Drying device for inositol production
By combining uniform heating and vibration stirring components in the inositol drying device, vacuum low-temperature drying is achieved, which solves the problem of inositol molecular structure damage and low drying efficiency caused by uneven heat, and achieves efficient and uniform inositol drying.
Patent Information
- Application Number
- CN202422253221.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-13
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-09-13
AI Technical Summary
In existing inositol drying devices, uneven heat causes excessive local temperatures to occur, which may destroy the heat-sensitive inositol molecular structure, while reducing the temperature will affect the drying efficiency.
The uniform heating assembly and the vibration stirring assembly are adopted to achieve vacuum low-temperature drying through the combination of resistive heating gallium and the pump, and water vapor is extracted by diesel heating and the pump, combining the high-frequency vibration of the ultrasonic vibrator and the agitator rod to achieve temperature uniformity and efficient drying.
Realize uniform heating of inositol at low temperatures, avoid damage to molecular structure, improve drying efficiency, efficiently release moisture, and improve the drying effect of inositol.
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Figure CN223064302U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of inositol processing, in particular to a drying device for inositol production. Background Art
[0002] Inositol, also known as cyclohexanehexol, is a member of the water-soluble vitamin B group. It is widely present in organisms and participates in various biological processes, including signal transduction, cell proliferation, and fatty acid metabolism. In the human body, inositol and its phosphorylated forms are crucial for maintaining normal cell functions. It is not only used in medicine to treat certain diseases, such as diabetes and obesity, but also a component of food additives and cosmetics.
[0003] In the production process of inositol, a drying device is usually used in the final stage, that is, after crystallization and centrifugal separation, the remaining moisture needs to be removed by a dryer to obtain a dry inositol product. However, during the drying process, the local area temperature is too high due to the uneven heat inside the drying device, which may cause the destruction of the heat-sensitive inositol molecular structure and affect the product quality. Although reducing the temperature inside the drying device can avoid this problem, it will seriously affect the drying efficiency.
[0004] Therefore, aiming at the problem that the local area temperature is too high due to the uneven heat inside the above-mentioned drying device, which may cause the destruction of the heat-sensitive inositol molecular structure, and the temperature is too low will reduce the drying efficiency, a drying device for inositol production can be designed to quickly dry inositol under the state of uniform temperature and relatively low temperature. Summary of the Utility Model
[0005] In order to overcome the problem that during the use of a distribution box, most of the existing distribution boxes accelerate gas flow through a fan, and security devices such as fans require an external power supply, resulting in additional power consumption and increasing the use cost of the distribution box.
[0006] The technical solution of the utility model is: a drying device for inositol production, including a top cover, an air extraction pump, a uniform heating component, and a vibration stirring component; an air extraction pump is arranged at the rear end of the top cover; a uniform heating component is arranged at the lower end of the top cover; the uniform heating component includes a resistive heating tank; a resistance heater is installed inside the resistive heating tank; a hollow water injection inner tank is fixedly connected to the inner side of the resistive heating tank; the inside of the hollow water injection inner tank is hollow and filled with diesel; a vibration stirring component is rotatably connected inside the top cover; the vibration stirring component includes a gear; the upper end of the gear is rotatably connected to a motor through a rotating shaft; the motor is fixedly connected to the upper end surface of the top cover; a tooth groove ring is meshed outside the gear; the tooth groove ring is rotatably connected to the top cover; first sliding rods are fixedly connected to both sides of the tooth groove ring; second sliding rods are fixedly connected to the front and rear ends of the tooth groove ring.
[0007] Preferably, after pouring the material into the hollow water-injected inner container and spreading it flat, cover the top cover on the resistive heating tank. Then, start the resistive heating tank to heat the diesel oil contained in the hollow water-injected inner container, and use the heated diesel oil to uniformly heat the material. At the same time, start the air extraction pump to reduce the air pressure in the area where the material is located, so that the moisture in the material boils and evaporates in a relatively low-temperature environment, and is drawn out by the air extraction pump through the air extraction pipe along with the air. And the water vapor will be condensed into a liquid when entering the condenser and discharged.
[0008] Preferably, a lifting plate is slidably connected to the first sliding rod; an electric push rod is fixedly connected to the upper end of the lifting plate; the upper end surface of the electric push rod is fixedly connected to the lower end surface of the top cover.
[0009] Preferably, ultrasonic vibrators fixedly connected to the lifting plate are arranged on both sides of the electric push rod; a damping spring shock absorber is fixedly connected to the lower end of the lifting plate.
