Temperature control device for mirabilitum dehydratum

By designing a temperature control device for sodium sulfate that includes a thermostat, a serpentine heat pipe, and a stirring blade, the problems of uneven heating and poor operational safety were solved, achieving efficient and uniform heating and safe operation of sodium sulfate.

CN224040958UActive Publication Date: 2026-03-27JIANGXI RENAN PHARM CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing sodium sulfate temperature control devices suffer from uneven heating and poor operational safety during the heating process, especially the risk of burns due to prolonged heating caused by sodium sulfate accumulation and manual stirring.

Method used

A temperature control device was designed, comprising a water pot, a magnetic basin, a heater, a stirring and heating component, and a stirring drive component. The device monitors the temperature through a temperature controller, automatically stirs the water using a serpentine heat pipe and stirring blades to achieve uniform heating of Glauber's salt, and inputs steam through a gas supply component for heating, thus avoiding manual operation.

Benefits of technology

This method achieves uniform heating of Glauber's salt, improves processing efficiency, reduces the risk of burns, and enhances operational safety.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224040958U_ABST
    Figure CN224040958U_ABST
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Abstract

The utility model discloses a mirabilitum dehydratum temperature control device. The device comprises a water pot; the magnetic basin is arranged above the water pot; the heater is arranged below the water pot; the gas conveying assembly is arranged on the left side of the water pot; the stirring and heating assembly is arranged in the water pot; and the stirring driving assembly is arranged above the magnetic basin. In the process that the stirring driving assembly drives the stirring heating assembly to stir mirabilite, the gas conveying assembly conveys steam into the snakelike heat conduction pipe, mirabilite in stirring is stirred and heated in combination with the snakelike heat conduction pipe, mirabilite heating uniformity is effectively improved, and therefore mirabilite heating forming efficiency is effectively improved. And manual stirring is not needed in the stirring and heating process, so that the scalding risk is reduced, and the operation is safer.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the processing technology field of mirabilite, especially to a mirabilite temperature control device. BACKGROUND

[0002] Mirabilite is a commonly used traditional Chinese medicine, and the main component is anhydrous sodium sulfate (Na2SO4). In some processing methods, mirabilite needs to be heated, and mirabilite is a form of mirabilite.

[0003] Nowadays, the mirabilite temperature control device generally puts mirabilite into a magnetic basin, then puts the basin on a water pot for heating, melts the crystal, then gradually loses water, and finally remains as white powder mirabilite. However, during the heating process, the mirabilite accumulated together is not uniformly heated, which requires a long time to heat the mirabilite into white powder, resulting in poor processing efficiency. Although some workers will manually stir the mirabilite to disperse it, this method is easy to scald the workers and results in poor operation safety. UTILITY MODEL CONTENTS

[0004] The utility model aims at overcoming the defects of the prior art, and provides a mirabilite temperature control device to solve the problems in the background art.

[0005] A mirabilite temperature control device comprises:

[0006] a water pot;

[0007] a magnetic basin arranged above the water pot, wherein a temperature sensor is installed in the magnetic basin;

[0008] a heater arranged below the water pot, wherein a temperature controller with a temperature control probe is installed at the upper end of the water pot, and the temperature control probe of the temperature controller is installed in the water pot;

[0009] a gas feeding assembly arranged at the left side of the water pot;

[0010] a stirring and heating assembly arranged in the water pot;

[0011] a stirring driving assembly arranged above the magnetic basin.

[0012] Preferably, a mesh support plate for supporting the magnetic basin is fixed at the upper end of the magnetic basin.

[0013] Preferably, a support seat is fixed at the lower end of the water pot, the heater is installed at the bottom of the support seat, and the temperature controller with the temperature control probe is installed at the upper end of the water pot.

[0014] Preferably, the gas feeding assembly comprises an air pump, an extension pipe and a gas pipe, the air pump is communicated with the left upper end of the water pot, the extension pipe is communicated with the air outlet of the air pump, the gas pipe is communicated with the upper end of the extension pipe, the left upper end of the water pot is fixed with a cylinder, and the gas pipe is connected with the power end of the cylinder.

