Energy-saving oil dew separating tower

By combining the treatment mechanism and the stirring mechanism in the energy-saving oil dew separation tower, the problem of low oil pumping efficiency is solved, efficient filtration and pumping of oil is achieved, and the working efficiency and equipment applicability of the production line are improved.

CN223082313UActive Publication Date: 2025-07-11NUJIANG FUGUO IND DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202422340259.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-25
Publication Date
2025-07-11
Estimated Expiration
2034-09-25

AI Technical Summary

Technical Problem

During the oil pumping process of existing energy-saving oil dew separation towers, since the density and fluidity of the oil-water mixture are different from that of pure oil, the oil pumping efficiency is low and may bring in more water, so the oil cannot be accurately extracted.

Method used

The combination of the treatment mechanism and the stirring mechanism is adopted to ensure the anti-blocking function of the raw materials through the stirring mechanism. The treatment mechanism realizes continuous and efficient filtration and discharge, including the design of the box, inlet, discharge port, filter frame, oil pump and filter screen to ensure that the oil is evenly dispersed and filter impurities. The filtered oil is pumped to other containers or equipment by using the oil pump.

Benefits of technology

It improves oil pumping efficiency, reduces equipment downtime and maintenance frequency, reduces production costs, and enhances the applicability of equipment and the continuity of production lines.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the related technical field of oil-water separation, in particular to an energy-saving oil dew separating tower which comprises a bottom plate and a treatment mechanism, the treatment mechanism is arranged on one side of the surface of the bottom plate, and a stirring mechanism is arranged at one end of the treatment mechanism. According to the energy-saving oil dew separation tower, through the arrangement of the treatment mechanism, oil enters the box body from the feeding opening, after the oil is stirred in the box body, the oil floats upwards, water sinks, the oil passes through the filter frame, and the filter screen is arranged in the filter frame and is used for preliminarily filtering the oil, so that unqualified particles or impurities are intercepted; when the oil pump is started, the oil can be pumped into the second connecting pipe through the first connecting pipe, finally, the fluid oil can be further pumped into other containers or treatment equipment through the oil pump, the filter frame is fixed in the groove through the fixing frame, the filter frame is detachable, and the oil pump is convenient to use. And cleaning and maintenance are convenient.
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Description

Technical Field

[0001] The utility model relates to the technical field of oil-water separation, in particular to an energy-saving oil dew separation tower. Background Technique

[0002] Oil-water separation refers to the process of separating the mixed oil and water through physical, chemical or mechanical methods. This technology is commonly used in fields such as petroleum, chemical industry, and environmental protection, aiming to remove oil pollutants generated in industrial wastewater or production processes and reduce harm to the environment. Oil-water separation methods include gravity separation, centrifugal separation, air flotation separation, and membrane separation, etc. Oil-water separation usually uses a separation tower for separation operations. With the continuous development of technology, the requirements for the separation tower are also getting higher and higher. Therefore, there is a particular need for an energy-saving oil dew separation tower.

[0003] However, for the existing energy-saving oil dew separation tower, although it can effectively prevent the influence of sundries on separation, its oil pumping device floats on the oil-water mixture. The density and fluidity of the oil-water mixture are different from those of pure oil. Floating on it easily causes the equipment to be unable to accurately pump oil, resulting in a decrease in oil pumping efficiency and even possibly bringing in more water.

[0004] To solve the above problems, after retrieval, a patent with the publication number CN212954573U discloses a textile material rinsing device, which states that "add stirring and filtration before the original oil-water separation. Stirring can mix the oil and water, and filter out the impurities through a filter screen to improve the oil absorption efficiency. After filtration, the filter screen is taken out of the filter box for replacement and cleaning to prevent blockage. There is a floating plate and a heater in the oil suction box. There is an oil suction nozzle outside the floating plate that can suck the oil floating on the surface into the oil-water separator through an oil suction pump". Although it can effectively prevent the influence of sundries on separation, its oil pumping device floats on the oil-water mixture. The density and fluidity of the oil-water mixture are different from those of pure oil. Floating on it easily causes the equipment to be unable to accurately pump oil, resulting in a decrease in oil pumping efficiency and even possibly bringing in more water.