[0010] Preferably, stirring rods fixedly connected to the lower end surface of the lifting plate are arranged on both sides of the damping spring shock absorber; a double-sided scraper is slidably connected to the second sliding rod.
[0011] Preferably, the upper end surface of the double-sided scraper is fixedly connected to the lower end surface of the damping spring shock absorber; inclined surfaces are provided at the front and rear ends of the lower end surface of the double-sided scraper, and the angles of the two inclined surfaces are opposite. By pushing the electric push rod to change the height of the lifting plate and the double-sided scraper, so that the lower end surface of the double-sided scraper fits the upper end surface of the spread material, and the stirring rod is inserted into the material. Then, the motor is used to rotate the gear, so that the toothed groove ring rotates through the gear, and further the first sliding rod, the second sliding rod, the lifting plate and the double-sided scraper rotate. At the same time, start the ultrasonic vibrator to make the lifting plate and the stirring rod vibrate at a high frequency together, so as to stir, loosen and level the material during the drying process of the material, so as to efficiently release the water that boils and evaporates in the material at the bottom layer of the drying device on the premise of vacuum low-temperature drying of inositol, so as to greatly improve the drying efficiency of inositol.
[0012] Preferably, an air extraction hole is provided on the top cover; the upper end of the air extraction hole is communicated with an air extraction pipe; the end of the air extraction pipe is communicated with a condenser.
[0013] Preferably, the lower end of the condenser is communicated with the air extraction pump; the inside of the air extraction pump is communicated with the inside of the hollow water-injected inner container through the air extraction hole, the air extraction pipe and the condenser.
[0014] The beneficial effects of the present utility model:
[0015] 1. By setting up a uniform heating component and a vibration stirring component, on the premise of vacuum low-temperature drying of inositol, the temperature uniformity during the heating of inositol is further improved to avoid the destruction of the molecular structure of some inositol due to excessive local temperature. During the drying process of inositol, inositol is stirred, shaken loose, and leveled to efficiently release the water that boils and evaporates in the material at the bottom layer of the drying device, thus greatly improving the drying efficiency of inositol.
[0016] 2. By pushing the electric push rod to change the height of the lifting plate and the double-sided scraper, the lower end surface of the double-sided scraper is made to fit the upper end surface of the leveled material, and the stirring rod is inserted into the material. Subsequently, the motor is used to rotate the gear, and through the gear, the toothed groove ring is rotated, and then the first slide rod, the second slide rod, the lifting plate, and the double-sided scraper are rotated. At the same time, the ultrasonic oscillator is started to make the lifting plate and the stirring rod vibrate at a high frequency together, so as to stir, shake loose, and level the material during the drying process of the material, and on the premise of vacuum low-temperature drying of inositol, efficiently release the water that boils and evaporates in the material at the bottom layer of the drying device, thus greatly improving the drying efficiency of inositol.
[0017] 3. After pouring the material into the hollow water injection inner liner and leveling it, the top cover is covered on the resistive heating liner. Subsequently, the resistive heating liner is started to heat the diesel contained in the hollow water injection inner liner, and the heated diesel is used to uniformly heat the material. At the same time, the air pump is started to reduce the air pressure in the area where the material is located, so that the water in the material boils and evaporates in a relatively low-temperature environment, and is drawn out by the air pump through the suction pipe together with the air. And the water vapor will be condensed into a liquid and discharged when entering the condenser, thus on the premise of vacuum low-temperature drying of inositol, further improving the temperature uniformity during the heating of inositol to avoid the destruction of the molecular structure of some inositol due to excessive local temperature. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 The schematic diagram of the electric mechanism of the present utility model is shown;
[0019] Figure 2 The schematic diagram of the gear structure of the present utility model is shown;
[0020] Figure 3 The schematic diagram of the toothed groove ring structure of the present utility model is shown;
[0021] Figure 4 The schematic diagram of the damping spring shock absorber structure of the present utility model is shown;
[0022] Figure 5 The schematic diagram of the overall structure of the present utility model is shown.
[0023] Description of the drawing reference numerals: 1. Top cover; 2. Air extraction hole; 3. Air extraction pipe; 4. Condenser; 5. Air extraction pump; 601. Resistance heating tank; 602. Hollow water injection inner tank; 701. Gear; 702. Motor; 703. Tooth groove ring; 704. First sliding rod; 705. Second sliding rod; 706. Lifting plate; 707. Electric push rod; 708. Ultrasonic vibrator; 709. Damping spring shock absorber; 710. Stirring rod; 711. Double-sided scraper. Detailed implementation mode
[0024] The present utility model will be further described below in conjunction with the drawings and embodiments.
