Warming system of garbage warehouse

By designing a garbage warehouse heating system and using hydrophobic heating and recycling, the problem of low temperature in the garbage warehouse in winter is solved, and the garbage fermentation effect and treatment efficiency are improved.

CN222860215UActive Publication Date: 2025-05-13BEIJING BEIJING ENTERPRISES YANQI RENEWABLE ENERGY TECH CO LTD
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Patent Information

Application Number
CN202421979661.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-05-13
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

The temperature of the garbage warehouse in winter is low, resulting in poor fermentation effect of the garbage, and it is difficult for the existing technology to effectively increase the temperature.

Method used

A garbage warehouse heating system is designed, including a sludge drying water-repellent, a fan heater, a fan and a purification mechanism. The air is heated and recycled by hydrophobic heating, and the temperature inside the garbage warehouse is increased.

Benefits of technology

It effectively increases the temperature inside the garbage warehouse, is conducive to the fermentation of garbage, and improves the efficiency of garbage disposal.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to a garbage warehouse heating system, and belongs to the technical field of garbage warehouses, the garbage warehouse heating system comprises a sludge drying drainage machine, the output end of the sludge drying drainage machine is fixedly provided with a first connecting pipe, the right side of the first connecting pipe is provided with a heating mechanism, and the heating mechanism is provided with a purification mechanism. According to the garbage warehouse heating system, drained water in a sludge drying drainage machine enters the interior of a fan heater through a first connecting pipe by means of the arranged heating mechanism, air in the fan heater is heated through the high temperature of the drained water, and the heated air is pumped out of a second connecting pipe under the action of an exhaust fan and conveyed into a third connecting pipe; and hot air is discharged into the garbage warehouse body through an air outlet pipe at the bottom of a third connecting pipe, the temperature of the interior of the garbage warehouse body is increased, the used air can enter a fan heater through a fourth connecting pipe, the temperature of the interior of the garbage warehouse body is increased through circulation of the hot air, and fermentation of the garbage is facilitated.
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Description

Technical Field

[0001] The utility model relates to the technical field of garbage storage, in particular to a garbage storage heating system. Background Art

[0002] At present, the collection and treatment of garbage in towns and cities mostly takes the form of building garbage depots near residential areas or markets. Residents dump their garbage into the garbage depots, collect it and then use garbage transfer trucks to transport it to landfills for treatment.

[0003] During normal operation in winter, the garbage storage is under a slight negative pressure. When unloading garbage, the unloading door is opened and the air from the unloading platform will enter the garbage storage. Although the unloading platform is equipped with heating, the average ambient temperature of the unloading platform is about 6°C, which causes the temperature of the garbage storage to generally remain at around 6°C, which is not conducive to the fermentation of garbage. The fermentation temperature of garbage is low and the fermentation effect is poor. Therefore, this application proposes a garbage storage heating system to solve the above problems. Utility Model Content

[0004] In view of the deficiencies in the prior art, the utility model provides a garbage storage heating system, which has the advantage of good heating effect and solves the problem of poor heating effect of the existing garbage storage.

[0005] To achieve the above object, the utility model provides the following technical solution: a garbage storage heating system, comprising a sludge drying and draining machine, a first connecting pipe is fixed to the output end of the sludge drying and draining machine, a heating mechanism is provided on the right side of the first connecting pipe, and a purification mechanism is provided on the heating mechanism;

[0006] The heating mechanism includes a circulation component and a recovery component. The circulation component includes a heater fixed to the right side of a first connecting pipe, a second connecting pipe fixed to the left side of the heater, a fourth connecting pipe fixed to the right side of the heater, an exhaust fan fixed to the left side of the second connecting pipe, a third connecting pipe fixed to the output end of the exhaust fan, a plurality of air outlet pipes fixed to the lower surface of the third connecting pipe, and a plurality of air inlet pipes fixed to the right side of the fourth connecting pipe.

[0007] By adopting this technical solution, the temperature is increased by the heating mechanism, and the hydrophobicity is purified by the purification mechanism, so that the recycling of the hydrophobicity is convenient.

[0008] Furthermore, the recycling component includes a garbage bin body fixed to the outer surface of the third connecting pipe, a fixing plate fixed to the inner cavity wall of the garbage bin body, and a hinged door hinged to the inside of the fixing plate.

[0009] By adopting this technical solution, the temperature inside the garbage storage body is increased through the heating mechanism, which is beneficial to the fermentation of garbage.

[0010] Furthermore, the left side of the second connecting pipe is fixed to the input end of the exhaust fan, and the third connecting pipe is U-shaped.

[0011] By adopting this technical solution, the heated air enters the second connecting pipe under the action of the exhaust fan, and then enters the third connecting pipe.