[0005] In view of this, in-depth research on the above problems has led to the generation of this case. Content of the Utility Model

[0006] The purpose of the utility model is to provide an energy-saving oil dew separation tower to solve the problem in the above background technique that for the existing energy-saving oil dew separation tower, although it can effectively prevent the influence of sundries on separation, its oil pumping device floats on the oil-water mixture. The density and fluidity of the oil-water mixture are different from those of pure oil. Floating on it easily causes the equipment to be unable to accurately pump oil, resulting in a decrease in oil pumping efficiency and even possibly bringing in more water.

[0007] To achieve the above object, the present utility model provides the following technical solutions: an energy-saving oil and dew separation tower, including a bottom plate and a processing mechanism. One side of the surface of the bottom plate is provided with a processing mechanism, and one end of the processing mechanism is provided with a stirring mechanism;

[0008] The processing mechanism includes a box body, a feed inlet, a discharge outlet, a first installation groove, a first connecting pipe, a second connecting pipe, a groove, a threaded groove, a fixing frame, a filter frame, bolts, a suction pump, tempered glass and a filter screen. One side of the surface of the bottom plate is fixedly connected with a box body. One side of the box body is provided with a feed inlet. One end of the box body is provided with a discharge outlet. One side of the surface of the box body is provided with a first installation groove. One side of the discharge outlet is connected with a first connecting pipe. The other side of the discharge outlet is connected with a second connecting pipe. One side of the first installation groove is provided with a groove. One side of the first installation groove is provided with a threaded groove. The surface of the first installation groove is fitted with a fixing frame. The inside of the groove is fitted with a filter frame. The inside of the threaded groove is threadedly connected with bolts. One side of the second connecting pipe is provided with a suction pump. The inside of the fixing frame is provided with tempered glass. The inside of the filter frame is provided with a filter screen.

[0009] Preferably, the first connecting pipe is arranged inside the box body, the second connecting pipe is arranged outside the box body, and the first connecting pipe is arranged above the filter screen.

[0010] Preferably, there are two groups of filter frames, and one side of the filter frame is fixedly connected with a fixing frame.

[0011] Preferably, there are eight groups of bolts, and the fixing frame is fixed inside the first installation groove by bolts.

[0012] The stirring mechanism preferably includes a second installation groove, a rotating groove, a motor, a first bevel gear set, a second bevel gear, a rotating rod, a fixing plate and fan blades. One side of the surface of the box body is provided with a second installation groove. One end of the second installation groove is provided with a rotating groove. The inside of the second installation groove is fitted with a motor. One side of the motor is connected with a first bevel gear set. The surface of the first bevel gear set is engaged with a second bevel gear. One side of the second bevel gear is connected with a rotating rod. The other side of the rotating rod is fitted with a fixing plate. The surface of the rotating rod is connected with fan blades.

[0013] Preferably, both the first bevel gear set and the second bevel gear are arranged inside the second installation groove, and the main body of the motor is installed on the box body.

[0014] Preferably, one side of the rotating rod is fitted inside the rotating groove. There are two groups of rotating rods in total, and the two groups of rotating rods are synchronously rotated through the motor, the first bevel gear set and the second bevel gear.

[0015] Preferably, the main body of the fixing plate is installed on the box body, and the fixing plate is arranged below the filter frame.

[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows: in this energy-saving oil dew separation tower, through the setting of the treatment mechanism and the stirring mechanism, the combination of the treatment mechanism and the stirring mechanism can achieve a continuous and efficient treatment process. The stirring mechanism ensures the anti-blocking function of the raw materials, while the treatment mechanism can filter and discharge the raw materials. The cooperation of the two improves the working efficiency of the entire production line. Therefore, the equipment can reduce the downtime and maintenance frequency, thereby reducing the maintenance cost in production. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a schematic side view of the external structure of the present utility model;

[0018] Figure 2 is a schematic exploded sectional view of the treatment mechanism of the present utility model;

[0019] Figure 3 is a schematic exploded sectional view of the stirring mechanism of the present utility model;

[0020] Figure 4 is the present utility model Figure 2 is a schematic enlarged view of part A in the present utility model;

[0021] Figure 5 is the present utility model Figure 3 is a schematic enlarged view of part B in the present utility model.

