SYSTEM AND METHOD FOR CHANGING A SURFACE CHARACTERISTIC OF A CONCRETE BRIDGE SURFACE
20190218728 ยท 2019-07-18
Inventors
Cpc classification
International classification
Abstract
An automated concrete bridge paver with an ability to provide effective control of a concrete paver by a remotely locatable concrete bridge paver operator 202, which includes a fixed operator control station and a mobile wireless remote operator control station 210 which can be used when the remotely locatable concrete bridge paver operator 202 leaves the operator control station 204. Mobile wireless remote operator control station 210 includes a video screen which can display live video images from a plurality of remote wireless camera and sensor pods 212, which can be fixed on the paver or moved about the paver on an articulated arm, with or without a human basket.
Claims
1. A method of improving operation of an automated concrete bridge paver, comprising the steps of: providing an operator control station (204) which is disposed atop a concrete paver frame boom (110), where the operator control station (204) is configured with manual hydraulic controls so that movement of a manual actuator, by a remotely locatable concrete bridge paver operator (202) results in a first predetermined change in hydraulic pressure at a first hydraulically manipulatable implement remote from operator control station (204); providing a mobile wireless remote operator control station (210) which is configured to cause said first predetermined change in hydraulic pressure to occur when a predetermined remote input action occurs between said remotely locatable concrete bridge paver operator (202) and said mobile wireless remote operator control station (210); making a determination that a closer view of a first location distant from said remotely locatable concrete bridge paver operator (202) is desired; said remotely locatable concrete bridge paver operator (202) walking with said mobile wireless remote operator control station (210) to a second location between said first location and said operator control station (204), where a determination is made to cause said first predetermined change in hydraulic pressure to occur; and while a first configuration of automatic paving is underway, said remotely locatable concrete bridge paver operator (202) manually interacts, at said second location, with a first remote button on said mobile wireless remote operator control station (210), without any manual interaction with said operator control station (204), and thereby causes said first predetermined change in hydraulic pressure to occur.
2. The method of claim 1 wherein said manual actuator is further configured with a first manual input button and an electronic lead.
3. The method of claim 2 wherein pressing on said first manual input button will result in causing said first predetermined change in hydraulic pressure to occur and where manual interaction with said first remote button will result in providing a first remote predetermined electrical signal on said electronic lead, which is also configured to cause said first predetermined change in hydraulic pressure to occur.
4. The method of claim 3 wherein said operator control station (204) further comprises a first hydraulic manifold and a second hydraulic manifold.
5. The method of claim 4 wherein said manual actuator is disposed on said second hydraulic manifold.
6. The method of claim 5 wherein said operator control station (204) further comprises a manual control lever (510) disposed on said first hydraulic manifold and a remote electronic mode solenoid (602) is disposed adjacent to said manual control lever (510).
7. The method of claim 6 wherein said mobile wireless remote operator control station (210) further comprises a electronic flat panel display screen (802) which displays a video signal originating from a remote wireless camera and sensor pod (212) at a third location; said remotely locatable concrete bridge paver operator (202) makes a determination from viewing said electronic flat panel display screen (802) that a closer view of said third location distant from said remotely locatable concrete bridge paver operator (202) is desired; and said remotely locatable concrete bridge paver operator (202) walks with said mobile wireless remote operator control station (210) to said third location where a determination is made to cause a second predetermined change in hydraulic pressure at a second hydraulically manipulatable implement remote from operator control station (204) to occur.
8. A system for improving operation of a concrete paver comprising: an operator control station (204) which is disposed atop a concrete paver frame boom (110), where the operator control station (204) is configured with manual hydraulic controls so that movement of a manual actuator, by a remotely locatable concrete bridge paver operator (202) results in a first predetermined change in hydraulic pressure at a first hydraulically manipulatable implement remote from operator control station (204); a mobile wireless remote operator control station (210), which is configured to cause said first predetermined change in hydraulic pressure to occur when a predetermined input action occurs between said remotely locatable concrete bridge paver operator (202) and said mobile wireless remote operator control station (210); said concrete paver frame boom (110) having a first location distant from said operator control station (204), and a second location between said first location and said operator control station (204); and said mobile wireless remote operator control station (210) being configured to wirelessly communicate from said second location to said operator control station (204) after a determination has been made to cause said first predetermined change in hydraulic pressure to occur.
