Damp-proof and heat-dissipation composite carbon source storage device
By using telescopic cylinders, heat dissipation ports, moisture absorbing materials and stirring leaves in the composite carbon source storage device, the problems of high temperature and humid gases in traditional storage devices are solved, and the moisture-proof and heat dissipation and quality protection of the composite carbon source are achieved.
Patent Information
- Application Number
- CN202422330719.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-09-24
AI Technical Summary
Traditional composite carbon source storage devices are difficult to effectively prevent the influence of high temperature and humid gases during storage, resulting in a degradation of the quality and performance of composite carbon source.
A composite carbon source storage device that is moisture-proof and heat-dissipating is designed, using telescopic cylinders, heat dissipation ports, sealing plates and temperature sensors to achieve real-time temperature monitoring and heat dissipation; at the same time, through moisture-absorbing materials and pore structures, wet gases are prevented from entering the storage box; before use, agitating leaves and scraping rods are used to eliminate precipitation.
Effectively prevent the influence of high temperature and humid gases inside the storage device, ensure the quality and performance of the composite carbon source, realize the moisture-proof protection and heat dissipation effect of the composite carbon source, and eliminate precipitation, ensuring the quality of the removed composite carbon source.
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Figure CN223002080U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of composite carbon source storage, in particular to a moisture-proof and heat-dissipating composite carbon source storage device. Background Technique
[0002] Composite carbon source is a new type of nutrient liquid, commonly used in the field of improving industrial sewage and domestic sewage. When it is put into sewage, it can degrade the organic matter in the sewage into small molecule organic carbon that is easy to absorb, effectively improve the quality of sewage, provide necessary nutrients for the sewage, and convert the sewage. After the composite carbon source is produced, it needs to be stored in a light-proof manner using a corresponding storage device.
[0003] For traditional composite carbon source storage devices, during the storage process, it is necessary to monitor the temperature inside the storage device to avoid excessive temperature inside the storage device affecting the quality and performance of the composite carbon source. Therefore, we propose a moisture-proof and heat-dissipating composite carbon source storage device to improve the above problems. Content of the Utility Model
[0004] The purpose of the utility model is to provide a moisture-proof and heat-dissipating composite carbon source storage device to solve the problems raised in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solution: A moisture-proof and heat-dissipating composite carbon source storage device, including a support base, a storage box is installed at the top of the support base, an observation window is installed on one side of the storage box, and a light-shielding cover is hinged on one side of the observation window. A feed inlet is provided at the top of the storage box, and a sealing cover is installed inside the feed inlet. Heat dissipation openings are provided on both sides of the top of the storage box. Mounting seats are fixed at the top ends of both sides inside the storage box, and telescopic cylinders are hinged inside the mounting seats. One end of each telescopic cylinder is hinged with a connecting seat, connecting bars are movably arranged inside the connecting seats, one end of each connecting bar is fixed with a sealing plate, and one side of each sealing plate is hinged with the support base. A temperature sensor is installed at one end inside the storage box.
[0006] Preferably, there are two groups of heat dissipation openings, and the two groups of heat dissipation openings are symmetrically distributed about the central axis of the storage box.
[0007] Preferably, the cross-section of the heat dissipation opening is matched with the cross-section of the sealing plate, and a clamping structure is formed between the heat dissipation opening and the sealing plate.
[0008] Preferably, a fixing seat is fixed at the bottom end of the sealing cover, a cylinder body is movably arranged at the bottom end of the fixing seat, a moisture-absorbing material is filled inside the cylinder body, and holes are formed on the inner wall of the cylinder body.
[0009] Preferably, a plurality of the hole bodies are provided, and the plurality of hole bodies are equidistantly distributed on the inner wall of the cylinder body.
[0010] Preferably, the dimensions of the fixed seat and the cylinder body are matched, and a threaded connection is formed between the fixed seat and the cylinder body.
