A lubricating oil viscosity debugging device

Through the design of lubricating oil viscosity debugging equipment, the problems of low lubricating oil viscosity adjustment accuracy and uneven mixing are solved, precise adjustment and uniform mixing of lubricating oil are achieved, continuous production needs are met, and real-time monitoring and feedback adjustment are provided.

CN120437880BActive Publication Date: 2025-09-30LIANYUNGANG FANMEI LUBRICATING OIL CO LTD
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Patent Information

Application Number
CN202510961463.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-14
Publication Date
2025-09-30
Estimated Expiration
2045-07-14

AI Technical Summary

Technical Problem

Existing lubricant viscosity adjustment methods have problems such as low adjustment accuracy, uneven mixing, long time consumption, difficulty in meeting continuous production needs, and lack of real-time monitoring and feedback adjustment.

Method used

A lubricating oil viscosity debugging device is used, including components such as a processing tank, a stirring rod, a feeding box, a slide, a motor, a pulley and a one-way valve. The motor drives the rotating rod to drive the stirring rod and the driving disk to achieve intermittent feeding and quantitative addition of the viscosity regulator, and is combined with a rotational viscometer and a display for real-time monitoring.

Benefits of technology

It achieves precise adjustment and uniform mixing of lubricating oil viscosity, improves production efficiency, meets continuous production needs, and provides real-time viscosity monitoring and feedback adjustment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of lubricating oil and provides a lubricating oil viscosity debugging device, comprising: a processing tank and two slide troughs, wherein a support bar is fixedly installed on one side of the processing tank, a motor is fixedly installed on one side of the support bar, the output end of the motor is fixedly connected to a rotating rod, the top of the rotating rod is connected to the bottom of the support bar through a bearing. The outer surface of the rotating rod is provided with a belt second through a pulley movable sleeve, and one end of the belt second is provided with a stirring rod through a pulley movable sleeve, and the outer surface of the stirring rod is fixedly connected with a plurality of stirring blades. In the embodiment of the present invention, when the viscosity regulator in the feeding box is not needed, the moving bar is away from the driving disk, the driving disk will not contact the moving bar and will not drive the moving bar to move. The material blocking block can block the discharge when it is located again just below the discharge port under the limitation of the limiting telescopic rod and spring 1. Whenever the driving disk rotates one circle, the material blocking block will be driven to move, thereby realizing intermittent material unloading.
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Description

Technical Field

[0001] The present invention relates to the technical field of lubricating oil, in particular to a lubricating oil viscosity debugging device. Background Art

[0002] During the production and use of lubricants, viscosity is a key indicator of their lubrication performance. Different mechanical equipment has varying viscosity requirements for lubricants. For example, high-load gears require high-viscosity lubricants to reduce metal-to-metal wear, while precision hydraulic systems require low-viscosity oils to ensure fluidity. Therefore, in practical applications, it is often necessary to adjust the viscosity of the lubricant according to the operating conditions to meet the lubrication needs of specific equipment.

[0003] Traditional methods for regulating lubricant viscosity typically involve manually adding viscosity modifiers (such as thickeners or diluents) and mechanically stirring the mixture. However, this method presents the following challenges: Low adjustment accuracy: Manual addition makes it difficult to precisely control the amount of modifier, which can easily lead to substandard viscosity or uneven mixing. Manual operation also requires time-consuming stirring and testing, making it difficult to meet the demands of continuous production. Static mixing can lead to localized concentration unevenness, impacting the long-term performance of the lubricant. The lack of real-time viscosity monitoring and feedback adjustment makes intelligent control difficult. Summary of the Invention

[0004] The present invention aims to address the existing problems of low adjustment precision: manual addition makes it difficult to precisely control the amount of regulator, which can easily lead to substandard viscosity or uneven mixing. Manual operation also requires time-consuming stirring and testing processes, making it difficult to meet the needs of continuous production. Static mixing can lead to localized concentration unevenness, affecting the long-term performance of the lubricant. The lack of real-time viscosity monitoring and feedback adjustment makes intelligent control difficult.

