Correcting tool for tubular oil cooler
By designing a calibration tool including a base, baffle, oblique block, drive device, motor and other components, the problems of complex correction steps of the tubular oil cooler and offset during the conveying process in the prior art are solved, and efficient and stable correction effects are achieved.
Patent Information
- Application Number
- CN202421668389.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-07-15
AI Technical Summary
The correcting tooling steps of tubular oil coolers in the prior art are complicated and the corrected oil coolers are easily deviated again during the transportation process, resulting in poor calibration effect.
A correction tool for components including base, baffle, oblique block, drive device, motor, rotor, conveyor belt, cylinder and other components is designed. Through the coordination of the motor drive rotor and conveyor belt, intermittent transmission of the tubular oil cooler is realized, and further correction is carried out using the back and forth action of the cylinder push plate.
It realizes efficient and stable calibration of the tubular oil cooler, avoids re-shifting during the conveying process, and improves calibration accuracy and efficiency.
Smart Images

Figure CN223083552U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of calibration tooling, in particular to a calibration tooling for a tubular oil cooler. Background Technique
[0002] A tubular oil cooler is a device used for oil cooling and is widely applied to large and medium-sized mechanical equipment in industrial and mining enterprises, such as steam turbines, fans, coal mills, water pumps, and ship power equipment, etc. During the production and processing of tubular oil coolers, corresponding calibration equipment is required.
[0003] Currently, the calibration tooling in the prior art involves multiple steps and complex operations, such as positioning, clamping, adjustment, etc., and the calibrated tubular oil cooler may shift again when being conveyed onto the conveyor belt. In view of this, we propose a calibration tooling for a tubular oil cooler. Content of the Utility Model
[0004] The main purpose of the utility model is to provide a calibration tooling for a tubular oil cooler, which can solve the problems raised in the above background technique.
[0005] To achieve the above purpose, a calibration tooling for a tubular oil cooler proposed by the utility model includes a first base and a second base, and is characterized in that: both ends of the outer wall of the first base are fixedly connected with baffles and inclined blocks, a driving device is arranged on the side wall of the second base, a conveyor belt is arranged on the second base, and a calibration mechanism is arranged on the side wall of the second base. The calibration mechanism includes:
[0006] A motor, the motor is fixedly connected to the side wall of the second base, the motor is fixedly connected with a first runner through its output shaft, the baffle is fixedly connected with a fixing plate, and multiple groups of clamping blocks are arranged above the fixing plate.
[0007] Preferably, the first runner is drivingly connected with a first conveyor belt, and one end of the first conveyor belt away from the first runner is drivingly connected with a second runner.
[0008] Preferably, the second runner is fixedly connected with a rotating shaft, one end of the rotating shaft away from the second runner is fixedly connected with a third runner, the third runner is drivingly connected with a second conveyor belt, and one end of the second conveyor belt away from the third runner is drivingly connected with a fourth runner.
[0009] Preferably, both the third runner and the fourth runner are fixedly connected with round rods, the round rods are fixedly connected with connecting rods, one end of the connecting rod away from the round rod is rotatably connected with a movable plate, and multiple groups of grooves are arranged on the movable plate. The rotation of the first runner is driven by the output shaft of the motor, and the rotation of the second runner will be driven with the cooperation of the first conveyor belt. The rotation of the second runner will drive the rotation of the third runner, and the rotation of the fourth runner will be driven with the cooperation of the second conveyor belt. The rotation of the third runner and the fourth runner will drive the rotation of the two round rods, thereby driving the rotation of the two connecting rods, and then driving the movable plate to rotate. With the cooperation of the clamping blocks on the fixed plate, the tubular oil cooler will be intermittently transported on the fixed plate.
[0010] Preferably, the driving device is fixedly connected with a rotating rod, the rotating rod is fixedly connected with a disc, and multiple groups of arc-shaped notches are arranged on the disc.
[0011] Preferably, a cross plate is fixedly connected to the side wall of the second base, a sliding groove is arranged on the cross plate, a push plate is slidably connected to the sliding groove, a cylinder is fixedly connected to the cross plate, and the cylinder is fixedly connected to the push plate through its piston rod. The rotation of the rotating rod is driven by the output shaft of the motor, thereby driving the rotation of the two discs, and with the cooperation of multiple groups of arc-shaped notches on the discs, the tubular oil cooler on the inclined block will be intermittently transported onto the conveyor belt. At the same time, by starting the cylinder, the push plate is driven to move back and forth on the conveyor belt, so that the tubular oil cooler on the conveyor belt is further corrected.