[0011] Preferably, a servo motor is installed inside the support base, a stirring blade is installed at the top of the servo motor, and a scraping rod is installed at the bottom of the stirring blade.
[0012] Preferably, two groups of the scraping rods are provided, and the two groups of scraping rods are symmetrically distributed about the central axis of the stirring blade.
[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows: The moisture-proof and heat-dissipating composite carbon source storage device not only realizes the heat dissipation of the storage device, avoids the high temperature inside it from affecting the quality of the composite carbon source, realizes the moisture-proof protection of the composite carbon source, but also realizes the elimination of the precipitation of the composite carbon source before it is taken out for use;
[0014] (1) By providing components such as a telescopic cylinder, a heat dissipation port, a sealing plate, and a temperature sensor, when using the composite carbon source storage device, if it is affected by the external environment and generates high temperature, the temperature sensor will conduct real-time monitoring inside the storage box. If the temperature is too high, the telescopic cylinder will be activated to push the sealing plate to move and open the heat dissipation port, allowing the hot air inside the storage box to be discharged, avoiding the deterioration of the internal composite carbon source caused by the excessive temperature of the storage box;
[0015] (2) By providing components such as hole bodies, moisture-absorbing materials, a cylinder body, and a fixed seat, corresponding moisture-proof protection is required during the storage process of the composite carbon source to prevent water vapor from entering and affecting the purity of the composite carbon source. Through the setting of the above components, the moisture generated inside the storage device can be absorbed, avoiding the influence of the moisture on the composite carbon source stored inside, and making the protection of the composite carbon source storage stronger;
[0016] (3) By providing components such as a stirring blade, a scraping rod, and a servo motor, when the composite carbon source is stored inside the storage box, precipitation is likely to occur inside the storage box. When it is taken out for use later, it is necessary to eliminate the precipitation to avoid affecting the quality of the taken-out composite carbon source. Therefore, after adding the above components, the composite carbon source can be stirred before it is taken out to eliminate the precipitation and ensure the quality of the taken-out composite carbon source. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a front sectional structure schematic diagram of the present utility model;
[0018] Figure 2 is a side view structure schematic diagram of the present utility model;
[0019] Figure 3 For the present utility model Figure 1 is a partial enlarged structural schematic diagram of part A in
[0020] Figure 4 is a front view structural schematic diagram of the scraping rod of the present utility model.
[0021] In the figure: 1, support base; 2, storage box; 3, telescopic cylinder; 4, heat dissipation port; 5, sealing plate; 6, feed port; 7, sealing cover; 8, connecting strip; 9, connecting seat; 10, temperature sensor; 11, mounting seat; 12, stirring blade; 13, scraping rod; 14, servo motor; 15, light-shielding cover; 16, observation window; 17, hole body; 18, moisture-absorbing material; 19, cylinder body; 20, fixed seat. Specific embodiments
[0022] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0023] Embodiment 1: Please refer to Figures 1-4 , a moisture-proof and heat-dissipating composite carbon source storage device, including a support base 1, a storage box 2 is installed at the top end of the support base 1, an observation window 16 is installed on one side of the storage box 2, and a light-shielding cover 15 is hingedly installed on one side of the observation window 16. A feed port 6 is provided at the top end of the storage box 2, and a sealing cover 7 is installed inside the feed port 6. Heat dissipation ports 4 are provided on both sides of the top end of the storage box 2. Mounting seats 11 are fixed at the top ends of both sides inside the storage box 2, and telescopic cylinders 3 are hingedly installed inside the mounting seats 11. One end of each telescopic cylinder 3 is hingedly installed with a connecting seat 9. Connecting strips 8 are movably arranged inside the connecting seats 9. One end of each connecting strip 8 is fixed with a sealing plate 5, and one side of each sealing plate 5 is hingedly installed with the support base 1. A temperature sensor 10 is installed at one end inside the storage box 2. There are two groups of heat dissipation ports 4, and the two groups of heat dissipation ports 4 are symmetrically distributed about the central axis of the storage box 2, so that the heat inside the storage box 2 can be dissipated faster and the heat dissipation effect is better. The cross-section of the heat dissipation port 4 is matched with the cross-section of the sealing plate 5, and a clamping structure is formed between the heat dissipation port 4 and the sealing plate 5. The design of the clamping structure makes the sealing performance between the heat dissipation port 4 and the sealing plate 5 stronger;
[0024] Specifically, as shown in Figure 1 and Figure 2As shown, the temperature sensor 10 monitors the temperature inside the support base 1 in real time. If the temperature exceeds the set temperature, the temperature sensor 10 transmits this information to the controller. The controller activates the telescopic cylinder 3 to push the sealing plate 5 straight upward through the sliding of the connecting seat 9 on the outer wall of the connecting bar 8 to open the heat dissipation port 4, and discharges the temperature inside the support base 1 through the heat dissipation port 4.