[0005] In order to achieve the above-mentioned purpose, the present invention adopts the following technical scheme: a lubricating oil viscosity debugging device, comprising: a processing tank and two slide troughs, a support bar is fixedly installed on one side of the processing tank, a motor is fixedly installed on one side of the support bar, the output end of the motor is fixedly connected to a rotating rod, the top of the rotating rod is connected to the bottom of the support bar through a bearing, the outer surface of the rotating rod is provided with a belt 2 through a pulley movable sleeve, one end of the belt 2 is provided with a stirring rod through a pulley movable sleeve, the outer surface of the stirring rod is fixedly connected with a plurality of stirring blades, a discharge pipe is fixedly embedded in the bottom of the processing tank, a one-way valve is provided inside the discharge pipe, and a reciprocating screw is fixedly installed at the bottom end of the stirring rod.

[0006] The technical effect of adopting the above-mentioned further scheme is: pour the lubricating oil into the interior of the processing tank, and then pour the viscosity regulator into the interior of the feeding box, and then start the motor through an external power supply. At this time, the motor drives the rotating rod to rotate, and the rotating rod drives belt two to rotate through the pulley. At this time, belt two drives the stirring rod through the pulley, and the stirring rod drives the stirring blades on its outer surface to rotate. At this time, the stirring rod stirs the lubricating oil, and rotates the threaded rod to push the movable bar to move inside the two slide grooves toward the driving disk. When the motor is started, it drives the rotating rod to rotate, and the rotating rod drives belt one to move through the pulley at the same time. Belt one drives the driving disk to rotate through the pulley. At this time, the driving disk drives the protrusion to move horizontally in the direction of the limiting telescopic rod and spring one.

[0007] As a preferred embodiment, the processing tank is fixedly connected to a limiting rod near the bottom of the reciprocating screw, and a lifting block is movably sleeved on the outer surface of the limiting rod and the reciprocating screw, and one side of the lifting block is fixedly connected to a U-shaped block, and a vertical hole is opened on the side of the discharge pipe close to the reciprocating screw, and the U-shaped block is movably embedded in the inside of the vertical hole, and one side of the U-shaped block is rotatably connected to a pushing round block through a rotating rod, and the top of the U-shaped block is fixedly connected to a square block, and the square block is located directly above the pushing round block.

[0008] The technical effect of adopting the above-mentioned further scheme is: when the stirring rod rotates, the reciprocating screw is driven to rotate at the same time, and the lifting block slides back and forth up and down on the outer surface of the reciprocating screw under the limit of the limit rod, and the lifting block drives the U-shaped block to move at the same time. When the U-shaped block drives the pushing round block to move, when the U-shaped block moves upward, the pushing round block is 90 degrees to the U-shaped block. When the U-shaped block moves downward, the pushing round block and the U-shaped block are parallel under the limit of the square block, which can push the lubricating oil inside the discharge pipe downward, thereby increasing the discharge speed.

[0009] As a preferred embodiment, the top of the support bar is fixedly connected to a feeding box, the bottom of the inner wall of the feeding box is provided with a discharge port, the bottom of the feeding box near the discharge port is fixedly connected to a stopper, a limiting telescopic rod is fixedly installed on one side of the feeding box near its bottom, a spring 1 is fixedly installed on one side of the feeding box near its bottom, a rectangular block is fixedly installed on the spring 1 and one end of the limiting telescopic rod, one of the slide grooves is provided on one side of the rectangular block, and a moving bar is slidably connected inside the two slide grooves.

[0010] The material stop block is again located below the discharge port under the limit of the limiting telescopic rod and spring 1, which can block its discharge. Every time the driving disk rotates one circle, the material stop block is driven to move, thereby realizing intermittent material discharge.

[0011] As a preferred embodiment, a protrusion is fixedly connected to the outer surface of the moving bar, one end of the moving bar is slidably connected to a stop block through another slide groove, a threaded rod is movably embedded in one side of the stop block, one end of the threaded rod is connected to one side of the moving bar through a bearing, and the stop block slides just below the discharge port.

[0012] The technical effect of adopting the above-mentioned further scheme is: rotating the threaded rod to drive the movable bar to move inside the slide groove, so that the protrusion on the movable bar can be close to the driving disk or away from the driving disk. When the viscosity regulator inside the feeding box needs to be added, the protrusion can be brought close to the driving disk so that the driving disk contacts the surface of the protrusion.

