White oil blending production line
By introducing a porous filter inner cylinder, a turbine dynamic mixer, and a double-layer storage tank design into the white oil production line, the problems of easy clogging and uneven mixing of the filter device have been solved, achieving rapid filtration and uniform mixing, and improving product quality and leak-proof performance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI WEIJIA TECH CO LTD
- Filing Date
- 2025-05-28
- Publication Date
- 2026-05-19
AI Technical Summary
In existing white oil production lines, the filtration devices are prone to clogging, the filtration speed is slow, the mixing is insufficient, and the storage devices have inadequate leak-proof performance, which affects product quality and work efficiency.
The filter inner cylinder with multiple filter holes, turbine dynamic pipeline mixer and double-layer storage tank structure, combined with stirring discharge mechanism, aeration device and dispersion plate design, achieves rapid filtration, uniform mixing and leakage prevention.
It improves filtration speed, avoids clogging, ensures uniform mixing, reduces the risk of leakage, and enhances product quality stability and work efficiency.
Smart Images

Figure CN224252234U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of white oil production equipment, specifically to a white oil blending production line. Background Technology
[0002] Currently, shortening, scientifically known as white oil, is a specialized oil in the food industry due to its snow-white appearance and resemblance to lard. It possesses a certain degree of plasticity or viscosity and is used as an ingredient in pastries, for surface coating, or for demolding. It is used to crisp or soften baked goods, prevent proteins and carbohydrates from hardening and clumping together during processing, and improve texture. On white oil production lines, the raw material needs to be filtered before further processing. Existing filtration devices are prone to clogging and have slow filtration speeds. There is a lack of a white oil filtration device that offers fast filtration speed and is less prone to clogging.
[0003] Most existing blending equipment for finished white oil production uses a single type of agitator, such as a standard paddle agitator. This only generates a unidirectional flow of agitation, resulting in insufficient mixing of the white oil within the tank and the presence of dead zones. This is particularly problematic for blending high-viscosity white oils or those with multiple added ingredients, making it difficult to achieve uniform mixing and affecting the quality stability of the white oil product.
[0004] Most of the white oil produced is stored in storage tanks. The existing storage methods and structures are simple and their protection performance is insufficient in terms of leakage prevention. Once a leak occurs, it will greatly pollute the environment of the storage area. Secondly, when white oil enters an empty storage tank, it has a large impact on the bottom of the tank. If it is poured into the tank during use, it will agitate the sediment at the bottom, requiring a long period of settling before filling, which affects work efficiency. Utility Model Content
[0005] The purpose of this invention is to address the above-mentioned shortcomings by providing a white oil blending production line.
[0006] This utility model includes a filtration device, a blending device, and a storage device.
[0007] The filtration device includes an inner filter cylinder, an outer filter cylinder, and a stirring and discharging mechanism.
[0008] Multiple sets of filter holes are evenly distributed in a ring on the inner wall of the filter cylinder. An impurity discharge port is provided at the bottom of the inner filter cylinder. A raw material inlet is provided at the top of the outer filter cylinder. A filter discharge port is provided at the bottom of the outer filter cylinder. The inner filter cylinder is installed inside the outer filter cylinder. A filtration area is formed between the outer wall of the inner filter cylinder and the inner wall of the outer filter cylinder. A stirring and discharge mechanism is installed inside the inner filter cylinder.
[0009] The blending device includes a blending vessel. The blending vessel has a raw material inlet on one side of the top and a finished white oil outlet at the bottom. The raw material inlet is connected to the outlet of the turbine dynamic pipeline mixer through a bend. The two inlets of the turbine dynamic pipeline mixer are respectively connected to the white oil inlet pipe and the functional additive inlet pipe.
[0010] The other side of the mixing vessel is provided with a reflux liquid inlet, which is connected to a reflux pump located on the bottom side wall of the mixing vessel via a pipe. The inlet of the reflux pump is connected to the reflux outlet at the bottom of the mixing vessel via a white oil reflux pipe.
[0011] A mixing motor is provided at the top center of the mixing vessel. The output shaft of the mixing motor is connected to a stirring shaft that extends into the mixing vessel. The stirring shaft is equipped with a stirring paddle assembly for mixing the finished white oil.
