Vehicle with a rotary control box and aerial work platform
10427925 ยท 2019-10-01
Assignee
Inventors
Cpc classification
B66F11/044
PERFORMING OPERATIONS; TRANSPORTING
B66F9/0759
PERFORMING OPERATIONS; TRANSPORTING
B66C13/56
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66F11/04
PERFORMING OPERATIONS; TRANSPORTING
B66F9/075
PERFORMING OPERATIONS; TRANSPORTING
B66F17/00
PERFORMING OPERATIONS; TRANSPORTING
B66C13/56
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to the field of engineering mechanics and more particularly, relates to an engineering work vehicle, and most particularly, relates to a vehicle with a rotary control box and aerial working platform. The vehicle with a rotary control box includes: a vehicle frame, a driving system disposed on the vehicle frame, and a control box; the control box is disposed at a lateral side of the vehicle frame in a rotary manner; and the control box is electrically connected with the driving system. embodiments of current invention makes it possible to manipulate with ease the aerial work platform to perform corresponding motions by an operator standing on the ground and, this kind of manipulation is quick and accurate. In addition, more convenience and human-friendliness is brought. At the same time, life time of relevant components of the aerial work platform is extended, and maintenance and repair cost is further reduced.
Claims
1. A vehicle with a hinged control box, comprising: a vehicle frame, a driving system disposed on the vehicle frame, and the control box; wherein the control box is hinged on a lateral side of a base of the vehicle frame; the control box is electrically connected with the driving system; a casing is disposed in the lateral side of the base; an opening is defined on a lateral side of the casing for turning the control box into and out of the casing; and an edge of the control box is hinged to an upper edge of the opening, such that the pivot axis of the door is above the opening.
2. The vehicle with the hinged control box as recited in claim 1, wherein a locking device is provided on both of the control box and casing for locking the control box when turning into the casing.
3. The vehicle with the hinged control box as recited in claim 2, wherein a hinging element for hinging the control box and casing together is provided with a supporting locking device for supporting and locating the control box.
4. An aerial work platform, comprising the vehicle with the hinged control box as recited in claim 3, a telescopic transmission component pivotably mounted on the vehicle, and an operation platform disposed on a distal end of the telescopic transmission component.
5. The aerial work platform as recited in claim 4, wherein a control device is provided on the operation platform for being electrically connected with the driving system of the vehicle.
6. An aerial work platform, comprising the vehicle with the hinged control box as recited in claim 2, a telescopic transmission component pivotably mounted on the vehicle, and an operation platform disposed on a distal end of the telescopic transmission component.
7. The aerial work platform as recited in claim 6, wherein a control device is provided on the operation platform for being electrically connected with the driving system of the vehicle.
8. An aerial work platform, comprising the vehicle with the hinged control box as recited in claim 1, a telescopic transmission component pivotably mounted on the vehicle, and an operation platform disposed on a distal end of the telescopic transmission component.
9. The aerial work platform as recited in claim 8, wherein a control device is provided on the operation platform for being electrically connected with the driving system of the vehicle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(14) The present invention will be further described below with reference to accompanied drawings and exemplary embodiments. Here, identical numerals represent the identical components. In addition, detailed description of prior art will be omitted if it is unnecessary for illustration of the features of the present invention.
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(16) Here, the vehicle 1 includes a vehicle frame 11, a driving system disposed on the vehicle frame 11, and a control box 13 electrically connected to the driving system. The control box 13 is disposed at a lateral side of the vehicle frame 11 in a rotary manner.
(17) It is noted that the driving system includes a driving mechanism, a transmission mechanism, a control system, and a wheel assembly. The control box 13 is also electrically connected with the control system.
(18) Preferably, a casing 12 is disposed at a lateral side of a base of the vehicle frame 11. The control box 13 is disposed at a lateral side of the casing 12. Specifically, a turning opening 122 is defined at a lateral side of the casing 12 for turning the control box 13 into and out of the casing 12. An upper edge of control box 13 (See orientation of the control box in
(19) In case the aerial work platform is manipulated by an operator standing on the ground and through the control box 13, the control box 13 may be turned out of the casing 12 and then be operated by the operator to realize certain controls to the aerial work platform. This kind of manipulation is convenient and safe. When there is no need to operate the control box 13 by the operator on the ground (that is, when the control box 13 is not in use), the control box 13 may be turned into the turning opening 122 of the casing 12, thereby reducing space occupied by the same box without causing inconvenience to the operator and not having adverse influence on appearance of the entire aerial work platform. This further shields the control box from dust and collision with the operator or other equipment, and accordingly, lifespan of the control box is extended, and maintenance and repair cost is also reduced.
