shown, the present invention proposes a negative oxygen ion integrated medical oxygen generation device, which includes a housing 1, an oxygen generation mechanism, an air purification mechanism 3, and a negative oxygen ion generation mechanism 4. The bottom plate of the housing 1 and a plurality of interconnected side plates jointly enclose an installation space. The oxygen generation mechanism is located within the installation space and includes a compression pump and a molecular sieve oxygen generator. The molecular sieve oxygen generator is disposed adjacent to the inner wall of the housing 1, and the compression pump is connected to the molecular sieve oxygen generator. The air purification mechanism 3 is disposed adjacent to the oxygen generation mechanism and is connected to the oxygen generation mechanism. The negative oxygen ion generation mechanism 4 is located on the outer wall of the housing 1. The negative oxygen ion generation mechanism 4 includes an output pipeline 41 and a reaction chamber 42. The output pipeline 41 is connected to the air purification mechanism 3 and extends along the outer wall of the housing 1. The reaction chamber 42 is located at the gas output end of the output pipeline 41, and a part of the output pipeline 41 is connected to the reaction chamber 42.
[0043] Understandably, the housing 1 is the external structure of the oxygen generation equipment, usually made of metal materials, providing support and protection for internal components, and ensuring the structural stability and safe operation of the equipment. The bottom plate of the housing 1 is the bottom structure of the oxygen generation equipment, which provides the foundation and support for the equipment. The side plates are the side structures of the oxygen generation equipment. They are connected to the bottom plate and enclose along the periphery of the equipment. The side plates are usually fixed to the bottom plate to form a closed space to accommodate the internal components and parts of the equipment; The molecular sieve oxygen generator is the core of the oxygen generation equipment. The oxygen molecular sieve oxygen generator uses molecular sieve adsorbents to separate nitrogen and other impurities in the air, thereby producing high-purity oxygen. In the oxygen molecular sieve oxygen generator, there are multiple adsorbers and desorbers, which work at certain time intervals. After the molecular sieve adsorption material in the adsorber adsorbs nitrogen and impurities, a desorption operation is carried out to release the adsorbed nitrogen and impurities. The molecular sieve oxygen generator is installed in the installation space of the housing 1 and fixed to the side wall of the housing 1. Through the oxygen generation process of the molecular sieve oxygen generator, the molecular sieve oxygen generator can decompose air into ozone-free oxygen and negative oxygen ions. The generated ozone-free negative oxygen ions can not only promote blood circulation, improve metabolism, but also activate brain cells and prevent Alzheimer's disease and other beneficial effects on the human body.
[0044] Among them, the output pipeline 41 extends along the outer wall of the housing 1 to transport the air purified through the air purification mechanism to the negative oxygen ion generation mechanism 4. The reaction chamber 42 is located at the gas output end of the output pipeline 41 and is the key part for generating negative oxygen ions. Inside the reaction chamber 42, through a specific reaction mechanism, the introduced air molecules are excited to generate oxygen ions with negative charges. After being processed by the reaction chamber 42, the generated negative oxygen ions are released to the outside of the housing 1 through the output pipeline 41, realizing the generation and output of negative oxygen ions. The generated negative oxygen ions can not only be used for air purification. The negative oxygen ions can neutralize the positively charged particulate ions, destroy the same-sex charges that play a stabilizing role between the particles, and make the toxic positively charged particles become neutral particles and aggregate and settle down, thus playing a role in air purification. Moreover, it can produce beneficial effects on the human body. Negative ions can act on the parasympathetic nerve, making people optimistic, calm, with relaxed muscles, stable blood pressure, normal gastrointestinal peristalsis, and helping with sleep. The circulation component 51 is used to circulate the heat dissipation medium through the heat exchanger cooler in the molecular sieve oxygen generator, including components such as pumps, pipelines, and valves, to ensure that the cooling medium can continuously flow through the molecular sieve oxygen generator and take away heat. The condenser 52 is arranged through the circulation component 51. The condenser 52 can cool the water in the water tank 512, which can not only reduce the temperature of the water tank 512 but also cool the molecular sieve oxygen generator by the heat dissipation tank during the circulation process of the circulation component 51. The heat dissipation fins 53 are arranged at intervals on the side wall of the molecular sieve oxygen generator to increase the surface area for heat transfer and accelerate heat dissipation. The heat dissipation fins 53 are in contact with the side wall of the molecular sieve oxygen generator, and heat conduction is achieved through heat-conducting materials, further improving the cooling efficiency of the oxygen generation equipment. The air purification mechanism 3 is arranged adjacent to the oxygen output end of the molecular sieve oxygen generator and is connected to the molecular sieve oxygen generator, so as to facilitate the treatment of the electrolytically generated oxygen through the purification mechanism to remove impurities and harmful substances therein to ensure that the quality of the produced oxygen meets the requirements.