[0015] Preferably, the stirring and heating assembly comprises a shaft pipe, a serpentine heating pipe, an exhaust pipe and a plurality of stirring blades, the shaft pipe extends upwards above the magnetic basin, and the shaft pipe is rotatably connected and communicated with the lower end of the gas pipe, the serpentine heating pipe is communicated with the shaft pipe, and the serpentine heating pipe is made of a magnetic material, the upper end of the exhaust pipe is open and extends upwards above the magnetic basin, and the stirring blades are arranged on the opposite surfaces of the serpentine heating pipe and connected with the side surface of the exhaust pipe.

[0016] Preferably, the stirring driving assembly comprises a motor, a main gear and a secondary gear, the motor is fixed at the lower end of the gas pipe, the main gear is connected with the power end of the motor, the secondary gear is fixedly sleeved on the periphery of the shaft pipe and the exhaust pipe, the shaft pipe penetrates through the middle position of the secondary gear, the main gear is engaged with the secondary gear, and the stirring driving assembly is externally sleeved with a protective cover which is open at the upper end, the bottom of the protective cover is provided with an opening for the shaft pipe and the exhaust pipe to move in and out, and the gas pipe is fixedly penetrated into the protective cover.

[0017] Preferably, a temperature sensor is installed in the magnetic basin.

[0018] Preferably, a drain valve is communicated with the right lower end of the water pot.

[0019] The water pot is used for heating mirabilite in the magnetic basin into white powder-shaped glauber's salt, the temperature controller is used for controlling the heating temperature, so that the heating temperature is prevented from being too high, the stirring driving assembly drives the stirring and heating assembly to stir the mirabilite, the gas feeding assembly inputs steam into the serpentine heat conducting pipe, the serpentine heat conducting pipe is used for stirring and heating the mirabilite in the stirring process, the heating uniformity of the mirabilite is effectively improved, the efficiency of heating and forming the glauber's salt is effectively improved, manual stirring is not needed in the stirring and heating process, the risk of scalding is reduced, and the operation is safer. BRIEF DESCRIPTION OF DRAWINGS

[0020] Figure 1 It is a whole schematic view of the utility model;

[0021] Figure 2 It is a whole internal schematic view of the utility model;

[0022] Figure 3 It is a whole internal schematic view of the utility model Figure 2 ; It is a A partial enlarged schematic view of the utility model;

[0023] Figure 4 It is a magnetic basin dismounting schematic view of the utility model.

[0024] Figure: 1 - water pot, 2 - magnetic basin, 3 - support seat, 4 - heater, 5 - temperature controller, 6 - temperature sensor, 7 - mesh support plate, 8 - drain valve, 9 - gas delivery tube, 10 - protective cover, 11 - shaft tube, 12 - serpentine heat pipe, 13 - exhaust pipe, 14 - stirring blade, 15 - air pump, 16 - telescopic tube, 17 - air cylinder, 18 - motor, 19 - main gear, 20 - secondary gear, 21 - mouth. DETAILED DESCRIPTION

[0025] Please refer to Figures 1-4 A gypsum powder temperature control device, comprising:

[0026] Water pot 1; magnetic basin 2, which is arranged above the water pot 1, and a temperature sensor 6 is installed in the magnetic basin 2; a heater 4, which is arranged below the water pot 1, and a temperature controller 5 with a temperature control probe is installed at the upper end of the water pot 1, and the temperature control probe of the temperature controller 5 is installed in the water pot 1; a mesh support plate 7 is fixed at the upper end in the magnetic basin 2 for supporting the magnetic basin 2, and a support seat 3 is fixed at the lower end of the water pot 1, and the heater 4 is installed at the bottom of the support seat 3.

[0027] The magnetic basin 2 is supported by the mesh support plate 7, and the heater 4 heats the water in the water pot 1 to generate steam, which is transmitted to the magnetic basin 2 through the mesh holes of the mesh support plate 7, thereby achieving the effect of heating the mirabilite in the magnetic basin 2, and when the mirabilite in the magnetic basin 2 is heated into white powder-shaped gypsum powder by the water pot 1, the temperature controller 5 is set to be signal-connected with the heater 4, and when the temperature controller 5 monitors that the heating temperature of the water pot 1 is too high (the specific temperature is determined by the actual processing condition), and the temperature sensor 6 monitors that the temperature in the magnetic basin 2 is too high, the temperature controller 5 controls the heating temperature to prevent the heating temperature from being too high to cause the quality of the gypsum powder to be poor after processing.