(20) In addition, when the control box 13 is turned into the casing 12 through the turning opening 122, it will be locked inside the casing 12 by a locking device 14. Partial structure of the locking device 14 is disposed on the control box 13, while corresponding partial structure thereof is disposed on the casing 12.
(21) When the control box 13 is turned into the casing 12, it will be locked inside the casing 12 by the locking device 14 manually or automatically.
(22) Furthermore, a hinging element for hinging the control box 13 and casing 12 together is provided with a supporting locking device (not shown) for supporting and locating the control box 13.
(23) During process of turning the control box 13 out of the casing 12, the control box 13 may be locked by the locking device at a predefined position at which the operator is able to manipulate the control box with ease.
(24) In addition, the control box 13 is disposed at a lateral side of the casing 12. As another embodiment, the control box 13 may also be directly disposed at a lateral side of the vehicle frame 11. Preferably, an upper edge of the control box 13 is hinged to an upper edge of the turning opening 122. The control box 13 and turning opening 122 may also be hinged together at other locations. For example, a right edge of the control box 13 may be hinged to a corresponding right edge of the turning opening 122 (Referring to orientation of
(25) Preferably, a control device 7 is provided on the operation platform 3 for being electrically connected with the driving system of the vehicle 1. Concretely, the control device 7 is electrically coupled with a control system of the driving system. This facilitates the operator on the operation platform 3 to manipulate the control device 7 such that the aerial work platform will perform related motions, thereby helping the operator select different control manner based on different demand. For example, when the operator stands on the ground, he may select the control box 13 to drive the aerial work platform to perform motions. When the operator is inside the operation platform 3, he can choose the control device 7 to drive the aerial work platform to perform motions. This further improves operation convenience of the aerial work platform.
(26) Reference is made to
(27) The second arm 22 is inserted into the base arm 21 and is able to move out of the base arm 21 (See an upper portion of
(28) The telescopic cylinder 24 includes a cylinder barrel 241 secured onto the second arm 22 and a telescopic rod 242 inserted into the barrel 241. The telescopic rod 242 has a hollow arrangement 247 communicating with a cavity of the cylinder barrel 241. An oil guiding tube 245 is provided into the hollow arrangement 247 of the telescopic rod 242, and the extension end of the telescopic rod 242 is secured onto the base arm 21 (See a lower portion of
(29) Moreover, a first sprocket wheel 25 is provided on the telescopic cylinder 24, a second sprocket wheel 26 is provided on the second arm 22, and the second sprocket wheel 26 is closer to the extension end of the cylinder barrel 241 than does the first sprocket wheel 25. One end of the rope-expanding chain 27 is attached onto the base arm 21, while the other end thereof runs around the first sprocket wheel 25 and then is attached onto the third arm 23. In other words, the two ends of the rope-expanding chain 27 are both located below the first sprocket wheel 25 (See orientation of figures). One end of the rope-retracting chain 28 is attached onto the third arm 23, while the other end thereof runs around the second sprocket wheel 26 and then is attached onto the base arm 21. In other words, the two ends of the rope-retracting chain 28 are both located above the second sprocket wheel 26 (See orientation of figures). Preferably, the first sprocket wheel 25 is located on a cylinder head, which cylinder head is located at one end away from an extension end, of the telescopic cylinder 24. The second sprocket wheel 26 is located on the second arm 22 at a location adjacent to the extension end of the telescopic rod 242. By this manner, the first and second sprocket wheels 25 and 26 are capable of being positioned above and below the cylinder barrel 241 (See orientation of figures). This ensures stable movement of the cylinder barrel 241 and accordingly, it also ensures stable rotation and telescopic motion of relevant components. Of course, the first and second sprocket wheels 25 and 26 may also be positioned at other suitable locations. For instance, the first sprocket wheel 25 may be located at a middle area of the cylinder barrel 241, and the second sprocket wheel 26 may be placed on the second arm 22 at a location close to a middle portion of the cylinder barrel 241.
(30) As shown in
(31) Furthermore, one end of the rope-retracting chain 28 is attached onto the third arm 23 by means of a chain connection member 29, similarly, one end of the rope-expanding chain 27 is also attached onto the third arm 23 by means of the chain connection member 29, and the two ends are located at two sides of the chain connection member 29. By this manner, motions of the rope-expanding chain 27, rope-retracting chain 28 and third arm 23 are coordinated among each other. Alternatively, the rope-expanding chain 27 and rope-retracting chain 28 may be connected to the third arm 23 with different connective members.
(32) Moreover, a chain detection device is provided on the rope-expanding chain 27 for real time detecting status of related chain. When a chain is broken or exceeds a predefined loose value, the chain detection device will generate alert signals to guarantee safety of the telescopic transmission component 2, and further guarantee safety of operators and other staff. In particular, the chain detection device may be disposed on the rope-expanding chain 27 at one end thereof where the chain 27 is connected to the base arm 21.