[0045] As Figure 2 shown, in an embodiment of the present invention, the oxygen generation mechanism further includes a humidifying bottle 23. The humidifying bottle 23 is located between the molecular sieve oxygen generator and the air purification mechanism 3, and the humidifying bottle 23 is connected to the molecular sieve oxygen generator.
[0046] It can be understood that the air first passes through the treatment of the air purification mechanism 3 to remove pollutants, particulate matters, etc. Then, the air enters the molecular sieve oxygen generator for oxygen preparation. During the preparation process, the humidifying bottle 23 will be connected to the molecular sieve oxygen generator. Through the moisture absorption function of the humidifying bottle 23, the humidity of the oxygen passing through the molecular sieve oxygen generator is increased, ensuring that the oxygen generated by the oxygen generator is more in line with the human body's needs in terms of humidity. The humidifying bottle 23 contains a humidifying agent or water, which can increase the humidity of the oxygen and make it more suitable for human breathing. By being connected to the molecular sieve oxygen generator, the humidifying bottle 23 can adjust and increase the humidity of the oxygen output by the oxygen generator, making it more suitable and comfortable.
[0047] As Figures 4 to 5 shown, in an embodiment of the present invention, the air purification mechanism 3 includes a purification box 31 and a air supply component 32. The purification box 31 is communicated with the oxygen generation mechanism, and the air supply component 32 penetrates through the purification box 31. The air supply end of the air supply component 32 faces the cavity of the purification box 31.
[0048] It can be understood that the purification box 31 is a device for processing oxygen. It removes impurities in oxygen through different purification methods to ensure that the generated oxygen meets specific purity requirements. The purification box 31 is usually connected to a molecular sieve oxygen generator through a pipeline to obtain oxygen from the molecular sieve oxygen generator and send out the purified oxygen, thereby ensuring the practicality of the oxygen in the equipment. The air supply component 32 is a part installed on the purification box 31. It sends oxygen into the cavity of the purification box 31 through a structure penetrating through the purification box 31. The air supply component 32 usually has a suitable fan 322 or wind device to generate sufficient air flow and ensure that oxygen can smoothly enter and circulate in the purification box 31, enabling the oxygen to effectively circulate in the purification box 31, making the purification effect better and thus being more easily absorbed and utilized by the human body.
[0049] As Figures 1 to 2 shown, in an embodiment of the present invention, an oxygen outlet cover 43 is connected to one end of the output pipeline 41 adjacent to the released gas, and the oxygen outlet cover 43 is communicated with the output pipeline 41.
[0050] It can be understood that an oxygen outlet cover 43 is connected to one end of the output pipeline 41 adjacent to the released gas, and the oxygen outlet cover 43 is communicated with the output pipeline 41. This structure is used to guide the generated oxygen into the oxygen outlet cover 43 for human breathing and inhalation. The output pipeline 41 is connected to the oxygen outlet cover 43 at the end where the gas is released, which means that the negative oxygen ions and humidified oxygen generated through the output pipeline 41 are guided into the oxygen outlet cover 43. The oxygen outlet cover 43 directly provides oxygen to the respiratory system, enabling users to inhale high-purity oxygen and benefit from the beneficial effects of negative oxygen ions.
[0051] As Figure 1 shown, in an embodiment of the present invention, exhaust holes are provided on the end face of the oxygen outlet cover 43, and the exhaust holes are respectively communicated with the output pipeline 41 and the reaction chamber 42.
[0052] It can be understood that through the exhaust holes on the end face of the oxygen outlet cover 43, the oxygen that has passed through the oxygen outlet cover 43 and flowed through the output pipeline 41 and has been humidified by the humidifying bottle 23 and other treatments will be released from the oxygen outlet cover 43 through the exhaust holes. At this time, the oxygen will be further transmitted through the output pipeline 41. The exhaust holes on the end face of the oxygen outlet cover 43 are also connected to the reaction chamber 42, and the exhausted gas will enter the reaction chamber 42 of the equipment for further treatment. Negative oxygen ions are generated after the reaction in the reaction chamber 42 and thus released in the oxygen outlet cover 43.
[0053] As Figures 4 to 5 shown, in one embodiment of the present invention, the air supply assembly 32 includes an air outlet pipe 321 and a fan 322. The air outlet pipe 321 extends along the air blowing direction into the purification box 31, and the fan 322 is located inside the lumen of the air outlet pipe 321.
