Adjustable intelligent energy saver

Through the flow regulation and rotary swing mechanism of the intelligent energy saver, the problems of low thermal energy utilization and heat exchange efficiency of traditional oil heaters are solved, and efficient thermal energy management and self-cleaning effects are achieved.

CN120799692APending Publication Date: 2025-10-17DONGGUAN GONNON MACHAINERY TECH CO LTD
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Patent Information

Application Number
CN202511096472.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-06
Publication Date
2025-10-17

AI Technical Summary

Technical Problem

Traditional oil heaters have low thermal energy utilization and high overheating risks due to their fixed flow design, and their static heat exchange structure leads to a low heat transfer coefficient. The electric control valve has a high failure rate in high temperature environments, increasing maintenance costs.

Method used

An adjustable intelligent energy saver is used, which uses centrifugal force to control the flow through the flow regulating mechanism, and combines with the rotating swing mechanism to disrupt the laminar boundary layer to achieve mechanized control of fluid kinetic energy.

Benefits of technology

It improves the utilization rate of thermal energy, prevents high temperature retention and overheating, reduces energy consumption, enhances heat exchange efficiency and achieves self-cleaning effect.

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Abstract

The invention relates to the technical field of energy saving and electronic information, and discloses an adjustable intelligent energy saver which comprises a base, a shell, an oil inlet pipe, an oil outlet pipe, a flange, a flow adjusting mechanism and a rotary swing mechanism. The problem of energy waste caused by fixed flow of a traditional oil heater can be solved, when low-temperature oil enters, the initial flow speed of an oil pump is low, torque generated when an impeller set is impacted by fluid is small, the centrifugal force of a gravity ball is weak, only a turning plate opening mechanism is driven to open a small opening, and the residence time of cold oil in a heating pipe is remarkably prolonged; when the oil temperature rises, the flow speed of the oil pump is increased to drive the impeller set to rotate at a high speed, strong centrifugal force is generated to push the turning plate to be greatly opened, hot oil output is accelerated to reduce invalid heat loss, the flow is autonomously regulated and controlled through fluid kinetic energy, low-temperature oil is prevented from being heated insufficiently, and meanwhile high-temperature oil is prevented from being detained and overheated.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of energy saving and electronic information, more particularly to an adjustable intelligent energy saver. BACKGROUND

[0002] The oil heater is an industrial equipment that uses heat conduction oil as a heat carrier to realize heat transfer through forced liquid circulation by a circulating pump. The heat is generated by an electric heating element or fuel combustion to heat the heating pipe immersed in the heat conduction oil. The circulating pump forces the heat conduction oil to flow to deliver heat to the heat-using equipment, and then returns to the heater for reheating after heat exchange, forming a closed loop circulation. The fixed flow design of the traditional oil heater causes insufficient residence time of low-temperature oil flowing through the heating zone, which is discharged without sufficient heat absorption, resulting in low heat energy utilization. When the oil temperature rises to the target value, the high-temperature oil continues to stay in the heating zone due to the inability to quickly output, which not only causes the risk of overheating cracking, but also consumes additional energy due to ineffective insulation. Although some electric regulating valves can partially alleviate this problem, they rely on external power supply and have high failure rate in high-temperature environments, increasing maintenance costs and system complexity. The traditional equipment is subject to static heat exchange structure, and the oil flow always maintains laminar flow state in the heating pipe, forming a certain thickness of thermal boundary layer, which causes low heat exchange coefficient even if the heating time is prolonged. Even if the electric mixer is added to destroy the boundary layer, the average life of the motor in the high-temperature oil environment is low, and additional energy is consumed. At the same time, the static flow channel is more prone to deposit oil sludge, reducing efficiency. SUMMARY

[0003] In order to overcome the above-mentioned defects of the prior art, the present application provides an adjustable intelligent energy saver to solve the problems existing in the background art.