[0012] The bottom side wall of the mixing vessel is also equipped with a pulse air pump. The outlet of the pulse air pump is connected to an air filling pipe that extends into the mixing vessel. A one-way valve is provided on the air filling pipe. An aeration disc is connected to the end of the air filling pipe. Multiple support rods connected to the bottom of the aeration disc are provided at the bottom of the mixing vessel.
[0013] The storage device includes a leakage pool and a storage tank installed in the leakage pool. The storage tank is equipped with an inlet pipe at the top and a dispersion plate at the bottom of the inlet pipe. A drain pipe is provided on the side of the storage tank near the bottom, and a sewage pipe is provided at the bottom of the storage tank. The storage tank has a double-layer hollow structure, and a transparent observation window is provided at the bottom of the outer layer of the tank.
[0014] The filter outlet is connected to the white oil feed pipe, and the finished white oil outlet is connected to the liquid inlet pipe of the storage tank.
[0015] The mixing and discharging mechanism includes a rotating shaft, anchor-type mixing blades, and H-shaped mixing blades. The anchor-type mixing blades and H-shaped mixing blades are respectively mounted on the rotating shaft, with the H-shaped mixing blades located above the anchor-type mixing blades. The rotating shaft is driven to rotate by a motor and a reducer. Scrapers are respectively provided on the side walls of the anchor-type mixing blades and the H-shaped mixing blades.
[0016] An inner cylinder fixing seat is provided on the upper part of the inner wall of the outer filter cylinder, and a connecting flange is provided on the top of the inner filter cylinder. The connecting flange is installed on the inner cylinder fixing seat by bolts. A flow divider is provided above the outer filter cylinder, and a through-shaft sleeve is provided in the middle of the flow divider. The rotating shaft is located inside the through-shaft sleeve. With the through-shaft sleeve as the center, a set of flow holes are evenly distributed in a ring at the bottom of the flow divider.
[0017] The bottom of the inner filter cylinder is funnel-shaped; a set of support feet is provided at the bottom of the outer filter cylinder; a drain valve is provided at the impurity discharge port; and a sampling pipe is provided at the bottom of the outer filter cylinder wall.
[0018] The aeration disc is made of stainless steel and includes an outer annular tube, an inner annular tube, and a pair of horizontal tubes connecting the two. The top of one side of the outer annular tube is provided with an air inlet that connects to the end of the air filling tube. The surfaces of the outer and inner annular tubes are uniformly provided with multiple aeration holes with a diameter of 4-6 mm. The top of the mixing vessel is also provided with a pressure relief valve.
[0019] The reflux pump is installed on pump support A on the bottom side wall of the blending vessel; the pulse air pump is installed on pump support B on the bottom side wall of the blending vessel; the bottom of the blending vessel has a hemispherical structure; the reflux outlet is located on one side of the finished white oil outlet at the bottom of the blending vessel.
[0020] The stirring paddle assembly consists of multiple sleeve sections fixed to the stirring shaft and four horizontal stirring rods evenly arranged on its side wall. The length of the horizontal stirring rods is one-third of the diameter of the mixing vessel.
[0021] The top of the leakage pool is equipped with a grid, and the storage tank is installed inside the leakage pool above the support frame; the bottom of the storage tank is a concave cone structure, the sewage pipe is located in the middle of the cone structure, the dispersion plate is located directly above the sewage pipe, and the transparent observation window is located at the bottom of the cone structure; the dispersion plate is a cone structure, and the dispersion plate is coaxially set with the liquid inlet pipe through a connecting frame.
[0022] The upper part of the connecting frame is provided with a conical guide tube with a top opening diameter larger than the bottom opening diameter. The liquid inlet pipe is provided with a conical guide tube mounting protrusion. The conical guide tube is movably installed in the liquid inlet pipe. The diameter of the dispersion plate is larger than the bottom opening diameter of the conical guide tube and smaller than the top opening diameter of the conical guide tube.
[0023] Between the inner and outer tanks of the storage tank, there is a set of supporting ribs arranged in a ring, and the supporting ribs have perforated holes.