[0012] Furthermore, the fourth connecting pipe is L-shaped, and the left side of the fourth connecting pipe is fixed to the left side of the inner cavity of the garbage storage body.

[0013] By adopting this technical solution, the fourth connecting pipe is fixed, thereby improving the stability of the fourth connecting pipe.

[0014] Furthermore, a feed door is hinged on the back of the garbage storage body, and the feed door is located on the left side of the fixed plate.

[0015] By adopting this technical solution, the garbage bin body is divided into an unloading platform and a garbage bin by a fixed plate, and the feed door facilitates the garbage to enter the unloading platform.

[0016] Furthermore, the purification mechanism includes a fifth connecting pipe fixed to the lower surface of the heater, a sludge drying condensation water tank fixed to the right side of the fifth connecting pipe, a sixth connecting pipe fixed to the lower surface of the sludge drying condensation water tank, two condensation water pumps fixed to the right side of the sixth connecting pipe, a seventh connecting pipe fixed to the output end of the condensation water pump, a sampler fixed to the middle part of the lower surface of the seventh connecting pipe, a drain tank fixed to the right side of the lower surface of the seventh connecting pipe, an eighth connecting pipe fixed to the lower surface of the drain tank, two drain pumps fixed to the left side of the eighth connecting pipe, a ninth connecting pipe fixed to the output end of the drain pump, and a deaerator fixed to the lower surface of the ninth connecting pipe.

[0017] By adopting this technical solution, the hydrophobicity is purified by the purification mechanism, which facilitates the recycling of the hydrophobicity.

[0018] Furthermore, the sixth connecting pipe is F-shaped, and the right side of the sixth connecting pipe is fixed to the input end of the condensate pump.

[0019] By adopting this technical solution, it is convenient for the condensate pump to extract the drain water in the sludge drying condensate tank through the sixth connecting pipe.

[0020] Furthermore, the eighth connecting pipe is F-shaped, and the left side of the eighth connecting pipe is fixed to the input end of the drain pump.

[0021] By adopting this technical solution, it is convenient for the drain pump to pump out the water in the drain tank through the eighth connecting pipe.

[0022] Compared with the prior art, the technical solution of this application has the following beneficial effects:

[0023] 1. The garbage storage heating system uses a heating mechanism. The drain in the sludge drying drain machine enters the heater through the first connecting pipe. The drain heats the air in the heater. The heated air enters the third connecting pipe from the second connecting pipe under the action of the exhaust fan, and is discharged into the garbage storage body through the air outlet pipe, thereby heating the interior of the garbage storage body. The used air enters the heater through the fourth connecting pipe. Through the circulation of hot air, the temperature inside the garbage storage body is increased, which is beneficial to the fermentation of garbage.

[0024] 2. The garbage storage heating system passes through the purification mechanism, and the drain enters the sludge drying condensate tank through the fifth connecting pipe, and is sent to the drain tank through the sixth connecting pipe, the condensate pump and the seventh connecting pipe. Under the action of the drain pump, the drain enters the ninth connecting pipe from the eighth connecting pipe, and finally enters the deaerator for deoxygenation, which is convenient for the recycling of the drain. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is a schematic diagram of the structure of the utility model;

[0026] Figure 2 This is a schematic diagram of the internal structure of the garbage storage body of the utility model;

[0027] Figure 3 This is a three-dimensional appearance diagram of the condensate pump of the utility model.

[0028] In the figure: 1. sludge drying and draining machine; 2. first connecting pipe; 3. heating mechanism; 301. heater; 302. second connecting pipe; 303. exhaust fan; 304. third connecting pipe; 305. garbage storage body; 306. fourth connecting pipe; 307. air outlet pipe; 308. air inlet pipe; 309. fixing plate; 310. hinge door; 4. purification mechanism; 401. fifth connecting pipe; 402. sludge drying condensate tank; 403. sixth connecting pipe; 404. condensate pump; 405. seventh connecting pipe; 406. sampler; 407. drain tank; 408. eighth connecting pipe; 409. drain pump; 410. ninth connecting pipe; 411. deaerator. DETAILED DESCRIPTION

[0029] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0030] See also Figure 1The garbage storage heating system in this embodiment includes a sludge drying and draining machine 1. A first connecting pipe 2 is fixed to the output end of the sludge drying and draining machine 1. A heating mechanism 3 is provided on the right side of the first connecting pipe 2. A purification mechanism 4 is provided on the heating mechanism 3. The temperature is increased by the heating mechanism 3, and the drain is purified by the purification mechanism 4, so as to facilitate the recycling of the drain.