(33) Preferably, all of the base arm 21, second arm 22 and third arm 23 are of hollow arrangement. It is noted that these arms are by no means limited to this hollow arrangement, and in fact they may be of other constructions.
(34) Furthermore, these hollow arrangements of the base arm 21, second arm 22 and third arm 23 form a telescopic cavity into which the telescopic cylinder 24, first sprocket wheel 25, second sprocket wheel 26, rope-expanding chain 27 and rope-retracting chain 28 are received, thus leading to a compact structure for the telescopic transmission component 2, and further reducing wear and aging of the components, thereby extending lifetime. This also reduces repair and maintenance frequency and makes it more convenient to repair and maintain the same, thus decreasing related costs. In addition, to certain extent these components are not exposed outside and accordingly, risk of operators being injured due to unintentional collision with the components is also reduced. Of course, it is also feasible to place the telescopic cylinder 24, first sprocket wheel 25, second sprocket wheel 26, rope-expanding chain 27 and rope-retracting chain 28 outside the telescopic cavity (that is, place them onto the outer walls of the base arm 21, second arm 22 and third arm 23).
(35) In a summary, as the telescopic rod 242 is secured onto the base arm 21, when driven by suitable liquid medium, the cylinder barrel 241 will move upwardly together with the second arm 22 (See orientation of figures) such that the second arm 22 will move out of the base arm 21. In turn, under the traction of the rope-expanding chain 27 and first sprocket wheel 25, the third arm 23 is pulled to move out of an upper end of the second arm 22. With continuous injection of the liquid medium into the cylinder barrel 241, the second arm 22 and third arm 23 will continue to move toward the upper end until desired travel distance or maximum predefined distance is reached. During this movement, the first sprocket wheel functions as a movable pulley, and in this situation, displacement of the third arm 23 relative to the base arm 21 is two times as long as a travel distance of the cylinder barrel 241 (the distance of the second arm 22 with respect to the base arm 21). In this case, telescopic distance is certainly extended.
(36) When oil enters the rod chamber 244 of the cylinder barrel 241 through the hollow arrangement 247 of the telescopic rod 242, the barrel 241 will drive the second arm 22 to move together downwardly such that the second arm 22 will retract from the upper end of the base arm 21. In turn, the third arm 23 will retract into the second arm 22 when driven by the rope-retracting chain 28 and second sprocket wheel 26. With continuous oil injection into the telescopic rod 242, the second arm 22 and third arm 23 will continuously retract towards a low end until a desired retracting location or complete retracting location is reached. During this retracting, the second sprocket wheel 26 works as a movable pulley such that the displacement of the third arm 23 relative to the base arm 21 is two times as long as the travel distance of the cylinder barrel 241 (that is, the distance of the second arm 22 relative to the base arm 21).
(37) Preferably, please refer to
(38) When the aerial work platform requires extending its arms, the second and third arms 22, 23 in the telescopic transmission component 2 are controlled to extend. At this time, the operation platform 3 coupled with the telescopic transmission component will also be extended when driven by the third arm 23. At this time, relevant luffing cylinder 6, supporting arm 4 and telescopic connection component 5 are also controlled to adjust angle or location of relevant arms until the operation platform 3 moves to a predefined working location or a maximum extension distance is reached.
(39) Similarly, when the aerial work platform requires withdrawing its arms, the second and third arms 22, 23 of the telescopic transmission component 2 are controlled to retract. At this time, the operation platform 3 coupled with the telescopic transmission component 2 will also be retracted when driven by the third arm 23. At this time, relevant luffing cylinder 6, supporting arm 4 and telescopic connection component 5 are also controlled to adjust angle or location of relevant arms until the operation platform 3 moves to a predefined working location or returns to its original location without extension.
(40) In addition, the supporting arm 4 is connected with the turret of the vehicle 1, and the same turret is disposed on the base. The turret may not be provided with other functional elements.
(41) In summary, according to some embodiments of the invention, relevant arms are driven by cooperation of the chain and sprocket. Connections among related components are simple and accordingly, stable, rapid and accurate transmission is realized. In addition, the chain has strong structural strength and extremely less resilient deformation. Accordingly, the telescopic transmission component features high stability, accuracy and security.
(42) Therefore, embodiments of current invention makes it possible to manipulate with ease the aerial work platform to perform corresponding motions by an operator standing on the ground and, this kind of manipulation is quick and accurate. In addition, more convenience and human-friendliness is brought. At the same time, life time of relevant components of the aerial work platform is extended, and maintenance and repair cost is further reduced.
(43) Though various embodiments of the present invention have been illustrated above, a person of the art will understand that, variations and improvements made upon the illustrative embodiments fall within the scope of the present invention, and the scope of the present invention is only limited by the accompanying claims and their equivalents.