A heavy mining engine water tank radiator pipe dismounting device
By designing a disassembly device for the radiator pipes of heavy-duty mining engines, and utilizing gear transmission and assist mechanism, the problems of easy damage and high labor intensity during the disassembly process of the radiator pipes were solved, achieving smooth disassembly and safe and efficient disassembly results.
Patent Information
- Application Number
- CN202410615482.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-17
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2044-05-17
AI Technical Summary
The cooling pipes of heavy-duty mining engines are prone to deformation or bending during replacement, which can lead to damage. Furthermore, manual disassembly is labor-intensive and poses safety hazards.
A disassembly device for the radiator pipes of a heavy-duty mining engine was designed, including components such as a support base, a lifting part, a fork part, a gear part, and an assist part. Through gear transmission and an assist mechanism, and taking advantage of the different diameters of the radiator pipes, a smooth disassembly is achieved, reducing labor intensity.
This method enables smooth disassembly of the heat pipes, avoids damage, reduces labor intensity, and improves disassembly efficiency and safety.
Smart Images

Figure CN118455953B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of water tank radiator pipe, and particularly relates to a mining heavy engine water tank radiator pipe dismounting device. BACKGROUND
[0002] When the mining heavy engine water tank is replaced with a radiator pipe or a sealing ring, manual or simple tool dismounting is often used, which often causes the radiator pipe to be deformed or bent, causes the radiator pipe to be damaged and unable to be reused, and the manual dismounting is easy to cause the hand to be scratched and has high labor intensity. SUMMARY
[0003] In view of the problems of the existing mining heavy engine water tank radiator pipe dismounting device, the present application is provided.
[0004] Therefore, the present application aims to provide a mining heavy engine water tank radiator pipe dismounting device, which aims to facilitate the replacement of the radiator pipe and reduce the labor intensity.
[0005] To solve the above technical problems, the present application provides the following technical scheme: comprising,
[0006] The dismounting mechanism comprises a supporting seat, a lifting part arranged on the supporting seat, a pulling fork part arranged on the lifting part, a gear part arranged in the supporting seat, a forward rotation part arranged in the supporting seat, a first connecting part arranged on the forward rotation part, and a power assisting part arranged in the supporting seat.
[0007] The lifting mechanism comprises a linkage part arranged on the power assisting part, a reverse rotation part arranged in the supporting seat, an adjusting part arranged in the reverse rotation part, an outer ring part arranged on the reverse rotation part, and an inner ring part arranged on the gear part.
[0008] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the lifting part comprises a lifting groove arranged on the supporting seat, a damping slide rail arranged in the lifting groove, and a lifting rack arranged on the lifting groove.
[0009] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the pulling fork part comprises a staggered frame arranged on the damping slide rail, a staggered groove arranged on the supporting seat and matched with the staggered frame, a U-shaped pulling fork arranged on the staggered frame, and a pulling fork groove arranged on the U-shaped pulling fork.
[0010] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the gear part comprises a gear groove arranged in the support seat, a gear rotating shaft arranged in the gear groove, a gear arranged on the gear rotating shaft and matched with the lifting rack, and a rotating shaft pin groove arranged on the gear rotating shaft.
[0011] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the gear part comprises a gear groove arranged in the support seat, a gear rotating shaft arranged in the gear groove, a gear arranged on the gear rotating shaft and matched with the lifting rack, and a rotating shaft pin groove arranged on the gear rotating shaft.
[0012] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the gear part comprises a gear groove arranged in the support seat, a gear rotating shaft arranged in the gear groove, a gear arranged on the gear rotating shaft and matched with the lifting rack, and a rotating shaft pin groove arranged on the gear rotating shaft.
[0013] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the gear part comprises a gear groove arranged in the support seat, a gear rotating shaft arranged in the gear groove, a gear arranged on the gear rotating shaft and matched with the lifting rack, and a rotating shaft pin groove arranged on the gear rotating shaft.
[0014] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the gear part comprises a gear groove arranged in the support seat, a gear rotating shaft arranged in the gear groove, a gear arranged on the gear rotating shaft and matched with the lifting rack, and a rotating shaft pin groove arranged on the gear rotating shaft.
[0015] The reverse part comprises a reverse ring arranged in the linkage rotating groove, a reverse groove arranged on the reverse ring, a reverse handle arranged on the reverse ring, a second movable groove arranged on the reverse ring and matched with the reverse groove, and a second connecting rod arranged in the second movable groove.