[0004] The present application provides the following technical scheme: an adjustable intelligent energy saver, comprising a base, an outer shell, an oil inlet pipe, an oil outlet pipe and a flange, the top of the base is fixedly connected with the outer shell, the outer surfaces of the outer shell are fixedly connected with the oil inlet pipe and the oil outlet pipe on both sides, the top of the outer shell is fixedly connected with the flange, the top of the flange is fixedly connected with a wiring cover, one end of the oil inlet pipe close to the outer shell and the inside of the outer shell are fixedly connected with a connecting pipe, the other end of the connecting pipe is fixedly connected with a heating pipe at the bottom, and the other end of the heating pipe is rotatably connected with a flow regulating mechanism on one side close to the outer shell. Further, the device is an oil heater with an energy saver. Cold oil to be heated is input from the oil inlet pipe, through the connecting pipe, into the heating pipe inside the shell, and then heated to transfer heat energy. The device converts electrical energy or fuel energy into heat energy, and stably delivers the heated oil to the target equipment through the oil outlet pipe. The flow regulating mechanism converts the flowing liquid energy into rotating mechanical energy, which drives the centrifugal force. The centrifugal force controls the size of the opening near the oil outlet pipe to limit the flow. For cold oil, the outlet flow is reduced to ensure sufficient heating. For heated oil at a specified temperature, the opening flow is increased to make it flow out faster and reduce loss. The rotary swing mechanism uses the rotation generated by the flow regulating mechanism to set the swing structure, which disrupts the laminar flow boundary of the fluid and enhances the heat exchange efficiency of the device.

[0005] Further, the flow regulating mechanism includes a flap opening mechanism rotatably connected to the outside of the oil outlet pipe. The top of the flap opening mechanism is fixedly connected to a linkage frame mechanism. The other end of the linkage frame mechanism is rotatably connected to a centrifugal rotating mechanism inside the connecting pipe.

[0006] Further, the cold oil enters the connecting pipe, passes through the centrifugal rotating mechanism, and then enters the heating area through the heating pipe. An oil pump is connected to the outside of the oil inlet pipe to push the oil in and out. When the cold oil fluid hits the impeller set through the rotary swing mechanism at the bottom of the centrifugal rotating mechanism, the impeller set rotates synchronously with the short rod fixedly connected to its inside. During rotation, the centrifugal rotating mechanism is driven to generate centrifugal force, which further strengthens the rotation of the short rod. The centrifugal force drives the centrifugal rotating mechanism to move downward, which drives the linkage frame mechanism to move up and down through the connecting rod. The bottom of the linkage frame mechanism is fixedly connected to the flap opening mechanism, which flips inside the oil outlet pipe along with the linkage frame mechanism to control the size of the outlet flow.

[0007] Further, the flap opening mechanism includes a fixed wheel rotatably connected to one side of the heating pipe. The inside of the fixed wheel is fixedly connected to the inside of the heating pipe. The other side of the fixed wheel is fixedly connected to a connecting plate. The top of the connecting plate is rotatably connected to a rotating frame two.

[0008] Further, the linkage frame mechanism includes a straight round rod fixedly connected to the top of the rotating frame two. The top of the straight round rod is fixedly connected to a rotating frame one. The top of the rotating frame one is rotatably connected to a rotating plate. The other side of the rotating plate is fixedly connected to a horizontal straight rod. The middle of the horizontal straight rod is rotatably connected to a rotating wheel outside the connecting pipe.

[0009] Further, one side of the horizontal straight rod is fixedly connected with a fixing frame, the horizontal straight rod rotates around the rotating wheel when the fixing frame moves downward, and then the straight round rod connected with the other side of the rotating plate is pulled upward, the bottom of the straight round rod is fixedly connected with rotating frame one, the rotating frame one is rotatably connected with the connecting plate and the fixed wheel, the switch opening and the connecting plate rotate synchronously, when the displacement of one side of the horizontal straight rod is small, the straight round rod pulls the connecting plate to produce a small displacement upward, the switch opening flips around the fixed wheel to produce a small opening, and the flow of the control outlet is controlled; when the displacement of one side of the horizontal straight rod is large, the straight round rod pulls the connecting plate to produce a large displacement upward, so that the switch opening flips around the fixed wheel to produce a large opening, and more heating oil passes through.

[0010] Further, the side, away from the straight round rod, of the rotating wheel is fixedly connected with a fixing frame, the inner side of the fixing frame is rotatably connected with a round wheel through a short shaft, the top of the round wheel and the inside of the connecting pipe are fixedly connected with a top cover, the bottom of the round wheel is fixedly connected with a centrifugal rod, the bottom of the round wheel and the top outside of the centrifugal rod are rotatably connected with a sliding block, the two sides of the sliding block are fixedly connected with upper connecting rods, the bottom of the upper connecting rod is rotatably connected with a lower connecting rod, the bottom of the lower connecting rod is fixedly connected with a gravity ball, and the bottom of the centrifugal rod is fixedly connected with a bottom plate.