[0054] It can be understood that the air supply assembly 32 includes an air outlet pipe 321 and a fan 322 built inside the lumen of the air outlet pipe 321. The air outlet pipe 321 extends from the fan 322 and transports the air flow into the purification box 31; the air outlet pipe 321 extends along the air blowing direction into the purification box 31 to ensure that the air flow can directly enter the inside of the purification box 31 and come into contact with oxygen during the purification process. Through the setting of the air outlet pipe 321, the air flow can be guided and controlled to achieve the required air blowing direction and speed; the fan 322 is located inside the lumen of the air outlet pipe 321, generates an air flow, and sends the air flow into the purification box 31. The fan 322 will generate a high-pressure area inside the lumen, thereby pushing the air flow through the air outlet pipe 321 and sending the air flow into the cavity of the purification box 31, further improving the purification efficiency of the air purification mechanism 3.
[0055] As Figures 2 to 3 shown, in one embodiment of the present invention, it further includes a heat dissipation mechanism 5. The heat dissipation mechanism 5 is attached to the molecular sieve oxygen generator. The heat dissipation mechanism 5 includes a circulation component 51, a condenser 52, and heat dissipation fins 53. The circulation component 51 is laid on the side wall of the molecular sieve oxygen generator, the condenser 52 passes through the circulation component 51, and the heat dissipation fins 53 are arranged at intervals on the side wall of the molecular sieve oxygen generator.
[0056] It can be understood that the circulation component 51 is used to circulate the heat dissipation medium through the heat exchanger cooler in the molecular sieve oxygen generator, including components such as pumps, pipes, and valves, to ensure that the cooling medium can continuously flow through the molecular sieve oxygen generator and take away heat. The condenser 52 passes through the circulation component 51. The condenser 52 can cool the water in the water tank 512, which can not only reduce the temperature of the water tank 512 but also cool the molecular sieve oxygen generator by the heat dissipation tank during the circulation of the circulation component 51. The heat dissipation fins 53 are arranged at intervals on the side wall of the molecular sieve oxygen generator, increasing the surface area for heat transfer and accelerating heat dissipation. The heat dissipation fins 53 are in contact with the side wall of the molecular sieve oxygen generator, and heat conduction is achieved through heat-conducting materials, further improving the cooling efficiency of the oxygen generation equipment; the oxygen purification mechanism is arranged adjacent to the oxygen outlet end of the molecular sieve oxygen generator and is connected to the molecular sieve oxygen generator, so as to conveniently process the generated oxygen through the purification mechanism to remove impurities and harmful substances therein to ensure that the quality of the produced oxygen meets the requirements for human absorption.
[0057] As Figure 3As shown, in an embodiment of the present invention, the circulation component 51 includes a heat absorption box 511, a water tank 512, a connecting pipe 513, and a circulation pump 514. The heat absorption box 511 is laid on the side wall of the molecular sieve oxygen generator. The water tank 512 is attached to the side of the heat dissipation device away from the heat absorption box 511. The connecting pipe 513 connects the water tank 512 and the heat absorption box 511. The circulation pump 514 is connected to the connecting pipe 513.
[0058] It can be understood that the heat absorption box 511 is a component of the circulation component 51, which is used to receive the heat generated by the molecular sieve oxygen generator. By contacting with the cooling medium, it absorbs heat and raises the temperature. The water tank 512 is a container for storing the cooling medium. The water tank 512 is attached to the side wall of the molecular sieve oxygen generator. The cooling medium is stored and circulated in the water tank 512. The water tank 512 has a suitable capacity and design to meet the heat exchange requirements during the circulation process. The connecting pipe 513 connects the water tank 512 and the heat absorption box 511, establishing a circulation loop for the cooling medium. The connecting pipe 513 is usually a flexible pipe to adapt to the connection requirements of the system. The cooling medium in the water tank 512 is transported to the heat absorption box 511 through the connecting pipe 513, absorbs the heat generated by the molecular sieve oxygen generator, and then returns to the water tank 512 through the connecting pipe 513, forming a circulating flow, thereby increasing the heat dissipation efficiency of the molecular sieve oxygen generator. The circulation pump 514 is connected to the connecting pipe 513, and its function is to drive the cooling medium to circulate in the connecting pipe 513. The circulation pump 514 is responsible for pumping the cooling medium from the water tank 512 and pushing it to the heat absorption box 511, enabling the cooling medium to circulate and absorb heat. The installation position of the circulation pump 514 is between the heat absorption box 511 and the water tank 512 to ensure the normal flow and circulation of the cooling medium.
