The invention relates to a pulse controlled linear actuator comprising a working cylinder for receiving a medium introduced through a valve system by a compressor/pump, in the working cylinder a piston is installed moving freely, and the piston shank represents the output of the actuator.
There are known actuators which transmit motion in a predetermined direction. Patent application HU226838 describes a solution suitable for installing small-sized actuators for a number of different purposes. However, there is a need for actuators of the similar kind, which can guarantee a long operational distance, while having a suitable compact structure.
The aim of the present invention is to provide a compact linear actuator according to the above.
With the solution of the present invention a linear actuator as described in the preamble is provided, which further comprises a central solenoid and positioned at least above and under the central solenoid upper and lower iron cores are arranged in pairs which are moved alternately by means of the central solenoid and by means of upper and lower solenoids arranged in pairs. The central solenoid and the iron cores are arranged between the upper and the lower solenoids, the iron cores form a compressor/pump having two separate medium spaces, from the space being between the upper and lower iron cores, the first medium space is led through a first inlet of an upper controlled dual inlet valve into the portion of the working cylinder which is above the piston, and in addition, it is led through a first inlet of a lower controlled dual inlet valve into the portion of the working cylinder which is under the piston; the second medium space is separated from the space being between the upper and lower iron cores by the iron cores, and is led through the second inlet of the upper controlled dual inlet valve into the portion of the working cylinder which is above the piston, and in addition, it is led through the second inlet of the lower controlled dual inlet valve into the portion of the working cylinder which is under the piston; and the upper and lower controlled valves are counter-phase or phase pulse controlled.
The embodiment of the present invention will be described with reference to the accompanying drawings in which:
In the embodiment according to
According to
In the example of
In the initial state, medium space 14 is closed at the lower end with regard to pipe 7, while it is open at the upper end in the direction of the working cylinder 9 due to the positions of valves 4, 8.
In the initial state medium space 15 is open at the lower end with regard to conduit 12, while it is closed at the upper end from the direction of the working cylinder 9 due to the positions of valves 4, 8.
Iron cores 3 are in its furthest positions from the central solenoid 1.
All the solenoids are shut off.
At first step a PWM pulse drives solenoid 1 and solenoids 5.
As a result of the PWM pulse of the central solenoid 1, iron cores 3 move towards solenoid 1. During this movement, valves 4, 8 stay in position, because of the PWM pulses of solenoids 5.
Consequently the driving medium flows through conduit 6 into pipe 7. The fluid from the upper valve 4 flows into working cylinder 9 and exerts downward force—which is proportional to the forces applied on iron cores 3—on piston 10 in working cylinder 9, causing piston 10 to move downward.
Moving of piston 10 makes the medium also move downward. The medium flows into valve 8 which is open at the bottom and closed at the top with regard to medium space 15. Then it flows freely towards medium space 15, into the pair of conduits 12 leading into the expansion space of iron cores 3. Iron cores 3 are then moving away from solenoids 2, which are in switched off state.
In this manner the medium space 14 gets closed and movement will continue till iron cores 3 reach central solenoid 1.
Then the PWM pulse of the central solenoid 1 comes to an end and solenoids 2 are switched on. At the same time solenoids 5 are switched off, resulting in the opening of valve 4 at its second inlet 4b, and valve 8 gets closed at its second inlet 8b. Thus iron cores 3 move towards solenoids 2.
As a result of this, the driving medium flows into the pair of conduits 12. The ends of conduits 12 lead into respective valves 4, 8 which are in the state described earlier. The fluid from the upper valve 4 flows into working cylinder 9 and exerts downward force—which is proportional to the forces applied on iron cores 3—on piston 10 causing piston 10 to move downward. Moving of piston 10 makes the medium also move downward. The medium flows into valve 8 which are open at the bottom and closed at the top in the direction of pipe 7. From here it flows freely towards pipe 7, and then into conduit 6, through which it finally enters into the expansion space of iron cores 3. Iron cores 3 are then moving away from central solenoid 1, which is in switched off state. In this manner, the medium space 15 gets closed and movement will continue till iron cores 3 reach the pair of solenoids 2. Then the PWM pulse of the pair of solenoids 2 is switched off. The pair of solenoids 5 switches on again. Thus valve 8 opens from the side of its second inlet 8b and valve 4 closes from the side of its second inlet 4b. In this manner, the initial state is restored. In the initial state, medium space 14 is closed at the lower end, while it is open at the upper end with regard to pipe 7 in the direction of the working cylinder 9, due to the positions of valves 4, 8.
In alternative embodiments the medium may be liquid e.g. oil, water, etc. In other embodiments gaseous medium may be used e.g. air, nitrogen, etc. Ferrofluid may also be used as medium.
The material of the central solenoid 1 may be hard (permanent) magnet if the opposing magnetic elements—solenoids 2—are active (electromagnetic) or the iron cores 3 are electromagnetic or permanent magnets. Further, it may have a spring or gas spring mechanism.
The same design is also true for solenoids 2.
In the description of the present invention, the term iron cores 3 is used in a wide sense, they can be realized as elements containing ferrofluid. Iron cores 3 may be embodied by ferrofluid medium surrounded by membrane. The membrane e.g. may be made of plastic.
Piston shank 13 and working cylinder 9 may be curved or homocentric, in this case rotary motion can be ensured.
Number | Date | Country | Kind |
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1200429 | Jul 2012 | HU | national |
Filing Document | Filing Date | Country | Kind |
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PCT/HU2013/000072 | 7/19/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/013282 | 1/23/2014 | WO | A |
Number | Name | Date | Kind |
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5203172 | Simpson et al. | Apr 1993 | A |
8011903 | Pollack | Sep 2011 | B2 |
20110043309 | Wamala et al. | Feb 2011 | A1 |
Number | Date | Country |
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104704 | Aug 1898 | DE |
3104704 | Aug 1982 | DE |
1 496 147 | Dec 1977 | GB |
226 838 | Dec 2009 | HU |
94043328 | Jun 1996 | RU |
WO 2007029009 | Mar 2007 | WO |
Entry |
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International Search Report issued in PCT/HU2013/000072, mailed on Dec. 5, 2013. |
Number | Date | Country | |
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20150159679 A1 | Jun 2015 | US |