[0011] Further, when the oil pump has a small rate when cold oil enters, the generated thrust through the impeller set is also small, the impeller set drives the internal short rod to rotate synchronously, the centrifugal rod fixedly connected with the upper part of the short rod also rotates, the lower connecting rod is connected with the centrifugal rod, the lower connecting rod revolves around the centrifugal rod, the gravity ball at the bottom of the lower connecting rod also rotates around the centrifugal rod in the rotating process, the centrifugal force generated by the gravity ball at the bottom pulls the upper connecting rod, the sliding block and the round wheel to produce displacement downward, the outer side of the round wheel is rotatably connected with a fixing frame, so that the round wheel produces displacement downward, and the fixing frame also moves downward at the same time; Similarly, when the temperature of the cold oil starts to rise to a specified temperature, the oil pump has a large rate, the generated thrust through the impeller set is large, the impeller set drives the internal short rod to rotate synchronously, the centrifugal rod fixedly connected with the upper part of the short rod also rotates, the lower connecting rod is connected with the centrifugal rod, the lower connecting rod revolves around the centrifugal rod, the gravity ball at the bottom of the lower connecting rod also rotates around the centrifugal rod in the rotating process, the centrifugal force generated by the gravity ball at the bottom pulls the upper connecting rod, the sliding block and the round wheel to produce displacement downward, the centrifugal force becomes large, so that the generated displacement also becomes large, and the outer side of the round wheel is rotatably connected with a fixing frame, so that the round wheel produces displacement downward, and the fixing frame also moves downward at the same time.

[0012] Further, the bottom of the flow regulating mechanism is fixedly connected with a rotary swing mechanism, the rotary swing mechanism comprises a short rod fixedly connected with the bottom of the bottom plate, the bottom outside of the short rod is fixedly connected with an impeller set, and the bottom outside of the short rod is fixedly connected with a swing rod stirring mechanism.

[0013] Further, the swing rod stirring mechanism comprises a sleeve I rotatably connected to the outside of the short rod, circular rod supports fixedly connected to the outside of the sleeve I, a rotating plate fixedly connected to the bottom of the sleeve I, a fixed rod fixedly connected to the outside of the rotating plate, a short rotating rod rotatably connected to the bottom of the fixed rod, rotating straight plates fixedly connected to the two sides of the short rotating rod, a long rotating rod rotatably connected to the bottom of the rotating straight plate, a sleeve II fixedly connected to the two sides of the long rotating rod, and a swing plate fixedly connected to the bottom of the sleeve II.

[0014] Further, when the short rod rotates, the rotating plate I at the bottom of the short rod rotates synchronously, the fixed rod fixedly connected to the rotating plate I also rotates around the sleeve I, the bottom of the fixed rod is rotatably connected to the rotating straight plate and the swing plate, the fixed rod moves synchronously in two directions with the rotating plate, the bottom of the fixed rod slides along the short rotating rod to eliminate displacement in one direction, and therefore the swing plate at the bottom of the fixed rod only swings around the long rotating rod. The heated oil in motion is subjected to swing stirring, which can increase the heat exchange efficiency of the heated oil and improve the heating rate.

[0015] Technical effects and advantages of the present application: The present application can solve the problem of energy waste caused by fixed flow of traditional oil heaters by providing a flow adjusting mechanism and realizing intelligent adjustment of oil flow through pure mechanical linkage. When low-temperature oil enters, the initial flow rate of the oil pump is low, the torque generated by the impeller set due to fluid impact is small, the centrifugal rotating mechanism is driven to rotate at low speed, the centrifugal force of the gravity ball is weak, and only the small opening of the flap opening mechanism is driven to open, thereby significantly prolonging the residence time of cold oil in the heating pipe and ensuring sufficient absorption of heat energy. Conversely, when the oil temperature rises, the flow rate of the oil pump increases to drive the impeller set to rotate at high speed, the gravity ball generates strong centrifugal force to drive the flap to open widely, and the heated oil is accelerated to output to reduce invalid heat loss. The design uses fluid kinetic energy to automatically regulate the flow, which can prevent underheating of low-temperature oil and prevent over-heating of high-temperature oil.

[0016] The present application can solve the problem of heat resistance consumption caused by laminar boundary layer of traditional oil heaters by providing a rotating swing mechanism to convert fluid kinetic energy into mechanical swing. When the short rod rotates with the impeller set, the rotating motion is converted into high-frequency reciprocating swing of the swing plate through the four-bar linkage mechanism to generate periodic strong disturbance in the oil flow. On the one hand, the laminar bottom layer is directly destroyed to improve the heat exchange coefficient; on the other hand, the small-scale turbulence is generated to accelerate heat diffusion, and the mechanical swing can also strip the oil sludge from the heating pipe wall to achieve self-cleaning and prevent deposition. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is a schematic diagram of the overall structure of the present application.