[0031] See also Figures 1 to 2 In order to increase the temperature, the heating mechanism 3 in this embodiment includes a circulation component and a recovery component. The circulation component includes a heater 301 fixed to the right side of the first connecting pipe 2, a second connecting pipe 302 fixed to the left side of the heater 301, a fourth connecting pipe 306 fixed to the right side of the heater 301, an exhaust fan 303 fixed to the left side of the second connecting pipe 302, a third connecting pipe 304 fixed to the output end of the exhaust fan 303, a plurality of air outlet pipes 307 fixed to the lower surface of the third connecting pipe 304, and a plurality of air inlet pipes 308 fixed to the right side of the fourth connecting pipe 306. Exhaust is discharged through the air outlet pipe 307, and air is inhaled through the air inlet pipe 308.

[0032] The recycling component includes a garbage bin body 305 fixed to the outer surface of the third connecting pipe 304, a fixed plate 309 fixed to the inner wall of the garbage bin body 305, and a hinge door 310 hinged to the inside of the fixed plate 309. The garbage bin body 305 is divided into an unloading platform and a garbage bin through the fixed plate 309, and the garbage inside the unloading platform enters the garbage bin through the hinge door 310.

[0033] The left side of the second connecting pipe 302 is fixed to the input end of the exhaust fan 303 , and the third connecting pipe 304 is U-shaped. The heated air enters the second connecting pipe 302 and the third connecting pipe 304 under the action of the exhaust fan 303 .

[0034] In addition, the fourth connecting pipe 306 is L-shaped, and the left side of the fourth connecting pipe 306 is fixed to the left side of the inner cavity of the garbage storage body 305. The fourth connecting pipe 306 is fixed, and a feed door is hinged on the back of the garbage storage body 305 to facilitate unloading, so that garbage can enter the interior of the garbage storage body 305. The feed door is located on the left side of the fixed plate 309, and the garbage storage body 305 is divided into an unloading platform and a garbage storage through the fixed plate 309. The feed door facilitates garbage to enter the unloading platform.

[0035] The heating mechanism 3 in this embodiment, the drain in the sludge drying drain machine 1 enters the heater 301 through the first connecting pipe 2, the drain heats the air in the heater 301, the heated air enters the third connecting pipe 304 from the second connecting pipe 302 under the action of the exhaust fan 303, and is discharged to the garbage storage body 305 through the outlet pipe 307, thereby heating the inside of the garbage storage body 305, and the used air will enter the heater 301 through the fourth connecting pipe 306, and the circulation of hot air will increase the temperature inside the garbage storage body 305, which is beneficial to the fermentation of garbage.

[0036] See also Figure 1 and Figure 3 In order to purify the drain, the purification mechanism 4 in this embodiment includes a fifth connecting pipe 401 fixed to the lower surface of the heater 301, a sludge drying condensation water tank 402 fixed to the right side of the fifth connecting pipe 401, a sixth connecting pipe 403 fixed to the lower surface of the sludge drying condensation water tank 402, two condensation water pumps 404 fixed to the right side of the sixth connecting pipe 403, a seventh connecting pipe 405 fixed to the output end of the condensation water pump 404, a sampler 406 fixed to the middle part of the lower surface of the seventh connecting pipe 405, a drain tank 407 fixed to the right side of the lower surface of the seventh connecting pipe 405, an eighth connecting pipe 408 fixed to the lower surface of the drain tank 407, two drain pumps 409 fixed to the left side of the eighth connecting pipe 408, a ninth connecting pipe 410 fixed to the output end of the drain pump 409, and a deaerator 411 fixed to the lower surface of the ninth connecting pipe 410. The deaerator 411 removes oxygen from the drain to facilitate the recycling of the drain.

[0037] Among them, the sixth connecting pipe 403 is F-shaped, and the right side of the sixth connecting pipe 403 is fixed to the input end of the condensate pump 404, so that the condensate pump 404 can extract the water in the sludge drying condensate tank 402 through the sixth connecting pipe 403. The eighth connecting pipe 408 is F-shaped, and the left side of the eighth connecting pipe 408 is fixed to the input end of the drain pump 409, so that the drain pump 409 can extract the water in the drain tank 407 through the eighth connecting pipe 408.

[0038] In the purification mechanism 4 of this embodiment, the drain enters the sludge drying condensation water tank 402 through the fifth connecting pipe 401, and is sent to the drain tank 407 through the sixth connecting pipe 403, the condensation water pump 404 and the seventh connecting pipe 405. The drain enters the ninth connecting pipe 410 from the eighth connecting pipe 408 under the action of the drain pump 409, and finally enters the deaerator 411 for deoxygenation, which is convenient for the recycling of the drain.

[0039] The electrical components appearing in the text are all electrically connected to the controller and the power supply. The control method of the utility model is controlled by the controller. The control circuit of the controller can be realized by simple programming by technicians in this field. The provision of power supply is also common knowledge in this field. The utility model is mainly used to protect mechanical devices, so the utility model will no longer explain the control method and circuit connection in detail.

