Maglev Bogie with A Centering Function and Guiding Method Thereof
20240416972 ยท 2024-12-19
Inventors
Cpc classification
Y02T30/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
The present disclosure relates to a maglev bogie, in particular to a maglev bogie with a centering function and a guiding method thereof. The maglev bogie comprises a maglev guide frame, crank arm brackets, guide wheels, first onboard magnet groups and cylindrical gears, wherein the crank arm brackets are hinged to the four corners of the top and bottom of the maglev bogie, the guide wheels are rotatably connected to the ends of the crank arm brackets, two first onboard magnet groups are slidably connected to each of the two inner sides of the upper part of the maglev guide frame, some of the cylindrical gears are connected to the top of the maglev guide frame where the upper crank arm brackets are hinged, two of the cylindrical gears are rotatably connected to each of the two sides of the top of the maglev guide frame, and every two adjacent cylindrical gears are meshed with each other. With the arrangement of the crank arm brackets, the guide wheels and the cylindrical gears, when the guide wheels on one side is squeezed by overhead track beam and displaced, the guide wheels on the other side can be synchronously driven to displace, so as to ensure a centered state of the maglev guide frame, the first onboard magnet groups, the overhead track beam and beam-borne magnetic track.
Claims
1. A maglev bogie with a centering function, comprising: a maglev guide frame (1), crank arm brackets (2), guide wheels (3), first onboard magnet groups (4), cylindrical gears (6), middle lugs (8), resilient devices (9) and a mechanical braking system, wherein the crank arm brackets (2) are hinged to the four corners of the top and bottom of the maglev guide frame (1), the guide wheels (3) are rotatably connected to the ends of the crank arm brackets (2), the first onboard magnet groups (4) are slidably connected to the two inner sides of the upper part of the maglev guide frame (1), some of the cylindrical gears (6) are connected to the top of the maglev guide frame (1) where the upper crank arm brackets (2) are hinged, two of the cylindrical gears (6) are rotatably connected to each of the two sides of the top of the maglev guide frame (1), every two adjacent cylindrical gears (6) are meshed with each other, the middle lugs (8) are arranged at the lateral centers of the top surface and the top surface of the maglev guide frame (1) respectively, the resilient devices (9) are hinged between the middle lugs (8) and the crank arm brackets (2) that are adjacent to the middle lugs (8), the mechanical braking system is arranged between the crank arm brackets (2) and the guide wheels (3) for braking the maglev guide frame (1).
2. The maglev bogie with a centering function of claim 1, wherein the mechanical braking system comprises brake discs (31) and brake calipers (32), wherein the brake discs (31) are arranged at the upper and lower sides of the guide wheels (3), the brake calipers (32) are arranged at two sides of the crank arm brackets (2), and the brake calipers (32) are sleeved outside the corresponding brake discs (31).
3. The maglev bogie with a centering function of claim 1, further comprising an adjusting and centering mechanism, which comprises first gears (101), rotating shafts (102), second gears (103) and connecting racks (104), wherein the rotating shafts (102) are rotatably connected to the four sides of the top part of the maglev guide frame (1), the first gears (101) are connected to the tops of the rotating shafts (102) and are meshed with the cylindrical gears (6) connected to the crank arm brackets (2), the second gears (103) are connected to the bottoms of the rotating shafts (102), the connecting racks (104) are connected to the sides of the two first onboard magnet groups (4) away from each other on the same side, and the second gears (103) are meshed with the connecting racks (104).
4. The maglev bogie with a centering function of claim 1, further comprising an adjustable pushing mechanism, which comprises pushing blocks (121) and locking bolts (122), wherein the pushing blocks (121) are slidably connected to the lower parts of the upper crank arm brackets (2), the locking bolts (122) are connected to the upper crank arm brackets (2) through threads respectively for locking the pushing blocks (121).
5. The maglev bogie with a centering function of claim 4, further comprising a magnetic braking system, which comprises slidable pushing blocks (131), sliding racks (132), resilient members (133), connecting shafts (134), adjusting gears (136) and second onboard magnet groups (135), wherein the slidable pushing block (131) are slidably connected to the four corners of the maglev guide frame (1), the pushing blocks (121) can be driven by the crack arm brackets (2) to push the slidable pushing blocks (131) to move when the crack arm brackets (2) swing, the sliding racks (132) are slidably connected to the four corners of the maglev guide frame (1), the sliding racks (132) can be pressed by the slidable pushing blocks (131) to move with the slidable pushing blocks (131), the connecting shafts (134) are rotatably connected to the four corners of the upper part of the maglev guide frame (1), the adjusting gears (136) are connected to the connecting shafts (134) and meshed with the sliding racks (132), the resilient members (133) are connected between the sliding racks (132) and the maglev guide frame (1), and the second onboard magnet groups (135) are connected to the connecting shafts (134).
