Accurate temperature control system
By designing magnetic cleaning and stirring components on the surface of the heating tube, the problem of scale and impurities on the surface of the heating tube is solved, and precise control of heating temperature and uniform heating are achieved.
Patent Information
- Application Number
- CN202520146794.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-22
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-01-22
AI Technical Summary
In existing technologies, scale and other impurities easily adhere to the surface of heating tubes, resulting in poor accuracy in water heating temperature control.
A precision temperature control system including a cleaning component and a stirring component was designed. The cleaning sleeve reciprocates to clean the scale on the surface of the heating tube through the magnetic attraction of the magnetic strip and magnetic sleeve, and the stirring blades heat the water evenly.
The improved surface cleanliness of the heating element ensures full contact between the heating element and the water, thereby enhancing the accuracy and uniformity of water heating.
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Figure CN223772852U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of breeding temperature control, specifically relates to a precision temperature control system. BACKGROUND
[0002] The breeding pond is a water container or space for breeding aquatic organisms, specifically, the breeding pond is one of the fixed capital costs of the breeding farm, and the design and construction of the breeding pond often has long-term or permanent influence on breeding, and the corresponding temperature control system is often required during use of the breeding pond.
[0003] The temperature control structure part of the breeding pond in the prior art only realizes the heating and temperature control effect on the water body in the breeding pond through the heating pipe, however, in the long-term use process, the part of the surface of the heating pipe placed in the water body is easy to adhere to a large amount of scale and impurities, so that the control precision of the water heating temperature is poor, and it is not conducive to use.
[0004] Therefore, a precision temperature control system is needed to solve the problem of poor control precision of the water heating temperature in the prior art due to the fact that the heating pipe placed in the part of the surface of the water body is easy to adhere to a large amount of scale and impurities in the long-term use process. SUMMARY
[0005] The utility model discloses a precision temperature control system to solve the problem in the background art.
[0006] To achieve the above object, the utility model provides the following technical scheme: a precision temperature control system, including breeding pond, the partition board fixed in the breeding pond inner chamber, the partition board fixed in the breeding pond inner chamber position, install in the breeding pond inner chamber located the multiple heating pipes of partition board bottom and the auxiliary temperature control mechanism acting on the heating pipe,
[0007] The auxiliary temperature control mechanism includes a cleaning assembly;
[0008] The cleaning assembly is fixed in the breeding pond inner chamber located at the top of the multiple heating pipes in the adjacent position, the magnetic strip is slidably arranged in the inner cavity of the fixed pipe, the magnetic sleeve is slidably arranged on the outer surface of the fixed pipe, the cleaning sleeve is slidably arranged on the outer surface of the heating pipe, the connecting plate is fixed at the middle position of the two adjacent cleaning sleeves, and the water conveying part acts on the fixed pipe.
[0009] It should be noted in the scheme that the bottom of the magnetic sleeve is fixed with the surface of the adjacent cleaning sleeve, and the outer surface of the magnetic strip is matched with the inner surface of the adjacent fixed pipe.
[0010] Further, the water supply component comprises water storage barrels fixed at both sides of the culture tank, water pumps installed at the bottom of the water storage barrels, water guide pipes communicated with the water storage barrels and fixed at both sides of the fixed pipes, and screens fixed in the inner cavities of the fixed pipes close to the water guide pipes.
[0011] Further, the water supply component comprises water storage barrels fixed at both sides of the culture tank, water pumps installed at the bottom of the water storage barrels, water guide pipes communicated with the water storage barrels and fixed at both sides of the fixed pipes, and screens fixed in the inner cavities of the fixed pipes close to the water guide pipes.
[0012] As a preferred embodiment, the auxiliary temperature control mechanism further comprises a stirring assembly, which comprises a motor fixed at one end of the bottom of the culture tank and a rotating shaft fixed at the output end of the motor.
[0013] As a preferred embodiment, the stirring assembly further comprises a plurality of first bevel gears fixed on the outer circumferential surface of the rotating shaft, a plurality of rotating shafts rotatably connected to the bottom of the heating pipe, and second bevel gears fixed on the outer circumferential surface of the rotating shafts at the bottom of the culture tank.