[0016] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the gear part comprises a gear groove arranged in the support seat, a gear rotating shaft arranged in the gear groove, a gear arranged on the gear rotating shaft and matched with the lifting rack, and a rotating shaft pin groove arranged on the gear rotating shaft.
[0017] As a preferred scheme of the mining heavy engine water tank radiator pipe dismounting device, the outer ring part comprises an outer connecting ring arranged on the reverse ring, an outer rotating ring arranged in the outer connecting ring, an outer ring thread arranged on the outer rotating ring and matched with the outer connecting ring, an outer arc-shaped groove arranged on the outer rotating ring and matched with the second connecting rod, and an outer ring groove arranged in the support seat and matched with the outer connecting ring.
[0018] The inner ring part comprises an inner mounting frame arranged on the gear rotating shaft, an inner rotating ring arranged on the inner mounting frame, and an inner arc-shaped groove arranged on the inner rotating ring and matched with the first connecting rod.
[0019] The mining heavy engine water tank radiator pipe dismounting device has the advantages that the fork part is inserted into the lower end of the water tank radiator pipe to be dismounted, the thick side of the water tank radiator pipe is used as a stress point, the lifting part is driven by the gear part to pull out the water tank radiator pipe, the operation is convenient, the labor intensity is reduced, the dismounting is stable, and material damage in the dismounting process is avoided.
[0020] The auxiliary power part is arranged to provide auxiliary power for the rising of the fork part, so that the workers can conveniently dismount. BRIEF DESCRIPTION OF DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor. Among them:
[0022] Figure 1 It is a whole structure schematic diagram of the mining heavy engine water tank radiator pipe dismounting device of the present application.
[0023] Figure 2 It is a structure schematic diagram of the fork part of the mining heavy engine water tank radiator pipe dismounting device of the present application.
[0024] Figure 3 It is a structure schematic diagram of the gear groove of the mining heavy engine water tank radiator pipe dismounting device of the present application.
[0025] Figure 4 It is a structure schematic diagram of the auxiliary power groove of the mining heavy engine water tank radiator pipe dismounting device of the present application.
[0026] Figure 5 It is a structure schematic diagram of the gear part of the mining heavy engine water tank radiator pipe dismounting device of the present application.
[0027] Figure 6It is the structure schematic view of reverse part of the mining heavy engine water tank radiating pipe dismounting device of the present application.
[0028] Figure 7 It is the structure schematic view of forward part of the mining heavy engine water tank radiating pipe dismounting device of the present application.
[0029] Figure 8 It is the structure schematic view of the mining heavy engine water tank radiating pipe dismounting device of the present application. Figure 6 It is the local enlarged schematic view of A in the mining heavy engine water tank radiating pipe dismounting device of the present application.
[0030] Figure 9 It is the local enlarged schematic view of B in the mining heavy engine water tank radiating pipe dismounting device of the present application. Figure 6
[0031] Figure 10 It is the structure schematic view of linkage part of the mining heavy engine water tank radiating pipe dismounting device of the present application.
[0032] Figure 11 It is the local enlarged schematic view of C in the mining heavy engine water tank radiating pipe dismounting device of the present application. Figure 10
[0033] Figure 12 It is the structure schematic view of adjustment part of the mining heavy engine water tank radiating pipe dismounting device of the present application.
[0034] Figure 13 It is the structure schematic view of outer ring part of the mining heavy engine water tank radiating pipe dismounting device of the present application. DETAILED DESCRIPTION
[0035] In order to make the above objectives, features and advantages of the present application more apparent, the specific embodiments of the present application will be described in detail below with the accompanying drawings.
[0036] In the following description, a lot of specific details are set forth in order to provide a thorough understanding of the present application, but the present application can also be implemented in other ways different from those described herein, and those skilled in the art can make similar generalizations without departing from the concept of the present application, therefore the present application is not limited to the specific embodiments disclosed below.
[0037] Secondly, the "one embodiment" or "embodiment" referred to herein means that the specific features, structures or characteristics can be included in at least one implementation of the present application. "In one embodiment" appearing in different places in the specification does not mean the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments.