[0013] As a preferred embodiment, a short rod is installed on the side of the processing tank close to the feed pipe, and a discharge inclined plate is fixedly installed on the top of the short rod. The discharge inclined plate is located directly below the discharge port, and an electric push rod is fixedly installed on one side of the processing tank, and one end of the electric push rod is fixedly connected to a push plug.

[0014] The technical effect of adopting the above further solution is that the intermittently discharged viscosity regulator enters the interior of the short rod through the discharge inclined plate, thereby conveying the viscosity regulator.

[0015] As a preferred embodiment, a limited long rod is fixedly connected to one side of the processing tank close to the electric push rod, a feed pipe is fixedly embedded in the inner wall of the processing tank, the push plug slides inside the feed pipe, and a plurality of short rods are fixedly installed on the inner wall of the processing tank close to the feed pipe, and a movable disk is slidably connected to the outer surfaces of the plurality of short rods.

[0016] The technical effect of adopting the above-mentioned further scheme is: the electric push rod is started by an external power supply, and at this time the electric push rod pushes the pushing plug to slide on the outer surface of the limiting long rod. At this time, the pushing plug pushes the viscosity regulator inside the feed pipe to move toward the interior of the processing tank. At this time, the pushing plug is located below the pipe when pushed, so that the viscosity regulator inside the short rod will not flow out from the inside of the pipe to the inside of the feed pipe. When the pushing plug pushes the viscosity regulator to the movable disk, the movable disk slides on the outer surface of the short rod, and at this time the viscosity regulator enters the interior of the processing tank.

[0017] As a preferred embodiment, a material blocking plug is fixedly connected to one side of the movable disk, and the material blocking plug is movably embedded in the inside of the feed pipe. The size of the material blocking plug matches the inner diameter of the feed pipe. A spring 2 is fixedly installed on the side of the movable disk away from the material blocking plug, and one end of the spring 2 is fixedly connected to an X-shaped bar, and the X-shaped bar is fixedly connected to one side of multiple short rods. A rotational viscometer is fixedly installed on the inner wall of the processing tank, and a display is fixedly installed on the side of the processing tank near its top, and the display is electrically connected to the rotational viscometer. The outer surface of the rotating rod is provided with a belt 1 through a pulley movable sleeve, and one end of the belt 1 is provided with a driving disk through a pulley movable sleeve.

[0018] The technical effect of adopting the above-mentioned further scheme is: when the push plug moves in the direction of the electric push rod, the movable disk slides on the outer surface of the short rod under the limiting action of spring 2, and the material blocking plug is embedded in the inside of the feed pipe to block it. When the push plug moves and is not located under the tube at the bottom of the short rod, the viscosity regulator inside it enters the inside of the feed pipe again due to the action of gravity.

[0019] Compared with the prior art, the advantages and positive effects of the present invention are:

[0020] When the material regulating device is started, the gear wheel is rotated, and the gear wheel is moved along the top of the gear wheel shaft, and the gear wheel is moved along the top of the gear wheel shaft, so that the gear wheel shaft can move along the gear wheel shaft, thereby stopping the material from being discharged.

[0021] 2. In the embodiment of the present invention, after the viscosity regulator enters the interior of the short rod, it enters the interior of the feed pipe under the action of gravity through the tube at the bottom, and the electric push rod is started by an external power supply. At this time, the electric push rod pushes the pushing plug to slide on the outer surface of the limiting long rod. At this time, the pushing plug pushes the viscosity regulator inside the feed pipe to move toward the interior of the processing tank. At this time, the pushing plug is located below the tube when pushed, so that the viscosity regulator inside the short rod will not flow out of the tube into the interior of the feed pipe. When the pushing plug pushes the viscosity regulator to the movable disk, the movable disk slides on the outer surface of the short rod, and the viscosity regulator enters the interior of the processing tank. When the pushing plug moves toward the direction of the electric push rod, the movable disk slides on the outer surface of the short rod under the limiting action of the second spring, and the material blocking plug is embedded in the interior of the feed pipe to block it. When the pushing plug moves, it is no longer located below the tube at the bottom of the short rod, and the viscosity regulator inside it enters the interior of the feed pipe again due to the action of gravity. After the viscosity regulator enters the interior of the processing tank, the viscosity of the lubricating oil inside it can be adjusted.