9. The system of claim 8 wherein said manual actuator comprises a first manual input button and an electronic lead and wherein said mobile wireless remote operator control station (210) further comprises a first remote button.
10. The system of claim 9 wherein said operator control station (204) is further configured such that pressing on said first manual input button will result in causing said first predetermined change in hydraulic pressure to occur and where manual interaction with said first remote button will result in providing a first remote predetermined electrical signal on said electronic lead, which is also configured to cause said first predetermined change in hydraulic pressure to occur.
11. The system of claim 10 wherein said operator control station (204) further comprises a first hydraulic manifold and a second hydraulic manifold.
12. The system of claim 11 wherein said manual actuator is disposed on said second hydraulic manifold.
13. A system for changing a surface characteristic during creation of a concrete bridge surface comprising: a concrete bridge paver having: a concrete paver frame boom (110); an operator control station having a plurality of hydraulic tactile controls, and being supported by said concrete paver frame boom (110); a power unit (106); a carriage (111), supported from above by said concrete paver frame boom (110); and a plurality of power legs (108) each of which are coupled to said concrete paver frame boom (110); a mobile wireless remote operator control station (210) having: a variable I/O and display module (720), with, a first array of variable select keys, a second array of variable select keys (724) and an electronic flat panel display screen (802); a mobile wireless remote operator control station base portion (730); a lanyard (710); and where a combination of said variable I/O and display module (720) and said mobile wireless remote operator control station base portion (730) includes a plurality of non-hydraulic tactile controls, each of which corresponds to and creates a control pair, with one of said plurality of hydraulic tactile controls and wherein at least one of said plurality of non-hydraulic tactile controls is a combination of said first array of variable select keys and said electronic flat panel display screen (802).
14. The system of claim 13 wherein a first one of said plurality of non-hydraulic tactile controls and a first one of said plurality of hydraulic tactile controls creates, a first control pair, where said first one of said plurality of hydraulic tactile controls includes: a first finger engaging manual control button portion and a first electronic input control portion which is coupled via a wireless communication link to said mobile wireless remote operator control station (210), and each.
15. The system of claim 14 wherein said first finger engaging manual control button portion and said first electronic input control portion are part of a first single dual mode control coupled to a hydraulic manifold, where said first single dual mode control causes an equivalent hydraulic change irrespective of whether said first finger engagement manual control button portion is manually stimulated or said first electronic input control portion is electronically stimulated.
16. The system of claim 15 wherein said wireless communication link is accomplished using a fixed remote control receiver coupled to said operator control station, and an internal receiver disposed in said mobile wireless remote operator control station (210).
17. The system of claim 16 wherein said wireless communication link is configured to provide communication between said mobile wireless remote operator control station (210) whenever located within a distance X from any portion of said concrete paver frame boom (110), where said distance X is greater than a longitudinal length characteristic of said concrete paver frame boom (110).
18. The system of claim 17 further comprising a plurality of remote wireless camera and sensor pods (212), which provide video signals configured to be transmitted by said wireless link and are disposed about said concrete bridge paver.
19. The system of claim 18 wherein at least one of said plurality of remote wireless camera and sensor pods (212) is disposed on said carriage (111).
20. The system of claim 19 further comprising a means for improving an operator's vantage point, where said means for improving an operator's vantage point comprises a basket sized to carry a person.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The invention may be more fully understood by reading the following description of the preferred embodiments of the invention, in conjunction with the appended drawings wherein:
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DETAILED DESCRIPTION
[0032] Although described with particular reference to concrete bridge pavers, the systems and methods of the present invention can be implemented in many different types of pavers, which are independent of their paving material and their pavement support means.