[0040] The working principle of the above embodiment is:

[0041] (1) The drain inside the sludge drying drain machine 1 enters the interior of the heater 301 through the first connecting pipe 2, and the high temperature of the drain heats the air in the heater 301. The heated air is extracted from the second connecting pipe 302 by the exhaust fan 303 and sent to the third connecting pipe 304. It is discharged to the interior of the garbage storage body 305 through the air outlet pipe 307 at the bottom of the third connecting pipe 304, thereby heating the interior of the garbage storage body 305. The used air enters the heater 301 through the fourth connecting pipe 306. The circulation of hot air increases the temperature inside the garbage storage body 305, which is beneficial to the fermentation of garbage.

[0042] (2) The used drain will enter the sludge drying condensation water tank 402 through the fifth connecting pipe 401, and enter the condensation water pump 404 from the sludge drying condensation water tank 402 through the sixth connecting pipe 403. The condensation water pump 404 sends the drain to the drain tank 407 through the seventh connecting pipe 405. The drain in the drain tank 407 enters the eighth connecting pipe 408 under the action of the drain pump 409, and enters the ninth connecting pipe 410 from the eighth connecting pipe 408, and finally enters the deaerator 411 for deoxygenation, so as to facilitate the recycling of the drain.

Claims

1. A garbage storage heating system, comprising a sludge drying and draining machine (1), characterized in that: A first connecting pipe (2) is fixed to the output end of the sludge drying and draining machine (1); a heating mechanism (3) is provided on the right side of the first connecting pipe (2); and a purification mechanism (4) is provided on the heating mechanism (3); The temperature raising mechanism (3) comprises a circulation component and a recovery component, wherein the circulation component comprises a heater (301) fixed to the right side of the first connecting pipe (2), a second connecting pipe (302) fixed to the left side of the heater (301), a fourth connecting pipe (306) fixed to the right side of the heater (301), an exhaust fan (303) fixed to the left side of the second connecting pipe (302), a third connecting pipe (304) fixed to the output end of the exhaust fan (303), a plurality of air outlet pipes (307) fixed to the lower surface of the third connecting pipe (304), and a plurality of air inlet pipes (308) fixed to the right side of the fourth connecting pipe (306).

2. The garbage storage heating system according to claim 1 is characterized in that: The recycling assembly comprises a garbage storage body (305) fixed to the outer surface of the third connecting pipe (304), a fixing plate (309) fixed to the inner wall of the garbage storage body (305), and a hinged door (310) hinged to the inside of the fixing plate (309).

3. The garbage storage heating system according to claim 1 is characterized in that: The left side of the second connecting pipe (302) is fixed to the input end of the exhaust fan (303), and the third connecting pipe (304) is U-shaped.

4. The garbage storage heating system according to claim 2 is characterized in that: The fourth connecting pipe (306) is L-shaped, and the left side of the fourth connecting pipe (306) is fixed to the left side of the inner cavity of the garbage storage body (305).

5. The garbage storage heating system according to claim 2 is characterized in that: A feed door is hingedly connected to the back of the garbage storage body (305), and the feed door is located on the left side of the fixed plate (309).

6. The garbage storage heating system according to claim 1 is characterized in that: The purification mechanism (4) comprises a fifth connecting pipe (401) fixed to the lower surface of the heater (301), a sludge drying condensation water tank (402) fixed to the right side of the fifth connecting pipe (401), a sixth connecting pipe (403) fixed to the lower surface of the sludge drying condensation water tank (402), two condensation water pumps (404) fixed to the right side of the sixth connecting pipe (403), a seventh connecting pipe (405) fixed to the output end of the condensation water pump (404), and a sludge drying condensation water tank (402) fixed to the right side of the sixth connecting pipe (403). A sampler (406) is provided in the middle of the lower surface of the seventh connecting pipe (405), a drain box (407) is fixed to the right side of the lower surface of the seventh connecting pipe (405), an eighth connecting pipe (408) is fixed to the lower surface of the drain box (407), two drain pumps (409) are fixed to the left side of the eighth connecting pipe (408), a ninth connecting pipe (410) is fixed to the output end of the drain pump (409), and a deaerator (411) is fixed to the lower surface of the ninth connecting pipe (410).

7. The garbage storage heating system according to claim 6 is characterized in that: The sixth connecting pipe (403) is F-shaped, and the right side of the sixth connecting pipe (403) is fixed to the input end of the condensate pump (404).

8. The garbage storage heating system according to claim 6 is characterized in that: The eighth connecting pipe (408) is F-shaped, and the left side of the eighth connecting pipe (408) is fixed to the input end of the drain pump (409).