[0012] The utility model provides a calibration tooling for a tubular oil cooler. It has the following beneficial effects:
[0013] (1) The calibration tooling for the tubular oil cooler drives the rotation of the first runner through the output shaft of the motor, drives the rotation of the second runner with the cooperation of the first conveyor belt, drives the rotation of the third runner by the rotation of the second runner, drives the rotation of the fourth runner with the cooperation of the second conveyor belt, drives the rotation of the two round rods by the rotation of the third runner and the fourth runner, thereby driving the rotation of the two connecting rods, and then driving the movable plate to rotate. With the cooperation of the clamping blocks on the fixed plate, the tubular oil cooler is intermittently transported on the fixed plate.
[0014] (2) The calibration tooling for the tubular oil cooler drives the rotation of the rotating rod through the output shaft of the motor, thereby driving the rotation of the two discs, and with the cooperation of multiple groups of arc-shaped notches on the discs, the tubular oil cooler on the inclined block is intermittently transported onto the conveyor belt. At the same time, by starting the cylinder, the push plate is driven to move back and forth on the conveyor belt, so that the tubular oil cooler on the conveyor belt is further corrected. Description of the Drawings
[0015] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the accompanying drawings required for the description of the embodiments or the prior art. Obviously, the accompanying drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.
[0016] Figure 1 Schematic diagram of the overall three-dimensional structure of the present invention Figure 1 ;
[0017] Figure 2 Schematic diagram of the overall three-dimensional structure of the present invention Figure 2 ;
[0018] Figure 3 For the present invention Figure 2 Schematic diagram of the structure of area A.
[0019] Explanation of the reference numerals in the drawings:
[0020] 1. Base one; 2. Base two; 3. Driving device; 4. Conveyor belt; 5. Baffle; 6. Inclined block; 7. Calibration mechanism; 71. Motor; 72. Rotating wheel one; 73. Conveyor belt one; 74. Rotating wheel two; 75. Fixed plate; 76. Rotating wheel three; 77. Conveyor belt two; 78. Rotating wheel four; 79. Round rod; 710. Connecting rod; 711. Movable plate; 712. Cross plate; 713. Chute; 714. Cylinder; 715. Pushing plate; 716. Rotating rod; 717. Disc.
[0021] The realization, functional characteristics and advantages of the object of the present invention will be further described in conjunction with the embodiments with reference to the accompanying drawings. Specific embodiments
[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0023] Please refer to Figures 1 - 3, the present utility model proposes a calibration tool for a tubular oil cooler, which includes a first base 1 and a second base 2, and is characterized in that: both ends of the outer wall of the first base 1 are fixedly connected with baffles 5 and inclined blocks 6, a driving device 3 is provided on the side wall of the second base 2, a conveyor belt 4 is provided on the second base 2, and a calibration mechanism 7 is provided on the side wall of the second base 2. The calibration mechanism 7 includes a motor 71, the motor 71 is fixedly connected to the side wall of the second base 2, and the motor 71 is fixedly connected with a first runner 72 through its output shaft. The baffle 5 is fixedly connected with a fixing plate 75, and multiple groups of clamping blocks are provided above the fixing plate 75.
[0024] In the embodiment of the present utility model, in order to enable the calibration mechanism 7 to operate better, specifically, the first runner 72 is drivingly connected with a first conveyor belt 73, one end of the first conveyor belt 73 away from the first runner 72 is drivingly connected with a second runner 74, the second runner 74 is fixedly connected with a rotating shaft, one end of the rotating shaft away from the second runner 74 is fixedly connected with a third runner 76, the third runner 76 is drivingly connected with a second conveyor belt 77, one end of the second conveyor belt 77 away from the third runner 76 is drivingly connected with a fourth runner 78, both the third runner 76 and the fourth runner 78 are fixedly connected with round rods 79, the round rods 79 are fixedly connected with connecting rods 710, and one end of the connecting rod 710 away from the round rod 79 is rotatably connected with a movable plate 711. Multiple groups of grooves are provided on the movable plate 711. By driving the rotation of the first runner 72 through the output shaft of the motor 71, the rotation of the second runner 74 will be driven under the cooperation of the first conveyor belt 73. The rotation of the second runner 74 will drive the rotation of the third runner 76, and the rotation of the fourth runner 78 will be driven under the cooperation of the second conveyor belt 77. The rotation of the third runner 76 and the fourth runner 78 will drive the rotation of the two round rods 79, thereby driving the rotation of the two connecting rods 710, and thus driving the movable plate 711 to rotate. Under the cooperation of the clamping blocks on the fixing plate 75, the tubular oil cooler will be intermittently conveyed on the fixing plate 75.