[0025] Please refer to Figures 1 - 5 , the technical solution of the present utility model is: a drying device for inositol production, comprising a top cover 1, an air extraction pump 5, a uniform heating component and a vibration stirring component; an air extraction pump 5 is arranged at the rear end of the top cover 1; a uniform heating component is arranged at the lower end of the top cover 1; the uniform heating component comprises a resistance heating tank 601; a resistance heater is installed inside the resistance heating tank 601; a hollow water injection inner tank 602 is fixedly connected to the inner side of the resistance heating tank 601; the inside of the hollow water injection inner tank 602 is hollow and filled with diesel; an air extraction hole 2 is opened on the top cover 1; the upper end of the air extraction hole 2 is communicated with an air extraction pipe 3; the end of the air extraction pipe 3 is communicated with a condenser 4; the lower end of the condenser 4 is communicated with the air extraction pump 5.
[0026] Please refer to Figures 2 - 5, in this embodiment, a vibration stirring assembly is rotatably connected inside the top cover 1; the vibration stirring assembly includes a gear 701; the upper end of the gear 701 is rotatably connected to a motor 702 through a rotating shaft; the motor 702 is fixedly connected to the upper end surface of the top cover 1; the outside of the gear 701 is engaged with a toothed groove ring 703; the toothed groove ring 703 is rotatably connected to the top cover 1; both sides of the toothed groove ring 703 are fixedly connected with first slide bars 704; both the front and rear ends of the toothed groove ring 703 are fixedly connected with second slide bars 705; after pouring the material into the hollow water injection inner liner 602 and leveling it, the top cover 1 is covered on the resistive heating liner 601, and then the resistive heating liner 601 is started to heat the diesel oil contained in the hollow water injection inner liner 602, and the material is uniformly heated by the heated diesel oil. At the same time, the air pump 5 is started to reduce the air pressure in the area where the material is located, so that the moisture in the material boils and evaporates in a relatively low-temperature environment, and is drawn out by the air pump 5 through the air extraction pipe 3 together with the air, and the water vapor will be condensed into a liquid when entering the condenser 4 and discharged; a lifting plate 706 is slidably connected to the first slide bar 704; an electric push rod 707 is fixedly connected to the upper end of the lifting plate 706; the upper end surface of the electric push rod 707 is fixedly connected to the lower end surface of the top cover 1; ultrasonic vibrators 708 fixedly connected to the lifting plate 706 are arranged on both sides of the electric push rod 707; a damping spring shock absorber 709 is fixedly connected to the lower end of the lifting plate 706; stirring rods 710 fixedly connected to the lower end surface of the lifting plate 706 are arranged on both sides of the damping spring shock absorber 709; a double-sided scraper 711 is slidably connected to the second slide bar 705; the upper end surface of the double-sided scraper 711 is fixedly connected to the lower end surface of the damping spring shock absorber 709; inclined surfaces are provided at the front and rear ends of the lower end surface of the double-sided scraper 711, and the angles of the two inclined surfaces are opposite; by pushing the electric push rod 707 to change the heights of the lifting plate 706 and the double-sided scraper 711, so that the lower end surface of the double-sided scraper 711 fits the upper end surface of the leveled material, and the stirring rods 710 are inserted into the material. Subsequently, the motor 702 is used to rotate the gear 701, so that the toothed groove ring 703 is rotated through the gear 701, and then the first slide bar 704, the second slide bar 705, the lifting plate 706 and the double-sided scraper 711 are rotated, and at the same time, the ultrasonic vibrators 708 are started to vibrate the lifting plate 706 and the stirring rods 710 at a high frequency together, so as to stir, vibrate and level the material during the drying process of the material, and efficiently release the water that boils and evaporates in the material at the bottom layer of the drying device, so as to greatly improve the drying efficiency of inositol; the inside of the air pump 5 is communicated with the inside of the hollow water injection inner liner 602 through the air extraction hole 2, the air extraction pipe 3 and the condenser 4.