[0059] As Figure 3 shown, in an embodiment of the present invention, a water inlet is provided on the side of the water tank 512 away from the circulation pump 514, which is used to send water source into the water tank 512.
[0060] It can be understood that the water inlet is located at the upper part or side part of the water tank 512 to ensure that the water source is smoothly sent into the water tank 512. The water source can be a tap water pipe or other appropriate water supply systems. Through the water inlet, the water source flows into the water tank 512 to provide the cooling medium required by the circulation component 51, thereby ensuring the normal heat dissipation of the heat dissipation mechanism 5.
[0061] As Figure 3 shown, in an embodiment of the present invention, a plurality of heat sinks 53 are provided, and the plurality of heat sinks 53 are arranged at intervals on the side of the molecular sieve oxygen generator adjacent to the heat absorption box 511.
[0062] Understandably, the function of the heat sink 53 is to increase the surface area of the side wall of the molecular sieve oxygen generator so as to dissipate heat more effectively. Arranging multiple heat sinks 53 at intervals on the wall surface of the molecular sieve oxygen generator can increase the surface area for heat transfer and improve the efficiency of heat dissipation.
[0063] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structural transformation made under the inventive concept of the present invention by using the content of the specification and drawings of the present invention, or any direct / indirect application in other related technical fields is included in the patent protection scope of the present invention.
Claims
1. The integrated medical oxygen generation device with negative oxygen ions is characterized in that Comprising: A housing, the bottom plate of the housing and a plurality of interconnected side plates jointly enclose an installation space; An oxygen generation mechanism, the oxygen generation mechanism is located in the installation space, the oxygen generation mechanism includes a compression pump and a molecular sieve oxygen generator, the molecular sieve oxygen generator is disposed adjacent to the inner wall of the housing, and the compression pump communicates with the molecular sieve oxygen generator; An air purification mechanism, the air purification mechanism is disposed adjacent to the oxygen generation mechanism and communicates with the oxygen generation mechanism; And A negative oxygen ion generation mechanism, the negative oxygen ion generation mechanism is located on the outer wall of the housing, the negative oxygen ion generation mechanism includes an output pipeline and a reaction chamber, the output pipeline communicates with the air purification mechanism, the output pipeline extends along the outer wall of the housing, the reaction chamber is located at the gas output end of the output pipeline, and a part of the output pipeline communicates with the reaction chamber; An oxygen outlet cover is connected to one end of the output pipeline adjacent to the released gas, and the oxygen outlet cover communicates with the output pipeline; Exhaust holes are provided on the end face of the oxygen outlet cover, and the exhaust holes communicate with the output pipeline and the reaction chamber respectively; It further includes a heat dissipation mechanism, the heat dissipation mechanism is attached to the molecular sieve oxygen generator, the heat dissipation mechanism includes a circulation component, a condenser and heat dissipation fins, the circulation component is laid on the side wall of the molecular sieve oxygen generator, the condenser passes through the circulation component, and the heat dissipation fins are spaced apart on the side wall of the molecular sieve oxygen generator; The circulation component includes: A heat absorption box, the heat absorption box is laid on the side wall of the molecular sieve oxygen generator; A water tank, the water tank is attached to the side of the heat dissipation mechanism away from the heat absorption box; A connecting pipe, the connecting pipe communicates the water tank and the heat absorption box; and A circulation pump, the circulation pump is connected to the connecting pipe.
2. The integrated medical oxygen generation device with negative oxygen ions according to claim 1, characterized in that The oxygen generation mechanism further includes a humidifying bottle, the humidifying bottle is located between the molecular sieve oxygen generator and the air purification mechanism, and the humidifying bottle communicates with the molecular sieve oxygen generator.
3. The integrated medical oxygen generation device with negative oxygen ions as claimed in claim 1, wherein The air purification mechanism includes: A purification box, the purification box communicates with the oxygen generation mechanism; and A air supply component, the air supply component passes through the purification box, and the air supply end of the air supply component faces the cavity of the purification box.
4. The negative oxygen ion integrated medical oxygen generation device according to claim 3, wherein The air supply component includes: An air outlet pipe, the air outlet pipe extends into the purification box along the direction of the blown air; and A fan, the fan is located in the cavity of the air outlet pipe.
5. The integrated medical oxygen generation device with negative oxygen ions as claimed in claim 1, wherein A water inlet is provided on the side of the water tank away from the circulation pump for sending water source into the water tank.
6. The integrated medical oxygen generation device with negative oxygen ions as claimed in claim 1, wherein There are a plurality of the heat dissipation fins, and the plurality of heat dissipation fins are spaced apart on the side of the molecular sieve oxygen generator adjacent to the heat absorption box.
Citation Information
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