Cooling device for pressed oil processing

By designing a cooling device for pressed oil processing with a rotating shaft and a stirring frame, the problem of low oil cooling and crystallization efficiency in the existing technology is solved, and efficient cooling of raw materials and improvement of production speed are achieved.

CN223361170UActive Publication Date: 2025-09-19ANHUI DAYUAN GRAIN & OIL CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422288007.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-09-19
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

During the oil pressing process, the existing technology cools the oil by mechanical stirring, resulting in slow crystallization efficiency and low overall processing efficiency.

Method used

A cooling device for oil pressing processing was designed, which includes a cooling barrel, a rotating shaft and a stirring frame. The rotating shaft is driven by a motor to rotate the stirring frame, and the coolant enters the cooling chamber through the liquid inlet pipe to cool the inner wall of the cooling chamber and the raw materials in contact with the stirring frame.

Benefits of technology

It improves the crystallization efficiency of raw materials, enhances the cleaning efficiency of raw materials, speeds up the overall production speed, and ensures the stable rotation and sealing effect of the shaft through the cooperation of the No. 1 turntable and the No. 2 turntable.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223361170U_ABST
    Figure CN223361170U_ABST
Patent Text Reader

Abstract

The utility model provides a cooling device for squeezed oil processing, and relates to the technical field of edible oil processing, a cooling cavity is arranged in a cooling barrel, an auxiliary mechanism is installed in the cooling cavity, a feeding pipe is installed at the upper end of the interior of the cooling cavity in a penetrating mode, and a discharging pipe is installed at the lower end of the interior of the cooling cavity in a penetrating mode. When a motor drives a rotating shaft and a stirring frame to rotate, cooling liquid can enter a first groove along a liquid inlet pipe, the liquid enters a communicating groove and a first connecting groove, and the liquid entering the communicating groove cools the inner wall of a cooling cavity; and liquid entering the first connecting groove can enter the guide groove, heat dissipation work is carried out in the process that the stirring frame stirs the raw materials, the cleaning efficiency of the raw materials is improved, and the overall production speed is increased.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of edible oil processing, in particular to a cooling device for pressed oil processing. Background Art

[0002] There are many types of edible oils, and the most common ones are vegetable oils, such as rapeseed oil and peanut oil. In the process of producing vegetable oils, the oil is often made by pressing the plants, and the oil obtained by pressing often needs to be cooled so that the tiny crystals or impurities inside the oil can crystallize, which is convenient for the later filtration process of the cooled oil. However, when cooling the oil, the oil is often poured into a barrel and then slowly cooled by mechanical stirring, which slows the crystallization efficiency in the oil and causes the overall processing efficiency to be slow. Therefore, we propose a cooling device for pressed oil processing to solve the above problems. Utility Model Content

[0003] The main purpose of the utility model is to provide a cooling device for pressed oil processing, which solves the problem that when cooling oil, the oil is often poured into a barrel and then slowly cooled by mechanical stirring, which slows the crystallization efficiency in the oil and causes slow overall processing efficiency.

[0004] In order to achieve the above purpose, the technical solution adopted by the utility model is:

[0005] The cooling device for oil pressing processing comprises a cooling barrel, a cooling chamber is provided inside the cooling barrel, an auxiliary mechanism is installed inside the cooling chamber, a feed pipe is installed through the upper inner end of the cooling chamber, and a discharge pipe is installed through the lower inner end of the cooling chamber, the auxiliary mechanism comprises a rotating shaft, which is movably installed inside the cooling chamber, a No. 1 groove and a No. 2 groove are respectively provided at the upper and lower ends of the interior of the cooling barrel, the upper end of the rotating shaft is movably installed inside the No. 1 groove, and several stirring racks are installed outside the rod body of the rotating shaft located inside the cooling chamber, a guide groove is provided inside the stirring rack, and the upper and lower ends of the guide groove are respectively connected to the No. 1 groove and the No. 2 groove, the upper inner end of the No. 1 groove is installed with a liquid inlet pipe, and a motor is installed at the lower end of the cooling barrel, and the output end of the motor is connected to the rotating shaft.

[0006] Preferably, a diverter box is installed at the upper end of the cooling barrel, the diverter box is connected to the No. 1 groove, and the liquid inlet pipe is installed through the interior of the diverter box.

[0007] Preferably, a plurality of connecting grooves are installed through the interior of the cooling barrel between the No. 1 groove and the No. 2 groove, and a turntable No. 1 is installed on the upper end of the shaft, and the turntable No. 1 is snap-fitted and installed on the upper end of the interior of the cooling barrel.