[0038] Thirdly, the present application is described in detail in combination with the schematic diagram. In the detailed description of the embodiments of the present application, the cross-sectional view of the device structure is locally enlarged without the general proportion for the convenience of illustration, and the schematic diagram is only an example, which should not limit the scope of protection of the present application. In addition, the three-dimensional spatial dimensions including length, width and depth should be included in the actual manufacture.
[0039] Embodiment 1
[0040] Referring to Figure 1 , 2 , 6, 8, 10, the first embodiment of the present application provides a heavy mine engine water tank radiator pipe dismounting device, which comprises,
[0041] The dismounting mechanism 100 comprises a supporting seat 101, a lifting part 102 arranged on the supporting seat 101, a pulling fork part 103 arranged on the lifting part 102, a gear part 104 arranged in the supporting seat 101, a forward rotation part 105 arranged in the supporting seat 101, a first connecting part 106 arranged on the forward rotation part 105, and a power assisting part 107 arranged in the supporting seat 101.
[0042] The lifting mechanism 200 comprises a linkage part 201 arranged on the power assisting part 107, a reverse rotation part 202 arranged in the supporting seat 101, an adjusting part 203 arranged in the reverse rotation part 202, an outer ring part 204 arranged on the reverse rotation part 202, and an inner ring part 205 arranged on the gear part 104.
[0043] During use, the fork part 103 is inserted into the lower end of the radiator pipe of the water tank to be disassembled, the thick side of the radiator pipe is used as the force point, the adjusting part 203 is driven to rotate the linkage part 201 by rotating the reverse part 202 clockwise, the linkage part 201 is stretched by rotating the linkage part 201, the reverse part 202 is rotated counterclockwise, the linkage part 201 is pressed to make the adjusting part 203 contract, the reverse part 202 is repeatedly rotated to complete the stretching of the power assisting part 107, after the stretching is completed, the adjusting part 203 is inserted into the linkage part 201 by rotating the outer ring part 204 to drive the reverse part 202, the reverse part 202 is lifted by rotating the reverse part 202 clockwise, the linkage part 201 is rotated by rotating the reverse part 202 counterclockwise to drive the power assisting part 107, the gear part 104 is rotated by rotating the clockwise rotating part 105, the lifting part 102 is lifted by rotating the gear part 104, the power assisting part 107 is contracted to pull the clockwise rotating part 105 to rotate the gear part 104 when the lifting part 102 is rotated counterclockwise, the pressure of the worker and the elastic force of the power assisting part 107 provide power for the lifting of the fork part 103, the pressure of the worker is reduced when the radiator pipe of the water tank is disassembled, after the disassembly is completed, the clockwise rotating part 105 is separated from the gear part 104 by rotating the inner ring part 205 to drive the first connecting part 106, thereby releasing the limitation of the gear part 104, the fork part 103 is automatically reset due to gravity, and the device is convenient for use next time.
[0044] Embodiment 2
[0045] Reference Figures 1-8 For the second embodiment of the application, the difference between this embodiment and the first embodiment is that the lifting part 102 comprises a lifting groove 102a arranged on the support base 101, a damping slide rail 102b arranged in the lifting groove 102a, and a lifting rack 102c arranged on the 120b.
[0046] Preferably, the lifting groove 102a is arranged on the support base 101 and communicates with the top of the support base 101, providing space for the lifting of the lifting rack 102c, the damping slide rail 102b is arranged, which not only allows the lifting rack 102c to slide and lift, but also provides resistance when the lifting rack 102c descends, so that the fork part 103 slowly descends, increasing the safety of the device, and the lifting rack 102c is slidably arranged on the damping slide rail 102b.
[0047] The fork part 103 comprises a staggered frame 103a arranged on the damping slide rail 102b, a staggered groove 103b arranged on the support base 101 and matched with the staggered frame 103a, a U-shaped fork 103c arranged on the staggered frame 103a, and a fork groove 103d arranged on the U-shaped fork 103c.
[0048] Preferably, the staggered frame 103a is a "back" shaped frame, which can prevent the staggered frame 103a from being stuck with the damping slide rail 102b when it rises, and ensure the normal operation of the device. The staggered frame 103a is fixedly arranged at the bottom of the lifting rack 102c, the staggered slot 103b provides space for the staggered frame 103a to rise, and ensures the normal operation of the device. The U-shaped puller 103c is used to connect the radiator pipe of the water tank, and the thick side of the radiator pipe is used as a force point to disassemble the radiator pipe.