[0022] 3. In the embodiment of the present invention, the one-way valve is rotated to discharge the lubricating oil inside the processing tank from the discharge pipe. At this time, when the stirring rod rotates, the reciprocating screw is also driven to rotate. The lifting block slides back and forth on the outer surface of the reciprocating screw under the limit of the limit rod. The lifting block drives the U-shaped block to move at the same time. When the U-shaped block drives the pushing round block to move, when the U-shaped block moves upward, the pushing round block and the U-shaped block are 90 degrees. When the U-shaped block moves downward, the pushing round block and the U-shaped block are parallel under the limit of the square block, which can push the lubricating oil inside the discharge pipe downward, thereby increasing the discharge speed. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 A schematic diagram of the three-dimensional structure of a lubricating oil viscosity debugging device provided by the present invention;

[0024] Figure 2 A side structural diagram of a lubricating oil viscosity debugging device provided by the present invention;

[0025] Figure 3 A schematic diagram of the bottom structure of a feeding box of a lubricating oil viscosity debugging device provided by the present invention;

[0026] Figure 4 A schematic structural diagram of a material stopper at a lubricating oil viscosity debugging device provided by the present invention;

[0027] Figure 5 A schematic diagram of the rectangular block structure of a lubricating oil viscosity debugging device provided by the present invention;

[0028] Figure 6A schematic diagram of the internal structure of a feed pipe of a lubricating oil viscosity debugging device provided by the present invention;

[0029] Figure 7 A schematic diagram of the internal structure of a discharge pipe of a lubricating oil viscosity debugging device provided by the present invention;

[0030] Figure 8 A schematic diagram of the structure of a vertical hole of a lubricating oil viscosity debugging device provided by the present invention;

[0031] Figure 9 This is a structural schematic diagram of the pushing block of a lubricating oil viscosity debugging device provided by the present invention.

[0032] Legend:

[0033] 101. Processing tank; 102. Stirring rod; 103. Stirring blade; 104. Feeding box; 105. Discharge port; 106. Telescopic limit rod; 107. Spring 1; 108. Moving bar; 109. Bump; 110. Driving plate; 111. Support bar; 112. Motor; 113. Belt 1; 114. Stop block; 115. Threaded rod; 1151. Stop block; 116. Slide; 117. Rectangular block; 118. Electric push rod; 119. Long limit rod; 1 20. Push plug; 121. Feed pipe; 122. Short rod; 123. Moving disk; 124. Spring 2; 1241. X-shaped bar; 125. Material stopper; 126. Belt 2; 1261. Rotational viscometer; 127. Display; 1271. Rotating rod; 128. Discharge pipe; 129. One-way valve; 130. Reciprocating screw; 131. Limit rod; 132. Lifting block; 133. Vertical hole; 134. U-shaped block; 135. Pushing round block; 136. Square block. DETAILED DESCRIPTION

[0034] The following will provide a clear and complete description of the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0035] See also Figures 1 to 9, this embodiment provides a technical solution: a lubricating oil viscosity debugging device, comprising: a processing tank 101 and two slide grooves 116, a support bar 111 is fixedly installed on one side of the processing tank 101, a motor 112 is fixedly installed on one side of the support bar 111, the output end of the motor 112 is fixedly connected to a rotating rod 1271, the top of the rotating rod 1271 is connected to the bottom of the support bar 111 through a bearing, the outer surface of the rotating rod 1271 is provided with a belt 2 126 through a pulley movable sleeve, one end of the belt 2 126 is provided with a stirring rod 102 through a pulley movable sleeve, the outer surface of the stirring rod 102 is fixedly connected with a plurality of stirring blades 103, a discharge pipe 128 is fixedly embedded in the bottom of the processing tank 101, a one-way valve 129 is provided inside the discharge pipe 128, and a reciprocating screw rod 130 is fixedly installed at the bottom end of the stirring rod 102.