[0027] In use, first, pour the material into the hollow water-injected inner tank 602 and spread it flat, then cover the top cover 1 on the resistive heating tank 601. Subsequently, start the resistive heating tank 601 to heat the diesel oil contained in the hollow water-injected inner tank 602, and uniformly heat the material by means of the heated diesel oil. At the same time, start the air extraction pump 5 to reduce the air pressure in the area where the material is located, so that the moisture in the material boils and evaporates in a relatively low-temperature environment, and is drawn out by the air extraction pump 5 through the air extraction pipe 3 together with the air. And the water vapor will be condensed into a liquid and discharged when entering the condenser 4, so as to further improve the temperature uniformity when heating inositol on the premise of vacuum low-temperature drying of inositol, so as to avoid the molecular structure of some inositol being damaged due to excessive local temperature;
[0028] Next, by pushing the electric push rod 707 to change the height of the lifting plate 706 and the double-sided scraper 711, so that the lower end surface of the double-sided scraper 711 fits the upper end surface of the spread material, and the stirring rod 710 is inserted into the material. Subsequently, the motor 702 is used to rotate the gear 701, so as to rotate the tooth groove ring 703 through the gear 701, and then rotate the first slide rod 704, the second slide rod 705, the lifting plate 706 and the double-sided scraper 711. At the same time, start the ultrasonic oscillator 708 to make the lifting plate 706 and the stirring rod 710 vibrate at high frequency together, so as to stir, loosen and level the material during the drying process of the material, so as to efficiently release the water that boils and evaporates in the material at the bottom layer of the drying device on the premise of vacuum low-temperature drying of inositol, so as to greatly improve the drying efficiency of inositol.
[0029] Through the above steps, by setting the uniform heating component and the vibration stirring component, on the premise of vacuum low-temperature drying of inositol, the temperature uniformity when heating inositol is further improved, so as to avoid the molecular structure of some inositol being damaged due to excessive local temperature, and stir, loosen and level inositol during the drying process of inositol, so as to efficiently release the water that boils and evaporates in the material at the bottom layer of the drying device, so as to greatly improve the drying efficiency of inositol, thus solving the problem that the local area temperature is too high caused by uneven heat inside the drying device, which may cause the molecular structure of heat-sensitive inositol to be damaged, and the temperature is too low will reduce the drying efficiency.
[0030] The above has described the embodiments of the present invention in detail with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the purpose of the present invention.
Claims
1. A drying device for inositol production, comprising a top cover (1); characterized in that: It also includes an air extraction pump (5), a uniform heating component, and a vibration stirring component; an air extraction pump (5) is arranged at the rear end of the top cover (1); a uniform heating component is arranged at the lower end of the top cover (1); the uniform heating component includes a resistive heating tank (601); a resistive heater is installed inside the resistive heating tank (601); a hollow water injection inner tank (602) is fixedly connected to the inner side of the resistive heating tank (601); the inside of the hollow water injection inner tank (602) is hollow and filled with diesel; a vibration stirring component is rotatably connected inside the top cover (1); the vibration stirring component includes a gear (701); the upper end of the gear (701) is rotatably connected to a motor (702) through a rotating shaft; the motor (702) is fixedly connected to the upper end surface of the top cover (1); a toothed groove ring (703) is engaged with the outside of the gear (701); the toothed groove ring (703) is rotatably connected to the top cover (1); first sliding rods (704) are fixedly connected to both sides of the toothed groove ring (703); second sliding rods (705) are fixedly connected to the front and rear ends of the toothed groove ring (703).
2. The drying device for inositol production according to claim 1, characterized in that: A lifting plate (706) is slidably connected to the first sliding rod (704); an electric push rod (707) is fixedly connected to the upper end of the lifting plate (706); The upper end surface of the electric push rod (707) is fixedly connected to the lower end surface of the top cover (1).
3. The drying device for inositol production according to claim 1, characterized in that: Ultrasonic vibrators (708) fixedly connected to the lifting plate (706) are arranged on both sides of the electric push rod (707); a damping spring shock absorber (709) is fixedly connected to the lower end of the lifting plate (706).
4. The drying device for inositol production according to claim 1, wherein: Stirring rods (710) fixedly connected to the lower end surface of the lifting plate (706) are arranged on both sides of the damping spring shock absorber (709); A double-sided scraper (711) is slidably connected to the second sliding rod (705).
5. A drying device for inositol production according to claim 1, characterized in that: The upper end surface of the double-sided scraper (711) is fixedly connected to the lower end surface of the damping spring shock absorber (709); inclined surfaces are formed at the front and rear ends of the lower end surface of the double-sided scraper (711), and the angles of the two inclined surfaces are opposite.
6. The drying device for inositol production according to claim 1, characterized in that: An air extraction hole (2) is formed in the top cover (1); an air extraction pipe (3) is communicated with the upper end of the air extraction hole (2); the end of the air extraction pipe (3) is communicated with a condenser (4).
7. A drying device for inositol production according to claim 1, characterized in that: The lower end of the condenser (4) is communicated with the air extraction pump (5); the inside of the air extraction pump (5) is communicated with the inside of the hollow water injection inner tank (602) through the air extraction hole (2), the air extraction pipe (3), and the condenser (4).