The present invention relates to a post lift for vehicles.
As is known, so-called “lifting” devices are commonly used inside motor vehicle garages/workshops to lift vehicles, for the purpose of allowing access to the lower parts of the vehicles themselves by operators for normal maintenance or repair jobs.
A particular and widely used type of such devices is that of “post lifts”.
The post lifts generally used comprise:
It is also known that conventional international safety regulations require the presence on the post lifts of devices for retaining the arms during the stop phase, suitable for engaging so as to prevent the accidental lowering of the arms due, e.g., to an operating means fault.
The retention devices are generally composed of specific pawls integrally associated with the trolley which, in normal conditions, are fastened inside respective seats obtained along the supporting posts.
In particular, the removal of such pawls from the respective seats can be done manually by an operator before the arms drop down or, alternatively, can be controlled automatically following operation of the drop control of the arm supporting trolleys.
The known post lifts, in particular, can be of the electro-mechanical type.
In this case, the arm up/down operating means are composed of electro-mechanical actuators comprising, e.g., a worm screw, housed inside the posts and operatively associated with the arm supporting trolleys.
The electro-mechanical actuators are suitably connected to an external electric power line and controlled by means of an electric control unit.
The post lifts of the electro-mechanical type do however have a number of drawbacks.
In fact, the movement of the arms, any automation of the retention devices and, in general, compliance with all the necessary safety precautions, requires the use, the coordination and the maintenance of numerous actuators and electronic sensors.
This inevitably leads to the use of complex control electronics, and consequently increases the total cost of lift manufacture.
Alternatively, the use is known of electro-hydraulic type post lifts.
In this case, the operating means comprise a pair of hydraulic cylinders housed inside the supporting posts and operatively associated with the arm supporting trolleys.
A motor/pump assembly is connected to each hydraulic cylinder by means of a suitable hydraulic circuit and can be operated by means of power controls for lifting the arms.
The lowering of the arms is by means of the opening of a hydraulic circuit exhaust valve, controlled pneumatically or electronically.
The release of the pawls to allow the arms to drop can be controlled manually, pneumatically or electrically.
In the first case however, the presence of a manual mechanism does not allow complying with the normally required international safety requirements.
In the case of pneumatic operation, on the other hand, an external pneumatic supply line is used, connected to the exhaust valve and to pneumatic cylinders that move the pawls.
The introduction of air under pressure by means of the external pneumatic supply line, controlled by means of specific controls, thus allows opening the exhaust valve and operating the pneumatic cylinders to release the pawls.
The electro-hydraulic post lifts of known type are also not without drawbacks however.
In particular, the lowering of the arms requires the use of supplementary electronic devices or, alternatively, the use of an external pneumatic supply line.
In the first case, this inevitably calls for the use of complex control electronics and, therefore, results in an increase in the total cost of lift manufacture.
In the second case, on the other hand, the lift user is forced to equip the workstation with an external pneumatic supply line which, besides increasing the total costs for the user itself; is not always easy to do.
The main aim of the present invention is to provide a post lift for vehicles which allows the lifting and lowering of vehicles within the ambit of a solution that is easy to achieve, easy and effective to use and inexpensive.
Another object of the present invention is to provide a post lift for vehicles that complies with the safety requirements needed to safeguard the operators.
The above objects are achieved by the present post lift for vehicles, comprising:
Other characteristics and advantages of the present invention will become more evident from the description of a preferred, but not sole, embodiment of a post lift for vehicles, illustrated purely as an example but not limited to the annexed drawings in which:
With particular reference to such figures, globally indicated by 1 is a post lift, of the type commonly used inside motor vehicle garages/workshops to lift vehicles, for the purpose of allowing access to the lower parts of the vehicles themselves by operators for normal maintenance or repair jobs.
The lift 1 comprises:
In particular, with reference not only to the embodiment of the lift 1 shown in the illustrations, on each post 2 is fitted, sliding vertically, a trolley 5 suitable for supporting a pair of sustaining elements 4.
Each sustaining element 4 is composed of a horizontal telescopic arm, of adjustable length, with one extremity hinged to the trolley 5 around a vertical rotation axis and with the opposite extremity having a rubber pad 6 positionable in correspondence to a predefined area below the vehicle to be lifted.
Different embodiments of the lift 1 cannot however be ruled out wherein there is, e.g., only one post 2 on which slides vertically just one sustaining element 4 made up of a frame for supporting the vehicle.
The lift 1 also comprises:
In particular, with reference not only to the embodiment of the lift 1 shown in the illustrations, the above first fluid used is a liquid, preferably oil, and the first circuit 9 is a hydraulic circuit linking together the actuator device 7, made up of a pair of hydraulic cylinders housed inside the posts 2 and associated with the trolleys 5, and the pumping device 8, composed of an electric motor 11 and of a hydraulic pump 12.
