Industrial cleaning machine oil-water separator
By using a built-in modified plate and heat-conducting ring structure to heat the inner wall of the separator, the problems of oil-water separator freezing and structural weakness at low temperatures are solved, achieving stable oil-water separation and easy cleaning.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- WUXI JARED AUTOMATION TECH CO LTD
- Filing Date
- 2025-09-15
- Publication Date
- 2026-04-28
AI Technical Summary
Existing industrial cleaning machine oil-water separators are prone to freezing in low-temperature environments, resulting in poor separation performance, and the inner wall of the separator tank is thin and easily deformed.
It adopts a built-in modified plate and heat-conducting ring structure, and heats the inner wall of the separator tank by heat transfer oil, and cleans oil stains by friction, so as to ensure the structural strength and separation effect of the separator.
It achieves stable oil-water separation and separation effect, avoids deformation of the separation tank, simplifies the cleaning process, and improves separation efficiency.
Smart Images

Figure CN121005438B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of wastewater treatment technology, specifically an oil-water separator for an industrial cleaning machine. Background Technology
[0002] Industrial cleaning machines often use oil-water separators when treating their wastewater. However, in low-temperature environments, icing can occur, affecting the separation efficiency of the oil-water separator.
[0003] An existing industrial cleaning machine oil-water separator with publication number CN212655515U heats the heat-conducting oil in the storage tank using a heating rod, and then transfers the heat through the outer wall of the separator to the interior of the separator, thereby heating the interior of the separator to prevent the oil from liquefying and solidifying on the inner wall of the separator, making it easier for users to clean. However, in order to facilitate the heat conduction of the heat-conducting oil, the inner wall of the separator is relatively thin, which can cause the inner wall of the separator to deform easily when it contains sewage due to water pressure. Therefore, improvements are needed. Summary of the Invention
[0004] To address the problem of insufficient container strength caused by the flow of heat-conducting oil inside the containment components in existing technologies, the technical solution adopted in this invention is: an oil-water separator for an industrial cleaning machine, comprising:
[0005] Store components;
[0006] The liquid separation component is used to stir and separate the oil and water in the wastewater inside the container.
[0007] An internal cleaning component is located in the middle of the inner wall of the container and is used to remove oil stains adhering to the inner wall of the container.
[0008] The internal cleaning component includes:
[0009] A traction top plate, the top of which is fixedly connected to an external frame plate;
[0010] A buffer container is provided, the top of which is fixedly connected to the bottom of the outer surface of the traction top plate. A shaft connecting pipe is slidably connected at the axis of the inner wall of the buffer container. The shaft connecting pipe has a hollow structure inside. The buffer container is used to guide the shaft connecting pipe to perform vertical sliding motion.
[0011] The built-in modification plate is filled with heat transfer oil to clean the inner wall of the Shengna component.
[0012] The built-in modification panel includes:
[0013] The heat-conducting plate housing has symmetrically arranged fitting ports on both sides of the inner cavity. The bottom end of the shaft connecting pipe is inserted at the top center of the inner cavity of the heat-conducting plate housing. The inside of the heat-conducting plate housing is almost hollow. After being filled with hot heat-conducting oil, its own temperature will rise.
[0014] Furthermore, the internal cleaning component also includes:
[0015] A torsion sleeve, the upper surface of which is inserted into the bottom of the buffer receiving cylinder, and the inner wall of which is rotatably connected to the outer surface of the shaft connecting pipe through a wall-mounted roller, the torsion sleeve being used to control the rotation of the shaft connecting pipe;
[0016] The traction top cylinder has a flow pipe at the center of its inner cavity. The top end of the flow pipe extends to the outside of the traction top cylinder to guide external heat transfer oil into the heat transfer plate shell. The outer surface of the traction top cylinder is engaged with the lower part of the inner cavity of the traction top plate, and the top end of the shaft connecting pipe is inserted into the bottom end of the flow pipe. The traction top cylinder drives the shaft connecting pipe and the heat transfer plate shell to slide up and down through rollers on its inner wall.