[0049] The gear part 104 includes a gear slot 104a arranged in the support seat 101, a gear rotating shaft 104b arranged in the gear slot 104a, a gear 104c arranged on the gear rotating shaft 104b and matched with the lifting rack 102c, and a rotating shaft pin slot 104d arranged on the gear rotating shaft 104b.
[0050] Preferably, the gear slot 104a is communicated with the lifting slot 102a, so that the gear 104c installed in the gear slot 104a can be engaged with the lifting rack 102c, and the normal operation of the device is ensured. The gear rotating shaft 104b is rotatably arranged in the gear slot 104a, and the gear 104c is fixedly connected with the gear rotating shaft 104b.
[0051] The forward rotating part 105 includes a forward rotating slot 105a arranged in the support seat 101 and communicated with the gear slot 104a, a forward rotating ring 105b arranged in the forward rotating slot 105a, a forward rotating movable slot 105c arranged in the forward rotating ring 105b, a forward rotating movable block 105d arranged in the forward rotating movable slot 105c, a forward rotating spring 105e arranged on the forward rotating movable block 105d, and a forward rotating triangular clamping block 105f arranged on the forward rotating spring 105e and matched with the rotating shaft pin slot 104d.
[0052] Preferably, the reverse rotation groove 105a is used to install the reverse rotation ring 105b, and provide space for the rotation of the reverse rotation ring 105b, the reverse rotation ring 105b is rotatably arranged in the reverse rotation groove 105a, the reverse rotation movable groove 105c is arranged in a circular array in the reverse rotation ring 105b, the reverse rotation movable groove 105c corresponds to the shaft pin groove 104d, the reverse rotation movable block 105d is slidably arranged in the reverse rotation movable groove 105c, the reverse rotation spring 105e is fixedly arranged on the reverse rotation movable block 105d, the reverse rotation triangular clamping block 105f is fixedly arranged on the reverse rotation spring 105e and slidably arranged in the reverse rotation movable groove 105c, the reverse rotation triangular clamping block 105f cooperates with the arrangement of the shaft pin groove 104d, so that the reverse rotation ring 105b can rotate clockwise, when rotating clockwise, the shaft pin groove 104d presses the inclined surface of the reverse rotation triangular clamping block 105f to make the reverse rotation spring 105e contract, so that the reverse rotation triangular clamping block 105f is contracted into the reverse rotation movable groove 105c, when rotating counterclockwise, the shaft pin groove 104d is in close contact with the flat surface of the reverse rotation triangular clamping block 105f, so that the reverse rotation ring 105b cannot rotate counterclockwise.
[0053] The first connecting part 106 includes a first movable groove 106a arranged on the reverse rotation ring 105b and communicating with the reverse rotation movable groove 105c, a first movable block 106b arranged on the reverse rotation movable block 105d and matched with the first movable groove 106a, a first connecting rod 106c arranged on the first movable block 106b, and a first spring 106d arranged on the reverse rotation ring 105b and connected with the first movable block 106b.
[0054] Preferably, the first movable groove 106a is used to slidably install the first movable block 106b, and provide space for the movement of the first movable block 106b, one end of the first movable block 106b is fixedly connected with the surface of the reverse rotation movable block 105d, so as to limit the reverse rotation movable block 105d, the elastic force of the first spring 106d is greater than that of the reverse rotation spring 105e, so that the shaft pin groove 104d presses the inclined surface of the reverse rotation triangular clamping block 105f to make the reverse rotation spring 105e contract, the arrangement of the first connecting rod 106c can drive the reverse rotation triangular clamping block 105f to contract, so as to release the limitation on the gear shaft 104b.
[0055] The assisting part 107 includes an assisting line wheel 107a arranged on the reverse rotation ring 105b, an assisting groove 107b arranged in the support seat 101, an assisting spring 107c arranged in the assisting groove 107b, and an assisting pull rope 107d arranged between the assisting spring 107c and the assisting line wheel 107a.
[0056] Preferably, the power line wheel 107a is fixedly arranged on the clockwise rotation ring 105b, the clockwise rotation ring 105b rotates clockwise to drive the power line wheel 107a to rotate, the power line wheel 107a rotates clockwise to wind the power pulling rope 107d in the groove of the power line wheel 107a, the power pulling rope 107d is wound to pull the power spring 107c, so that the power spring 107c is elongated to provide power for subsequent disassembly of the radiator pipe.