Each hydraulic cylinder 7 is associated with the respective trolley 5 by means of a mobile pulley system complete with:
The lift 1 also comprises an oil sump 16 connected to the first circuit 9, upstream of the hydraulic pump 12.
A check valve 17 is connected downstream of the hydraulic pump 12 and allows the oil to flow only towards the hydraulic cylinders 7.
A maximum pressure valve 18, associated downstream of the hydraulic pump and connected to the sump 16, regulates the maximum pressure inside the first circuit 9 and limits the pressure peaks produced during the movement of the hydraulic cylinders 7.
The exhaust valve 10 is associated with a branch of the first circuit 9, between the check valve 17 and the hydraulic cylinders 7, and is connected to the sump 16. The opening of the exhaust valve 10 therefore allows the draining of the oil contained inside the hydraulic cylinders 7 towards the sump 16.
A limiting valve 19 is placed in between the exhaust valve 10 and the sump 16 and is suitable for limiting the flow of oil drained inside the sump 16.
Usefully, at least one safety valve 20 can be associated with at least one of the hydraulic cylinders 7, for the purpose of stopping the free downflow of the oil in case of breakage of the first circuit 9.
Advantageously, as shown in
In particular, with reference not only to the embodiment of the lift 1 shown in the illustrations, the above second fluid used is air and the second circuit 21 is a pneumatic circuit connecting together the exhaust valve 10, made up of a pneumatically operating valve, and the manual device 22.
The manual device 22 comprises a piston 23 of the pneumatic type, having an inner chamber 24 connected to the second circuit 21 and a plunger 25 sliding sealed inside the chamber 24 between a first extreme position and a second extreme position.
The manual device 22 also comprises a manual control 26 operatively associated with the plunger 25 and suited to move the plunger itself between the first and the second extreme position to vary the pressure of the air inside the second circuit 21, between the above minimum and maximum values respectively.
In particular, the manual control 26 is composed of a lever with an extremity associated revolvable around a side wall of one of the posts 2 and an opposite grip extremity. The piston 23 has a rod 27 with an extremity associated integral with the plunger 25 and an opposite extremity outside the chamber 24 and hinged in correspondence to a substantially intermediate section of the lever 26. Usefully, the manual device 22 comprises an elastic return element 28 for returning the plunger 25, of the type of a spring or the like, which operate to return the plunger 25 from the second extreme position towards the first extreme position.
In particular, the elastic element 28 can be made up, e.g., of one or more springs associated to the lever 26 or arranged inside the chamber 24.
In normal conditions, in the case of no outside force being exercised on the lever 26, the plunger 25 is kept by the elastic element 28 in the first extreme position and, therefore, inside the second circuit 21 the pressure of the air is equal to the minimum pressure value.
Advantageously, the lift 1 comprises a retention arrangement for retaining the trolleys 5 on the posts 2, altogether indicated by the reference 29 and suitable for intervening during the stop phase to prevent the accidental dropping of the arms 4 due, e.g., to a fault in the first circuit 9.
With particular but not sole reference to the embodiment of the lift 1 shown in the
The retention arrangement 29 can comprises, furthermore, elastic thrust means for the fastening devices 32, not shown in the illustrations and composed, e.g., of one or more springs or the like, which operate to bring the fastening devices 32 from the release configuration to the stop configuration.
In particular, each of the fastening devices 32 has a tooth 32a which, in the stop configuration and during the downward movement of the trolleys 5, is suitable for engaging inside one of the seats 30.
Usefully, each of the fastening devices 32 has a curved portion 32b made above the tooth 32a which, in the stop configuration and during the elevation of the trolleys 5, is suitable for engaging against the surface of the upright 31 to disengage the tooth 32a from the seat 30. Consequently, during the elevation of the trolleys 5, the fastening devices 32 do not have to be brought to the release configuration.
The lift 1 comprises a fluid operating supplementary actuator device 33, associated with the fastening devices 32 and suited to move said fastening devices between the stop configuration and the release configuration.
Advantageously, the supplementary actuator device 33 is made up of a pair of pneumatic cylinders associated with respective fastening devices 32 and connected to the second circuit 21.
This way, the variation in the pressure of the air inside the second circuit 21 from the minimum value to the maximum value, done by means of the manual device 22, results in the operation of the pneumatic cylinders 33 which move the fastening devices 32 from the stop configuration to the release configuration.
The retention arrangement 29 also comprises drive apparatus for driving the movement produced by each of the pneumatic cylinders 33 to the fastening devices 32.