[0017] Furthermore, the built-in modification panel also includes:
[0018] The inner pressure plate consists of two pieces. The outer surface of the inner pressure plate is fixedly connected to the inner wall of the heat transfer plate shell through an adapter socket, and is used to monitor the hydraulic pressure of the heat transfer oil inside the heat transfer plate shell.
[0019] The heat-conducting ring belt has its upper and lower sides fixedly connected to the sides of the heat-conducting disk shell through ring grooves. The outer surface of the middle section of the heat-conducting ring belt is uniformly provided with grooves. After the heat-conducting disk shell is filled with heat-conducting oil, the hydraulic action will cause the middle section of the heat-conducting ring belt to expand outward. At this time, the grooves on the outside of the heat-conducting ring belt will be in close contact with the inner wall of the liquid separator, conducting heat to the inner wall of the liquid separator. When the heat-conducting disk shell rotates, the heat-conducting ring belt with grooves will generate a strong frictional force on the inner wall of the liquid separator.
[0020] Furthermore, the liquid separation component includes:
[0021] A axial sleeve, the inner wall of which is sleeved with the outer surface of the axial connecting pipe, and stirring rods are evenly arranged on the outer surface of the axial sleeve.
[0022] The top shell is fastened, and the top end of the axial sleeve is inserted into the axial center of the inner wall of the top shell.
[0023] An inverted roller machine, wherein the bottom of the inverted roller machine is connected to the axis of the upper surface of the shaft housing by means of attached rollers, and stabilizing connecting plates are symmetrically arranged on the front and rear sides of the outer surface of the inverted roller machine, and the end of the stabilizing connecting plate away from the inverted roller machine is inserted into the upper surface of the top shell.
[0024] The connecting ring sleeve has its inner wall rotatably connected to the outer surface of the top shell through a circumferential groove. Both sides of the inner cavity of the connecting ring sleeve are symmetrically provided with conveying pipes through through-holes. One conveying pipe is used to pass in wastewater containing oil stains, and the other conveying pipe is used to pass in sodium hydroxide solution. When the inverted roller machine above twists the shaft part of the top shell, it will drive the shaft sleeve to rotate synchronously. However, because the connecting ring sleeve is separated from the shaft part, the outer part of the top shell is stationary and attached to the top of the separatory cylinder.
[0025] Furthermore, the holding component includes:
[0026] The top of the separator is sleeved with the inner wall of the top shell, and a suspension base is fixedly connected to the bottom of the outer surface of the separator.
[0027] The discharge pipe has its top end inserted into the center of the bottom of the inner wall of the separator via a connector.
[0028] Two sealing components are symmetrically arranged at the bottom of the inner wall of the separator. When they are inserted into the adapter socket of the heat-conducting plate shell, they can prevent oil-water mixed wastewater from entering the lower area of the separator through the heat-conducting plate shell.
[0029] Furthermore, the sealing component includes:
[0030] The container housing has its outer surface bottom inserted into the bottom of the inner wall of the separator, and the top of the inner cavity of the container housing has evenly distributed through openings.
[0031] The load cell has load-bearing bars evenly arranged at the top of its inner cavity, and the top of the load-bearing bars extends to the outside of the container housing through a through-hole.
[0032] An internal detection plate is inserted into the bottom of the inner wall of the container housing. The two sides of the internal detection plate are symmetrically provided with liquid sampling heads, which extend to the outside of the container housing. The internal detection plate detects the oil content in the liquid through the liquid sampling heads.
[0033] A conductive connecting plate is provided, the upper surface of which is fixedly connected to the lower surface of the load cell, and the lower surface of which is fixedly connected to the upper surface of the inner detection plate. The bottom of the inner cavity of the load cell is connected to the interior of the inner detection plate through a control wire.
[0034] The beneficial effects of this invention are as follows:
[0035] 1. This device can separate oil and water in sewage and then discharge them separately into collection containers, thus achieving oil-water separation. Since oil tends to accumulate on the upper layer of the separator, and the oil solidifies on the inner wall of the separator after cooling, the built-in modified disc can sweep across the inner wall of the separator. Through the heat transfer function of the heat-conducting oil inside the built-in modified disc and the friction of the outer groove of the heat-conducting ring, the adhering oil can be quickly cleaned without modifying the separator, thereby ensuring the structural strength of the separator itself. When holding sewage, the inner wall will not deform due to hydraulic pressure, thus maintaining the device's strong stability.