[0036] When in use, pour the lubricating oil into the interior of the processing tank 101, and then pour the viscosity regulator into the interior of the feeding box 104, and then start the motor 112 through an external power supply. At this time, the motor 112 drives the rotating rod 1271 to rotate, and the rotating rod 1271 drives the belt 126 to rotate through the pulley. At this time, the belt 126 drives the stirring rod 102 through the pulley, and the stirring rod 102 drives the stirring blade 103 on its outer surface to rotate. At this time, the stirring rod 102 stirs the lubricating oil, and rotates the threaded rod 115 to push the movable bar 108 to move in the direction of the driving disk 110 inside the two slide grooves 116. When the motor 112 is started, it drives the rotating rod 1271 to rotate, and the rotating rod 1271 simultaneously drives the belt 1 113 to move through the pulley, and the belt 1 113 drives the driving disk 110 to rotate through the pulley. At this time, the driving disk 110 drives the protrusion 109 to move horizontally in the direction of the limiting telescopic rod 106 and the spring 107.

[0037] like Figures 1 to 9As shown, in one embodiment, the processing tank 101 is fixedly connected to a limiting rod 131 near the bottom of the reciprocating screw rod 130, and a lifting block 132 is movably sleeved on the outer surface of the limiting rod 131 and the reciprocating screw rod 130. One side of the lifting block 132 is fixedly connected to a U-shaped block 134, and a vertical hole 133 is opened on the side of the discharge pipe 128 near the reciprocating screw rod 130. The U-shaped block 134 is movably embedded in the interior of the vertical hole 133. One side of the U-shaped block 134 is rotatably connected to a pushing round block 135 through a rotating rod. The top of the U-shaped block 134 is fixedly connected to a square block 136, and the square block 136 is located directly above the pushing round block 135. When When the stirring rod 102 rotates, it also drives the reciprocating screw rod 130 to rotate. The lifting block 132 slides back and forth on the outer surface of the reciprocating screw rod 130 under the limit of the limit rod 131. The lifting block 132 drives the U-shaped block 134 to move at the same time. When the U-shaped block 134 drives the pushing round block 135 to move, when the U-shaped block 134 moves upward, the pushing round block 135 and the U-shaped block 134 are at 90 degrees. When the U-shaped block 134 moves downward, the pushing round block 135 and the U-shaped block 134 are parallel under the limit of the square block 136, which can push the lubricating oil inside the discharge pipe 128 downward, thereby increasing its discharge speed.

[0038] like Figures 1 to 9 As shown, in one embodiment, the top of the support bar 111 is fixedly connected to the feeding box 104, and a discharge port 105 is provided at the bottom of the inner wall of the feeding box 104. A stopper 1151 is fixedly connected to the bottom of the feeding box 104 near the discharge port 105. A limiting telescopic rod 106 is fixedly installed on one side of the feeding box 104 near its bottom, and a spring 107 is fixedly installed on one side of the feeding box 104 near its bottom. A rectangular block 117 is fixedly installed on one end of the spring 107 and the limiting telescopic rod 106, one of which is provided on one side of the rectangular block 117. A moving bar 108 is slidably connected to the inside of the two sliding grooves 116. The moving bar 108 drives the stopper 114 to move at the bottom of the discharge port 105. After the movement, the viscosity regulator in the feeding box 104 falls out through the discharge port 105. The material stopper 114 is again located directly below the discharge port 105 under the limitation of the limiting telescopic rod 106 and the spring 107, and can block its discharge. Whenever the driving disk 110 rotates one circle, the material stopper 114 is driven to move, and intermittent material discharge can be achieved.

[0039] like Figures 1 to 9 As shown, in one embodiment, a protrusion 109 is fixedly connected to the outer surface of the moving bar 108, and one end of the moving bar 108 is slidably connected to a stop block 114 through another slide groove 116. A threaded rod 115 is movably embedded in one side of the stop block 114, and one end of the threaded rod 115 is connected to one side of the moving bar 108 through a bearing. The stop block 114 slides just below the discharge port 105, and the threaded rod 115 is rotated to drive the moving bar 108 to move inside the slide groove 116, so that the protrusion 109 on the moving bar 108 can be close to the driving disk 110 or away from the driving disk 110. When the viscosity regulator inside the feeding box 104 is needed, the protrusion 109 can be brought close to the driving disk 110, so that the driving disk 110 contacts the surface of the protrusion 109.