[0057] The rest of the structure is the same as that of example 1.
[0058] In use, the fork groove 103d is inserted into the lower end of the radiator pipe to be disassembled, the thick side is used as the force point by using the different diameters of the radiator pipe, the reverse rotation part 202 is rotated clockwise to drive the adjusting part 203 to rotate the linkage part 201, the linkage part 201 is rotated to drive the power line wheel 107a to rotate, the power line wheel 107a is rotated to wind the power pulling rope 107d, the power pulling rope 107d is stretched to drive the power spring 107c, the reverse rotation part 202 is rotated counterclockwise, the plane of the clockwise rotation triangular block 105f is in close contact with the shaft pin groove 104d, so the clockwise rotation ring 105b cannot drive the clockwise rotation triangular block 105f to rotate counterclockwise, therefore, when the reverse rotation part 202 is rotated counterclockwise, the linkage part 201 presses the adjusting part 203 to make the adjusting part 203 contract, so that the counterclockwise rotation of the reverse rotation part 202 is completed, the reverse rotation part 202 is repeatedly rotated up and down to stretch the power spring 107c, so that the elastic force of the power spring 107c is stored, after the storage of the elastic force of the power spring 107c is completed, the outer ring part 204 is rotated to drive the reverse rotation part 202 to make the adjusting part 203 inserted into the linkage part 201, the reverse rotation part 202 is rotated clockwise again, the reverse rotation part 202 is lifted, then the reverse rotation part 202 is rotated counterclockwise to drive the adjusting part 203 to rotate the linkage part 201, the linkage part 201 drives the power line wheel 107a to rotate the clockwise rotation ring 105b, the clockwise rotation ring 105b drives the clockwise rotation triangular block 105f to rotate, the clockwise rotation triangular block 105f drives the shaft pin groove 104d to rotate the gear shaft 104b, the gear shaft 104b drives the gear 104c to move the lifting rack 102c along the damping slide rail 102b, the lifting rack 102c drives the staggered frame 103a to move along the staggered groove 103b, the staggered frame 103a drives the U-shaped fork 103c to make the fork groove 103d rise, so that the radiator pipe is disassembled, after the disassembly is completed, the inner ring part 205 is rotated to drive the first connecting rod 106c to move the first movable block 106b along the first movable groove 106a, the first movable block 106b drives the clockwise rotation movable block 105d to move the clockwise rotation spring 105e, the clockwise rotation spring 105e drives the clockwise rotation triangular block 105f to be separated from the shaft pin groove 104d, so that the limitation on the gear shaft 104b is released, due to gravity, the U-shaped fork 103c is automatically lowered and reset, so that the device is convenient for use next time.
[0059] Embodiment 3
[0060] Referring to Figure 6 and Figures 9-13 For the third embodiment of the present application, which is different from the second embodiment, the linkage part 201 comprises a linkage rotating groove 201a arranged in the support base 101 and communicating with the forward rotating groove 105a, a linkage rotating ring 201b arranged on the power line wheel 107a, and a linkage clamping groove 201c arranged on the linkage rotating ring 201b.
[0061] Preferably, the linkage rotating groove 201a is used for mounting the linkage rotating ring 201b and the reverse rotating ring 202a, and the linkage rotating ring 201b is fixedly arranged on the power line wheel 107a, so that the linkage rotating ring 201b can drive the power line wheel 107a to rotate.
[0062] The reverse part 202 comprises a reverse rotating ring 202a arranged in the linkage rotating groove 201a, a reverse rotating groove 202b arranged on the reverse rotating ring 202a, a reverse rotating handle 202c arranged on the reverse rotating ring 202a, a second movable groove 202d arranged on the reverse rotating ring 202a and communicating with the reverse rotating groove 202b, and a second connecting rod 202e arranged in the second movable groove 202d.
[0063] Preferably, the reverse rotating ring 202a is rotatably arranged in the linkage rotating groove 201a, the reverse rotating groove 202b is used for mounting the adjusting part 203, the reverse rotating handle 202c is fixedly arranged on the reverse rotating ring 202a and extends to the outside of the support base 101, the second movable groove 202d is used for mounting the second connecting rod 202e and provides space for the movement of the second connecting rod 202e, and the second connecting rod 202e is fixedly connected with the surface of the adjusting sliding sleeve 203d, so that the second connecting rod 202e can be moved to extend or retract the adjusting sliding sleeve 203d, thereby ensuring the normal operation of the device.