[0018] Figure 2 It is a schematic diagram of the overall structure of the present application.

[0019] Figure 3 Structure diagram of flow regulating mechanism of the present application.

[0020] Figure 4 Structure diagram of centrifugal rotating mechanism of the present application.

[0021] Figure 5 Structure diagram of linkage frame mechanism of the present application.

[0022] Figure 6 Structure diagram of centrifugal rotating mechanism of the present application.

[0023] Figure 7 Structure diagram of rotary swing mechanism of the present application.

[0024] Figure 8 Structure diagram of swing lever stirring mechanism of the present application.

[0025] The reference signs are: 1, base; 2, shell; 3, oil inlet pipe; 31, connecting pipe; 4, oil outlet pipe; 5, flange; 6, wiring cover; 7, heating pipe; 8, flow regulating mechanism; 81, linkage frame mechanism; 811, straight round rod; 812, rotating frame one; 813, rotating plate; 814, horizontal straight rod; 815, rotating wheel; 82, flap opening mechanism; 821, rotating frame two; 822, connecting plate; 823, fixed wheel; 824, switch opening; 83, centrifugal rotating mechanism; 831, top cover; 832, fixed frame; 833, round wheel; 834, sliding block; 835, upper connecting rod; 836, lower connecting rod; 837, gravity ball; 838, centrifugal rod; 839, bottom plate; 9, rotary swing mechanism; 91, short rod; 92, impeller group; 93, swing lever stirring mechanism; 931, round rod frame; 932, sleeve one; 933, rotating plate; 934, fixed rod; 935, rotating straight plate; 936, short rotating rod; 937, long rotating rod; 938, sleeve two; 939, swing plate. DETAILED DESCRIPTION

[0026] The technical solutions in the present application will be described clearly and completely below in combination with the drawings in the present application, and additionally, the forms of each structure described in the following embodiments are only examples, and the adjustable intelligent energy-saving device involved in the present application is not limited to each structure described in the following embodiments, and all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the present application.

[0027] REFERENCE Figure 1 and Figure 2The application provides an adjustable intelligent energy-saving device, which comprises a base 1, a shell 2, an oil inlet pipe 3, an oil outlet pipe 4 and a flange 5, the top of the base 1 is fixedly connected with the shell 2, the outer surfaces of the shell 2 are fixedly connected with the oil inlet pipe 3 and the oil outlet pipe 4, the top of the shell 2 is fixedly connected with the flange 5, the top of the flange 5 is fixedly connected with a wiring cover 6, one end of the oil inlet pipe 3 close to the shell 2 and the inside of the shell 2 are fixedly connected with a connecting pipe 31, the other end of the connecting pipe 31 is fixedly connected with a heating pipe 7, and the other end of the heating pipe 7 and the side of the oil outlet pipe 4 close to the shell 2 are rotatably connected with a flow regulating mechanism 8. Referring to Figure 1 and Figure 2 The device is an oil heater with an energy-saving device, cold oil to be heated is input from the oil inlet pipe 3, enters the heating pipe 7 in the inside of the shell 2 and is heated again to transfer heat energy, the device converts electric energy or fuel energy into heat energy, and stably delivers the heated oil to a target equipment through the oil outlet pipe 4, the flow regulating mechanism 8 converts the flowing liquid energy into rotating mechanical energy, drives the centrifugal force to be generated, controls the size of the opening near the oil outlet pipe 4 to limit the flow, reduces the flow of the outlet to sufficiently heat the cold oil, increases the flow of the opening to make the heated oil flow out faster and reduce the loss, and the rotary swing mechanism 9 sets the swing structure by using the rotation generated by the flow regulating mechanism 8, breaks the laminar flow boundary of the fluid, and enhances the heat exchange efficiency of the device.

[0028] Referring to Figure 3 and Figure 4 The flow regulating mechanism 8 comprises a flap opening mechanism 82 rotatably connected to the outside of the oil outlet pipe 4, the top of the flap opening mechanism 82 is fixedly connected with a linkage frame mechanism 81, and the other end of the linkage frame mechanism 81 and the inside of the connecting pipe 31 are rotatably connected with a centrifugal rotating mechanism 83.

