The present disclosure relates generally to paving machines. More specifically, the present disclosure relates to a walkway assembly for a paving machine.
Paving machines are used for laying concrete and/or asphalt on various surfaces such as, a road surface, a bridge, a parking area, and the like. The concrete and/or asphalt laid on the surfaces is given an initial compaction using a screed coupled to the paving machine. The paving machine generally includes a walkway at a rear end of the screed. The walkway enables an operator to observe the paving operation. Additionally, the operator is able to control screed functionalities from the walkway since an operator control station is generally located in the vicinity of the walkway.
The width of extendable screeds can be varied depending on a given paving job. The walkway needs to be adjustable along with the screed width to allow an operator standing on the walkway to properly monitor the paving operation and control the paving operation.
There are several known ways to extend and retract the walkway. The extender walkway may slide relative to a main walkway to vary the width of the walkway on a roller which is mounted beneath the main walkway. However, during paving operation, asphalt debris and other obstacles may prevent or limit walkway movement, making it difficult to extend or retract when desired.
One aspect of the present disclosure is directed to a walkway assembly for a paving machine. The walkway assembly includes a main walkway, an extender walkway, and a wheel assembly. The extender walkway is configured to telescopically extend and retract relative to the main walkway. The wheel assembly includes a hollow guard, a wheel, and a pin. The hollow guard includes two transverse members, and two longitudinal members. The hollow guard includes a first hole on the first transverse member and a second hole on the second transverse member. The pin extends therethrough between the first hole and the second hole of the hollow guard. The pin includes a first end and a second end. The wheel is mounted on the pin and positioned inside the hollow guard. The wheel extends partially above the hollow guard. The wheel is in a rolling contact with the extender walkway. Further, the wheel assembly is coupled to the main walkway by coupling the first end of the pin to the main walkway.
The pair of hoppers 102 of the paving machine 100 may receive asphalt and/or concrete material from a dump truck or similar transport means. The pair of hoppers 102 transfers the asphalt and/or concrete material to the auger 104 via a conveyer (not shown in FIGs). The auger 104 may be a rotating screw mechanism configured to dump asphalt and/or concrete on a paving surface. Examples of paving surfaces may be a road surface, a parking area, a highway, and the like. The auger 104 may dump the asphalt and/or concrete material on the paving surface in form of stockpiles in front of the screed 106.
The asphalt and/or concrete material dumped on the ground is given an initial compaction by the screed 106.
The screed 106 is coupled at a rear end of the paving machine 100. In an embodiment, the screed 106 includes a main screed and at least one extender. In a preferred embodiment, the screed 106 includes two extender slideably coupled on each side of the main screed. The at least one extender may be extended or retracted relative to the main screed for different pavement requirements. The at least one extender may be extended and retracted by any mechanism such as, but not limited to, a hydraulic actuating mechanism, a pneumatic actuating mechanism, an electric actuating mechanism, a mechanical mechanism and the equivalents thereof. The at least one extender is extended and positioned adjacent to the main screed to increase the width of the asphalt and/or concrete mat being laid on the paving surface. The screed 106 provides a uniformly paved surface as the paving machine 100 moves forwardly.
Furthermore, the screed 106 is coupled to the walkway assembly 108. The walkway assembly 108 enables an operator to observe the paving operation. Additionally, the operator may control functionalities of the screed 106 from the walkway assembly 108 since an operator control station is generally located in the vicinity of the walkway assembly 108.
Further, the main walkway 202 is coupled to the wheel assembly 206. In the present embodiment, there is a single wheel assembly 206 coupled to each end of the main walkway 202. In this embodiment, the wheel assembly 206 may be coupled to the main walkway 202, such that the extender walkway 204 slides under the wheel assembly 206. In other words, the extender walkway 204 is positioned between the main walkway 202 and the wheel assembly 206. Alternatively, the wheel assembly 206 may be positioned between the main walkway 202 and the extender walkway 204. In other words, the extender walkway 204 may slide over the wheel assembly 206.
The wheel 504 is positioned inside the hollow guard 502 and extends partially above the hollow guard 502. Further, the wheel 504 is in a rolling contact with the extender walkway 204 (as shown in
The wheel 504 is mounted on the pin 506 by inserting the pin 506 in a through hole 520 of the wheel 504. Further, the pin 506 extends therethrough between the first hole 516 and the second hole 518 of the hollow guard 502. The pin 506 includes a first end 522 and a second end 524. The first end 522 of the pin 506 is coupled with the first side 210 of the main walkway 202 as shown in
The present disclosure relates to the paving machine 100. The paving machine 100 includes the pair of hopper 102, the conveyor, the auger 104, the screed 106, and the walkway assembly 108. The paving machine 100 receives asphalt and/or concrete material in the pair of hoppers 102. The paving machine 100 dumps the asphalt and/or concrete material on a paving surface via the conveyor (not shown) and the auger 104 in front of the screed 106. The screed 106 gives initial compaction to the asphalt and/or concrete as the paving machine 100 moves forward. The width of the screed 106 may be adjusted for different pavement requirements. The width of the screed 106 may be varied by extending and retracting the at least one extender of the screed 106 relative to the main screed. Since, the at least one extender of the screed 106 is coupled to the extender walkway 204 of the walkway assembly 108, the extension of the at least one extender of the screed 106 causes extension of the extender walkway 204. Therefore, the width of the walkway assembly 108 is varied by extending and retracting the extender walkway 204 relative to the main walkway 202.
The extender walkway 204 extends and retracts by sliding over the wheel 504 of the wheel assembly 206. The wheel 504 is positioned inside the hollow guard 502. During the paving operation, the hollow guard 502 prevents the entry of asphalt material or debris between the wheel 504 and the extender walkway 204. Further, the hollow guard 502 may also prevent the entry of asphalt material or debris between the extender walkway 204 and the main walkway 202. Thereby, the hollow guard 502 prevents jamming of the extender walkway 204. Therefore, the wheel assembly 206 assists in easy extension and retraction of the extender walkway 204.