Inspection system for amusement rides having tracks
11673590 ยท 2023-06-13
Inventors
Cpc classification
H04N23/54
ELECTRICITY
H04N23/57
ELECTRICITY
B61L27/53
PERFORMING OPERATIONS; TRANSPORTING
H04N7/181
ELECTRICITY
B61L27/50
PERFORMING OPERATIONS; TRANSPORTING
B61K9/10
PERFORMING OPERATIONS; TRANSPORTING
H04N23/90
ELECTRICITY
International classification
B61K9/10
PERFORMING OPERATIONS; TRANSPORTING
B61L23/04
PERFORMING OPERATIONS; TRANSPORTING
B61L27/50
PERFORMING OPERATIONS; TRANSPORTING
B61L27/53
PERFORMING OPERATIONS; TRANSPORTING
H04N23/54
ELECTRICITY
H04N23/57
ELECTRICITY
H04N23/69
ELECTRICITY
Abstract
An inspection system for inspecting the track of an amusement ride with at least one rail. A vehicle is provided that is designed to ride along the track. The vehicle supports cameras. The cameras are positioned in unobstructed areas. The cameras image the rail from different angles as the vehicle rides along the track. The images recorded by the cameras are reviewed to identify any defect or issue with the rail or its supporting framework that may impact from the safety of the ride.
Claims
1. A method of visually inspecting the track of an amusement ride, wherein said track has a support framework that supports a rail and creates obstructed areas and unobstructed areas proximate said rail along said track, said method comprising: providing a vehicle having wheels, a safety brake, an odometer unit, an electric motor, and at least one battery for powering said electric motor, wherein at least one of said wheels is a drive wheel that engages said rail and actively moves said vehicle along said rail, and wherein said odometer unit contacts said rail and measures movement of said vehicle along said rail; providing a system controlled that electronically monitors said electric motor to determine distance traveled by said drive wheel along said rail, wherein said system controller determines said distance traveled by said drive wheel along said rail and compares said distance traveled to said movement measured by said odometer unit, wherein said safety brake is automatically activated should said distance traveled by said drive wheel along said rail fail to match said movement measured by said odometer unit.
2. The method according to claim 1, further including providing at least three cameras carried by said vehicle that are all focused on said rail from different angles.
3. The method according to claim 2, wherein said cameras continuously image 360 degrees around said rail as said vehicle rides along said track past said obstructed areas and unobstructed areas.
4. The method according to claim 3, wherein said at least three cameras produce video images of said rail as said vehicle moves along said rail.
5. The method according to claim 4, further including providing a monitoring station, remote from said vehicle, for viewing said video images.
6. The method according to claim 5, further including a transceiver on said vehicle for exchanging data with said monitoring station.
7. The method according to claim 2, further including actively moving said at least one camera to avoid said obstructed areas along said rail as said vehicle moves along said rail.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a better understanding of the present invention, reference is made to the following description of exemplary embodiments thereof, considered in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE DRAWINGS
(10) Although the present invention inspection system can be adapted for use on the tracks of many amusement park rides, the present invention is especially well suited for inspecting the rails of roller coaster tracks. A few exemplary embodiments of the inspection system have been selected for use in illustrations and descriptions. The exemplary embodiments all show the inspection system adapted to inspect the tracks of a roller coaster. The embodiments are selected in order to set forth some of the best modes contemplated for the invention. The illustrated embodiments, however, are merely exemplary and should not be considered limitations when interpreting the scope of the appended claims.
(11) Referring to
(12) The roller coaster car 14 has wheel clusters 18 that support the roller coaster car 14 as it runs along the track 12. The wheel clusters 18 include top wheels 20, bottom wheels 22, and side wheels 24 that all engage different surfaces of the rails 16. The wheel clusters 18 prevent the roller coaster car 14 from derailing from the rails 16 regardless of the orientation of the roller coaster car 14. In this manner, the roller coaster car 14 can travel the track 12 as it moves into loops, and spirals without fear that the roller coaster car 14 will separate from the rails 16.
(13) The wheel clusters 18 are supported by wheel brackets 26 under the roller coaster car 14. The track 12 of the roller coaster 10 includes the rails 16 and the support framework 28 that retains the rails 16 in fixed positions. The wheel clusters 18, wheel brackets 26 and support framework 28 are designed in unison so that the support framework 28 never impedes the free movement of the wheel clusters 18 and the wheel brackets 26 as they travel along the track 12. Accordingly, it will be understood that there exists unimpeded areas 30 around the rails 16 into which the support framework 28 never extends.
(14) Referring to
(15) A difference between the wheel clusters 18 on the roller coaster car 14 and the wheel clusters 34 on the inspection vehicle 32 is that at least one of the wheels on the inspection vehicle 32 is a drive wheel 38 that is coupled to an electric motor 40. Furthermore, the drive wheel 38 is biased against a rail 16 by a spring or similar construct that will maintain friction between the drive wheel 38 and the rail 16 regardless of the orientation of the inspection vehicle 32 relative the rails 16. In this manner, the inspection vehicle 32 can travel through loops and twists while remaining in full contact with the rails 16.