[0024] The advantages of this invention are: the stirring and discharge mechanism stirs the white oil raw material, allowing it to quickly pass through the filter mesh and be discharged, resulting in fast filtration and reduced clogging. It eliminates stirring dead zones, achieving uniform mixing and improving the quality stability of the finished white oil product. The combination of the double-layered storage tank and the leak pool effectively prevents leakage and reduces environmental pollution after leakage. When the white oil is injected into the storage tank, the dispersion plate disperses the white oil in all directions, reducing the impact on the bottom of the tank and effectively reducing the agitation of the white oil at the bottom, preventing the bottom sediment from being stirred up. Attached Figure Description
[0025] Figure 1 This is a cross-sectional structural diagram of the filter device of this utility model.
[0026] Figure 2 This is a schematic diagram of the structure of the flow divider of this utility model.
[0027] Figure 3 This is a schematic diagram of the stirring and discharging mechanism of this utility model.
[0028] Figure 4 This is a schematic diagram of the structure of the filtration device of this utility model.
[0029] Figure 5 This is a schematic diagram of the mixing device of this utility model.
[0030] Figure 6 This is a schematic diagram of the aeration disc structure.
[0031] Figure 7 This is a schematic diagram of the agitator assembly.
[0032] Figure 8 This is a schematic diagram of the storage device of this utility model.
[0033] Figure 9 This is a schematic diagram of the internal structure of the storage device of this utility model.
[0034] Figure 10 This is a schematic diagram of the dispersion plate structure. Detailed Implementation
[0035] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The components of the embodiments of the present invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0036] Therefore, the following detailed description of the embodiments of the invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the invention without inventive effort are within the scope of protection of the invention.
[0037] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0038] In the description of the embodiments of this invention, it should be noted that if terms such as "upper," "lower," "inner," or "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product is in use, they are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, if terms such as "first" or "second" appear in the description of this invention, they are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0039] In the description of the embodiments of the present invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set" and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in the present invention based on the specific circumstances.
[0040] As shown in the attached drawings, this utility model includes a filtration device, a blending device, and a storage device.
[0041] The filtration device includes an inner filter cylinder 1, an outer filter cylinder 2, and a stirring and discharging mechanism 3.
[0042] Multiple sets of filter holes 4 are evenly distributed in a ring on the wall of the inner filter cylinder 1. An impurity discharge port 5 is provided at the bottom of the inner filter cylinder 1. A raw material inlet 6 is provided at the top of the outer filter cylinder 2. A filter discharge port 7 is provided at the bottom of the outer filter cylinder 2. The inner filter cylinder 1 is installed inside the outer filter cylinder 2. A filtration area 8 is formed between the outer wall of the inner filter cylinder 1 and the inner wall of the outer filter cylinder 2. A stirring and discharge mechanism 3 is installed inside the inner filter cylinder 1.
[0043] The blending device includes a blending vessel 21. The blending vessel 21 has a raw material inlet 22 on one side of the top and a finished white oil outlet 40 at the bottom. The raw material inlet 22 is connected to the outlet of the turbine dynamic pipeline mixer 23 through a bend. The two inlets of the turbine dynamic pipeline mixer 23 are respectively connected to the white oil inlet pipeline and the functional additive inlet pipeline.
[0044] The other side of the mixing vessel 21 is provided with a reflux inlet 24. The reflux inlet 24 is connected to a reflux pump 25 located on the bottom side wall of the mixing vessel 21 through a pipe. The inlet end of the reflux pump 25 is connected to the reflux outlet at the bottom of the mixing vessel 21 through a white oil reflux pipe 39.
[0045] A mixing motor 26 is provided at the top center of the mixing vessel 21. The output shaft of the mixing motor 26 is connected to a stirring shaft 27 that extends into the mixing vessel 21. The stirring shaft 27 is provided with a stirring paddle assembly for mixing finished white oil.
[0046] The bottom side wall of the mixing vessel 21 is also provided with a pulse air pump 28. The air outlet of the pulse air pump 28 is connected to an air filling pipe 29 that extends into the mixing vessel 21. The air filling pipe 29 is provided with a one-way valve. The end of the air filling pipe 29 is connected to an aeration disc 30. The bottom of the aeration disc 30 is provided with multiple support rods 31 that are connected to the bottom of the mixing vessel 21.
