Organic fertilizer fermentation tank
By introducing longitudinal and transverse moving parts into the organic fertilizer fermentation tank to drive the temperature sensor, the automatic measurement and recording of the fermentation tank temperature is realized, which solves the tedious problem of manual measurement and improves the measurement efficiency and cleaning efficiency.
Patent Information
- Application Number
- CN202521385829.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-03
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2035-07-03
AI Technical Summary
In organic fertilizer fermentation tanks, personnel need to manually measure the temperature in multiple fermentation tanks, which is cumbersome and inconvenient.
The measuring structure, including the temperature sensor, is driven by longitudinal and transverse moving parts to realize automatic temperature measurement. All fermentation tanks are covered by longitudinal and transverse movement, and the temperature data is recorded and transmitted in real time.
It realizes precise control and automatic measurement of the fermentation tank temperature, reduces manual operation, improves measurement efficiency and cleaning efficiency, and ensures the stable operation of the fermentation tank.
Smart Images

Figure CN223357567U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of organic fertilizer production, in particular to an organic fertilizer fermentation tank. Background Art
[0002] An organic fertilizer fermentation tank is a tank specially designed for organic fertilizer fermentation. It promotes the decomposition and transformation of organic materials (such as livestock and poultry manure, crop straw, etc.) by providing a suitable fermentation environment, and generates organic fertilizer rich in organic matter and nutrients.
[0003] Usually, when organic fertilizer materials are fermented in the fermentation tank, it is necessary to regularly measure the temperature of the organic fertilizer raw materials in the fermentation tank to ensure that the fermentation process is carried out under appropriate temperature conditions, which helps to improve the fermentation efficiency and quality stability of the organic fertilizer.
[0004] However, since there are multiple fermentation tanks, when personnel measure the temperature of the organic fertilizer raw materials in multiple fermentation tanks, they need to measure them one by one with a handheld thermometer, which is very troublesome. Utility Model Content
[0005] Therefore, the utility model provides an organic fertilizer fermentation tank to solve the above-mentioned problems.
[0006] In order to achieve the above-mentioned purpose, the utility model provides an organic fertilizer fermentation tank, comprising a fermentation tank, a longitudinal moving part, a transverse moving part and a measuring structure;
[0007] The fermentation tank has multiple;
[0008] The longitudinal moving member includes a longitudinal driving member and a U-shaped block. The two vertical blocks of the U-shaped block are movably arranged in the longitudinal groove at the upper end of the longitudinal block. The longitudinal block is connected to the upper outer wall of the fermentation tank. The longitudinal driving member is used to drive the U-shaped block to move longitudinally.
[0009] The transverse moving member includes a transverse driving member and a transverse moving block, wherein the transverse moving block is movably arranged in a transverse groove at the lower end of the transverse block in the U-shaped block, and the transverse driving member is used to drive the transverse moving block to move transversely;
[0010] The measuring structure is arranged at the lower end of the transverse moving block. The measuring structure includes a telescopic member and a temperature sensor. The temperature sensor is arranged at the lower end of the transverse moving block. The telescopic member is used to drive the temperature sensor to rise or fall.
[0011] The above beneficial effects are as follows: the vertical block is driven by the longitudinal driving member to move longitudinally in the longitudinal groove, and the U-shaped block drives the transverse moving member and the measuring structure to move longitudinally, and the transverse driving member drives the transverse moving block to move in the transverse groove, and the measuring structure moves transversely. Through the transverse and longitudinal movement of the measuring structure, the measuring structure can be moved to any position above a fermentation tank. When the measuring structure moves to the position to be measured, the telescopic member stretches and drives the temperature sensor to move down into the organic fertilizer material for temperature measurement. The measured temperature value is transmitted to the data recording device, and the temperature data in each fermentation tank is recorded in real time, so as to facilitate the subsequent precise control of the temperature in each fermentation tank. After that, the telescopic member contracts and the temperature sensor is moved out of the fermentation tank, and then the temperature of the next position can be measured. This replaces the process of personnel temperature measurement, which is very convenient.
[0012] A preferred solution is that the longitudinal drive members have two groups, both groups of the longitudinal drive members include a longitudinal screw rod and a first motor, the longitudinal screw rod is arranged in the longitudinal groove, the first motor is connected to the longitudinal screw rod, and the lower end of the vertical block is arranged on the longitudinal screw rod.
[0013] A preferred solution is that the transverse driving member includes a transverse screw rod and a second motor, the transverse screw rod is arranged in the transverse groove, the transverse moving block is arranged on the transverse screw rod, and the second motor is connected to the transverse screw rod.