[0040] like Figures 1 to 9 As shown, in one embodiment, a short rod 122 is installed on one side of the processing tank 101 close to the feed pipe 121, and a discharge inclined plate is fixedly installed on the top of the short rod 122, and the discharge inclined plate is located directly below the discharge port 105. An electric push rod 118 is fixedly installed on one side of the processing tank 101, and one end of the electric push rod 118 is fixedly connected to a push plug 120. The intermittently discharged viscosity regulator enters the interior of the short rod 122 through the discharge inclined plate to transport the viscosity regulator.

[0041] like Figures 1 to 9 As shown, in one embodiment, a limited long rod 119 is fixedly connected to one side of the processing tank 101 near the electric push rod 118, a feed pipe 121 is fixedly embedded in the inner wall of the processing tank 101, and a push plug 120 slides inside the feed pipe 121. A plurality of short rods 122 are fixedly installed on the inner wall of the processing tank 101 near the feed pipe 121, and a movable disk 123 is slidably connected to the outer surface of the plurality of short rods 122. The electric push rod 118 is started by an external power supply, and at this time the electric push rod 118 pushes the push plug 120 The push plug 120 slides on the outer surface of the limiting long rod 119, and at this time pushes the viscosity regulator inside the feed pipe 121 to move toward the interior of the processing tank 101. At this time, the push plug 120 is located below the tube when pushed, so that the viscosity regulator inside the short rod 122 will not flow out from the inside of the tube to the inside of the feed pipe 121. When the push plug 120 pushes the viscosity regulator to the movable disk 123, the movable disk 123 slides on the outer surface of the short rod 122, and at this time the viscosity regulator enters the interior of the processing tank 101.

[0042] like Figures 1 to 9As shown, in one embodiment, a material blocking plug 125 is fixedly connected to one side of the movable disk 123, and the material blocking plug 125 is movably embedded in the interior of the feed pipe 121. The size of the material blocking plug 125 matches the inner diameter of the feed pipe 121. A spring 2 124 is fixedly installed on the side of the movable disk 123 away from the material blocking plug 125. One end of the spring 2 124 is fixedly connected to an X-shaped bar 1241. The X-shaped bar 1241 is fixedly connected to one side of the multiple short rods 122. A rotational viscometer 1261 is fixedly installed on the inner wall of the processing tank 101. A display 127 is fixedly installed on the side of the processing tank 101 near its top. The display 127 Electrically connected to the rotational viscometer 1261, the outer surface of the rotating rod 1271 is provided with a belt 113 through a pulley movable sleeve, and one end of the belt 113 is provided with a driving disk 110 through a pulley movable sleeve. When the pushing plug 120 moves toward the direction of the electric push rod 118, the movable disk 123 slides on the outer surface of the short rod 122 under the limiting action of the spring 2 124, and the blocking plug 125 is embedded in the inside of the feed pipe 121 to block it. When the pushing plug 120 moves and is not located under the tube at the bottom of the short rod 122, the viscosity regulator inside it enters the inside of the feed pipe 121 again due to the action of gravity.