[0047] The storage device includes a leakage pool 50 and a storage tank 51 installed in the leakage pool 50. The storage tank 51 is provided with an inlet pipe at the top and a dispersion plate 52 at the bottom of the inlet pipe. A drain pipe is provided on the side of the storage tank 51 near the bottom, and a sewage pipe is provided at the bottom of the storage tank 51. The storage tank 51 has a double-layer hollow structure, and a transparent observation window 55 is provided at the bottom of the outer layer of the tank.
[0048] The filter outlet 7 is connected to the white oil feed pipe, and the finished white oil outlet 40 is connected to the liquid inlet pipe of the storage tank 51.
[0049] The stirring and discharging mechanism 3 includes a rotating shaft 9, an anchor-type stirring blade 10, and an H-shaped stirring blade 11. The anchor-type stirring blade 10 and the H-shaped stirring blade 11 are respectively mounted on the rotating shaft 9, and the H-shaped stirring blade 11 is located above the anchor-type stirring blade 10. The rotating shaft 9 is driven to rotate by a motor and a reducer. Scrapers 12 are respectively provided on the two side walls of the anchor-type stirring blade 10 and the H-shaped stirring blade 11.
[0050] An inner cylinder fixing seat is provided on the upper part of the inner wall of the outer filter cylinder 2, and a connecting flange is provided on the top of the inner filter cylinder 1. The connecting flange is installed on the inner cylinder fixing seat by bolts. A flow divider 13 is provided above the outer filter cylinder 2. A through-shaft sleeve is provided in the middle of the flow divider 13. The rotating shaft 9 is located inside the through-shaft sleeve. With the through-shaft sleeve as the center, a set of flow holes 14 are evenly distributed in a ring at the bottom of the flow divider 13.
[0051] The bottom of the inner filter cylinder 1 is funnel-shaped; a set of support feet is provided at the bottom of the outer filter cylinder 2; a drain valve is provided on the impurity discharge port 5; and a sampling pipe 15 is provided at the bottom of the outer filter cylinder 2.
[0052] The aeration disc 30 is made of stainless steel and includes an outer annular tube 32, an inner annular tube 33, and a pair of horizontal tubes 38 connecting the two. The top of one side of the outer annular tube 32 is provided with an air inlet that connects to the end of the air filling tube 29. The surfaces of the outer annular tube 32 and the inner annular tube 33 are uniformly provided with a plurality of aeration holes 34, the diameter of which is 4-6mm. The top of the mixing vessel 21 is also provided with a pressure relief valve 35.
[0053] The reflux pump 25 is installed on the pump support A on the bottom side wall of the blending vessel 21; the pulse air pump 28 is installed on the pump support B on the bottom side wall of the blending vessel 21; the bottom of the blending vessel 21 has a hemispherical structure; the reflux outlet is located on one side of the finished white oil outlet 40 at the bottom of the blending vessel 21.
[0054] The stirring paddle assembly comprises multiple sets of sleeve portions 36 fixed to the stirring shaft 27 and four horizontal stirring rods 37 evenly arranged on its side wall. The length of the horizontal stirring rods 37 is one-third of the diameter of the mixing vessel body 21.
[0055] The top of the leakage pool 50 is equipped with a grid 56, and the storage tank 51 is installed inside the leakage pool 50 via a support frame. The bottom of the storage tank 51 is a concave cone structure, the sewage pipe is located in the middle of the cone structure, the dispersion plate 52 is located directly above the sewage pipe, and the transparent observation window 55 is located at the bottom of the cone structure. The dispersion plate 52 is a cone structure, and the dispersion plate 52 is coaxially set with the liquid inlet pipe via a connecting frame.
[0056] The upper part of the connecting frame is provided with a conical guide tube 58 with a top opening diameter larger than the bottom opening diameter. The liquid inlet pipe is provided with a conical guide tube mounting protrusion. The conical guide tube 58 is movably installed in the liquid inlet pipe. The diameter of the dispersion plate 52 is larger than the bottom opening diameter of the conical guide tube 58 and smaller than the top opening diameter of the conical guide tube 58.
[0057] Between the inner and outer tanks of the storage tank 51, there is a set of supporting stiffeners 57 arranged in a ring, and the supporting stiffeners 57 are provided with perforated holes.