[0029] Referring to Figure 3 and Figure 4 The cold oil enters the inside of the connecting pipe 31, passes through the centrifugal rotating mechanism 83 and enters the heating area through the heating pipe 7, an oil pump is connected to the outside of the oil inlet pipe 3 and is used for pushing the input and output of the oil, the cold oil fluid impacts the impeller set 92 when passing through the rotary swing mechanism 9 at the bottom of the centrifugal rotating mechanism 83, the impeller set 92 generates rotation and synchronously drives the short rod 91 fixedly connected to the inside to rotate synchronously, the rotation drives the centrifugal rotating mechanism 83 to generate centrifugal force and further strengthens the rotation of the short rod 91, the centrifugal force drives the centrifugal rotating mechanism 83 to move downward, the linkage frame mechanism 81 is driven to move up and down through the limiting of the connecting rod, the bottom of the linkage frame mechanism 81 is fixedly connected with the flap opening mechanism 82, the flap opening mechanism 82 is turned over in the inside of the oil outlet pipe 4 along with the linkage frame mechanism 81, and the size of the outlet flow is controlled.

[0030] Referring toFigure 5 The flap opening mechanism 82 comprises a fixed wheel 823 connected to one side of the heating pipe 7, the inner side of the fixed wheel 823 and the inner side of the heating pipe 7 are fixedly connected with a switch opening 824, the other side of the fixed wheel 823 is fixedly connected with a connecting plate 822, and the top of the connecting plate 822 is rotatably connected with a rotating frame two 821.

[0031] Referring to Figure 5 The linkage frame mechanism 81 comprises a straight round rod 811 fixedly connected to the top of the rotating frame two 821, the top of the straight round rod 811 is fixedly connected with a rotating frame one 812, the top of the rotating frame one 812 is rotatably connected with a rotating plate 813, the other side of the rotating plate 813 is fixedly connected with a horizontal straight rod 814, and the middle of the horizontal straight rod 814 and the outer side of the connecting pipe 31 are rotatably connected with a rotating wheel 815.

[0032] Referring to Figure 5 When the fixed frame 832 is displaced downward, the horizontal straight rod 814 will rotate around the rotating wheel 815, and then the straight round rod 811 connected to the other side of the rotating plate 813 will be pulled upward, the bottom of the straight round rod 811 is fixedly connected with the rotating frame one 812, and the rotating frame one 812 is rotatably connected with the connecting plate 822 and the fixed wheel 823, so that the switch opening 824 and the connecting plate 822 are synchronously rotated, when the displacement of one side of the horizontal straight rod 814 is small, the straight round rod 811 pulls the connecting plate 822 to produce a small displacement upward, and the switch opening 824 is flipped around the fixed wheel 823 to produce a small opening, thereby controlling the flow of the outlet; when the displacement of one side of the horizontal straight rod 814 is large, the straight round rod 811 pulls the connecting plate 822 to produce a large displacement upward, so that the switch opening 824 is flipped around the fixed wheel 823 to produce a large opening, allowing more heated oil to pass through.

[0033] Referring to Figure 6 The other side of the rotating wheel 815 away from the straight round rod 811 is fixedly connected with the fixed frame 832, the inner side of the fixed frame 832 is clamped with a round wheel 833 through a short shaft, the top of the round wheel 833 and the inner side of the connecting pipe 31 are fixedly connected with a top cover 831, the bottom of the round wheel 833 is fixedly connected with a centrifugal rod 838, the bottom of the round wheel 833 and the outer side of the top of the centrifugal rod 838 are rotatably connected with a sliding block 834, the two sides of the sliding block 834 are fixedly connected with an upper connecting rod 835, the bottom of the upper connecting rod 835 is rotatably connected with a lower connecting rod 836, the bottom of the lower connecting rod 836 is fixedly connected with a gravity ball 837, and the bottom of the centrifugal rod 838 is fixedly connected with a bottom plate 839.