[0043] Working principle: When in use, pour the lubricating oil into the interior of the processing tank 101, and then pour the viscosity regulator into the interior of the feeding box 104, and then start the motor 112 through an external power supply. At this time, the motor 112 drives the rotating rod 1271 to rotate, and the rotating rod 1271 drives the belt 2 126 to rotate through the pulley. At this time, the belt 2 126 drives the stirring rod 102 through the pulley, and the stirring rod 102 drives the stirring blade 103 on its outer surface to rotate. At this time, the stirring rod 102 stirs the lubricating oil. At the same time, rotate the threaded rod 115 to push the moving bar 108 to move in the direction of the driving disk 110 inside the two slide grooves 116. When the motor 112 is started, it drives the rotating rod 1271 to rotate, and the rotating rod 1271 is simultaneously driven by the rotating rod 1271. The pulley drives the belt 113 to move, and the belt 113 drives the driving plate 110 to rotate through the pulley. At this time, the driving plate 110 drives the protrusion 109 to move horizontally in the direction of the limiting telescopic rod 106 and the spring 107. At this time, the moving bar 108 drives the blocking block 114 to move at the bottom of the discharge port 105. After the movement, the viscosity regulator inside the feeding box 104 falls onto the upper surface of the bottom discharge ramp through the discharge port 105 and slides to the inside of the short rod 122 through the discharge ramp. When the driving plate 110 is no longer in contact with the protrusion 109, the limiting telescopic rod 106 and the spring 107 cooperate to make the blocking block 114 return to its position, and the moving bar 108 can be moved, either away from the driving plate 110 or close to the driving plate 11 0. When the viscosity regulator in the feeding box 104 is not needed, the moving bar 108 is away from the driving disk 110, and the driving disk 110 does not contact the moving bar 108 and does not drive the moving bar 108 to move. The blocking block 114 is again located directly below the discharge port 105 under the limit of the limiting telescopic rod 106 and the spring 107, which can block the discharge. Whenever the driving disk 110 rotates one circle, it will drive the blocking block 114 to move, so as to realize intermittent unloading. After the viscosity regulator enters the interior of the short rod 122, it enters the interior of the feeding pipe 121 under the action of gravity through the tube at the bottom. The electric push rod 118 is started by the external power supply. At this time, the electric push rod 118 pushes the push plug 120 on the outer surface of the limiting long rod 119 When the push plug 120 moves in the direction of the electric push rod 118, the moving disk 123 slides on the outer surface of the short rod 122, and the viscosity regulator enters the interior of the processing tank 101. When the push plug 120 moves in the direction of the electric push rod 118, the moving disk 123 slides on the outer surface of the short rod 122 under the limiting action of the spring 2 124, and the blocking plug 125 is embedded in the interior of the feed pipe 121 to block it. When the push plug 120 moves,When the stirring rod 102 is not located under the bottom of the tube of the short rod 122, the viscosity regulator inside it enters the inside of the feed pipe 121 again due to the action of gravity. After the viscosity regulator enters the inside of the processing tank 101, it can adjust the viscosity of the lubricating oil inside it. The one-way valve 129 is turned to discharge the lubricating oil inside the processing tank 101 from the discharge pipe 128. At this time, when the stirring rod 102 rotates, it also drives the reciprocating screw rod 130 to rotate, and the lifting block 132 is limited by the limit rod 131 in the reciprocating motion. The outer surface of the screw rod 130 slides up and down, and the lifting block 132 drives the U-shaped block 134 to move simultaneously. When the U-shaped block 134 drives the pusher block 135 to move, when the U-shaped block 134 moves upward, the pusher block 135 and the U-shaped block 134 are at a 90-degree angle. When the U-shaped block 134 moves downward, the pusher block 135 and the U-shaped block 134 are parallel under the limit of the square block 136, which can push the lubricating oil inside the discharge pipe 128 downward, thereby increasing its discharge speed.

[0044] The standard parts used in the present invention can all be purchased from the market, and special-shaped parts can be customized according to the description in the specification and the drawings. The specific connection methods of each part adopt conventional means such as mature bolts, rivets, welding, etc. in the existing technology. The machinery, parts and equipment all adopt conventional models in the existing technology, and the circuit connection adopts the conventional connection method in the existing technology. The content not described in detail in this specification belongs to the existing technology known to professional and technical personnel in this field and will not be described in detail here.

[0045] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention in any other form. Any person skilled in the art may use the technical contents disclosed above to change or modify them into equivalent embodiments with equivalent changes for application in other fields. However, any simple modification, equivalent change and modification of the above embodiments made in accordance with the technical essence of the present invention without departing from the technical solution of the present invention shall still fall within the scope of protection of the technical solution of the present invention.