[0022] In the figure: 1, bottom plate; 2, treatment mechanism; 201, box body; 202, feed inlet; 203, discharge outlet; 204, first installation groove; 205, first connecting pipe; 206, second connecting pipe; 207, groove; 208, threaded groove; 209, fixed frame; 210, filter frame; 211, bolt; 212, oil pump; 213, toughened glass; 214, filter screen; 3, stirring mechanism; 301, second installation groove; 302, rotating groove; 303, motor; 304, first bevel gear set; 305, second bevel gear; 306, rotating rod; 307, fixing plate; 308, fan blade. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0023] The technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.

[0024] Please refer toFigures 1-5 , the present utility model provides a technical solution: an energy-saving oil-water separation tower, which includes a bottom plate 1 and a processing mechanism 2. A processing mechanism 2 is arranged on one side of the surface of the bottom plate 1, and a stirring mechanism 3 is arranged at one end of the processing mechanism 2;

[0025] The processing mechanism 2 includes a box body 201, a feed inlet 202, a discharge outlet 203, a first installation groove 204, a first connecting pipe 205, a second connecting pipe 206, a groove 207, a threaded groove 208, a fixed frame 209, a filter frame 210, a bolt 211, a fuel pump 212, tempered glass 213 and a filter screen 214. A box body 201 is fixedly connected to one side of the surface of the bottom plate 1. A feed inlet 202 is opened on one side of the box body 201. A discharge outlet 203 is opened at one end of the box body 201. A first installation groove 204 is opened on one side of the surface of the box body 201. A first connecting pipe 205 is connected to one side of the discharge outlet 203. A second connecting pipe 206 is connected to the other side of the discharge outlet 203. A groove 207 is opened on one side of the first installation groove 204. A threaded groove 208 is opened on one side of the first installation groove 204. A fixed frame 209 is fitted on the surface of the first installation groove 204. A filter frame 210 is fitted inside the groove 207. A bolt 211 is threadedly connected inside the threaded groove 208. A fuel pump 212 is installed on one side of the second connecting pipe 206. Tempered glass 213 is installed inside the fixed frame 209. A filter screen 214 is installed inside the filter frame 210. Through the settings of the box body 201, the feed inlet 202, the discharge outlet 203, the first installation groove 204, the first connecting pipe 205, the second connecting pipe 206, the groove 207, the threaded groove 208, the fixed frame 209, the filter frame 210, the bolt 211, the fuel pump 212, the tempered glass 213 and the filter screen 214, the oil enters the inside of the box body 201 from the feed inlet 202. Inside the box body 201, after the oil is stirred and then left standing for a period of time, at this time, the oil will float and the water will sink. After passing through the filter frame 210, the filter frame 210 is provided with a filter screen 214 to preliminarily filter the oil, intercept unqualified particles or impurities, and ensure the purity of the discharged material. The filtered oil flows out through the discharge outlet 203. At this time, the fuel pump 212 is started, and the oil will be pumped into the second connecting pipe 206 through the first connecting pipe 205. Finally, through the fuel pump 212, it can help pump the fluid oil to other containers or processing equipment. The filter frame 210 is fixed inside the groove 207 through the fixed frame 209, and the filter frame 210 is detachable, which is convenient for cleaning and maintenance.

