The present invention relates to structure of a passenger boarding bridge and the control method thereof. Specifically, the present invention relates to a running mechanism of a passenger boarding bridge and the control method thereof.
Majority passenger boarding bridges in airports currently use a two-wheel running mechanism with single-point support. Such boarding bridges can serve doors of ordinary aircrafts. If the boarding bridges are used to serve upper doors of double-decked aircrafts, sloshing is relatively big during traveling due to the upper doors are too high, which makes them difficult to meet the requirements of relevant standards. In order to solve this problem, a passenger boarding bridge with a four-wheel running mechanism was provided, as shown in
An object of the present invention is to solve the problems, such as complex structure existing in the aforementioned two-wheel running mechanism of the boarding bridge, and to provide a running mechanism of a passenger boarding bridge.
A further object of the present invention is to solve the problems existing in the two-wheel running mechanism of the boarding bridge in the prior art, such as complex method of controlling and severe attrition on the surfaces of running wheels because of the sliding friction between the running wheels and the ground surface. The object is to provide a running mechanism of a passenger boarding bridge and a control method to reduce the attrition on the surfaces of running wheels.
To solve the above-mentioned problems, an embodiment of the present invention provides a running mechanism of a passenger boarding bridge, which includes a beam, two rotary supporting members respectively rotarily connected to underneath portions of two ends of the beam, and two running wheel sets respectively pivotally connected to lower ends of the two rotary supporting members at two pivotal points. Each of the running wheel sets includes a wheel carrier and two running wheels respectively connected to two ends of the wheel carrier. The pivotal point is on the wheel carrier. The running mechanism further includes four driving devices respectively driving four running wheels of the two running wheel sets at lateral sides of the running wheels.
In the running mechanism of passenger boarding bridge, each of the driving devices includes a speed reduction device and a motor connected with the speed reduction device.
In the running mechanism of passenger boarding bridge, the speed reduction device is at the lateral side of the running wheel, and the wheel carrier has a hollow structure. The motor is mounted inside the hollow structure of the wheel carrier.
In the running mechanism of passenger boarding bridge, the motor is an electric motor or a hydraulic motor.
The running mechanism of passenger boarding bridge further includes an angle transducer on the rotary supporting member adjacent to the beam, and the angle transducer is adapted to communicate with a control device of the passenger boarding bridge.
To solve the above-mentioned problems, a method for controlling a running mechanism of a passenger boarding bridge is provided. The running mechanism includes a beam, two rotary supporting members respectively rotarily connected to underneath portions of two ends of the beam, and two running wheel sets respectively pivotally connected to lower ends of the two rotary supporting members at two pivotal points. Each of the running wheel sets includes a wheel carrier and two running wheels respectively connected to two ends of the wheel carrier. The pivotal point is on the wheel carrier. The running mechanism further includes four driving devices respectively driving four running wheels of the two running wheel sets at lateral sides of the running wheels, an angle transducer on the rotary supporting member adjacent to the beam, and a control system of the passenger boarding bridge. The control system includes a programmable logic controller, and the angle transducer is adapted to communicate with the programmable logic controller. The method for controlling a running mechanism of a passenger boarding bridge includes the following steps:
The first running wheel is any one of the four running wheels, and the instantaneous speeds of the three other running wheels dynamically match with the speed of the running wheel through controlling the programmable logic controller.
The commands are submitted to the programmable logic controller through operation of a handle by an operator.
The beneficial effects of the running mechanism of the passenger boarding bridge and the control method thereof are as follows.
The present invention will be further described with reference to the accompanying drawings and embodiments hereinafter, in the accompanying drawings:
As shown in
Each running wheel set 2 has the wheel carrier 134, as well as two running wheels 137 respectively connected to the two ends of the wheel carrier 134. An electric motor 139 is installed for each running wheel 137, and the electric motor 139 drives the corresponding running wheel 137 through a speed reduction device 138 at the lateral side of the wheel. The wheel carrier 134 has a hollow structure. The electric motor 139 is mounted inside the hollow structure of the wheel carrier 134. It is to be understood that the electric motor 139 can be substituted by a hydraulic motor.
In another embodiment, the running wheel 137 is directly driven by a speed reduction electric motor or a speed reduction hydraulic motor with a speed reduction device at the lateral side of the wheel. The speed reduction electric motor or the speed reduction hydraulic motor is mounted inside or outside of the hollow structure of the wheel carrier 134. The speed reduction electric motor or the speed reduction hydraulic motor transfers rotational forces to the central axis of the running wheel 137 by a transmission device.
In yet another embodiment, the running wheel 137 is driven by a speed reduction device mounted inside the hollow structure of the wheel carrier 134 and by an electric motor or a hydraulic motor mounted outside the hollow structure of the wheel carrier 134. Alternatively, both the speed reduction device and the electric motor (or the hydraulic motor) are mounted outside the wheel carrier 134.
The running mechanism 13 enables the boarding bridge to run and turn. Referring to
An operator initially submits a command to a PLC (programmable logic controller) through operation of a handle to control the gradual turning of the running mechanism 13 of boarding bridge and the speed of one running wheel. The running wheel can be selected from the four running wheels.
According to a wheel carrier angle (an angle between the wheel carrier 134 and the tunnel of boarding bridge 11) of the two running wheel sets acquired by the angle transducer 132 and the speed of the one running wheel, the PCL calculates the instantaneous speeds of the other three running wheels. The instantaneous speeds of the other three running wheels match with the speed of the one running wheel. The relative sliding between the four running wheels and the ground surface is decreased, as compared to the prior art.
The PLC sends command to driving devices of the other three running wheels and controls the driving devices to ensure the speed of the one running wheel matching with the instantaneous speeds of the other three running wheels.
The PLC controls the dynamic matching between the speed of the one running wheel and the instantaneous speeds of the three other running wheels to accommodate speed changes. The relative sliding between the four running wheels and the ground surface is decreased, as compared to the prior art.
In addition to submitting commands to the PLC through operation of the handle, operators can use different operating devices according to the boarding bridge and submit commands to the PLC through the corresponding operating devices, such as submitting commands to the PLC through operation buttons.
Number | Date | Country | Kind |
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200510100860.3 | Oct 2005 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2006/002007 | 8/8/2006 | WO | 00 | 4/25/2008 |