[0036] 2. The built-in modification disc contacts the inner wall of the separator through an outwardly expanding heat-conducting ring. To prevent the heat-conducting ring from over-expanding and causing the built-in modification disc to jam against the inner wall of the separator, an internal pressure-sensing plate is installed inside the heat-conducting disc housing to monitor the actual hydraulic pressure of the heat-conducting disc housing. This ensures that the heat-conducting ring can generate strong friction with the inner wall of the separator, preventing the built-in modification disc from jamming and becoming unable to move for cleaning. Since the heat-conducting ring is assembled inside the heat-conducting disc housing, it is easy to replace, ensuring that the built-in modification disc can properly clean oil stains.
[0037] 3. When performing oil-water separation, this device only uses the upper area of the separator for processing. The lower area is isolated by the built-in modification plate. After the oil and water separate, the oil will float on the water, thus ensuring that the oil is always located in the upper part of the inner wall of the separator. Therefore, there are more oil stains attached to the upper part of the inner wall of the separator. The oil stains attached to the lower layer are washed away by the continuously discharged water, which effectively reduces the attached oil stains. The attached oil stains are concentrated in the upper area, which can be easily removed from the outside, avoiding the problem of oil stains easily adhering to the deep part of the separator, which makes descaling difficult.
[0038] 4. During the discharge process, if the discharged wastewater has a high oil content, it means that the oil inside the wastewater has not been effectively separated. The discharged wastewater needs to be retreated, and the subsequent oil-water separation process should be strengthened. This means extending the stirring time of the stirring rod and increasing the amount of alkaline solution added. If the oil content increases significantly, it means that the wastewater in the lower layer has been discharged. At this time, the discharge pipe should be connected to the oil collection container to collect the oil and monitor the progress of the internal wastewater treatment. Attached Figure Description
[0039] Figure 1 This is the front view of the present invention;
[0040] Figure 2 This is a cross-sectional view of the present invention;
[0041] Figure 3This is a schematic diagram of the internal cleaning component of the present invention;
[0042] Figure 4 This is a cross-sectional view of the built-in modification disk of the present invention;
[0043] Figure 5 This is a cross-sectional view of the shaft sleeve of the present invention;
[0044] Figure 6 This is a cross-sectional view of the separatory cylinder of the present invention;
[0045] Figure 7 This is a cross-sectional view of the container housing of the present invention.
[0046] In the diagram: 1. Container; 2. Separator; 3. Internal cleaning component; 31. Traction top plate; 32. Traction top cylinder; 33. Buffer container; 34. Torsion sleeve; 35. Shaft connecting pipe; 36. Drainage pipe; 4. Internal modification plate; 41. Heat-conducting plate shell; 42. Adaptor socket; 43. Heat-conducting ring belt; 44. Internal pressure plate; 21. Shaft sleeve; 22. Stirring rod; 23. Snap-on top shell; 24. Connecting ring sleeve; 25. Material conveying pipe; 26. Inverted roller machine; 27. Attaching roller; 11. Separator; 12. Suspension base; 13. Discharge pipe; 14. External frame plate; 5. Sealing component; 51. Container insert shell; 52. Load cell; 53. Force-bearing rod; 54. Conductive connecting plate; 55. Internal detection plate; 56. Liquid collection end. Detailed Implementation
[0047] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the invention to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described to better illustrate the principles and practical application of the invention, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for a particular purpose.
[0048] Example 1, please refer to Figures 1-4 The present invention provides a technical solution: an oil-water separator for an industrial cleaning machine, comprising:
[0049] Component 1;
[0050] The liquid separation component 2 is used to stir and separate the oil and water in the sewage inside the holding component 1.
[0051] The internal cleaning component 3 is located in the middle of the inner wall of the container component 1 and is used to remove oil stains adhering to the inner wall of the container component 1.
[0052] The internal cleaning component 3 includes:
[0053] The top of the traction top plate 31 is fixedly connected to an external frame plate 14.