[0026] Furthermore, the first connecting pipe 205 is arranged inside the box body 201, and the second connecting pipe 206 is arranged outside the box body 201. The first connecting pipe 205 is arranged above the filter screen 214. Through the arrangement of the first connecting pipe 205 and the second connecting pipe 206, the first connecting pipe 205 is located inside the box body 201 and is arranged above the filter screen 214. When the liquid oil after stirring and filtering reaches above the filter screen 214, the first connecting pipe 205 plays a role in directly discharging the filtered liquid. This means that after the oil passes through the filter screen 214, the pure liquid without impurities or particles will directly flow out of the box body 201 through the first connecting pipe 205, so as to be used for the next processing or collection. At the same time, because the position of the first connecting pipe 205 is above the filter screen 214, it ensures that the filtered liquid can be discharged more quickly and will not accumulate in the area of the filter screen 214, reducing the residence time of the oil in the filter frame 210. The second connecting pipe 206 is located outside the box body 201 and is connected to the oil pump 212. Its function is to further pump out the filtered liquid oil through the oil pump 212. This is usually applicable to scenarios where the liquid needs to be transported over a long distance or a higher pressure output is required. Compared with the direct discharging of the first connecting pipe 205, the second connecting pipe 206 can transport the filtered liquid to other devices or containers by means of the power of the oil pump 212, which increases the applicability of the equipment and enables it to adapt to more complex production lines or processing processes.

[0027] Furthermore, there are two groups of filter frames 210. One side of the filter frame 210 is fixedly connected with a fixed frame 209. Through the arrangement of the filter frame 210, the main function of the filter frame 210 is to provide a stable support structure for the filter screen 214. The filter screen 214 is the core component for filtering liquid oil, and the filter frame 210 fixes the filter screen 214 therein to ensure that the filter screen 214 will not shift or deform during the filtering process, thereby ensuring the filtering efficiency and effect. The structural design of the filter frame 210 allows liquid to pass through, but intercepts particles, impurities or other unqualified substances in the oil. When the oil enters the filter frame 210 after stirring, the filter screen 214 will filter out larger particles or insoluble impurities to ensure the purity of the discharged liquid. The existence of the filter frame 210 not only ensures the stability of filtering, but also facilitates the replacement of filter screens 214 with different densities according to needs.

[0028] Further, eight sets of bolts 211 are provided. The fixing frame 209 is fixed inside the first installation groove 204 through the bolts 211. Through the arrangement of the bolts 211, the main function of the bolts 211 is to firmly fix the fixing frame 209 inside the first installation groove 204 and stabilize the filter frame 210 in the fixing frame 209. The bolts 211 are tightly connected to the fixing frame 209 through the thread grooves 208, ensuring that the filter frame 210 will not shift or loosen during the operation of the equipment, thus guaranteeing the stability and continuity of the filtration process. Due to the detachable feature of the bolts 211, maintenance personnel can easily remove the fixing frame 209 by loosening the bolts 211, so as to conveniently take out or replace the filter frame 210 and the filter screen 214. This makes the cleaning, maintenance and replacement of parts of the equipment more convenient and fast, reducing the maintenance time and operation difficulty.

[0029] Further, the stirring mechanism 3 includes a second installation groove 301, a rotating groove 302, a motor 303, a first bevel gear set 304, a second bevel gear 305, a rotating rod 306, a fixing plate 307 and a fan blade 308. A second installation groove 301 is opened on one side of the surface of the box body 201. A rotating groove 302 is opened at one end of the second installation groove 301. The motor 303 is embedded inside the second installation groove 301. A first bevel gear set 304 is connected to one side of the motor 303. A second bevel gear 305 is meshed with the surface of the first bevel gear set 304. A rotating rod 306 is connected to one side of the second bevel gear 305. A fixing plate 307 is embedded on the other side of the rotating rod 306. A fan blade 308 is connected to the surface of the rotating rod 306. Through the arrangement of the second installation groove 301, the rotating groove 302, the motor 303, the first bevel gear set 304, the second bevel gear 305, the rotating rod 306, the fixing plate 307 and the fan blade 308, the oil enters the inside of the box body 201 from the feed port 202. Inside the box body 201, the motor 303 is started, driving the first bevel gear set 304 and the second bevel gear 305 to mesh, so that the rotating rod 306 starts to rotate, and the fan blade 308 connected to the rotating rod 306 rotates accordingly, playing a role in stirring the oil. The stirring mechanism 3 ensures that the oil is evenly dispersed and prevents the oil from depositing or adhering to the bottom of the box body 201.