[0033] In an embodiment, the system and method of the present invention described herein can be viewed as examples of many potential variations of the present invention which are protected hereunder. The following details are intended to aid in the understanding of the invention whose scope is defined in the claims appended hereto.
[0034] Now referring to the drawings wherein like numerals refer to like matter throughout, and more particularly in
[0035] Now referring to
[0036] 1. the carriage power unit,
[0037] 2. the augers,
[0038] 3. any vibration implement and its frequency and magnitude of vibration, and
[0039] 4. the vertical displacement controlling linkage with concrete paver frame boom 110.
[0040] Also shown are a plurality of representative remote wireless camera and sensor pods 212. Remote wireless camera and sensor pods 212 can be fixed at predetermined locations on the concrete bridge paver 200 or they may, in some embodiments, be moved around the paver with a means for improving an operators vantage point which could be an articulating arm, coupled to concrete bridge paver 200, which is capable of being electronically steered to be closer to remote portions of the concrete bridge paver 200. In one embodiment, the articulated arm could be sized, configured, and controlled much like an aerial lift or bucket truck with a bucket or basket for safely moving a human, as well as remote wireless camera and sensor pods 212.
[0041] In other embodiments, multiple mobile wireless remote operator control stations 210 can be used by a plurality of persons for operation of the concrete bridge paver 200. In some embodiments, the mobile wireless remote operator control station 210 can be replaced by or augmented with fixed remote operator control stations which could be wired or wireless. These fixed remote operator control stations could be located anywhere on the concrete bridge paver 200, including the power legs, at the operator control station 204, the bucket or basket when an aerial lift is provided.
[0042] Now referring to
[0043] Now referring to
[0044] Now referring to
[0045] Now referring to
[0046] Now referring to
[0047] One particularly helpful aspect of the method of the present invention is achieved during a scenario where the paver is in operation during a pour and the paver is automatically operating under pre-programmed and pre-set parameters, the operator from the operator control station 204 believes that there may be an issue with concrete surface at the far end of concrete paver frame boom 110 and on the opposite side of the carriage 211, the operator, wearing the mobile wireless remote operator control station 210 around the operator's neck, walks toward the distal end of the concrete paver frame boom 110 and there determines that a quick change in direction of travel along the concrete paver frame boom 110 is needed, a control is engaged on mobile wireless remote operator control station 210, and the direction of the carriage 211 immediately changes, without the remotely locatable concrete bridge paver operator 202 needing to return to the operator control station 204. In one embodiment, the remotely locatable concrete bridge paver operator 202 could actuate a control on mobile wireless remote operator control station 210 which provides for a variable carriage shift that has an incremental translation distance. This can be a one time adjustment of the carriage direction shift and the automated carriage parameters would continue thereafter. The concrete bridge paver 200 continues to operate as previously programmed without any further commands. If then the remotely locatable concrete bridge paver operator 202 determines that the carriage speed is too fast, it can be immediately changed using mobile wireless remote operator control station 210 without the need to return to the operator control station 204. The operation of the concrete bridge paver 200 will then continue with its automatic operation, except now with the new lower carriage speed. No other actions are required to resume automated operation. In such a scenario, the remotely locatable concrete bridge paver operator 202, armed with the mobile wireless remote operator control station 210, was able to avoid an imminent potential for reaching a point of non-compliance. Avoiding such non-compliance before it occurs is much preferred to addressing it after it exists.
[0048] The precise implementation of the present invention will vary depending upon the particular application.
[0049] It is thought that the method and apparatus of the present invention will be understood from the foregoing description and that it will be apparent that various changes may be made in the form, construct steps and arrangement of the parts and steps thereof without departing from the spirit and scope of the invention or sacrificing all of their material advantages. The form herein described is merely a preferred and/or exemplary embodiment thereof.