[0008] Preferably, a No. 1 connecting groove is provided at the inner upper end of the rotating shaft, the upper end of the No. 1 connecting groove is connected to the No. 1 groove, and a No. 2 connecting groove is provided at the inner lower end of the rotating shaft, and the upper and lower ends of the guide groove are respectively installed inside the No. 1 connecting groove and the No. 2 connecting groove.

[0009] Preferably, a No. 2 turntable is installed at the lower end of the shaft, and the No. 2 turntable is mounted inside the No. 2 groove. Sealing blocks are respectively installed at the upper and lower ends of the outer side of the No. 2 turntable, and the sealing blocks are respectively engaged with the inner part of the cooling barrel. A number of through holes are provided through the interior of the No. 2 turntable, and the through holes are respectively connected to the No. 2 groove and the No. 2 connecting groove.

[0010] Preferably, a first gear is installed on the outside of the shaft located at the lower end of the cooling barrel, and a second gear is installed on the output end of the motor, and the second gear is meshed with the first gear.

[0011] Compared with the prior art, the present invention has the following beneficial effects:

[0012] (1) In the present invention, when the motor drives the rotating shaft and the stirring frame to rotate, the coolant will enter the interior of the No. 1 groove along the liquid inlet pipe, allowing the liquid to enter the interior of the connecting groove and the No. 1 connecting groove respectively, so that the liquid entering the connecting groove cools the inner wall of the cooling cavity, and the liquid entering the No. 1 connecting groove will enter the interior of the guide groove, allowing the stirring frame to stir the raw materials while dissipating heat, thereby improving the cleaning efficiency of the raw materials and accelerating the overall production speed.

[0013] (2) In the present invention, the position of the rotating shaft is positioned by the cooperation between the No. 1 turntable and the No. 2 turntable to prevent the rotating shaft from falling. At the same time, it also assists the rotating shaft to rotate and improves its stability during the rotation process. Then, through the connection between the through hole and the No. 2 groove, the liquid inside the No. 2 groove can enter the interior of the No. 2 connecting groove through the through hole and be discharged, which is more convenient. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 This is a schematic diagram of the overall structure of a cooling device for oil pressing processing according to the present invention;

[0015] Figure 2 This is a front view structural diagram of a cooling device for oil pressing processing according to the present invention;

[0016] Figure 3This is a side structural diagram of a cooling device for oil pressing processing according to the present invention;

[0017] Figure 4 The utility model is a cooling device for oil pressing processing Figure 3 Schematic diagram of the cross-section structure at AA in the middle;

[0018] Figure 5 The utility model is a cooling device for oil pressing processing Figure 4 The enlarged structural diagram at B in the middle;

[0019] Figure 6 The utility model is a cooling device for oil pressing processing Figure 4 Enlarged structural diagram at point C in the middle.

[0020] In the figure: 1. Cooling barrel; 101. Cooling chamber; 2. Auxiliary mechanism; 201. Diverter box; 202. Liquid inlet pipe; 203. Groove No. 1; 204. Connecting groove; 205. Groove No. 2; 206. Rotating shaft; 207. Turntable No. 1; 208. Connecting groove No. 1; 209. Stirring frame; 210. Guide groove; 211. Connecting groove No. 2; 212. Turntable No. 2; 213. Sealing block; 214. Through hole; 215. Gear No. 1; 216. Gear No. 2; 217. Motor; 3. Feed pipe; 4. Discharge pipe. DETAILED DESCRIPTION

[0021] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. 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.

[0022] like Figures 1 to 6As shown, the embodiment of the present invention proposes a cooling device for oil pressing processing, including a cooling barrel 1, a cooling chamber 101 is provided inside the cooling barrel 1, an auxiliary mechanism 2 is installed inside the cooling chamber 101, a feed pipe 3 is installed through the upper end of the cooling chamber 101, and a discharge pipe 4 is installed through the lower end of the cooling chamber 101. The auxiliary mechanism 2 includes a rotating shaft 206, which is movably installed inside the cooling chamber 101. A first groove 203 and a second groove 203 are respectively provided at the upper and lower ends of the cooling barrel 1. Slot 205, the upper end of the rotating shaft 206 is movably installed inside the No. 1 groove 203, and the rotating shaft 206 is located inside the cooling chamber 101. Several stirring racks 209 are installed on the outside of the rod body, and the stirring rack 209 is provided with a guide groove 210. The upper and lower ends of the guide groove 210 are respectively connected to the No. 1 groove 203 and the No. 2 groove 205. The upper end of the inner part of the No. 1 groove 203 is installed with a liquid inlet pipe 202, and the lower end of the cooling barrel 1 is installed with a motor 217, and the output end of the motor 217 is connected to the rotating shaft 206.