[0034] Referring to Figure 6When the temperature of the cold oil begins to rise to the specified temperature, the rate of the oil pump is large, the thrust generated by the impeller set 92 is large, the impeller set 92 drives the internal short rod 91 to synchronously rotate, the centrifugal rod 838 fixedly connected to the upper part of the short rod 91 also rotates, the lower connecting rod 836 is fixedly connected to the centrifugal rod 838, the lower connecting rod 836 revolves around the centrifugal rod 838, the gravity ball 837 at the bottom of the lower connecting rod 836 also slowly rotates around the centrifugal rod 838 in the rotating process, the centrifugal force generated by the gravity ball 837 at the bottom causes the upper connecting rod 835, the sliding block 834 and the circular wheel 833 to produce displacement downward, the centrifugal force becomes larger, so the displacement produced also becomes larger, at the same time, the outer side of the circular wheel 833 is clamped with the fixed frame 832, the circular wheel 833 produces displacement downward, which also causes the fixed frame 832 to move downward. When the temperature of the cold oil begins to rise to the specified temperature, the rate of the oil pump is large, the thrust generated by the impeller set 92 is large, the impeller set 92 drives the internal short rod 91 to synchronously rotate, the centrifugal rod 838 fixedly connected to the upper part of the short rod 91 also rotates, the lower connecting rod 836 is fixedly connected to the centrifugal rod 838, the lower connecting rod 836 revolves around the centrifugal rod 838, the gravity ball 837 at the bottom of the lower connecting rod 836 also slowly rotates around the centrifugal rod 838 in the rotating process, the centrifugal force generated by the gravity ball 837 at the bottom causes the upper connecting rod 835, the sliding block 834 and the circular wheel 833 to produce displacement downward, the centrifugal force becomes larger, so the displacement produced also becomes larger, at the same time, the outer side of the circular wheel 833 is clamped with the fixed frame 832, the circular wheel 833 produces displacement downward, which also causes the fixed frame 832 to move downward.

[0035] With reference to Figure 7 The bottom of the flow adjusting mechanism 8 is fixedly connected with a rotary swing mechanism 9, the rotary swing mechanism 9 comprises a short rod 91 fixedly connected to the bottom of the bottom plate 839, the bottom outer side of the short rod 91 is fixedly connected with an impeller set 92, and the bottom outer side of the short rod 91 is fixedly connected with a swing rod stirring mechanism 93.

[0036] With reference to Figure 8 The swing rod stirring mechanism 93 comprises a sleeve one 932 rotationally connected to the outer side of the short rod 91, the outer two sides of the sleeve one 932 are fixedly connected with a circular rod frame 931, the bottom of the sleeve one 932 is fixedly connected with a rotating plate 933, one side of the outer side of the rotating plate 933 is fixedly connected with a fixed rod 934, the bottom of the fixed rod 934 is rotationally connected with a short rotating rod 936, the two sides of the short rotating rod 936 are fixedly connected with a rotating straight plate 935, the bottom of the rotating straight plate 935 is rotationally connected with a long rotating rod 937, the two sides of the long rotating rod 937 are fixedly connected with a sleeve two 938, and the bottom of the sleeve two 938 is fixedly connected with a swing plate 939.

[0037] With reference to Figure 8When the short rod 91 rotates, the rotating plate 933 at the bottom of the short rod 91 rotates synchronously, and the fixed rod 934 fixedly connected to the rotating plate 933 rotates around the sleeve 932. The bottom of the fixed rod 934 is rotatably connected to the rotating straight plate 935 and the swinging plate 939. The fixed rod 934 rotates synchronously in two directions with the rotating plate 933. The bottom of the fixed rod 934 slides along the short rotating rod 936 to eliminate displacement in one direction. Therefore, the swinging plate 939 at the bottom of the fixed rod 934 only swings around the long rotating rod 937. The heated oil in motion is subjected to swinging stirring, which can increase the heat exchange efficiency of the heated oil and improve the heating rate.