[0028] The gas delivery assembly is arranged on the left side of the water pot 1, and comprises an air pump 15, a telescopic tube 16 and a gas delivery tube 9, the air pump 15 is connected to the upper left end of the water pot 1, the telescopic tube 16 is connected to the exhaust port of the air pump 15, and the gas delivery tube 9 is connected to the upper end of the telescopic tube 16; the stirring and heating assembly is arranged in the water pot 1, and comprises a shaft tube 11, a serpentine heat pipe 12, an exhaust pipe 13 and a plurality of stirring blades 14, the shaft tube 11 extends upward above the magnetic basin 2, and is rotatably connected and communicated with the lower end of the gas delivery tube 9, the serpentine heat pipe 12 is communicated with the shaft tube 11, and is made of a magnetic material, and the exhaust pipe 13 is open at the upper end and extends upward above the magnetic basin 2.

[0029] The steam is drawn into the telescopic pipe 16, the gas delivery pipe 9, the shaft pipe 11 and the serpentine heat pipe 12 by the work of the air suction pump 15, and then the serpentine heat pipe 12 made of magnetic material transmits the heat of the steam to the mirabilite in the magnetic basin 2, and the water pot 1 heats the magnetic basin 2 from bottom to top, so that the mirabilite is heated from inside and outside at the same time, thereby effectively improving the efficiency of the heating and forming of the mirabilite powder, and the excess steam is discharged upward through the exhaust pipe 13.

[0030] The stirring blades 14 are arranged on the opposite side of the serpentine heat pipe 12, and the stirring blades 14 are all connected to the side of the exhaust pipe 13, a stirring driving assembly is arranged above the magnetic basin 2, the stirring driving assembly comprises a motor 18, a main gear 19 and a secondary gear 20, the motor 18 is fixed to the lower end of the gas delivery pipe 9, the main gear 19 is connected to the power end of the motor 18, the secondary gear 20 is fixedly sleeved on the periphery of the shaft pipe 11 and the exhaust pipe 13, the shaft pipe 11 penetrates through the middle position of the secondary gear 20, the main gear 19 is engaged with the secondary gear 20, and the stirring driving assembly is externally sleeved with a protective cover 10 which is open at the upper end, the protective cover 10 is provided with a through hole 21 at the bottom for the movement of the shaft pipe 11 and the exhaust pipe 13, and the gas delivery pipe 9 is fixedly penetrated into the protective cover 10.

[0031] When the efficiency of the heating and forming of the mirabilite powder is further improved, the main gear 19, the secondary gear 20, the shaft pipe 11, the serpentine heat pipe 12, the exhaust pipe 13 and the stirring blades 14 are rotated by the work of the motor 18, the serpentine heat pipe 12 and the stirring blades 14 simultaneously stir and disperse the mirabilite, the serpentine heat pipe 12 stirs and heats the mirabilite in the process of stirring under the premise that the steam enters the serpentine heat pipe 12, so it is beneficial to effectively improve the uniformity of the heating of the mirabilite, thereby effectively improving the efficiency of the heating and forming of the mirabilite powder, and manual stirring is not required in the process of stirring and heating, the risk of scalding is reduced, and the protective cover 10 separates and protects the motor 18, the main gear 19 and the secondary gear 20, so that the situation that the motor 18, the main gear 19 and the secondary gear 20 are injured during work is avoided, and the operation is safer.

[0032] The water pot 1 is fixedly provided with a gas cylinder 17 at the upper left end, and the gas delivery pipe 9 is connected to the power end of the gas cylinder 17.

[0033] When the magnetic basin 2 needs to be taken down, the gas cylinder 17 is elongated to drive the gas delivery pipe 9, the protective cover 10, the shaft pipe 11, the serpentine heat pipe 12, the exhaust pipe 13 and the stirring blades 14 to move upward, and after the serpentine heat pipe 12, the exhaust pipe 13 and the stirring blades 14 move upward and completely move out of the magnetic basin 2, the magnetic basin 2 can be conveniently taken down, and the mirabilite powder in the magnetic basin 2 can be conveniently taken out.

[0034] The water pot 1 is communicated with a drain valve 8 at the lower right end.

[0035] By opening the drain valve 8, it is convenient to discharge the waste water in the water pot 1, and new water can be directly added to the water pot 1 through the mesh support plate 7.