[0058] Example 1: As shown in the attached diagram, the white oil raw material moves along the direction of the arrow during filtration. The white oil raw material is added through the raw material inlet 6 and first falls into the buffer area between the diversion hood 13 and the outer filter cylinder 2. The liquid level of the white oil raw material in the buffer area continuously rises, and after submerging the top surface of the diversion hood 13, it flows evenly into the diversion hood 13. It then falls into the inner filter cylinder 1 through a set of flow holes 14. As the white oil raw material in the inner filter cylinder 1 continues to rise, the stirring and discharge mechanism 3 is activated, continuously agitating the white oil raw material. The pressure of the white oil raw material causes it to quickly flow out through the filter holes 4 into the filtration area 8. The filtered white oil raw material is discharged to the next station through the filter outlet 7. Raw material impurities remaining at the bottom of the inner filter cylinder 1 are periodically discharged by opening the drain valve. During stirring, the stirring and discharge mechanism 3 continuously scrapes off the white oil adhering to the inner wall of the inner filter cylinder 1 using the scraper 12, preventing blockage of the filter holes 4. When it is necessary to test whether the white oil filtration is qualified, a sampling pipe 15 can be connected to take a sample.
[0059] The motor and reducer are installed on the top of the outer filter cylinder 2. The rotating shaft 9 passes through the shaft hole at the center of the top of the outer filter cylinder 2 and extends into the inner filter cylinder 1. The rotating shaft 9 is connected to the outer filter cylinder 2 and the flow divider 13 by a packing seal.
[0060] The white oil feed pipe and the functional additive feed pipe respectively deliver refined white oil raw materials and functional additives to the two inlets of the turbine dynamic pipeline mixer. After initial mixing, they flow through the raw material feed interface at the top of the blending vessel and enter the blending vessel body. Then, they are stirred and mixed by multiple sets of horizontal stirring rods of the stirring paddle assembly, combined with the aeration and dispersion of the pulse air pump and the bottom reflux of the return pump, to achieve uniform mixing of refined white oil raw materials and functional additives.
[0061] The storage tank 51 is provided with an inlet pipe at the top and a dispersion plate 52 at the bottom of the inlet pipe. The storage tank 51 is provided with a drain pipe on the side near the bottom and a sewage pipe at the bottom. The storage tank 51 has a double-layer hollow structure and a transparent observation window 55 is provided at the bottom of the outer layer of the tank.
[0062] The leakage pool 50 is located below the storage tank 51. In case of leakage, the white oil will flow into the leakage pool 50 for collection, preventing environmental pollution. When the white oil is injected into the storage tank 51, the dispersion plate 52 disperses the white oil in all directions, reducing the impact on the bottom of the storage tank 51. The storage tank 51 has a double-layer hollow structure, which can provide insulation and further improve the safety performance of the storage tank 51 to prevent leakage.
[0063] Furthermore, a grid 56 is provided on the top of the leakage pool 50, and the storage tank 51 is installed above the leakage pool 50 via a support frame.
[0064] The top of the leakage pool 50 is parallel to the ground. The grid mesh 56 facilitates workers to walk on it. The top of the leakage pool 50 is equipped with a grid frame. The grid mesh 56 is assembled from multiple pieces. Each grid mesh 56 is movably installed in the corresponding grid frame space and can be disassembled and installed individually, making it convenient for workers to enter the leakage pool 50. The support frame extends into the bottom of the leakage pool 50.
[0065] Preferably, the bottom of the storage tank 51 is a concave cone structure, the drain pipe is located in the middle of the cone structure, the dispersion plate 52 is located directly above the drain pipe, and the transparent observation window 55 is located at the bottom of the cone structure.
[0066] The conical structure keeps the white oil deposits centered at the bottom center. The drain pipe is located above the conical structure, so only the white oil located above the conical structure can be drained during discharge. After discharge, the deposits can be cleaned up through the sewage pipe.
[0067] If a leak occurs inside the inner tank of storage tank 51, the contents will flow into the hollow structure. The transparent observation window 55 allows for a direct view of whether there is a leak in the inner tank.
[0068] Preferably, the dispersion plate 52 has a conical structure, and the dispersion plate 52 is coaxially arranged with the liquid inlet pipe through a connecting frame.