[0025] Embodiment 2: A fixing seat 20 is fixed at the bottom end of the sealing cover 7. A cylinder body 19 is movably arranged at the bottom end of the fixing seat 20. The inside of the cylinder body 19 is filled with a moisture-absorbing material 18. A plurality of hole bodies 17 are formed on the inner wall of the cylinder body 19. The plurality of hole bodies 17 are evenly distributed on the inner wall of the cylinder body 19. The evenly distributed hole bodies 17 have a better absorption effect on the humid air. The sizes of the fixing seat 20 and the cylinder body 19 are matched, and a threaded connection is formed between the fixing seat 20 and the cylinder body 19, which is convenient for disassembling and assembling the cylinder body 19 so as to replace the moisture-absorbing material 18 inside it;
[0026] Specifically, as Figure 1 and Figure 3 shown, rotate the cylinder body 19 to remove it from the fixing seat 20 and load the corresponding moisture-absorbing material 18 into the inside of the cylinder body 19. After the moisture-absorbing material 18 is loaded, install the cylinder body 19 above the cylinder body 19, and then install the sealing cover 7 above the feed port 6 while allowing the cylinder body 19 to extend into the inside of the storage tank 2. Subsequently, the moisture-absorbing material 18 inside the cylinder body 19 will absorb the humid air inside the storage tank 2, ensuring better drying inside the storage tank 2 for better storage of the composite carbon source.
[0027] Embodiment 3: A servo motor 14 is installed inside the support base 1. A stirring blade 12 is installed at the top end of the servo motor 14, and a scraping rod 13 is installed at the bottom end of the stirring blade 12. There are two groups of scraping rods 13, and the two groups of scraping rods 13 are symmetrically distributed about the central axis of the stirring blade 12. The symmetrically distributed scraping rods 13 have a better effect on eliminating the sediment inside the storage tank 2, and the setting of the two groups of scraping rods 13 effectively extends the service life of the scraping rod 13;
[0028] Specifically, as Figure 1 and Figure 4 shown, start the servo motor 14 to drive the stirring blade 12 to rotate and stir the composite carbon source at the bottom end thereof. While the stirring blade 12 is stirring, the scraping rod 13 at the bottom end of the stirring blade 12 will scrape along the bottom end of the inner side wall of the storage tank 2, thereby eliminating the precipitation of the composite carbon source and ensuring the quality of the taken-out composite carbon source.