[0014] As a preferred embodiment, the stirring assembly further comprises stirring blades fixed to the top of the rotating shaft, and the first bevel gears are meshingly connected with the second bevel gears at adjacent positions.
[0015] Compared with the prior art, the precise temperature control system has at least the following beneficial effects:
[0016] (1) By starting two water pumps, the water in the inner cavity of the water storage barrel is circulated in the fixed pipe, so that the magnetic strip reciprocates in the inner cavity of the fixed pipe at the adjacent position, so that the magnetic sleeve drives the cleaning sleeve attached to the outer circumferential surface of the heating pipe to reciprocate under the magnetic attraction between the magnetic strip and the magnetic sleeve, thereby removing the scale and other impurities attached to the surface of the heating pipe, thereby improving the water heating precision in the inner cavity of the culture tank, thereby improving the applicability of the device.
[0017] (2) By starting the motor, the rotating shaft can rotate, so that the rotating shafts rotate under the meshing action between the first bevel gears and the second bevel gears, so that the stirring blades rotate in the water body, thereby making the water heating effect in the water body more uniform, thereby further improving the applicability of the device. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is a perspective view of the front view of the utility model;
[0019] Figure 2The utility model discloses a front direction's three-dimensional structure section view schematic diagram of the utility model discloses a precision temperature control system for aquaculture, including aquaculture pond 1, the baffle 2 of fixed in the inner chamber of aquaculture pond 1, the baffle 2 of fixed in the inner chamber position department of aquaculture pond 1, install multiple heating pipes 3 in the inner chamber of aquaculture pond 1 in the bottom of baffle 2 and the auxiliary temperature control mechanism of acting on heating pipe 3.
[0020] Figure 3 For the utility model in Figure 2 The structure of the utility model in the middle A is enlarged and schematically shown.
[0021] Figure 4 For the utility model in Figure 2 The structure of the utility model in the middle B is enlarged and schematically shown.
[0022] In the drawing: 1, aquaculture pond; 2, partition; 3, heating pipe; 4, cleaning sleeve; 5, connecting plate; 6, fixed tube; 7, magnetic stripe; 8, magnetic sleeve; 9, water storage barrel; 10, water pump; 11, connecting pipe; 12, water guide pipe; 13, screen; 14, motor; 15, rotating shaft; 16, first bevel gear; 17, rotating shaft; 18, second bevel gear; 19, stirring blade. DETAILED DESCRIPTION
[0023] The following description is used to disclose the utility model so that those skilled in the art can implement the preferred embodiments in the following description of the utility model. Those skilled in the art can think of other obvious variants. Example 1
[0024] Please refer to Figures 1-4 The utility model provides a kind of precision temperature control system, including aquaculture pond 1, the baffle 2 of fixed in the inner chamber of aquaculture pond 1, the baffle 2 of fixed in the inner chamber position department of aquaculture pond 1, install multiple heating pipes 3 in the inner chamber of aquaculture pond 1 in the bottom of baffle 2 and the auxiliary temperature control mechanism of acting on heating pipe 3;
[0025] The auxiliary temperature control mechanism includes cleaning assembly.
[0026] By opening heating pipe 3, the water in the inner chamber of aquaculture pond 1 can be heated. In this process, the animals in the inner chamber of aquaculture pond 1 are prevented from directly contacting the surface of heating pipe 3 by baffle 2. The surface of heating pipe 3 can be cleaned by cleaning assembly, so that the scale and other impurities attached to the surface of heating pipe 3 can be cleaned. Therefore, the surface of heating pipe 3 can fully contact the moisture in the inner chamber of aquaculture pond 1, thereby improving the heating precision of the moisture in the inner chamber of aquaculture pond 1.
[0027] Please refer to Figures 1-4The cleaning assembly is fixed in the adjacent position of the top of the heating pipe 3 in the inner cavity of the culture pond 1, and comprises a plurality of fixed pipes 6, a magnetic strip 7, a magnetic sleeve 8, a cleaning sleeve 4, a connecting plate 5, and a water delivery component acting on the fixed pipe 6. The bottom of the magnetic sleeve 8 is fixed to the surface of the cleaning sleeve 4 in the adjacent position, and the outer surface of the magnetic strip 7 is in close contact with the inner surface of the fixed pipe 6 in the adjacent position.