[0054] The buffer container 33 has its top end fixedly connected to the bottom of the outer surface of the traction top plate 31. A shaft connecting pipe 35 is slidably connected at the axis of the inner wall of the buffer container 33. The shaft connecting pipe 35 has a hollow structure inside. The buffer container 33 is used to guide the shaft connecting pipe to perform vertical sliding motion.
[0055] Built-in modification plate 4, the built-in modification plate 4 is filled with heat transfer oil to clean the inner wall of the Shengna component 1;
[0056] Built-in modification disk 4 includes:
[0057] The heat-conducting plate housing 41 has symmetrically provided fitting ports 42 on both sides of its inner cavity. The bottom end of the shaft connecting pipe 35 is inserted at the top of the inner cavity of the heat-conducting plate housing 41. The interior of the heat-conducting plate housing 41 is almost hollow. After being filled with hot heat-conducting oil, its own temperature will rise.
[0058] The internal cleaning component 3 also includes:
[0059] The upper surface of the torsion sleeve 34 is inserted into the bottom of the buffer receiving cylinder 33. The inner wall of the torsion sleeve 34 is rotatably connected to the outer surface of the shaft connecting pipe 35 through the wall-adhering roller. The torsion sleeve 34 is used to control the rotation of the shaft connecting pipe 35.
[0060] The traction top cylinder 32 has a flow pipe 36 installed at the axial center of its inner cavity. The top end of the flow pipe 36 extends to the outside of the traction top cylinder 32 to guide external heat transfer oil into the heat transfer plate shell 41. The outer surface of the traction top cylinder 32 is engaged with the lower part of the inner cavity of the traction top plate 31, and the top end of the axial connecting pipe 35 is inserted into the bottom end of the flow pipe 36. The traction top cylinder 32 drives the axial connecting pipe 35 and the heat transfer plate shell 41 to slide up and down through the rollers on the inner wall.
[0061] Built-in modification disk 4 also includes:
[0062] There are two internal pressure plates 44. The outer surface of the internal pressure plate 44 is fixedly connected to the inner wall of the heat transfer plate housing 41 through the adapter socket 42. It is used to monitor the hydraulic pressure of the heat transfer oil inside the heat transfer plate housing 41.
[0063] The heat-conducting ring 43 is fixedly connected to the side of the heat-conducting disk shell 41 through ring grooves on both the upper and lower sides. The outer surface of the middle part of the heat-conducting ring 43 is uniformly provided with friction grooves. After the heat-conducting disk shell 41 is filled with heat-conducting oil, the hydraulic action will cause the middle part of the heat-conducting ring 43 to expand outward. At this time, the friction grooves on the outside of the heat-conducting ring 43 will be in close contact with the inner wall of the liquid separator 11, and conduct heat to the inner wall of the liquid separator 11. When the heat-conducting disk shell 41 rotates, the heat-conducting ring 43 with friction grooves will generate a strong frictional force on the inner wall of the liquid separator 11.
[0064] Before using this device to treat oily wastewater, first assemble the device. Insert the inner cleaning component 3 and the liquid separating component 2 sequentially into the inner wall of the holding component 1. Figure 1 As shown, the interior of the Shengna component 1 is separated into two layers by the built-in modification plate 4.
[0065] Oily wastewater is added to the inside of the holding component 1 through the conveying pipe 25 on one side, and an alkaline sodium hydroxide solution of appropriate concentration is added to the inside of the holding component 1 through the clinker pipe on the other side. After thorough mixing, the separating component 2 is used for stirring. Then, the mixture is allowed to stand and separate into layers, so that the oil in the oily wastewater floats on the upper layer of the water, and the lower layer is the wastewater layer with separated oil. Then, the top cover 23 is opened, the separating component 2 is pulled out, and the recycling process is ready.