[0023] like Figures 4 to 6 As shown, in another embodiment of the present invention, a diverter box 201 is installed at the upper end of the cooling barrel 1, and the diverter box 201 is connected to the No. 1 groove 203. The liquid inlet pipe 202 is installed inside the diverter box 201, and a plurality of connecting grooves 204 are installed inside the cooling barrel 1 between the No. 1 groove 203 and the No. 2 groove 205. A No. 1 turntable 207 is installed on the upper end of the rod body of the rotating shaft 206, and the No. 1 turntable 207 is snap-fitted and installed at the upper end of the interior of the cooling barrel 1. The upper end of the interior of the rotating shaft 206 is provided with a No. 1 connecting groove 208, and the upper end of the No. 1 connecting groove 208 is connected to the No. 1 groove 203. The lower end of the interior of the rotating shaft 206 is provided with a No. 2 connecting groove 211, and the upper and lower ends of the guide groove 210 respectively penetrate It is installed inside the No. 1 connecting groove 208 and the No. 2 connecting groove 211, and the No. 2 turntable 212 is installed at the lower end of the rod body of the rotating shaft 206. The No. 2 turntable 212 is snap-fitted and installed inside the No. 2 groove 205. The upper and lower ends of the outer side of the No. 2 turntable 212 are respectively installed with sealing blocks 213, and the sealing blocks 213 are snap-fitted and connected with the inner snap-fitting connection of the cooling barrel 1. A number of through holes 214 are provided through the interior of the No. 2 turntable 212, and the through holes 214 are respectively connected with the No. 2 groove 205 and the No. 2 connecting groove 211. The No. 1 gear 215 is installed on the outer side of the rod body of the rotating shaft 206 located at the lower end of the cooling barrel 1, and the No. 2 gear 216 is installed at the output end of the motor 217. The No. 2 gear 216 is meshed with the No. 1 gear 215.

[0024] The user pours the raw material into the interior of the cooling chamber 101 along the feed pipe 3, and then the motor 217 drives the No. 2 gear 216 to rotate, and then the No. 2 gear 216 drives the No. 1 gear 215 to control the rotating shaft 206 to rotate, so that the rotating shaft 206 drives the stirring frame 209 to stir the raw material, and then the coolant enters the interior of the diversion box 201 along the liquid inlet pipe 202, and the coolant is sprayed into the interior of the No. 1 groove 203, and then with the injection of the coolant, the coolant is allowed to enter the interior of the connecting groove 204 and the No. 1 connecting groove 208 respectively, and then the coolant entering the interior of the connecting groove 204 will cool the raw material near the inner wall of the cooling chamber 101, and then during the cooling process, the coolant is cooled. After the temperature is completed, it can enter the interior of the second groove 205, and then the coolant entering the interior of the first connecting groove 208 will enter the interior of the guide groove 210, allowing it to flow inside the guide groove 210, thereby cooling the raw materials in contact with the stirring frame 209 during the rotation process, thereby improving the crystallization efficiency of the raw materials, and then the coolant inside the guide groove 210 can enter the interior of the second connecting groove 211 to be discharged outward for recovery. At the same time, the coolant inside the second groove 205 will enter the interior of the second connecting groove 211 through the through hole 214 to be discharged, which is convenient for unified recovery work in the later stage. Then, after the raw materials are cooled, they can be discharged through the discharge pipe 4;

[0025] The first turntable 207 is used to seal the shaft 206 and the first groove 203 to prevent the coolant from falling into the cooling chamber 101 and contaminating the raw materials, thereby improving the quality of the raw materials. At the same time, the first turntable 207 is also used to assist the shaft 206 in rotating.

[0026] The second turntable 212 is used to assist the rotation of the shaft 206, and is also used to drive the through hole 214 and the second groove 205 to connect, so as to facilitate the discharge and recovery of the coolant inside the second groove 205.