6. The maglev bogie with a centering function of claim 1, further comprising a power device, which comprises a primary winding (7) and a secondary winding plate of a linear motor, wherein the primary winding (7) of the linear motor is arranged at the center of the top of the maglev guide frame (1), and the secondary winding plate is arranged on the overhead track beam (100).
7. The maglev bogie with a centering function of claim 1, further comprising a speed measurement sensor (14), which is mounted on the top of the maglev guide frame (1).
8. The maglev bogie with a centering function of claim 1, further comprising an alarm buzzer (15), range sensors (151) and a controller (152), wherein the alarm buzzer (15) and the controller (152) are arranged on the maglev guide frame (1), the range sensors (151) are arranged on the resilient devices (9), and the range sensors (151) and the alarm buzzer (152) are electrically connected with the controller (152) respectively.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] In the figures: 1maglev guide frame; 2crank arm bracket; 3guide wheel; 31brake disc; 32brake caliper; 4first onboard magnet group; 6cylindrical gear; 7primary of linear motor; 8middle lug; 9resilient device; 101first gear; 102rotating shaft; 103second gear; 104connecting rack; 121pushing block; 122locking bolt; 131slidable pushing block; 132sliding rack; 133resilient member; 134connecting shaft; 135second onboard magnet group; 136adjusting gear; 14speed measurement sensor; 15alarm buzzer; 151range sensor; 152controller; 100overhead track beam; 200beam-borne magnetic track.
DETAILED DESCRIPTION
[0027] The technical scheme will be further explained below in specific embodiments. It should be noted that the words denoting directions such as top, bottom, left and right mentioned herein are only intended to indicate the orientations of the shown structures in the corresponding drawings. The ordinal numerals for the parts used herein, such as first and second, etc., are only intended to distinguish the described objects, without any sequential or technical meaning. Unless otherwise specified, the words connection and coupling as used herein encompass direct and indirect connections (coupling).
Embodiment 1
[0028] A maglev bogie with a centering function and a guiding method thereof are provided. As shown in
[0029] As shown in
[0030] During the use of the bogie, at positions where the overhead track beam 100 is narrower or turned, the narrower or turned side of the overhead track beam 100 presses the guide wheels 3 in contact with it, thus driving the crank arm brackets 2 on the same side to swing, and the crank arm brackets 2 on the other side swing at the same time by means of the sequential meshed transmission of the four cylindrical gears 6, so that the guide wheels 3 on both sides contract at the same time, thereby the first onboard magnet groups 4 on the maglev guide frame 1 are centered with respect to the beam-borne magnetic track. Similarly, at positions where the overhead track beam 100 is widened, the guide wheels 3 on both sides can be controlled to extend at the same time. In that way, the maglev guide frame 1, the first onboard magnet groups 4, the overhead track beam 100 and the beam-borne magnetic track 200 can be maintained in a centered state at positions where the overhead track beam 100 is narrowed or widened. When the crank arm brackets 2 swing, the resilient devices 9 contract or extend at the same time; since the resilient devices 9 can't contract further when the contraction reaches a limit, the swing of the crank arm brackets 2 is limited.
Embodiment 2
[0031] Based on the embodiment 1, as shown in
[0032] In the centering process, when the crank arm brackets 2 swing to drive the cylindrical gears 6 on it to rotate, the connecting racks 104 can be driven via the first gears 101, the rotating shafts 102 and the second gears 103 to move, and the movement of the connecting racks 104 can drive the first onboard magnet groups 4 to move, so that the first onboard magnet groups 4 are controlled to move and get centered with respect to the beam-borne magnetic track 200 in the centering process.
[0033] As shown in
[0034] As shown in
[0035] When the crank arm brackets 2 swing, they drive the pushing blocks 121 to move; then, the pushing blocks 121 contact with the slidable pushing blocks 131 and press the slidable pushing blocks 131 to move; the slidable pushing blocks 131 move and press the sliding rack 132 to move and the resilient members 133 are deformed; the sliding racks 132 move to drive the connecting shafts 134 via the adjusting gears 136 to rotate, so that the second onboard magnet groups 135 are turned over. After the second onboard magnet groups 135 is turned over, the bottom surface of each second onboard magnet group 135 swings forward and aligns with the beam-borne magnetic track 200; the magnetic polarity of the bottom surface of the second onboard magnet group 135 is the same as that of the beam-borne magnetic track 200, thereby the second onboard magnet groups 135 can be pushed to move backward under the repulsion, and the entire maglev guide frame 1 is braked by means of magnetism.
[0036] As shown in
[0037] As shown in
[0038] As shown in
[0039] It should be noted that the above embodiments are only intended to illustrate the technical scheme of the present disclosure, but doesn't constitute any limitation to the scope of protection of the present disclosure. Although the present disclosure is described in detail in some preferred embodiments, it should be understood by those skilled in the art that various modifications or equivalent replacements may be made to the technical scheme of the present disclosure without departing from the essence and scope of the technical scheme of the present disclosure.