[0014] A preferred solution is that the telescopic member is a telescopic cylinder, the upper end of the telescopic cylinder is connected to the transverse moving block, and the telescopic rod of the telescopic cylinder is connected to the temperature sensor.
[0015] A preferred solution is that the temperature sensor is detachably provided, a connecting plate is provided at the upper end of the temperature sensor, two ear plates are provided at the lower end of the telescopic rod of the telescopic cylinder, the two ear plates are respectively provided with insertion holes, a connecting hole is provided on the connecting plate, and the connecting hole cooperates with the insertion hole.
[0016] A preferred solution is that a follower plate is provided on the rear side of the U-shaped block, a plurality of movable plates are provided at the lower end of the follower plate, the middle part of the movable plate is slidably provided on an arc column, the arc column is provided on the dividing block between two adjacent fermentation tanks, each of the movable plates in the middle is provided with scrapers on both sides, and scrapers are provided on the inner ends of the two outermost movable plates.
[0017] A preferred solution is that the scraper is connected to a detachable movable plate, the lower end of the movable plate is provided with a first circular hole, the upper end of the scraper is provided with two extension plates, the two extension plates are respectively provided with a second circular hole, and the first circular hole cooperates with the second circular hole. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention will be further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0019] Figure 1 This is a structural diagram of an organic fertilizer fermentation tank of the utility model;
[0020] Figure 2 This is a structural schematic diagram of a plan view of an organic fertilizer fermentation tank of the present invention;
[0021] Figure 3 This is a structural schematic diagram of a partial side sectional view of an organic fertilizer fermentation tank of the present invention;
[0022] Figure 4 This is a structural diagram of an organic fertilizer fermentation tank of the utility model;
[0023] Figure 5 The utility model is a structural schematic diagram of a partial side sectional view of an organic fertilizer fermentation tank.
[0024] In the figure: 10, fermentation tank; 20, longitudinal moving member; 210, longitudinal driving member; 21, U-shaped block; 22, vertical block; 23, longitudinal block; 24, longitudinal groove; 25, transverse block; 26, transverse groove; 30, transverse moving member; 310, transverse driving member; 31, transverse moving block; 40, measuring structure; 410, telescopic member; 41, temperature sensor; 211, longitudinal screw rod; 311, transverse screw rod; 411, telescopic cylinder; 51, ear plate; 52, connecting plate; 53, insertion hole; 54, connecting hole; 61, following plate; 62, moving plate; 63, arc column; 64, dividing block; 65, scraper; 71, first circular hole; 72, extension plate; 73, second circular hole. DETAILED DESCRIPTION
[0025] The following is a clear and complete description of the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention can also be implemented in other ways different from those described herein, and those skilled in the art can make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0026] like Figures 1 to 5 As shown, the utility model provides an organic fertilizer fermentation tank, comprising a fermentation tank 10, a longitudinal moving member 20, a transverse moving member 30 and a measuring structure 40;
[0027] The fermentation tank 10 has multiple;
[0028] The longitudinal moving member 20 includes a longitudinal driving member 210 and a U-shaped block 21. The two vertical blocks 22 of the U-shaped block 21 are movably arranged in the longitudinal groove 24 at the upper end of the longitudinal block 23. The longitudinal block 23 is connected to the upper outer wall of the fermentation tank 10. The longitudinal driving member 210 is used to drive the U-shaped block 21 to move longitudinally.
[0029] The transverse moving member 30 includes a transverse driving member 310 and a transverse moving block 31. The transverse moving block 31 is movably disposed in the transverse groove 26 at the lower end of the transverse block 25 in the U-shaped block 21. The transverse driving member 310 is used to drive the transverse moving block 31 to move transversely.
[0030] The measuring structure 40 is arranged at the lower end of the transverse moving block 31 , and includes a telescopic member 410 and a temperature sensor 41 . The temperature sensor 41 is arranged at the lower end of the transverse moving block 31 , and the telescopic member 410 is used to drive the temperature sensor 41 to rise or fall.
[0031] During the operation, the organic fertilizer material is added to the plurality of fermentation tanks 10 for fermentation. Then, the vertical block 22 is driven by the longitudinal driving member 210 to move longitudinally in the longitudinal groove 24, and the U-shaped block 21 drives the transverse moving member 30 and the measuring structure 40 to move longitudinally, and the transverse driving member 310 drives the transverse moving block 31 to move in the transverse groove 26, so that the measuring structure 40 moves transversely. Through the transverse and longitudinal movement of the measuring structure 40, the measuring structure 40 can be moved to the top of any position of a fermentation tank 10. When the measuring structure 40 is moved to the position to be measured, the telescopic member 410 is extended to drive the temperature sensor 41 downward, so that the temperature sensor 41 enters the organic fertilizer material for temperature measurement. The measured temperature value is transmitted to the data recording device, and the temperature data in each fermentation tank 10 is recorded in real time to facilitate the subsequent accurate control of the temperature in each fermentation tank 10. After that, the telescopic member 410 contracts and the temperature sensor 41 is moved out of the fermentation tank 10. Then, the temperature of the next position can be measured. This replaces the process of temperature measurement by personnel, which is very convenient.