[0038] The working principle of the present application: the device is an oil heater with an energy saver, cold oil to be heated is input from the oil inlet pipe 3 through the connecting pipe 31, enters the heating pipe 7 in the inside of the shell 2, and then the heat conducting oil is heated to transfer heat energy, which converts electrical energy or fuel energy into heat energy, and the heated oil is stably delivered to the target equipment through the oil outlet pipe 4, the flow regulating mechanism 8 converts the flowing liquid energy into rotating mechanical energy to drive the centrifugal force, and the centrifugal force controls the opening size near the oil outlet pipe 4 to limit the flow, facing the cold oil, the outlet flow is reduced to heat it sufficiently, facing the heated oil heated to the specified temperature, the opening flow is increased to make it flow out faster to reduce the loss, the rotary swing mechanism 9 sets the swing structure by the rotation of the flow regulating mechanism 8, which breaks the laminar flow boundary of the fluid, enhances the heat exchange efficiency of the device, the cold oil enters the inside of the connecting pipe 31, passes through the centrifugal rotating mechanism 83, and then enters the heating area through the heating pipe 7, the oil pump is connected to the outside of the oil inlet pipe 3 for pushing the input and output of the oil, when the cold oil fluid hits the impeller set 92 through the rotary swing mechanism 9 at the bottom of the centrifugal rotating mechanism 83, the impeller set 92 generates rotation and synchronously rotates the short rod 91 fixedly connected to the inside, the rotation drives the centrifugal rotating mechanism 83 to generate centrifugal force to further strengthen the rotation of the short rod 91, the centrifugal force drives the centrifugal rotating mechanism 83 to move downward, drives the linkage frame mechanism 81 to move up and down through the limiting connecting rod, the bottom of the linkage frame mechanism 81 is fixedly connected with the flap opening mechanism 82, the flap opening mechanism 82 is turned over in the inside of the oil outlet pipe 4 with the linkage frame mechanism 81, controls the size of the outlet flow, when the cold oil enters, the speed of the oil pump is small, the thrust generated by the impeller set 92 is also small, the impeller set 92 drives the inside short rod 91 to rotate synchronously, the centrifugal rod 838 fixedly connected to the upper part of the short rod 91 also rotates, the lower connecting rod 836 fixedly connected to the centrifugal rod 838 revolves around the centrifugal rod 838, the gravity ball 837 at the bottom of the lower connecting rod 836 also slowly rotates around the centrifugal rod 838 in the process of rotation, the centrifugal force generated by the gravity ball 837 at the bottom pulls the upper connecting rod 835, the sliding block 834 and the circular wheel 833 to move downward, the outside of the circular wheel 833 is clamped with the fixed frame 832, so the circular wheel 833 moves downward, and the fixed frame 832 also moves downward, and the same reason when the temperature of the cold oil rises to the specified temperature, the speed of the oil pump is large, the thrust generated by the impeller set 92 is large, the impeller set 92 drives the inside short rod 91 to rotate synchronously, the centrifugal rod 838 fixedly connected to the upper part of the short rod 91 also rotates, the lower connecting rod 836 fixedly connected to the centrifugal rod 838 revolves around the centrifugal rod 838, the gravity ball 837 at the bottom of the lower connecting rod 836 also slowly rotates around the centrifugal rod 838 in the process of rotation, the centrifugal force generated by the gravity ball 837 at the bottom pulls the upper connecting rod 835, the sliding block 834 and the circular wheel 833 to move downward, the centrifugal force becomes larger, so the displacement also becomes larger,The outer side of the circular wheel 833 is clamped with the fixing frame 832, the circular wheel 833 generates displacement downward, and the fixing frame 832 also moves downward, one side of the horizontal straight rod 814 is fixedly connected with the fixing frame 832, when the fixing frame 832 generates displacement downward, the horizontal straight rod 814 rotates around the rotating wheel 815, and then the rotating plate 813 pulls the straight circular rod 811 connected on the other side to rotate upward, the bottom of the straight circular rod 811 is fixedly connected with the rotating frame one 812, the rotating frame one 812 is rotatably connected with the connecting plate 822 and the fixed wheel 823, the switch opening 824 and the connecting plate 822 generate synchronous rotation, when the displacement generated by one side of the horizontal straight rod 814 is small, the straight circular rod 811 pulls the connecting plate 822 to generate small displacement upward, the switch opening 824 flips around the fixed wheel 823 to generate small opening, and the flow of the control outlet is controlled; when the displacement generated by one side of the horizontal straight rod 814 is large, the straight circular rod 811 pulls the connecting plate 822 to generate large displacement upward, so the switch opening 824 flips around the fixed wheel 823 to generate large opening, and more heating oil passes through, when the short rod 91 rotates, the rotating plate 933 at the bottom of the short rod 91 rotates synchronously, the fixed rod 934 fixedly connected on the rotating plate 933 also rotates around the sleeve one 932, the bottom of the fixed rod 934 is rotatably connected with the rotating straight plate 935 and the swing plate 939, the fixed rod 934 generates synchronous movement in two directions along with the rotating plate 933, the bottom of the fixed rod 934 slides along the short rotating rod 936 to eliminate displacement in one direction, so the swing plate 939 at the bottom of the fixed rod 934 only swings around the long rotating rod 937, the heating oil in movement is subjected to swing stirring, the heat exchange efficiency of the heating oil can be increased, and the heating rate is improved.

[0039] Finally: the above only describes the preferred embodiments of the present application and is not used to limit the present application, any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application should be included in the protection scope of the present application.