[0036] Working principle: The mesh support plate 7 supports the magnetic basin 2, the heater 4 heats the water in the water pot 1 to generate steam, the steam is transmitted to the magnetic basin 2 through the mesh of the mesh support plate 7, thereby achieving the effect of heating mirabilite in the magnetic basin 2, and the steam is sucked into the telescopic pipe 16, the gas conveying pipe 9, the shaft pipe 11 and the serpentine heat pipe 12 through the work of the air pump 15, then the serpentine heat pipe 12 made of magnetic material transmits the heat of the steam to the mirabilite in the magnetic basin 2, combined with the heating mode of the water pot 1 from bottom to top to the magnetic basin 2, the effect of heating mirabilite inside and outside at the same time is realized, and the main gear 19, the secondary gear 20, the shaft pipe 11, the serpentine heat pipe 12, the exhaust pipe 13 and the stirring blade 14 are rotated by the work of the motor 18, the serpentine heat pipe 12 and the stirring blade 14 simultaneously stir and disperse the mirabilite, under the premise that the steam enters the serpentine heat pipe 12, so that the serpentine heat pipe 12 stirs and heats the mirabilite in the stirring.

Claims

1. A temperature control device for sodium sulfate, characterized in that, include: Water pot (1); A magnetic basin (2) is located above a water pot (1), and a temperature sensor (6) is installed inside the magnetic basin (2). Heater (4), the heater (4) is located below the water pot (1), the water pot (1) has a thermostat (5) with a temperature control probe installed at the upper end, and the temperature control probe of the thermostat (5) is installed inside the water pot (1); Gas delivery assembly, which is located on the left side of the water pot (1); A stirring and heating assembly is disposed inside a water pot (1); A stirring drive assembly is disposed above the magnetic basin (2).

2. The temperature control device for sodium sulfate according to claim 1, characterized in that: The upper part of the magnetic basin (2) is fixed with a mesh support plate (7) for supporting the magnetic basin (2).

3. The temperature control device for sodium sulfate according to claim 1, characterized in that: The water pot (1) is fixed with a support base (3) at its lower end, and the heater (4) is installed at the bottom of the support base (3).

4. The temperature control device for sodium sulfate according to claim 1, characterized in that: The gas supply assembly includes a vacuum pump (15), a telescopic pipe (16), and a gas supply pipe (9). The vacuum pump (15) is connected to the upper left end of the water pot (1). The telescopic pipe (16) is connected to the exhaust port of the vacuum pump (15). The gas supply pipe (9) is connected to the upper end of the telescopic pipe (16). A cylinder (17) is fixed at the upper left end of the water pot (1). The gas supply pipe (9) is connected to the power end of the cylinder (17).

5. The temperature control device for sodium sulfate according to claim 3, characterized in that: The stirring and heating assembly includes a shaft tube (11), a serpentine heating tube (12), an exhaust pipe (13), and several stirring blades (14). The shaft tube (11) extends upward above the magnetic basin (2) and is rotatably connected to and communicates with the lower end of the gas supply pipe (9). The serpentine heating tube (12) communicates with the shaft tube (11) and is made of magnetic material. The exhaust pipe (13) has an open upper end and extends upward above the magnetic basin (2). The stirring blades (14) are located on the opposite side of the serpentine heating tube (12) and are all connected to the side of the exhaust pipe (13).

6. The temperature control device for sodium sulfate according to claim 5, characterized in that: The stirring drive assembly includes a motor (18), a main gear (19), and a secondary gear (20). The motor (18) is fixed to the lower end of the gas supply pipe (9). The main gear (19) is connected to the power end of the motor (18). The secondary gear (20) is fixedly sleeved around the shaft tube (11) and the exhaust pipe (13). The shaft tube (11) passes through the middle position of the secondary gear (20). The main gear (19) meshes with the secondary gear (20). The stirring drive assembly is covered with a protective cover (10) with an opening at the top. The bottom of the protective cover (10) has a passage (21) for the shaft tube (11) and the exhaust pipe (13) to move. The gas supply pipe (9) is fixedly inserted into the protective cover (10).

7. The temperature control device for sodium sulfate according to claim 1, characterized in that: The water pot (1) is connected to a drain valve (8) at the lower right end.