[0028] When the surface of the heating pipe 3 needs to be cleaned, the water flow in the fixed pipe 6 reciprocates in two directions through the water delivery component, so that the magnetic strip 7 can reciprocate in the inner cavity of the fixed pipe 6. The magnetic sleeve 8 can slide along the movement track of the magnetic strip 7 under the magnetic attraction between the magnetic strip 7 and the magnetic sleeve 8, so that the plurality of cleaning sleeves 4 can slide in close contact with the outer surface of the heating pipe 3 in the adjacent position under the connection of the connecting plate 5. Thus, the scale and other impurities attached to the outer surface of the heating pipe 3 can be rubbed and cleaned, ensuring that the heating pipe 3 is in full contact with the water in the inner cavity of the culture pond 1, thereby improving the heating accuracy of the water in the inner cavity of the culture pond 1.
[0029] Please refer to Figures 1-4 The water delivery component comprises a water storage barrel 9 fixed at both sides of the culture pond 1, a water pump 10 installed at the bottom of the water storage barrel 9, a water guide pipe 12 fixed at both sides of the plurality of fixed pipes 6, and a screen 13 fixed in the inner cavity of the fixed pipe 6 near the water guide pipe 12. The bottom of the water pump 10 is fixedly connected with a connecting pipe 11, and the connecting pipe 11 is fixedly connected with the water guide pipe 12 in the adjacent position. The top of the water pump 10 is fixedly connected with the inner cavity of the water storage barrel 9.
[0030] After adding water to the inner cavity of the water storage barrel 9, the two water pumps 10 are alternately controlled, so that one of the water pumps 10 always delivers the water in the inner cavity of the water storage barrel 9 to the inner cavity of the water storage barrel 9 through the connecting pipe 11 and the water guide pipe 12, and the other water pump 10 delivers the water in the inner cavity of the fixed pipe 6 to the inner cavity of the water storage barrel 9 through the connecting pipe 11 and the water guide pipe 12. Thus, the water flow can flow in two directions in the inner cavity of the fixed pipe 6, so that the magnetic strip 7 reciprocates in the inner cavity of the fixed pipe 6 in the adjacent position. Under the shielding effect of the screen 13, the magnetic strip 7 cannot enter the inner cavity of the water guide pipe 12, thereby limiting the displacement range of the magnetic strip 7. Embodiment 2
[0031] Further as Figures 1-4As shown, the auxiliary temperature control mechanism further comprises a stirring assembly, which comprises a motor 14 fixed to one end of the bottom of the breeding tank 1, a rotating shaft 15 fixed to the output end of the motor 14, a plurality of first bevel gears 16 fixedly sleeved on the outer circumferential surface of the rotating shaft 15, a plurality of rotating shafts 17 rotatably connected to the bottom of the heating pipe 3, second bevel gears 18 fixedly sleeved on the outer circumferential surface of the rotating shafts 17 located at the bottom of the breeding tank 1, and stirring blades 19 fixed to the top of the rotating shafts 17. The first bevel gears 16 and the second bevel gears 18 located adjacent to each other are in meshing connection.
[0032] By starting the motor 14, the rotating shaft 15 can rotate, thereby driving the plurality of first bevel gears 16 to rotate, so that the plurality of rotating shafts 17 can synchronously rotate under the meshing action between the first bevel gears 16 and the second bevel gears 18 located adjacent to each other, thereby driving the plurality of stirring blades 19 to rotate, so that the water body during heating can be stirred, thereby making the internal water body heating effect more uniform.