(16) The inspection vehicle 32 holds a plurality of cameras 42. Some of the cameras 42 are directed toward the first rail 16A and some of the cameras 42 are directed toward the second rail 16B. Some of the cameras 42 may also be directed toward areas of the support framework 28 that supports the rails 16. The purpose of the cameras 42 is to image all surfaces of the rails 16 and the support framework 28 so those images can be analyzed for the presence of cracks, rust, obstructions or anything else that may compromise safety. The difficulty is imaging 360 degrees around each of the rails 16 since the unimpeded areas 30 into which a camera 42 can be positioned do not extend 360 degrees around the rails 16. The 360 degree imaging is accomplished by using multiple cameras 42 in the unimpeded areas 30 that are focused onto the rails 16 at opposing angles. In the illustrated example, each of the three of the cameras 42 is focused on different areas of the same rail 16 at the same position along the track 12. The field of view for the three cameras 42 overlap to provide 360 degree imaging of each point along the length of the rail 16. Although each of the three cameras 42 may be a different distance from the rail 16, each camera 42 is focused on the surface of the rail 16.
(17) Imaging the rails 16 under the inspection vehicle 32 is easily accomplished by mounting cameras 42 in the unimpeded areas 30 adjacent to the rail 16. The difficult areas of the rail 16 to image are the sides of the rails 16 opposite where the inspection vehicle 32 rests. This area is typically obstructed by the support framework 28 of the roller coaster 10. To image the underside, at least some of the cameras 42A are mounted on long camera arms 44 that extend down from the inspection vehicle 32 in an unimpeded area 30. The camera 42A on the long camera arm 44 is angled to image the underside of a rail 16. Depending upon the design of the roller coaster 10, the long camera arms 44 may be fixed, or may be retractable, as is explained with reference to
(18) In
(19) Referring to
(20) A separate odometer unit 62 is preferably provided that engages the rail 16. The odometer unit 62 can determine exactly how far the drive wheel 38 has driven the inspection vehicle 32. The odometer unit 62 can also determine the travel speed of the inspection vehicle 32. Data from the odometer unit 62 is also provided to the systems controller 60.
(21) A safety brake 64 is provided. The safety brake 64 selectively engages a rail 16 when activated and locks the inspection vehicle 32 into a fixed position along the track 12. The safety brake 64 can be manually operated, but is primarily operated automatically by the systems controller 60. The systems controller 60 receives distance data and speed data from both the electric motor 40 and the odometer unit 62. The systems controller 60 compares the speed data and/or the distance data received from the electric motor 40 and the odometer unit 62. The data should match, within a small margin of error. If the data indicates that the inspection vehicle 32 is traveling over a predetermined maximum speed, then the safety brake 64 will automatically activate. Likewise, if the data from the electric motor 40 concerning speed and/or distance does not match the data from the odometer unit 62, then this is an indication that the electric motor 40, drive wheel 38, and/or odometer unit 62 is malfunctioning. This condition also causes the safety brake 64 to activate. This safety system prevents the inspection vehicle 32 from becoming a runaway projectile along the track 12, should it malfunction on a steep grade.
(22) The systems controller 60 also controls various actuators 50, 51, 56 that manipulate cameras 42B. Movements of the cameras 42B can be preprogrammed to correspond to the position of the inspection vehicle 32 along the track 12. In this manner, if a particular obstacle is known at a particular location along the track 12, the cameras 42B can be manipulated to image around that obstacle.
(23) The cameras 42B send periodic pictures or stream video to the systems controller 60. The systems controller 60 can store this image data in a memory 66 to be downloaded at the end of the inspection run. Alternatively, the systems controller 60 can stream the image data to a remote monitoring system 68 using a transceiver 69. The position data along the track 12 is monitored by the electric motor 40 and/or the odometer unit 62. The data that corresponds to position along the track 12 is superimposed upon the images of the track 12 being recoded by the cameras 42.
(24) Referring briefly to
(25) Returning to
(26) In the embodiments previously described, the present invention has been embodied in an inspection vehicle 32 that is designed for the track 12 and rails 16 of a particular roller coaster. However, all roller coasters already have vehicles that are designed to run on their tracks. These vehicles are the roller coaster cars that are built to ride on the roller coaster. Referring to
(27) Depending upon the design of the roller coaster 10, free moving roller coaster cars 14 can travel in excess of one hundred miles an hour at the bottom of large drops. This means that cameras 82 mounted to the roller coaster car 14 must be able to take high definition, focused images of a rail and track system that is moving past the cameras 82 at over one hundred miles per hour. To achieve the needed detail in the images, high speed video cameras 82 must be utilized. In the technology of the day, a high speed video camera with an imaging rate of 1000 images per second can be commercially purchased at an economical price. A roller coaster car traveling at 100 mph is traveling at 147 feet per second. A high speed camera taking 1000 images per second would therefore take an image approximately every 1.76 inches along the track 12. This is well within the field of view for each of the cameras 82. Even if the roller coaster car 14 were traveling at 200 mph, an image can be taken every three inches along the track 12. This is well within the field of view for each camera 82. Accordingly, the entire track 12 can be imaged.
(28) It would be impossible to inspect the images from the high speed cameras 82 in real time. Accordingly, the images recorded by the high speed cameras 82 can be stored in an internal electronic memory and viewed in slow motion after the ride has been completed.
(29) It will be understood that the embodiments of the present invention that are illustrated and described are merely exemplary and that a person skilled in the art can make many variations to those embodiments. All such embodiments are intended to be included within the scope of the present invention as defined by the claims.