[0030] Furthermore, the first bevel gear set 304 and the second bevel gear 305 are both installed inside the second installation groove 301, and the main body of the motor 303 is installed on the box body 201. Through the arrangement of the first bevel gear set 304 and the second bevel gear 305, the main function of the first bevel gear set 304 and the second bevel gear 305 is to transmit power. When the motor 303 is started, it transmits the rotational motion of the motor 303 to the second bevel gear 305 by rotating the first bevel gear set 304. Since the two are meshed with each other, the rotation of the first bevel gear set 304 directly drives the second bevel gear set 305 to rotate. The wheel 305 rotates, thereby realizing the transmission of power from the motor 303 to the downstream components. At the same time, the design of the bevel gear is usually used to change the rotation direction of the transmission shaft. In this mechanism, the motor 303 transmits power to the second bevel gear 305 through the rotation of the first bevel gear set 304, and then drives the rotating rod 306 to rotate. Therefore, the engagement of the first bevel gear set 304 and the second bevel gear 305 realizes the change of rotation direction, and converts the lateral rotation of the motor 303 into the longitudinal rotation of the rotating rod 306, so as to better drive the downstream components such as the fan blades 308 to perform stirring work.

[0031] Furthermore, one side of the rotating rod 306 is embedded in the interior of the rotating groove 302, and there are two groups of rotating rods 306. The two groups of rotating rods 306 are synchronously rotated by the motor 303, the first bevel gear set 304 and the second bevel gear 305. Through the setting of the rotating rod 306, the main function of the rotating rod 306 is to transmit rotational motion. When the second bevel gear 305 rotates, it drives the rotating rod 306 connected thereto to rotate. Through the rotational motion of the rotating rod 306, the power is transmitted to the fan blade 308, thereby realizing the stirring function. The rotating rod 306 is a key transmission component from the motor 303 to the stirring mechanism 3, ensuring the normal operation of the stirring mechanism 3. At the same time, one end of the rotating rod 306 is connected to the fixed plate 307, and the other end is connected to the fan blade 308. Through the rotation of the rotating rod 306, the fan blade 308 also rotates accordingly. The rotation of the rotating rod 306 can directly drive the movement of the fan blade 308, thereby producing the effect of stirring the liquid, ensuring that the oil in the box 201 is fully mixed, and preventing oil deposition.

[0032] Further, the main body of the fixing plate 307 is installed on the box body 201. The fixing plate 307 is arranged below the filter frame 210. By setting the fixing plate 307, the main function of the fixing plate 307 is to support and fix the fan blade 308. By firmly connecting the fan blade 308 to the rotating rod 306, the fixing plate 307 ensures that the fan blade 308 can maintain a stable state during rotation, without displacement or shaking, ensuring the smooth progress of the stirring process. At the same time, the fixing plate 307 is connected to the rotating rod 306. It not only fixes the fan blade 308, but also provides additional support and stability for the rotating rod 306. Through the connection of the fixing plate 307, the rotating rod 306 can maintain a smooth movement during rotation, reducing the deviation caused by vibration or stress, ensuring that the equipment can still operate efficiently under high load conditions.

[0033] Working principle: The oil material enters the interior of the box body 201 from the feed port 202. In the box body 201, the motor 303 starts, driving the first bevel gear set 304 and the second bevel gear 305 to mesh, so that the rotating rod 306 starts to rotate. The fan blade 308 connected to the rotating rod 306 rotates accordingly, playing a role in stirring the oil material. The stirring mechanism 3 ensures that the oil material is evenly dispersed and prevents the oil material from depositing or adhering to the bottom of the box body 201. After the oil material is stirred and left to stand for a period of time, at this time, the oil will float and the water will sink. After passing through the filter frame 210, a filter screen 214 is provided in the filter frame 210 to preliminarily filter the oil material, intercepting unqualified particles or impurities to ensure the purity of the discharged material. The filtered oil material flows out through the discharge port 203. At this time, the oil pump 212 is started, and the oil material will be pumped into the second connecting pipe 206 through the first connecting pipe 205. Finally, through the oil pump 212, it can help pump the fluid oil material further into other containers or processing equipment. The filter frame 210 is fixed inside the groove 207 through the fixing frame 209, and the filter frame 210 is detachable, facilitating cleaning and maintenance.