In particular, inside each post 2, these drive apparatus comprises a belt 34 or the like, which extends vertically and which has an upper extremity anchored to a fixed portion of the post 2 and a lower extremity fastened to a plate 35 with a substantially L shape and anchored turning to the base 3.
On each post 2, the pneumatic cylinder 33 is positioned in correspondence to the base 3 and, once operated, the rod of the pneumatic cylinder 33 is suitable for engaging on a surface of the plate 35, so as to slope the plate itself and exercise a downward traction on the belt 34 (
A first pulley 36 is associated integral with the fastening device 32, while a second and a third pulley 37 and 38 are integrally associated with the trolley 5 on top and underneath the first pulley 36. The belt 34 is suitably positioned among the three pulleys 36, 37 and 38.
By means of the operation of the pneumatic cylinder 33, a traction is exercised on the belt 34 which stretches and engages on the first pulley 36, bringing the fastening device 32 from the stop configuration (
Alternative embodiments of the above drive apparatus cannot however be ruled out.
Usefully, the lift 1 comprises at least a sensor device 39 suitable for detecting the correct positioning of the trolleys 5 along the posts 2 and, consequently, suitable for also detecting the presence of an obstacle along the trajectory of the arms 4 during the downward movement of the trolleys 5.
A safety device 40 is connected to the sensor device 39 and can be operated to vary air pressure inside the second circuit 21 from the maximum pressure value to the minimum pressure value.
This way, in the event of an obstacle being detected by the sensor device 39, the hydraulic cylinders 7 are stopped and the fastening devices 32 are returned to stop configuration.
With reference to the particular embodiment shown in the illustrations, the lift 1 comprises a safety device 40 for each of the posts 2, made up of a safety valve that can be operated to allow all the air to escape from the second circuit 21.
The lift 1 comprises a block 41 for fastening the anchoring extremity 15 of the chain 14, and a traction elastic element 42 of the anchoring extremity 15 towards the block 41, made up of a spring or the like.
The sensor device 39 is made up of a′ force transducer placed in between the anchoring extremity 15 and the block 41.
Usefully, the second circuit 21 has an inlet branch 43 with a connector 44 and a check valve 45. This inlet branch 43 can be used after the opening of one of the safety valves 40, to introduce air so as to restore normal operating pressure inside the second circuit 21.
The operation of the lift 1 according to the invention is as follows.
In normal conditions, the lever 26 is released and, consequently, the exhaust valve 10 is closed and the fastening devices 32 are in stop configuration.
After the positioning of a vehicle between the two posts 2 and the positioning of the pads 6 of the arms 4 in correspondence to the suitable dedicated areas below the vehicle, the electric motor 11 is operated by an operator and the hydraulic pump 12 pumps oil through the first circuit 9 towards the hydraulic cylinders 7. The hydraulic cylinders 7 lift the trolleys 5 and, consequently, the arms 4 lift the vehicle up to the required height.
Once the required maintenance or repair jobs have been performed, the operator effects the downward movement of the vehicle.
By means of the lever 26, the operator changes the pressure of the air inside the second circuit 21 from the minimum value to the maximum value.
Such pressure change causes the pneumatic cylinders 33 to operate and these move the fastening devices 32 from the stop configuration to the release configuration.
Furthermore, the change in air pressure inside the second circuit 21 from the minimum value to the maximum value results in the opening of the exhaust valve 10 which allows the oil to come out of the hydraulic cylinders 7 towards the sump 16 and, therefore, the lowering of the trolleys 5.
The vehicle is thus repositioned on the ground and can be moved off the lift 1.
In the event, during the downward movement, of one of the arms 4 encountering an obstacle, the respective hydraulic cylinder 7 continues to retract the rod, lowering the pulley 13.
This results in a drop in tension on the chain 14 and, consequently, a greater force exercised by the anchoring extremity 15 on the force transducer 39 due to the operation of the elastic element 28.
The force transducer 39, once this increased force has been detected, commands the opening of the respective safety valve 40 and, consequently, the pressure of the air inside the second circuit 21 is returned to minimum value.
This way, the exhaust valve 10 closes, stopping the downward movement of the trolleys 5, and the fastening devices 32 are returned to the stop configuration.
It has in fact been ascertained how the described invention achieves the proposed objects.
In particular, the fact is underlined that the presence of the manual drop device and of the closed pneumatic circuit for connection to the exhaust valve permits lowering the vehicles within the ambit of a solution that is easy to achieve, easy and effective to use and inexpensive.
In fact, the lift according to the invention permits effectively lowering the vehicles without using complicated control electronics and without using an external pneumatic supply line.
The presence of the fastening devices controlled by means of the manual device and their operation by means of the safety valves also allows complying with the safety requirements needed to ensure operator safety.
Number | Date | Country | Kind |
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MO2010A000045 | Feb 2010 | IT | national |