[0069] After the white oil falls onto the dispersing plate 52, it can be smoothly and evenly dispersed in all directions. In this case, the height of the dispersing plate 52 is controlled so that the dispersed white oil can flow down from the side walls of the storage tank 51, avoiding direct scouring to the bottom of the storage tank 51.
[0070] Furthermore, the upper part of the connecting frame is provided with a conical guide tube 58 with a top opening diameter larger than the bottom opening diameter, and the liquid inlet pipe is provided with a conical guide tube mounting protrusion. The conical guide tube 58 is movably installed in the liquid inlet pipe. The diameter of the dispersion plate 52 is larger than the bottom opening diameter of the conical guide tube 58 and smaller than the top opening diameter of the conical guide tube 58.
[0071] The conical guide tube 58 is used to concentrate the injected white oil into the center and onto the dispersing plate 52, and then disperse it evenly in all directions through the dispersing plate 52. The conical guide tube 58 is provided with a rim that matches the mounting protrusion of the conical guide tube. By placing the rim on the mounting protrusion of the conical guide tube and lifting it upwards, the conical guide tube 58 and the dispersing plate 52 can be quickly removed from the liquid inlet pipe.
[0072] Furthermore, a set of supporting stiffeners 57 are arranged in a ring between the inner and outer tanks of the storage tank 51, and the supporting stiffeners 57 are provided with perforated holes.
[0073] The supporting stiffener 57 strengthens the side wall of the storage tank 51. At the same time, there is a gap between the lowest end of the supporting stiffener 57 and the sewage pipe to keep the conical bottom of the storage tank 51 connected. If there is a leak in the inner wall of the storage tank 51, the observation window 55 can quickly detect it.
Claims
1. A white oil blending production line, characterized in that... Includes filtration, blending, and storage devices. The filtration device includes an inner filter cylinder (1), an outer filter cylinder (2), and a stirring and discharging mechanism (3). The inner filter cylinder (1) has multiple sets of filter holes (4) evenly distributed in a ring on its wall. The bottom of the inner filter cylinder (1) is provided with an impurity discharge port (5). The upper part of the outer filter cylinder (2) is provided with a raw material inlet (6). The lower part of the outer filter cylinder (2) is provided with a filter discharge port (7). The inner filter cylinder (1) is installed inside the outer filter cylinder (2). A filtration area (8) is formed between the outer wall of the inner filter cylinder (1) and the inner wall of the outer filter cylinder (2). The stirring and discharge mechanism (3) is installed inside the inner filter cylinder (1). The blending device includes a blending vessel (21), which has a raw material feed port (22) on one side of the top and a finished white oil outlet (40) at the bottom. The raw material feed port (22) is connected to the outlet of the turbine dynamic pipeline mixer (23) through a bend. The two inlets of the turbine dynamic pipeline mixer (23) are respectively connected to the white oil feed pipe and the functional additive feed pipe. The other side of the mixing vessel (21) is provided with a reflux inlet (24), which is connected to a reflux pump (25) located on the bottom side wall of the mixing vessel (21) via a pipe. The inlet of the reflux pump (25) is connected to the reflux outlet at the bottom of the mixing vessel (21) via a white oil reflux pipe (39). A mixing motor (26) is provided at the top center of the mixing vessel (21). The output shaft of the mixing motor (26) is connected to a stirring shaft (27) that extends into the mixing vessel (21). The stirring shaft (27) is provided with a stirring paddle assembly for mixing finished white oil. The bottom side wall of the mixing vessel (21) is also provided with a pulse air pump (28). The air outlet of the pulse air pump (28) is connected to the air filling pipe (29) that extends into the mixing vessel (21). The air filling pipe (29) is provided with a one-way valve. The end of the air filling pipe (29) is connected to an aeration disc (30). The bottom of the aeration disc (30) is provided with multiple support rods (31) that are connected to the bottom of the mixing vessel (21). The storage device includes a leakage pool (50) and a storage tank (51) installed in the leakage pool (50). The storage tank (51) is provided with an inlet pipe at the top and a dispersion plate (52) at the bottom of the inlet pipe. The storage tank (51) is provided with a drain pipe on the side near the bottom and a sewage pipe at the bottom. The storage tank (51) has a double-layer hollow structure and a transparent observation window (55) is provided at the bottom of the outer layer of the tank. The filter outlet (7) is connected to the white oil feed pipe, and the finished white oil outlet (40) is connected to the liquid inlet pipe of the storage tank (51).