[0034] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. Energy-saving oil dew separation tower, including a bottom plate (1) and a treatment mechanism (2), characterized in that: On one side of the surface of the bottom plate (1), a processing mechanism (2) is provided, and a stirring mechanism (3) is provided at one end of the processing mechanism (2). The processing mechanism (2) includes a box body (201), a feed inlet (202), a discharge outlet (203), a first installation groove (204), a first connecting pipe (205), a second connecting pipe (206), a groove (207), a threaded groove (208), a fixed frame (209), a filter frame (210), bolts (211), an oil pump (212), toughened glass (213), and a filter screen (214). On one side of the surface of the bottom plate (1), the box body (201) is fixedly connected. On one side of the box body (201), the feed inlet (202) is opened. At one end of the box body (201), the discharge outlet (203) is opened. On one side of the surface of the box body (201), the first installation groove (204) is opened. On one side of the discharge outlet (203), the first connecting pipe (205) is connected. On the other side of the discharge outlet (203), the second connecting pipe (206) is connected. On one side of the first installation groove (204), the groove (207) is opened. On one side of the first installation groove (204), the threaded groove (208) is opened. On the surface of the first installation groove (204), the fixed frame (209) is fitted. Inside the groove (207), the filter frame (210) is fitted. Inside the threaded groove (208), the bolts (211) are threadedly connected. On one side of the second connecting pipe (206), the oil pump (212) is installed. Inside the fixed frame (209), the toughened glass (213) is installed. Inside the filter frame (210), the filter screen (214) is installed.

2. The energy-saving oil dew separation tower according to claim 1, characterized in that: The first connecting pipe (205) is arranged inside the box body (201), the second connecting pipe (206) is arranged outside the box body (201), and the first connecting pipe (205) is arranged above the filter screen (214).

3. The energy-saving oil dew separation tower according to claim 1, characterized in that: There are two groups of the filter frames (210), and one side of the filter frame (210) is fixedly connected to the fixed frame (209).

4. The energy-saving oil dew separation tower according to claim 1, characterized in that: There are eight groups of the bolts (211), and the fixed frame (209) is fixed inside the first installation groove (204) through the bolts (211).

5. The energy-saving oil dew separation tower according to claim 1, characterized in that: The stirring mechanism (3) includes a second installation groove (301), a rotating groove (302), a motor (303), a first bevel gear set (304), a second bevel gear (305), a rotating rod (306), a fixing plate (307) and a fan blade (308). A second installation groove (301) is formed on one side of the surface of the box body (201). A rotating groove (302) is formed at one end of the second installation groove (301). A motor (303) is fitted inside the second installation groove (301). A first bevel gear set (304) is connected to one side of the motor (303). A second bevel gear (305) is meshed on the surface of the first bevel gear set (304). A rotating rod (306) is connected to one side of the second bevel gear (305). A fixing plate (307) is fitted on the other side of the rotating rod (306). A fan blade (308) is connected to the surface of the rotating rod (306).

6. The energy-saving oil dew separation column according to claim 5, wherein: Both the first bevel gear set (304) and the second bevel gear (305) are installed inside the second installation groove (301). The main body of the motor (303) is installed on the box body (201).

7. The energy-saving oil dew separation column according to claim 5, wherein: One side of the rotating rod (306) is fitted inside the rotating groove (302). There are two groups of the rotating rods (306). The two groups of rotating rods (306) achieve synchronous rotation through the motor (303), the first bevel gear set (304) and the second bevel gear (305).

8. The energy-saving oil dew separation tower according to claim 5, characterized in that: The main body of the fixing plate (307) is installed on the box body (201). The fixing plate (307) is arranged below the filter frame (210).

Citation Information

Patent Citations

  • Oil-water separation device for separation tower

    CN212954573U