Claims

1. A lubricating oil viscosity debugging device, comprising: The processing tank (101) and two chutes (116) are characterized in that a support bar (111) is fixedly installed on one side of the processing tank (101), a motor (112) is fixedly installed on one side of the support bar (111), an output end of the motor (112) is fixedly connected to a rotating rod (1271), the top end of the rotating rod (1271) is connected to the bottom of the support bar (111) through a bearing, the outer surface of the rotating rod (1271) is provided with a belt 2 (126) through a pulley movable sleeve, one end of the belt 2 (126) is provided with a stirring rod (102) through a pulley movable sleeve, the outer surface of the stirring rod (102) is fixedly connected with a plurality of stirring blades (103), a discharge pipe (128) is fixedly embedded in the bottom of the processing tank (101), and a one-way valve (128) is provided inside the discharge pipe (128). 29), a reciprocating screw (130) is fixedly installed at the bottom end of the stirring rod (102), a limiting rod (131) is fixedly connected to the bottom of the processing tank (101) near the reciprocating screw (130), a lifting block (132) is movably sleeved on the outer surface of the limiting rod (131) and the reciprocating screw (130), one side of the lifting block (132) is fixedly connected to a U-shaped block (134), a vertical hole (133) is opened on the side of the discharge pipe (128) near the reciprocating screw (130), the U-shaped block (134) is movably embedded in the inside of the vertical hole (133), one side of the U-shaped block (134) is rotatably connected to a pushing round block (135) through a rotating rod, the top of the U-shaped block (134) is fixedly connected to a square block (136), and the square block (136) is located directly above the pushing round block (135); The top of the support bar (111) is fixedly connected to a feeding box (104), a discharge port (105) is provided at the bottom of the inner wall of the feeding box (104), a stopper (1151) is fixedly connected to the bottom of the feeding box (104) near the discharge port (105), a limiting telescopic rod (106) is fixedly installed on one side of the feeding box (104) near its bottom, a spring 1 (107) is fixedly installed on one side of the feeding box (104) near its bottom, a rectangular block (117) is fixedly installed on one end of the spring 1 (107) and the limiting telescopic rod (106), one of the slide grooves (116) is opened on one side of the rectangular block (117), and the insides of the two slide grooves (116) are slidably connected to a moving bar (108); The outer surface of the moving bar (108) is fixedly connected with a protrusion (109), one end of the moving bar (108) is slidably connected with a stop block (114) through another slide groove (116), one side of the stop block (114) is movably embedded with a threaded rod (115), one end of the threaded rod (115) is connected to one side of the moving bar (108) through a bearing, and the stop block (114) slides just below the discharge port (105); A short rod (122) is installed on one side of the processing tank (101) close to the feed pipe (121), and a material discharge inclined plate is fixedly installed on the top of the short rod (122); The material discharge inclined plate is located directly below the material discharge port (105), and an electric push rod (118) is fixedly installed on one side of the processing tank (101), and one end of the electric push rod (118) is fixedly connected to a push plug (120).

2. The lubricating oil viscosity adjustment device according to claim 1, characterized in that: A limited long rod (119) is fixedly connected to one side of the processing tank (101) close to the electric push rod (118); a feed pipe (121) is fixedly embedded in the inner wall of the processing tank (101); the push plug (120) slides inside the feed pipe (121); a plurality of short rods (122) are fixedly installed on the inner wall of the processing tank (101) close to the feed pipe (121); and a movable disk (123) is slidably connected to the outer surfaces of the plurality of short rods (122).

3. The lubricating oil viscosity adjustment device according to claim 2, characterized in that: A material blocking plug (125) is fixedly connected to one side of the movable disk (123), and the material blocking plug (125) is movably embedded in the interior of the feed pipe (121). The size of the material blocking plug (125) matches the inner diameter of the feed pipe (121). A spring 2 (124) is fixedly installed on the side of the movable disk (123) away from the material blocking plug (125), and one end of the spring 2 (124) is fixedly connected to an X-shaped bar (1241).

4. The lubricating oil viscosity adjustment device according to claim 3, characterized in that: The X-shaped bar (1241) is fixedly connected to one side of the plurality of short rods (122), and a rotational viscometer (1261) is fixedly installed on the inner wall of the processing tank (101).

5. The lubricating oil viscosity adjustment device according to claim 4, characterized in that: A display (127) is fixedly installed on one side of the processing tank (101) near its top, and the display (127) is electrically connected to the rotational viscometer (1261). The outer surface of the rotating rod (1271) is provided with a belt (113) through a pulley movable sleeve, and one end of the belt (113) is provided with a driving disk (110) through a pulley movable sleeve.