2. The white oil blending production line according to claim 1, characterized in that, The stirring and discharging mechanism (3) includes a rotating shaft (9), an anchor-type stirring blade (10), and an H-shaped stirring blade (11). The anchor-type stirring blade (10) and the H-shaped stirring blade (11) are respectively mounted on the rotating shaft (9). The H-shaped stirring blade (11) is located above the anchor-type stirring blade (10). The rotating shaft (9) is driven to rotate by a motor and a reducer. Scrapers (12) are respectively provided on the two side walls of the anchor-type stirring blade (10) and the H-shaped stirring blade (11).
3. The white oil blending production line according to claim 1, characterized in that, The upper part of the inner wall of the filter outer cylinder (2) is provided with an inner cylinder fixing seat, and the top of the filter inner cylinder (1) is provided with a connecting flange, which is installed on the inner cylinder fixing seat by bolts; a flow divider (13) is provided above the filter outer cylinder (2), and a through-shaft sleeve is provided in the middle of the flow divider (13). The rotating shaft (9) is located inside the through-shaft sleeve. With the through-shaft sleeve as the center, a set of flow holes (14) are evenly distributed in a ring at the bottom of the flow divider (13).
4. The white oil blending production line according to claim 1, characterized in that, The bottom of the inner filter cylinder (1) is funnel-shaped; a set of support feet is provided at the bottom of the outer filter cylinder (2); a drain valve is provided on the impurity discharge port (5); a sampling pipe (15) is provided at the bottom of the outer filter cylinder (2).
5. The white oil blending production line according to claim 1, characterized in that, The aeration disc (30) is made of stainless steel and includes an outer annular tube (32), an inner annular tube (33), and a pair of horizontal tubes (38) connecting the two. The top of one side of the outer annular tube (32) is provided with an air inlet that connects to the end of the air filling tube (29). The surfaces of the outer annular tube (32) and the inner annular tube (33) are uniformly provided with a plurality of aeration holes (34), and the diameter of the aeration holes (34) is 4-6 mm. The top of the mixing vessel (21) is also provided with a pressure relief valve (35).
6. The white oil blending production line according to claim 1, characterized in that, The reflux pump (25) is installed on the pump support A on the bottom side wall of the blending vessel (21); the pulse air pump (28) is installed on the pump support B on the bottom side wall of the blending vessel (21); the bottom of the blending vessel (21) is a hemispherical structure; the reflux outlet is located on one side of the finished white oil outlet (40) at the bottom of the blending vessel (21).
7. The white oil blending production line according to claim 1, characterized in that, The stirring paddle assembly consists of multiple sleeve portions (36) fixed to the stirring shaft (27) and four horizontal stirring rods (37) evenly arranged on its side wall. The length of the horizontal stirring rods (37) is one-third of the diameter of the mixing vessel body (21).
8. A white oil blending production line according to claim 1, characterized in that... The top of the leakage pool (50) is provided with a grid (56), and the storage tank (51) is installed inside the leakage pool (50) via a support frame; the bottom of the storage tank (51) is a concave cone structure, the sewage pipe is located in the middle of the cone structure, the dispersion plate (52) is located directly above the sewage pipe, and the transparent observation window (55) is located at the bottom of the cone structure; The dispersion plate (52) has a conical structure and is coaxially arranged with the liquid inlet pipe through a connecting frame.
9. A white oil blending production line according to claim 8, characterized in that... The upper part of the connecting frame is provided with a conical guide tube (58) with a top opening diameter larger than the bottom opening diameter. The liquid inlet pipe is provided with a conical guide tube mounting protrusion. The conical guide tube (58) is movably installed in the liquid inlet pipe. The diameter of the dispersion plate (52) is larger than the bottom opening diameter of the conical guide tube (58) and smaller than the top opening diameter of the conical guide tube (58).
10. A white oil blending production line according to claim 1, characterized in that... Between the inner and outer tanks of the storage tank (51), there is a set of supporting stiffeners (57) arranged in a ring, and the supporting stiffeners (57) are provided with perforated holes.