[0032] Preferably, there are two groups of longitudinal driving members 210, and both groups of longitudinal driving members 210 include a longitudinal screw rod 211 and a first motor. The longitudinal screw rod 211 is arranged in the longitudinal groove 24, the first motor is connected to the longitudinal screw rod 211, and the lower end of the vertical block 22 is arranged on the longitudinal screw rod 211.
[0033] The first motor drives the longitudinal screw rod 211 to rotate, so that the two vertical blocks 22 of the U-shaped block 21 move longitudinally along the longitudinal slot 24 .
[0034] Preferably, the transverse driving member 310 includes a transverse screw rod 311 and a second motor. The transverse screw rod 311 is disposed in the transverse slot 26 . The transverse moving block 31 is disposed on the transverse screw rod 311 . The second motor is connected to the transverse screw rod 311 .
[0035] The second motor drives the transverse screw rod 311 to rotate, so that the transverse moving block 31 moves along the transverse slot 26 , and the transverse moving block 31 drives the measuring structure 40 to move transversely.
[0036] Preferably, the telescopic member 410 is a telescopic cylinder 411 , the upper end of the telescopic cylinder 411 is connected to the transverse moving block 31 , and the telescopic rod of the telescopic cylinder 411 is connected to the temperature sensor 41 .
[0037] When the measuring structure 40 is moved above the position to be measured, the telescopic rod of the telescopic cylinder 411 is extended, so that the temperature sensor 41 enters the organic fertilizer material to measure the temperature. When the telescopic rod of the telescopic cylinder 411 is retracted, the temperature sensor 41 is moved out from the organic fertilizer material.
[0038] Preferably, the temperature sensor 41 is detachably provided, and a connecting plate 52 is provided at the upper end of the temperature sensor 41. Two ear plates 51 are provided at the lower end of the telescopic rod of the telescopic cylinder 411. Insertion holes 53 are respectively provided on the two ear plates 51. A connecting hole 54 is provided on the connecting plate 52, and the connecting hole 54 cooperates with the insertion hole 53.
[0039] When the temperature sensor 41 needs to be replaced, the operator can unscrew the first nut from the first bolt, and then remove the first bolt from the connecting hole 54 and the insertion hole 53. At this time, the temperature sensor 41 can be removed from the lower end of the telescopic rod for replacement. Then, the connecting plate 52 at the upper end of the new temperature sensor 41 is moved between the two ear plates 51, and then the first bolt is inserted into the connecting hole 54 and the insertion hole 53, and the nut is screwed on the first bolt to complete the replacement of the temperature sensor 41.
[0040] Preferably, a follower plate 61 is provided on the rear side of the U-shaped block 21, and a plurality of movable plates 62 are provided at the lower end of the follower plate 61. The middle part of the movable plate 62 is slidably provided on an arc column 63, and the arc column 63 is provided on a dividing block 64 between two adjacent fermentation tanks 10. Scrapers 65 are provided on both sides of each of the movable plates 62 in the middle, and scrapers 65 are provided on the inner ends of the two outermost movable plates 62.
[0041] When the inner side of the fermentation tank 10 needs to be cleaned, the U-shaped block 21 moves longitudinally, and the follower plate 61 follows the U-shaped block 21 in the longitudinal movement. The follower plate 61 drives the multiple movable plates 62 to move longitudinally, and the middle portion of the movable plates 62 moves along the arc-shaped column 63. At the same time, the scraper 65 at the lower end of the movable plate 62 moves longitudinally. During the movement of the scraper 65, the scraper 65 can scrape away residue on the inner side wall, preventing material accumulation and agglomeration, and maintaining the cleanliness and hygiene of the fermentation tank 10. This not only reduces the labor intensity of manual cleaning, but also improves cleaning efficiency, ensuring the continuous and stable operation of the fermentation tank 10.
[0042] Preferably, the scraper 65 is connected to a detachable movable plate 62, and a first circular hole 71 is provided at the lower end of the movable plate 62. Two extension plates 72 are provided at the upper end of the scraper 65, and second circular holes 73 are respectively provided on the two extension plates 72. The first circular hole 71 cooperates with the second circular hole 73.