[0033] Working principle: when it is necessary to clean the surface of the heating pipe 3, water is added to the inside of the water storage bucket 9, and the two water pumps 10 are alternately controlled, so that the water in the inside of the water storage bucket 9 is always transported to the inside of the water storage bucket 9 through the connecting pipe 11 and the water guide pipe 12 by one of the water pumps 10, and the water in the inside of the fixed pipe 6 is transported to the inside of the water storage bucket 9 through the connecting pipe 11 and the water guide pipe 12 by the other water pump 10, so that the water flow can flow in two directions in the inner cavity of the fixed pipe 6, thereby making the magnetic strip 7 reciprocate in the inside of the fixed pipe 6 located adjacent to each other, so that the magnetic strip 7 can reciprocate in the inner cavity of the fixed pipe 6, thereby making the magnetic sleeve 8 slide along the movement track of the magnetic strip 7 under the magnetic attraction between the magnetic strip 7 and the magnetic sleeve 8, so that the plurality of cleaning sleeves 4 are attached to the outer circumferential surface of the heating pipe 3 located adjacent to each other under the connection of the connecting plate 5, thereby being able to rub and clean the scale and other impurities attached to the outer circumferential surface of the heating pipe 3, thereby ensuring that the heating pipe 3 is in full contact with the water in the inner cavity of the breeding tank 1, thereby improving the heating precision of the water in the inner cavity of the breeding tank 1. When the heating pipe 3 heats the water in the inner cavity of the breeding tank 1, the rotating shaft 15 can rotate by starting the motor 14, thereby driving the plurality of first bevel gears 16 to rotate, so that the plurality of rotating shafts 17 can synchronously rotate under the meshing action between the first bevel gears 16 and the second bevel gears 18 located adjacent to each other, thereby driving the plurality of stirring blades 19 to rotate, so that the water body during heating can be stirred, thereby making the internal water body heating effect more uniform.
Claims
1. A precision temperature control system, comprising a culture pond (1), a partition plate (2) fixed in the inner cavity of the culture pond (1), a partition plate (2) fixed at a position in the inner cavity of the culture pond (1), and a plurality of heating pipes (3) installed at the bottom of the partition plate (2) in the inner cavity of the culture pond (1), characterized in that: An auxiliary temperature control mechanism acting on the heating pipe (3) is further included; The auxiliary temperature control mechanism includes a cleaning assembly; The cleaning assembly includes a plurality of fixed pipes (6) fixed in the inner cavity of the culture tank (1) at the top of the heating pipes (3) at adjacent positions, a magnetic strip (7) slidingly arranged in the inner cavity of the fixed pipe (6), a magnetic sleeve (8) slidingly arranged on the outer periphery of the fixed pipe (6), a cleaning sleeve (4) slidingly arranged on the outer periphery of the heating pipe (3), a connecting plate (5) fixed at the middle position of two adjacent cleaning sleeves (4), and a water delivery component acting on the fixed pipe (6).
2. The precision temperature control system of claim 1, wherein: The bottom of the magnetic sleeve (8) is fixed to the surface of the adjacent cleaning sleeve (4), and the outer periphery of the magnetic strip (7) is fitted to the inner periphery of the adjacent fixed pipe (6).
3. The precise temperature control system of claim 1, wherein: The water delivery component includes a water storage barrel (9) fixed at both sides of the culture tank (1), a water pump (10) installed at the bottom of the water storage barrel (9), a water guide pipe (12) connected and fixed at both sides of the fixed pipe (6), and a separation net (13) fixed in the inner cavity of the fixed pipe (6) near the water guide pipe (12). The bottom of the water pump (10) is connected and fixed with a connecting pipe (11).
4. The precise temperature control system of claim 3, wherein: The connecting pipe (11) and the adjacent water guide pipe (12) are connected and fixed, and the top of the water pump (10) is connected and fixed with the inner cavity of the water storage barrel (9).
5. The precise temperature control system of claim 1, wherein: The auxiliary temperature control mechanism further includes a stirring assembly, and the stirring assembly includes a motor (14) fixed at one end of the bottom of the culture tank (1), and a rotating shaft (15) fixed to the output end of the motor (14).
6. The precision temperature control system of claim 5, wherein: The stirring assembly further includes a plurality of first bevel gears (16) fixedly sleeved on the outer periphery of the rotating shaft (15), a plurality of rotating shafts (17) rotatably connected to the bottom of the heating pipe (3), and a second bevel gear (18) fixedly sleeved on the outer periphery of the rotating shaft (17) at the bottom of the culture tank (1).
7. The precision temperature control system of claim 6, wherein: The stirring assembly further includes a stirring blade (19) fixed to the top of the rotating shaft (17), and the first bevel gear (16) and the adjacent second bevel gear (18) are meshingly connected.