[0064] The adjusting part 203 comprises an adjusting frame 203a arranged in the reverse rotating groove 202b, an adjusting spring 203b arranged in the adjusting frame 203a, an adjusting triangular clamping block 203c arranged on the adjusting spring 203b and matched with the linkage clamping groove 201c, and an adjusting sliding sleeve 203d arranged on the adjusting frame 203a and connected with the second connecting rod 202e.
[0065] Preferably, the adjusting frame 203a is fixedly arranged in the reverse slot 202b, the adjusting spring 203b is fixedly arranged in the adjusting frame 203a, the adjusting triangular clamping block 203c is slidingly arranged in the adjusting frame 203a and is fixedly connected with one end of the adjusting spring 203b, and the adjusting sliding sleeve 203d is slidingly arranged on the adjusting frame 203a. When the adjusting frame 203a is contracted and the reverse ring 202a is counterclockwise rotated, the linkage clamping slot 201c presses the inclined surface of the adjusting triangular clamping block 203c, so that the adjusting triangular clamping block 203c is contracted, and thus the reverse ring 202a cannot drive the linkage rotating ring 201b to rotate counterclockwise. When it is required to drive the linkage rotating ring 201b to rotate counterclockwise, the adjusting sliding sleeve 203d is only required to be moved to be inserted into the linkage clamping slot 201c.
[0066] The outer ring part 204 comprises an outer connecting ring 204e arranged on the reverse ring 202a, an outer rotating ring 204b arranged in the outer connecting ring 204e, an outer ring thread 204d arranged on the outer rotating ring 204b and matched with the outer connecting ring 204e, an outer arc-shaped slot 204c arranged on the outer rotating ring 204b and matched with the second connecting rod 202e, and an outer ring slot 204a arranged in the support base 101 and matched with the outer connecting ring 204e.
[0067] Preferably, the outer connecting ring 204e is fixedly arranged on the reverse ring 202a, and the outer rotating ring 204b is threadedly connected with the outer connecting ring 204e through the outer ring thread 204d. Thus, when the reverse ring 202a rotates, the outer connecting ring 204e is driven to rotate, the outer rotating ring 204b is driven to rotate, and the second connecting rod 202e is driven to move by rotating the outer rotating ring 204b and driving the outer arc-shaped slot 204c when the adjusting sliding sleeve 203d is required to be moved. The operation is convenient, the outer arc-shaped slot 204c is provided with a plurality of outer arc-shaped slots corresponding to the second connecting rod 202e.
[0068] The inner ring part 205 comprises an inner mounting frame 205a arranged on the gear rotating shaft 104b, an inner rotating ring 205b arranged on the inner mounting frame 205a, and an inner arc-shaped slot 205c arranged on the inner rotating ring 205b and matched with the first connecting rod 106c.
[0069] Preferably, the inner mounting frame 205a is rotationally arranged on the gear rotating shaft 104b, the first connecting rod 106c is limited by the elastic force of the first spring 106d, and the stability of the inner rotating ring 205b is ensured. The inner arc-shaped slot 205c is provided with a plurality of inner arc-shaped slots corresponding to the first connecting rod 106c.
[0070] The remaining structure is the same as that of the structure of the second embodiment.