[0043] When the scraper 65 needs to be replaced, the second nut is unscrewed from the second bolt, and then the second bolt is removed from the first circular hole 71 and the second circular hole 73. At this time, the scraper 65 can be removed from the lower end of the movable plate 62. When replacing, the two extension plates 72 are located on both sides of the lower end of the movable plate 62, and then the second bolt is inserted into the first circular hole 71 and the second circular hole 73, and the second nut is screwed on the second bolt. In this way, the scraper 65 can be replaced.
[0044] In addition, the temperature sensor needs to be connected to the data recording device so that the measured temperature can be transmitted to the data recording device in real time.
[0045] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
Claims
1. An organic fertilizer fermentation tank, characterized in that, include: Fermentation tanks (10), wherein the fermentation tanks (10) are multiple; organic fertilizer materials are added into the multiple fermentation tanks (10) for fermentation; A longitudinal moving member (20) includes a longitudinal driving member (210) and a U-shaped block (21). The two vertical blocks (22) of the U-shaped block (21) are movably arranged in the longitudinal groove (24) at the upper end of the longitudinal block (23). The longitudinal block (23) is connected to the upper outer wall of the fermentation tank (10). The longitudinal driving member (210) is used to drive the U-shaped block (21) to move longitudinally. a transverse moving member (30), the transverse moving member (30) comprising a transverse driving member (310) and a transverse moving block (31), the transverse moving block (31) being movably disposed in a transverse groove (26) at the lower end of a transverse block (25) in the U-shaped block (21), the transverse driving member (310) being used to drive the transverse moving block (31) to move transversely; A measuring structure (40), the measuring structure (40) being arranged at the lower end of the transverse moving block (31), the measuring structure (40) comprising a telescopic member (410) and a temperature sensor (41), the temperature sensor (41) being arranged at the lower end of the transverse moving block (31), the telescopic member (410) being used to drive the temperature sensor (41) to rise or fall; A following plate (61) is provided on the rear side of the U-shaped block (21), and a plurality of movable plates (62) are provided at the lower end of the following plate (61), and the middle portion of the movable plate (62) is slidably provided on an arc column (63), and the arc column (63) is provided on a dividing block (64) between two adjacent fermentation tanks (10). Scrapers (65) are provided on both sides of each movable plate (62) in the middle, and scrapers (65) are provided on the inner ends of the two outermost movable plates (62); When the inner side of the fermentation tank (10) needs to be cleaned, when the U-shaped block (21) moves longitudinally, the following plate (61) moves longitudinally following the U-shaped block (21), and the following plate (61) drives the plurality of movable plates (62) to move longitudinally, and the middle portion of the movable plate (62) moves along the arc column (63), while the scraper (65) at the lower end of the movable plate (62) moves longitudinally. During the movement of the scraper (65), the scraper (65) can scrape off the residue on the inner side wall, thereby preventing the accumulation and agglomeration of materials and keeping the fermentation tank (10) clean and sanitary. The scraper (65) is connected to a detachable movable plate (62), a first circular hole (71) is provided at the lower end of the movable plate (62), and two extension plates (72) are provided at the upper end of the scraper (65), and the two extension plates (72) are respectively provided with a second circular hole (73), and the first circular hole (71) is matched with the second circular hole (73).
2. The organic fertilizer fermentation tank according to claim 1, wherein The longitudinal driving members (210) have two groups, and both groups of the longitudinal driving members (210) include a longitudinal screw rod (211) and a first motor. The longitudinal screw rod (211) is arranged in the longitudinal groove (24), the first motor is connected to the longitudinal screw rod (211), and the lower end of the vertical block (22) is arranged on the longitudinal screw rod (211).
3. The organic fertilizer fermentation tank according to claim 1, wherein The transverse driving member (310) comprises a transverse screw rod (311) and a second motor, wherein the transverse screw rod (311) is arranged in the transverse slot (26), the transverse moving block (31) is arranged on the transverse screw rod (311), and the second motor is connected to the transverse screw rod (311).
4. organic fertilizer fermentation tank according to claim 1, is characterized in that, The telescopic member (410) is a telescopic cylinder (411), the upper end of the telescopic cylinder (411) is connected to the transverse moving block (31), and the telescopic rod of the telescopic cylinder (411) is connected to the temperature sensor (41).
5. The organic fertilizer fermentation tank according to claim 4, wherein The temperature sensor (41) is detachably provided. A connecting plate (52) is provided at the upper end of the temperature sensor (41). Two ear plates (51) are provided at the lower end of the telescopic rod of the telescopic cylinder (411). Insertion holes (53) are respectively provided on the two ear plates (51). A connecting hole (54) is provided on the connecting plate (52). The connecting hole (54) cooperates with the insertion hole (53).