Claims

1. An adjustable intelligent energy saver, comprising a base (1), a housing (2), an oil inlet pipe (3), an oil outlet pipe (4) and a flange (5), characterized in that: The top of the base (1) is fixedly connected to the housing (2), the outer surface of the housing (2) is fixedly connected to an oil inlet pipe (3) and an oil outlet pipe (4), the top of the housing (2) is fixedly connected to a flange (5), the top of the flange (5) is fixedly connected to a wiring cover (6), one end of the oil inlet pipe (3) close to the housing (2) and the interior of the housing (2) are fixedly connected to a connecting pipe (31), the other end of the connecting pipe (31) is fixedly connected to a heating pipe (7) at the bottom, and the other end of the heating pipe (7) and the side of the oil outlet pipe (4) close to the housing (2) are rotatably connected to a flow regulating mechanism (8).

2. The adjustable intelligent energy saver according to claim 1, characterized in that: The flow regulating mechanism (8) comprises a flap opening mechanism (82) rotatably connected to the outside of the oil outlet pipe (4); a linkage frame mechanism (81) is fixedly connected to the top of the flap opening mechanism (82); and a centrifugal rotation mechanism (83) is rotatably connected to the other end of the linkage frame mechanism (81) and the inside of the connecting pipe (31).

3. The adjustable intelligent energy saver according to claim 2, characterized in that: The flap opening mechanism (82) comprises a fixed wheel (823) rotatably connected to one side of the heating tube (7); a switch port (824) is fixedly connected to the inner side of the fixed wheel (823) and the interior of the heating tube (7); a connecting plate (822) is fixedly connected to the other side of the fixed wheel (823); and a rotating frame 2 (821) is rotatably connected to the top of the connecting plate (822).

4. The adjustable intelligent energy saver according to claim 2, characterized in that: The linkage frame mechanism (81) includes a straight round rod (811) fixedly connected to the top of the second rotating frame (821), the top of the straight round rod (811) is fixedly connected to the first rotating frame (812), the top of the first rotating frame (812) is rotatably connected to a rotating plate (813), the other side of the rotating plate (813) is fixedly connected to a horizontal rod (814), and the middle part of the horizontal rod (814) and the outer side of the connecting pipe (31) are rotatably connected to a rotating wheel (815).

5. The adjustable intelligent energy saver according to claim 4, characterized in that: A fixing frame (832) is fixedly connected to a side of the rotating wheel (815) away from the straight round rod (811); a circular wheel (833) is clamped on the inner side of the fixing frame (832) via a short shaft; a top cover (831) is fixedly connected to the top of the circular wheel (833) and the inside of the connecting tube (31); a centrifugal rod (838) is fixedly connected to the bottom of the circular wheel (833) and the outer side of the top of the centrifugal rod (838); a sliding block (834) is rotatably connected to the bottom of the circular wheel (833) and the top of the centrifugal rod (838); upper connecting rods (835) are fixedly connected to both sides of the sliding block (834); the bottom of the upper connecting rod (835) is rotatably connected to a lower connecting rod (836); the bottom of the lower connecting rod (836) is fixedly connected to a gravity ball (837); and the bottom of the centrifugal rod (838) is fixedly connected to a bottom plate (839).

6. The adjustable intelligent energy saver according to claim 1, characterized in that: The bottom of the flow regulating mechanism (8) is fixedly connected to a rotating and swinging mechanism (9), and the rotating and swinging mechanism (9) comprises a short rod (91) fixedly connected to the bottom of the bottom plate (839), an impeller assembly (92) is fixedly connected to the outside of the bottom of the short rod (91), and a swing rod stirring mechanism (93) is fixedly connected to the outside of the bottom of the short rod (91).

7. The adjustable intelligent energy saver according to claim 6, characterized in that: The swing rod stirring mechanism (93) comprises a sleeve 1 (932) rotatably connected to the outside of the short rod (91), the outer sides of the sleeve 1 (932) are fixedly connected to round rod frames (931), the bottom of the sleeve 1 (932) is fixedly connected to a rotating plate (933), the outer side of the rotating plate (933) is fixedly connected to a fixed rod (934), the bottom of the fixed rod (934) is rotatably connected to a short rotating rod (936), the two sides of the short rotating rod (936) are fixedly connected to rotating straight plates (935), the bottom of the rotating straight plate (935) is rotatably connected to a long rotating rod (937), the two sides of the long rotating rod (937) are fixedly connected to sleeve 2 (938), and the bottom of the sleeve 2 (938) is fixedly connected to a swing plate (939).