[0071] During use, clockwise rotation of the reverse handle 202c drives the reverse ring 202a to rotate the adjustment frame 203a, which drives the adjustment triangular clamping block 203c to rotate the linkage rotating groove 201a, which drives the power line wheel 107a to rotate, and the power line wheel 107a rotates to wind the power pull rope 107d, which drives the power spring 107c to stretch. Counterclockwise rotation of the reverse handle 202c drives the linkage rotating ring 201b to compress the adjustment triangular clamping block 203c, so that the adjustment triangular clamping block 203c is retracted into the adjustment frame 203a, thereby completing the counterclockwise rotation of the reverse handle 202c. Repeatedly rotating the reverse part 202 up and down completes the stretching of the power spring 107c, thereby storing the elastic force of the power spring 107c. After the storage of the elastic force of the power spring 107c is completed, rotating the outer rotating ring 204b drives the adjustment triangular clamping block 203c to move the second connecting rod 202e along the second movable groove 202d, which drives the adjustment sliding sleeve 203d into the linkage rotating ring 201b, and at the same time, the adjustment triangular clamping block 203c is shielded. Again, clockwise rotation of the reverse handle 202c lifts the reverse handle 202c, and then counterclockwise rotation of the reverse handle 202c drives the adjustment frame 203a to rotate the adjustment sliding sleeve 203d, which drives the linkage rotating ring 201b to rotate the linkage rotating groove 201a, which drives the power line wheel 107a to rotate the clockwise rotating ring 105b, which drives the U-shaped pull fork 103c to rise, thereby disassembling the water tank radiator pipe. After disassembly is completed, rotating the inner mounting frame 205a drives the inner rotating ring 205b to rotate the inner arc-shaped groove 205c, which compresses the first connecting rod 106c to elongate the first spring 106d, and at the same time, the first connecting rod 106c drives the first movable block 106b to move the clockwise movable block 105d, which drives the clockwise spring 105e to make the clockwise triangular clamping block 105f disengage from the rotating shaft slot 104d, thereby releasing the limitation on the gear rotating shaft 104b. Due to gravity, the U-shaped pull fork 103c automatically descends and resets, making it convenient for the device to be used next time.
[0072] It is important to note that the construction and arrangement of the application shown in the various examples presented are illustrative only. Although only a few embodiments have been described in detail in this disclosure, those skilled in the art who review the present disclosure will readily appreciate that many modifications are possible (e.g., variations in sizes, dimensions, structures, shapes and proportions of the various elements, values of parameters, mounting arrangements, use of materials, colors, orientations, etc.) without materially departing from the novel teachings and advantages of the subject matter described herein. For example, elements shown as integrally formed can be constructed of multiple parts or elements, the position of elements can be reversed or otherwise varied, and the nature or number of elements can be altered or varied. Thus, all such modifications are intended to be included within the scope of the present application. The order or sequence of any process or method steps can be varied or re-sequenced without materially affecting the application. Any "apparatus" or "device" described herein can be a structure that performs the recited function, not necessarily composed of all the means or elements specifically disclosed. In the claims, any means-plus-function clause is intended to cover the structures described herein as performing the recited function and not only structural equivalents but also equivalent structures. Other substitutions, modifications, changes and omissions can be made in the design, operating conditions and arrangement of the exemplary embodiments without departing from the scope of the present application. Accordingly, the present application is not limited to the particular embodiments described herein, but extends to all structures that would fall within the scope of the appended claims.
[0073] Also, in order to provide a concise description of the exemplary embodiments, not all features of an actual implementation can be described (i.e., those related to the
[0074] It should be noted that the above-mentioned embodiments are only used to illustrate the technical solutions of the present application, not limit the present application. Although the present application is described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present application can be modified or replaced by equivalents without departing from the spirit and scope of the present application, which should be covered by the claims of the present application.
Claims
1. A device for removing radiator tubes from a water jacket of a heavy-duty engine for mining, characterized in that: Including, The dismounting mechanism (100) includes a support seat (101), a lifting part (102) arranged on the support seat (101), a pulling fork part (103) arranged on the lifting part (102), a gear part (104) arranged in the support seat (101), a forward rotation part (105) arranged in the support seat (101), a first connecting part (106) arranged on the forward rotation part (105), and a power assisting part (107) arranged in the support seat (101); The lifting mechanism (200) includes a linkage part (201) arranged on the power assisting part (107), a reverse rotation part (202) arranged in the support seat (101), an adjusting part (203) arranged in the reverse rotation part (202), an outer ring part (204) arranged on the reverse rotation part (202), and an inner ring part (205) arranged on the gear part (104).
2. The heavy-duty engine radiator tube dismounting device for mining water tank according to claim 1, characterized in that: The lifting part (102) includes a lifting groove (102a) arranged on the support seat (101), a damping slide rail (102b) arranged in the lifting groove (102a), and a lifting rack (102c) arranged on the damping slide rail (102b).
3. The device according to claim 2, characterized in that: The pulling fork part (103) includes a misalignment frame (103a) arranged on the damping slide rail (102b), a misalignment groove (103b) arranged on the support seat (101) and matched with the misalignment frame (103a), a U-shaped pulling fork (103c) arranged on the misalignment frame (103a), and a pulling fork groove (103d) arranged on the U-shaped pulling fork (103c).