[0066] The traction top cylinder 32 lifts the lower built-in modified plate 4 upward by driving the shaft connecting pipe 35 to slide upward along the shaft. At this time, the heat conduction plate shell 41 and the plug-in sealing component 5 gradually separate, that is, the adapter plug 42 is opened. The sewage water in the lower part will flow into the lower area of the liquid separator 11 through the adapter plug 42 and be recycled through the discharge pipe 13. When the upper oil is about to be discharged, the heat conduction plate shell 41 is re-plugged into the sealing component 5 to prevent the oil from being discharged. Then the liquid separator 2 is installed, and oily sewage and alkaline solution are added for liquid separation treatment until a large amount of oil is accumulated inside the holding component 1. Then, a unified discharge is carried out to recover a large amount of oil.
[0067] Because a large amount of oil needs to accumulate in the upper area of the heat-conducting plate shell 41 inside the separator 11 for a long time, oil is easily attached to the upper part of the inner wall of the separator 11. The lower part needs to be drained multiple times before the oil is drained. The frequency of the drainage work is much greater than that of the oil draining work. The drainage work washes away the oil attached to the lower part of the inner wall of the separator 11. Therefore, the lower part of the inner wall of the separator 11 does not need to be cleaned. Only the upper part of the inner wall of the separator 11 needs to be cleaned.
[0068] Example 2, please refer to Figures 1-7The present invention provides a technical solution: based on embodiment 1, the liquid separation component 2 includes:
[0069] A shaft sleeve 21 is fitted with the outer surface of the shaft connecting pipe 35, and stirring rods 22 are evenly arranged on the outer surface of the shaft sleeve 21.
[0070] The top shell 23 is fastened, and the top end of the shaft sleeve 21 is inserted into the shaft of the inner wall of the top shell 23.
[0071] The bottom of the inverted roller machine 26 is connected to the axis of the upper surface of the shaft housing 21 by the attached roller 27. The front and rear sides of the outer surface of the inverted roller machine 26 are symmetrically provided with stabilizing connecting plates. The end of the stabilizing connecting plate away from the inverted roller machine 26 is inserted into the upper surface of the snap-on top housing 23.
[0072] The inner wall of the connecting ring 24 is rotatably connected to the outer surface of the top shell 23 through a ring groove. Both sides of the inner cavity of the connecting ring 24 are symmetrically provided with conveying pipes 25 through through-holes. One conveying pipe 25 is used to pass in sewage containing oil stains, and the other conveying pipe 25 is used to pass in sodium hydroxide solution. When the inverted roller machine 26 above twists the shaft part of the top shell 23, it will drive the shaft sleeve 21 to rotate synchronously. However, because the connecting ring 24 is separated from the shaft part, the outer part of the top shell 23 is stationary and attached to the top of the separator 11.
[0073] Component 1 of the storage unit includes:
[0074] The top of the separator 11 is sleeved with the inner wall of the snap-on top shell 23, and the bottom of the outer surface of the separator 11 is fixedly connected to the suspension base 12.
[0075] The top end of the discharge pipe 13 is inserted into the axis at the bottom of the inner wall of the liquid separator 11 through a connector.
[0076] Two sealing components 5 are symmetrically arranged at the bottom of the inner wall of the liquid separator 11. When they are inserted into the adapter port 42 of the heat conduction plate 41, they can prevent oil-water mixed sewage from entering the lower area of the liquid separator 11 through the heat conduction plate 41.
[0077] Sealing component 5 includes:
[0078] The bottom of the outer surface of the container 51 is inserted into the bottom of the inner wall of the liquid separator 11, and the top of the inner cavity of the container 51 is uniformly provided with through openings.
[0079] The load cell 52 has load-bearing bars 53 evenly arranged on the top of its inner cavity. The top of the load-bearing bars 53 extends to the outside of the container housing 51 through a through-hole.
[0080] The inner detection plate 55 is inserted into the bottom of the inner wall of the container housing 51. The inner detection plate 55 is symmetrically provided with liquid sampling heads 56 on both sides, and the liquid sampling heads 56 extend to the outside of the container housing 51. The inner detection plate 55 detects the oil content in the liquid through the liquid sampling heads 56.
[0081] The upper surface of the conductive connecting plate 54 is fixedly connected to the lower surface of the load cell 52, and the lower surface of the conductive connecting plate 54 is fixedly connected to the upper surface of the inner detection plate 55. The bottom of the inner cavity of the load cell 52 is connected to the inside of the inner detection plate 55 through a control wire.