[0027] The working principle of this cooling device for oil pressing processing:

[0028] During use, the user first pours the raw material into the interior of the cooling chamber 101 along the feed pipe 3, and then the motor 217 drives the No. 2 gear 216 to rotate, and then the No. 2 gear 216 drives the No. 1 gear 215 to control the rotating shaft 206 to rotate, so that the rotating shaft 206 drives the stirring frame 209 to stir the raw material, and then the coolant enters the interior of the diversion box 201 along the liquid inlet pipe 202, and the coolant is sprayed into the interior of the No. 1 groove 203, and then with the injection of the coolant, the coolant is allowed to enter the interior of the connecting groove 204 and the No. 1 connecting groove 208 respectively, and then the coolant entering the interior of the connecting groove 204 will cool the raw material near the inner wall of the cooling chamber 101, and then After the cooling is completed, it can enter the interior of the No. 2 groove 205, and then the coolant entering the interior of the No. 1 connecting groove 208 will enter the interior of the guide groove 210, allowing it to flow inside the guide groove 210, thereby cooling the raw materials in contact with the stirring frame 209 during the rotation process, thereby improving the crystallization efficiency of the raw materials, and then the coolant inside the guide groove 210 can enter the interior of the No. 2 connecting groove 211 for discharge and recovery. At the same time, the coolant inside the No. 2 groove 205 will enter the interior of the No. 2 connecting groove 211 through the through hole 214 for discharge, which is convenient for unified recovery work in the later stage. Then, after the raw material cooling is completed, it can be unloaded through the discharge pipe 4.

[0029] Obviously, the above embodiments of the present invention are merely examples for clearly illustrating the present invention, and are not limitations on the implementation methods of the present invention. For ordinary technicians in the relevant field, other different forms of changes or modifications can be made based on the above description. It is impossible to list all the implementation methods here. All obvious changes or modifications derived from the technical solution of the present invention are still within the scope of protection of the present invention.

Claims

1. A cooling device for processing pressed oil, comprising a cooling barrel (1), characterized in that: The cooling barrel (1) is provided with a cooling chamber (101), an auxiliary mechanism (2) is installed in the cooling chamber (101), a feed pipe (3) is installed through the upper end of the cooling chamber (101), a discharge pipe (4) is installed through the lower end of the cooling chamber (101), the auxiliary mechanism (2) includes a rotating shaft (206), the rotating shaft (206) is movably installed through the interior of the cooling chamber (101), a first groove (203) and a second groove (205) are respectively provided at the upper and lower ends of the interior of the cooling barrel (1), and the upper end of the rotating shaft (206) is movably installed. The cooling barrel (1) is dynamically installed inside the No. 1 groove (203), and the rotating shaft (206) is located inside the cooling chamber (101). A plurality of stirring racks (209) are installed on the outside of the rod body, and a guide groove (210) is provided inside the stirring rack (209). The upper and lower ends of the guide groove (210) are respectively connected to the No. 1 groove (203) and the No. 2 groove (205). The upper end of the interior of the No. 1 groove (203) is installed with a liquid inlet pipe (202), and the lower end of the cooling barrel (1) is installed with a motor (217), and the output end of the motor (217) is connected to the rotating shaft (206).

2. A cooling device for pressed oil processing according to claim 1, characterized in that: A diverter box (201) is installed at the upper end of the cooling barrel (1), the diverter box (201) is connected to the first groove (203), and the liquid inlet pipe (202) is installed through the inside of the diverter box (201).

3. The cooling device for pressed oil processing according to claim 1, characterized in that: A plurality of connecting grooves (204) are installed through the interior of the cooling barrel (1) between the first groove (203) and the second groove (205); a first turntable (207) is installed on the upper end of the shaft (206); and the first turntable (207) is engaged with the upper end of the interior of the cooling barrel (1).

4. The cooling device for pressed oil processing according to claim 1, characterized in that: The upper end of the interior of the rotating shaft (206) is provided with a No. 1 connecting groove (208), the upper end of the No. 1 connecting groove (208) is connected to the No. 1 groove (203), the lower end of the interior of the rotating shaft (206) is provided with a No. 2 connecting groove (211), and the upper and lower ends of the guide groove (210) are respectively installed in the interior of the No. 1 connecting groove (208) and the No. 2 connecting groove (211).

5. The cooling device for pressed oil processing according to claim 1, characterized in that: A second turntable (212) is installed at the lower end of the shaft (206), and the second turntable (212) is mounted inside the second groove (205). Sealing blocks (213) are respectively mounted on the upper and lower ends of the outer side of the second turntable (212), and the sealing blocks (213) are respectively engaged with the interior of the cooling barrel (1). A plurality of through holes (214) are provided through the interior of the second turntable (212), and the through holes (214) are respectively connected to the second groove (205) and the second connecting groove (211).

6. The cooling device for pressed oil processing according to claim 1, characterized in that: The rotating shaft (206) is located at the outer side of the shaft at the lower end of the cooling barrel (1) and is provided with a first gear (215). The output end of the motor (217) is provided with a second gear (216). The second gear (216) is meshedly connected with the first gear (215).