[0025] Furthermore, the driving device 3 is fixedly connected with a rotating rod 716, the rotating rod 716 is fixedly connected with a disc 717, multiple arc-shaped notches are provided on the disc 717, a cross plate 712 is fixedly connected to the side wall of the second base 2, a sliding groove 713 is provided on the cross plate 712, a push plate 715 is slidably connected to the sliding groove 713, and a cylinder 714 is fixedly connected to the cross plate 712. The cylinder 714 is fixedly connected with the push plate 715 through its piston rod. By driving the rotation of the rotating rod 716 through the output shaft of the motor 71, the rotation of the two discs 717 will be driven, and under the cooperation of multiple arc-shaped notches on the disc 717, the tubular oil cooler on the inclined block 6 will be intermittently conveyed onto the conveyor belt 4. At the same time, by starting the cylinder 714 to drive the push plate 715 to perform a reciprocating pushing action on the conveyor belt 4, the tubular oil cooler on the conveyor belt 4 will be further calibrated.
[0026] In the present utility model, during use, the tubular oil cooler is placed in the groove on the movable plate 711. Then, the output shaft of the motor 71 is started to drive the rotation of the first runner 72. With the cooperation of the first conveyor belt 73, it will drive the rotation of the second runner 74. The rotation of the second runner 74 will drive the rotation of the third runner 76. With the cooperation of the second conveyor belt 77, it will drive the rotation of the fourth runner 78. The rotation of the third runner 76 and the fourth runner 78 will drive the rotation of the two round rods 79, thereby driving the rotation of the two connecting rods 710, and further driving the rotation of the movable plate 711. With the cooperation of the clamping blocks on the fixed plate 75, it will drive the tubular oil cooler to perform intermittent transmission on the fixed plate 75. When the tubular oil cooler is transmitted to the inclined block 6, it will be blocked by the disc 717. At the same time, the output shaft of the motor 71 will drive the rotation of the rotating rod 716, thereby driving the rotation of the two discs 717. With the cooperation of the multiple arc-shaped notches on the disc 717, it will drive the tubular oil cooler on the inclined block 6 to be intermittently conveyed onto the conveyor belt 4. At the same time, by starting the cylinder 714, it will drive the push plate 715 to perform a reciprocating pushing action on the conveyor belt 4, so that the tubular oil cooler on the conveyor belt 4 is further corrected.
[0027] The above are only the preferred embodiments of the present utility model, and do not limit the patent scope of the present utility model accordingly. Any equivalent structural transformation made by using the content of the specification and drawings of the present utility model under the inventive concept of the present utility model, or any direct / indirect application in other related technical fields, is included in the patent protection scope of the present utility model.
Claims
1. A calibration tooling for a tubular oil cooler, comprising a first base (1) and a second base (2), characterized in that: Both ends of the outer wall of the first base (1) are fixedly connected with baffle plates (5) and inclined blocks (6). A driving device (3) is provided on the side wall of the second base (2). A conveyor belt (4) is provided on the second base (2). A correction mechanism (7) is provided on the side wall of the second base (2). The correction mechanism (7) includes: A motor (71) which is fixedly connected to the side wall of the second base (2). The motor (71) is fixedly connected with a first runner (72) through its output shaft. The baffle plate (5) is fixedly connected with a fixing plate (75), and multiple groups of clamping blocks are provided above the fixing plate (75).
2. The calibration tooling for a tubular oil cooler according to claim 1, wherein: The first runner (72) is drivingly connected with a first conveyor belt (73). One end of the first conveyor belt (73) away from the first runner (72) is drivingly connected with a second runner (74).
3. The calibration tooling for a tubular oil cooler according to claim 2, characterized in that: The second runner (74) is fixedly connected with a rotating shaft. One end of the rotating shaft away from the second runner (74) is fixedly connected with a third runner (76). The third runner (76) is drivingly connected with a second conveyor belt (77). One end of the second conveyor belt (77) away from the third runner (76) is drivingly connected with a fourth runner (78).
4. A calibration tool for a tubular oil cooler according to claim 3, characterized in that: Both the third runner (76) and the fourth runner (78) are fixedly connected with round rods (79). The round rods (79) are fixedly connected with connecting rods (710). One end of the connecting rod (710) away from the round rod (79) is rotatably connected with a movable plate (711). Multiple groups of grooves are provided on the movable plate (711).
5. The calibration tooling for a tubular oil cooler according to claim 1, characterized in that: The driving device (3) is fixedly connected with a rotating rod (716). The rotating rod (716) is fixedly connected with a disc (717). Multiple groups of arc-shaped notches are provided on the disc (717).
6. The calibration tooling for a tubular oil cooler according to claim 1, characterized in that: The side wall of the second base (2) is fixedly connected with a cross plate (712). A sliding groove (713) is provided on the cross plate (712). A push plate (715) is slidably connected to the sliding groove (713). A cylinder (714) is fixedly connected to the cross plate (712). The cylinder (714) is fixedly connected with the push plate (715) through its piston rod.