[0082] When cleaning the upper part of the inner wall of the separator 11 where oil stains are attached, heat transfer oil is first poured into the interior of the heat transfer plate shell 41 through the guide pipe 36 and the axial connecting pipe 35, causing the overall temperature of the heat transfer plate shell 41 to rise. Then, the traction top cylinder 32 drives the heat transfer plate shell 41 to rise, causing the heat transfer plate shell 41 to separate from the sealing component 5. The increased hydraulic pressure inside the heat transfer plate shell 41 with added heat transfer oil causes the middle part of the heat transfer ring 43 to expand towards the side that is in contact with the inner wall of the separator 11, thus contacting the inner wall of the separator 11. The separatory cylinder 11 is heated, and as the built-in modified plate 4 is lifted, the torsion sleeve 34 drives the shaft connecting pipe 35 and the built-in modified plate 4 to rotate. At this time, the heat-conducting ring 43 that is in contact with the inner wall of the separatory cylinder 11 scrapes the heated inner wall of the separatory cylinder 11 through the groove, thereby cleaning off the attached oil stains. After multiple cleaning operations, the built-in modified plate 4 is pulled out and the heat-conducting ring 43 in the middle is replaced to complete the maintenance work and ensure a good cleaning effect.
[0083] When the adapter port 42 of the heat-conducting plate shell 41 is connected to the top of the container shell 51, the oily wastewater is located at the top of the heat-conducting plate shell 41. Therefore, the hydraulic pressure will act on the upper surface of the heat-conducting plate shell 41 and the top of the container shell 51. At this time, the force-bearing pressure rod 53 presses the load cell 52 due to the hydraulic pressure, thereby measuring the actual amount of wastewater inside the liquid separator 11. After the amount of wastewater reaches the standard, the addition of wastewater is stopped for treatment.
[0084] During the discharge process, the water flows from top to bottom into the discharge pipe 13 along the adapter port 42. At this time, the water flows over the outer surface of the container shell 51. When it passes the sampling end 56, the inner detection plate 55 detects the water through the sampling end 56 to monitor the oil content inside the discharged water. If the oil content is high, the oil inside the sewage has not been effectively separated, and the discharged sewage needs to be retreated. The subsequent oil-water separation process should be strengthened, that is, the stirring time of the stirring rod 22 should be extended and the amount of alkaline solution added should be increased. If the oil content increases significantly, it means that the sewage in the lower layer has been discharged. At this time, the discharge pipe 13 is connected to the oil collection container for oil collection.
[0085] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. An oil-water separator for an industrial cleaning machine, comprising: Components (1); The liquid separation component (2) is used to stir and separate the oil and water in the sewage inside the holding component (1); An internal cleaning component (3) is provided in the middle of the inner wall of the holding component (1) for treating oil stains adhering to the inner wall of the holding component (1); The feature is that the internal cleaning component (3) includes: The top of the traction top plate (31) is fixedly connected to an external frame plate (14). The buffer container (33) is fixedly connected at the top and bottom of the outer surface of the traction top plate (31). The inner wall of the buffer container (33) is slidably connected to the axial connecting pipe (35), and the interior of the axial connecting pipe (35) is a hollow structure. The traction top cylinder (32) has a drainage pipe (36) at the axial center of its inner cavity. The top end of the drainage pipe (36) extends to the outside of the traction top cylinder (32) to drain external heat transfer oil into the heat transfer plate shell (41). The outer surface of the traction top cylinder (32) is engaged with the lower part of the inner cavity of the traction top plate (31), and the top end of the axial connecting pipe (35) is inserted into the bottom end of the drainage pipe (36). The traction top cylinder (32) drives the axial connecting pipe (35) and the heat transfer plate shell (41) to slide up and down through the rollers on the inner wall. Built-in modification plate (4), heat transfer oil is poured into the built-in modification plate (4) to clean the inner wall of the Shengna component (1); The built-in modification disk (4) includes: The heat-conducting plate shell (41) has symmetrically provided fitting ports (42) on both sides of the inner cavity of the heat-conducting plate shell (41), and the bottom end of the shaft connecting pipe (35) is inserted at the top of the inner cavity of the heat-conducting plate shell (41).