[0029] Working principle: When the utility model is in use, open the feed inlet 6 to pour the composite carbon source into the interior of the storage tank 2 for storage. Then, rotate the cylinder body 19 to remove it from the fixed seat 20 and load the corresponding moisture-absorbing material 18 into the interior of the cylinder body 19. Next, install the sealing cover 7 above the feed inlet 6 so that the cylinder body 19 extends into the interior of the storage tank 2 and seals the feed inlet 6. At the same time, the moisture-absorbing material 18 inside the cylinder body 19 absorbs the moisture in the support base 1 to ensure the dryness inside the support base 1. Then, place the device in a dark and ventilated place for storage. During the storage process, the temperature sensor 10 continuously monitors the temperature inside the support base 1. If the temperature exceeds the set temperature, the temperature sensor 10 transmits this information to the controller. The controller activates the telescopic cylinder 3 to slide on the outer wall of the connecting bar 8 through the connecting seat 9 to push the sealing plate 5 straight upward to open the heat dissipation port 4, and the temperature inside the support base 1 is discharged through the heat dissipation port 4 to avoid high temperature. Before taking out the composite carbon source inside the storage tank 2 later, the servo motor 14 can be activated to drive the stirring blade 12 to rotate, so that the stirring blade 12 and the scraping rod 13 together agitate the composite carbon source inside the storage tank 2 to eliminate precipitation, and then the composite carbon source can be taken out.
[0030] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic characteristics of the present utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present utility model. Any reference signs in the claims should not be regarded as limiting the claims involved.
Claims
1. A moisture-proof and heat-dissipating composite carbon source storage device, comprising a support base (1), characterized in that: A storage box (2) is installed at the top of the support base (1), an observation window (16) is installed on one side of the storage box (2), and a light shielding cover (15) is hingedly installed on one side of the observation window (16), a feed port (6) is provided at the top of the storage box (2), and a sealing cover (7) is installed inside the feed port (6), heat dissipation ports (4) are provided on both sides of the top of the storage box (2), mounting seats (11) are fixed at the tops of both sides of the storage box (2), and telescopic cylinders (3) are hingedly installed inside the mounting seats (11), one end of the telescopic cylinder (3) is hingedly installed with a connecting seat (9), the inside of the connecting seat (9) is movably provided with a connecting strip (8), one end of the connecting strip (8) is fixed with a sealing plate (5), and one side of the sealing plate (5) is hingedly installed between the support base (1), and a temperature sensor (10) is installed at one end of the storage box (2).
2. A moisture-proof and heat-dissipating composite carbon source storage device according to claim 1, characterized in that: Two groups of heat dissipation openings (4) are provided, and the two groups of heat dissipation openings (4) are symmetrically distributed about the central axis of the storage box (2).
3. The moisture-proof and heat-dissipating composite carbon source storage device according to claim 1, characterized in that: The cross section of the heat dissipation opening (4) matches the cross section of the sealing plate (5), and a snap-fit structure is formed between the heat dissipation opening (4) and the sealing plate (5).
4. The moisture-proof and heat-dissipating composite carbon source storage device according to claim 1, characterized in that: A fixing seat (20) is fixed at the bottom end of the sealing cover (7), a cylinder (19) is movably provided at the bottom end of the fixing seat (20), the interior of the cylinder (19) is filled with moisture absorbing material (18), and a hole (17) is opened on the inner wall of the cylinder (19).
5. The moisture-proof and heat-dissipating composite carbon source storage device according to claim 4, characterized in that: A plurality of the hole bodies (17) are provided, and the plurality of the hole bodies (17) are distributed at equal intervals on the inner wall of the cylinder (19).
6. The moisture-proof and heat-dissipating composite carbon source storage device according to claim 4, characterized in that: The fixing seat (20) and the cylinder (19) are matched in size, and a threaded connection is formed between the fixing seat (20) and the cylinder (19).
7. The moisture-proof and heat-dissipating composite carbon source storage device according to claim 1, characterized in that: A servo motor (14) is installed inside the support base (1), a stirring blade (12) is installed at the top end of the servo motor (14), and a scraper rod (13) is installed at the bottom end of the stirring blade (12).
8. The moisture-proof and heat-dissipating composite carbon source storage device according to claim 7, characterized in that: Two groups of scraper rods (13) are provided, and the two groups of scraper rods (13) are symmetrically distributed about the central axis of the stirring blade (12).