4. The device according to claim 3, characterized in that: The gear part (104) includes a gear groove (104a) arranged in the support seat (101), a gear rotating shaft (104b) arranged in the gear groove (104a), a gear (104c) arranged on the gear rotating shaft (104b) and matched with the lifting rack (102c), and a rotating shaft pin groove (104d) arranged on the gear rotating shaft (104b).
5. The heavy duty engine radiator hose removal device for mining use according to claim 4, characterized in that: The forward rotation part (105) includes a forward rotation groove (105a) arranged in the support seat (101) and communicated with the gear groove (104a), a forward rotation ring (105b) arranged in the forward rotation groove (105a), a forward rotation movable groove (105c) arranged in the forward rotation ring (105b), a forward rotation movable block (105d) arranged in the forward rotation movable groove (105c), a forward rotation spring (105e) arranged on the forward rotation movable block (105d), and a forward rotation triangular clamping block (105f) arranged on the forward rotation spring (105e) and matched with the rotating shaft pin groove (104d).
6. The device according to claim 5, characterized in that: The first connecting part (106) comprises a first movable groove (106a) arranged on the forward rotation ring (105b) and communicated with the forward rotation movable groove (105c), a first movable block (106b) arranged on the forward rotation movable block (105d) and matched with the first movable groove (106a), a first connecting rod (106c) arranged on the first movable block (106b), and a first spring (106d) arranged on the forward rotation ring (105b) and connected with the first movable block (106b).
7. The device according to claim 6, characterized in that: The assisting part (107) comprises an assisting line wheel (107a) arranged on the forward rotation ring (105b), an assisting groove (107b) arranged in the support base (101), an assisting spring (107c) arranged in the assisting groove (107b), and an assisting pull rope (107d) arranged between the assisting spring (107c) and the assisting line wheel (107a).
8. The heavy duty engine radiator hose removal device for mining use according to claim 7, characterized in that: The linkage part (201) comprises a linkage rotation groove (201a) arranged in the support base (101) and communicated with the forward rotation groove (105a), a linkage rotation ring (201b) arranged on the assisting line wheel (107a), and a linkage clamping groove (201c) arranged on the linkage rotation ring (201b). The reverse rotation part (202) comprises a reverse rotation ring (202a) arranged in the linkage rotation groove (201a), a reverse rotation groove (202b) arranged on the reverse rotation ring (202a), a reverse rotation handle (202c) arranged on the reverse rotation ring (202a), a second movable groove (202d) arranged on the reverse rotation ring (202a) and communicated with the reverse rotation groove (202b), and a second connecting rod (202e) arranged in the second movable groove (202d).
9. The heavy duty engine radiator hose removal device for mining vehicles as set forth in claim 8, wherein: The adjusting part (203) comprises an adjusting frame (203a) arranged in the reverse rotation groove (202b), an adjusting spring (203b) arranged in the adjusting frame (203a), an adjusting triangular clamping block (203c) arranged on the adjusting spring (203b) and matched with the linkage clamping groove (201c), an adjusting sliding sleeve (203d) arranged on the adjusting frame (203a) and connected with the second connecting rod (202e).
10. The device according to claim 9, characterized in that it comprises: The outer ring part (204) comprises an outer connecting ring (204e) arranged on the reverse rotation ring (202a), an outer rotation ring (204b) arranged in the outer connecting ring (204e), an outer ring thread (204d) arranged on the outer rotation ring (204b) and matched with the outer connecting ring (204e), an outer arc-shaped groove (204c) arranged on the outer rotation ring (204b) and matched with the second connecting rod (202e), and an outer ring groove (204a) arranged in the support base (101) and matched with the outer connecting ring (204e). The inner ring part (205) comprises an inner mounting frame (205a) arranged on the gear rotating shaft (104b), an inner rotating ring (205b) arranged on the inner mounting frame (205a), and an inner arc-shaped slot (205c) arranged on the inner rotating ring (205b) and matched with the first connecting rod (106c).
Citation Information
Patent Citations
Automobile engine dismounting auxiliary frame facilitating height adjustment
CN112060021A
Lifting dismounting device and power assisting system
CN220907026U