2. The oil-water separator for an industrial cleaning machine according to claim 1, characterized in that: The internal cleaning component (3) also includes: The upper surface of the torsion sleeve (34) is inserted into the bottom of the buffer container (33). The inner wall of the torsion sleeve (34) is rotatably connected to the outer surface of the shaft connecting pipe (35) through the wall-mounted roller. The torsion sleeve (34) is used to control the shaft connecting pipe (35) to rotate.
3. The oil-water separator for an industrial cleaning machine according to claim 2, characterized in that: The built-in modification panel (4) also includes: The inner pressure plate (44) consists of two pieces. The outer surface of the inner pressure plate (44) is fixedly connected to the inner wall of the heat transfer plate shell (41) through the adapter socket (42) to monitor the hydraulic pressure of the heat transfer oil inside the heat transfer plate shell (41). The heat-conducting ring (43) has its upper and lower sides fixedly connected to the side of the heat-conducting disk shell (41) through ring grooves, and the outer surface of the middle part of the heat-conducting ring (43) is uniformly provided with grooves.
4. The oil-water separator for an industrial cleaning machine according to claim 1, characterized in that: The liquid separation component (2) includes: A axial sleeve (21) is fitted with the outer surface of the axial connecting pipe (35) through its inner wall. A stirring rod (22) is uniformly arranged on the outer surface of the axial sleeve (21). The top shell (23) is fastened, and the top end of the axial sleeve (21) is inserted into the axial center of the inner wall of the top shell (23); The bottom of the inverted roller machine (26) is connected to the center of the shaft sleeve (21) on the upper surface by means of the attached roller (27), and the front and rear sides of the outer surface of the inverted roller machine (26) are symmetrically provided with stabilizing connecting plates. The end of the stabilizing connecting plate away from the inverted roller machine (26) is inserted into the upper surface of the snap-on top shell (23). The inner wall of the connecting ring sleeve (24) is rotatably connected to the outer surface of the snap-on top shell (23) through a ring groove. Both sides of the inner cavity of the connecting ring sleeve (24) are symmetrically provided with material conveying pipes (25) through through-holes.
5. The oil-water separator for an industrial cleaning machine according to claim 1, characterized in that: The holding component (1) includes: The top of the separator (11) is sleeved with the inner wall of the snap-on top shell (23), and the bottom of the outer surface of the separator (11) is fixedly connected to the suspension base (12). The top end of the discharge pipe (13) is inserted into the center of the bottom of the inner wall of the separator (11) through a connector; Two sealing components (5) are symmetrically arranged at the bottom of the inner wall of the liquid separator (11). When they are inserted into the adapter socket (42) of the heat conduction plate shell (41), they can prevent oil-water mixed sewage from entering the lower area of the liquid separator (11) through the heat conduction plate shell (41).
6. The oil-water separator for an industrial cleaning machine according to claim 5, characterized in that: The sealing component (5) includes: The bottom of the outer surface of the container (51) is inserted into the bottom of the inner wall of the liquid separator (11), and the top of the inner cavity of the container (51) is uniformly provided with through openings. The load cell (52) has a load-bearing rod (53) evenly arranged on the top of its inner cavity. The top of the load cell (53) extends to the outside of the container housing (51) through a through-hole. An inner detection plate (55) is inserted into the bottom of the inner wall of the container housing (51). A liquid sampling end (56) is symmetrically arranged on both sides of the inner detection plate (55), and the liquid sampling end (56) extends to the outside of the container housing (51). The inner detection plate (55) detects the oil content in the liquid through the liquid sampling end (56). The upper surface of the conductive connecting plate (54) is fixedly connected to the lower surface of the load cell (52), and the lower surface of the conductive connecting plate (54) is fixedly connected to the upper surface of the inner detection plate (55). The bottom of the inner cavity of the load cell (52) is connected to the interior of the inner detection plate (55) through a control wire.
Citation Information
Patent Citations
Oil-water separator for heat treatment water tank
CN204224293U
Oil-water separator of industrial cleaning machine
CN212655515U