IMPROVED FLYWHEEL ASSEMBLY

NL2038787APending Publication Date: 2026-05-01PACA PATENTS & IP BV
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Patent Information

Application Number
NL2038787
Authority / Receiving Office
NL · NL
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-10-07
Publication Date
2026-05-01
Estimated Expiration
2044-10-06

AI Technical Summary

Technical Problem

The existing flywheel assemblies fail to efficiently reuse compressed air, cannot achieve precise 90° movement, and have fixed spring forces that cause delays, collisions, and standstill due to improper positioning of compression springs, leading to inefficient energy conservation and loss of external kinetic energy.

Method used

A flywheel assembly with a direct pneumatic connection between the cylinder space and upper chamber, remotely controlled valves, and additional components like the Accudek, correction deck, and fender deck to manage compressed air flow and movement, ensuring efficient energy storage and conservation.

Benefits of technology

The solution allows for approximately 80-145° conservation of external kinetic energy during the first movement and 65% reuse during the second movement, preventing collisions and ensuring smooth, efficient rotation with increased rotational speed.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to an improved flywheel assembly in accordance with the opening of claim 1. Such a flywheel assembly is known in the field, for example from Dutch patent NL2033561, the content of which is included herein by reference. The definitions, components and / or terminology used in this patent application are derived from the content of this patent. In general, in the known flywheel assembly, external energy cannot be conserved because the force of the mass does not fully propel the total mass of the flywheel in the direction of rotation to the desired position. The invention aims to provide a flywheel assembly in accordance with the opening, in which, among other things, the aforementioned disadvantage is eliminated.
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Description

The invention relates to a flywheel assembly according to the introduction of conclusion 1. Such a flywheel assembly is known in the field, for example from the Dutch patent NL2033561, the contents of which are incorporated herein by reference. definitions, components and / or terminology used in this patent application are derived from the content of this patent. The well-known flywheel assembly has the following disadvantages: Firstly, it is not possible with the deposits from the known flywheel assembly sufficient compressed air be reused. Secondly, the first movement (downward) cannot be at the correct position of approx. be activated 90° within the desired speed, whereby external kinetic energy is largely lost. Thirdly, the compression springs of the unloading devices from the well-known flywheel assembly a fixed spring force, which does not over the vertical longitudinal distance, i.e. the length of a displacement of a mass in the vertical direction only, at all positions are desired. This results in delay, collision, and standstill with the used coupled masses. In general, with the known flywheel assembly, the external energy cannot be conserved, because the force of the mass does not fully the total mass of the pushes the flywheel in the direction of rotation to the desired position. In doing so, the compression springs of the barrier devices are not positioned in the desired manner along the entire vertical longitudinal line set. The desired setting of the compression springs can only be adjusted at a movement speed. be set. The external kinetic energy cannot be absorbed with approximately 48%, because the compressed air pressure is the same during the first and second movement. The invention aims to provide a flywheel assembly according to the introduction, in which the aforementioned disadvantages have been eliminated. To this end, the inventive flywheel assembly has the characteristic that the seat a comprises a direct pneumatic second connection between the cylinder space and an upper chamber of the cylinder, which second connection by means of a remotely controlled first valve is breakable; - includes a pneumatic third connection to the ambient air, which third connection is breakable by means of a remotely controlled second valve, - the upper chamber of the cylinder comprises at least a first spring extending from from the top of the cylinder space to the top of the piston; and the controls are configured for 1) operating the first valve in such a way that the first valve only during the second movement is opened; 2) operating the second valve in such a way that the second valve only during the First movement is opened. With the above-mentioned measures, externally introduced energy (compressed air in cylinder) be stored in a more efficient manner, where no high and low pressure tanks are no longer needed. The energy is stored with the resistance via the first spring and with the compressed air that moves the piston towards the upper chamber. This results in the the discharge point of the cylinder shaft has become much larger than the coupled connection position of the deposit to the flywheel with which the deposit is directly connected to the flywheel, i.e. at a greater distance from the center of the flywheel. With this, the flywheel pushed away in its direction of rotation, causing the rotational speed of the flywheel increases The inventor has chosen to call this part of the deflector the Accudek to be called, since this energy section also stores a part of the kinetic energy in the first spring and stores used compressed air from the lower chamber in the upper chamber. With this, the Accudek creates resistance to the movement on the underside of the piston during the first movement and creates force on the top of the piston during the second movement. This force also ensures that the lower chamber during the second movement is completely pressed empty. During the first movement, the Accudek ensures, by means of the first spring, that additional resistance on the cylinder axis of the deposit, causing the adhering coupled mass can never be pushed against the direction of rotation of the flywheel. In this process, external kinetic energy (compressed air force) is conserved during the first movement at approximately 80 to 145° of the arc. The vertical movement along the length line, i.e. the duration of the mass at the desired position. position) on the descending side is extended. The flywheel experiences an acceleration in this process, because from the position of the mass in the direction of rotation is compressed. In a first embodiment of the flywheel assembly according to the invention the upper chamber comprises a filler block that extends from the top of the cylinder space, such that the total maximum volume available for compressed air in the the upper chamber amounts to approximately 1.3 times the maximum volume of the lower chamber. As a result, it is volume of the upper chamber slightly larger than the volume of the lower chamber or lower chamber. This has the effect that the kinetic energy for the first movement is easily available to the The second movement with approximately 65% ​​of the compressed air force can be reused. It causes an acceleration of the flywheel, because the first spring with the help of the 65% reused compressed air in the upper chamber the position of the mass with force in presses the direction of rotation. In a further elaboration of the flywheel assembly according to the invention, it comprises deposit a first leaf spring, one side of which is the underside of the cylinder forms, in which the thrust bearing comprises a second leaf spring running parallel to the first leaf spring, multiple spacers have been installed between the first leaf spring and the second leaf spring), each of which is perpendicular to both the first leaf spring (15-1) and the second leaf spring, in which a first end of the spacers is fixedly connected to the first leaf spring and the second end of the spacers (5) can be moved by the second leaf spring, in which a second spring is fitted around each spacer. The The inventor has chosen to apply these technical measures to the correction deck to call. The application of the correction deck has the effect of preventing kickback when the second movement. The correction deck corrects or compensates for movements on the downward side for the attached coupled mass at the position of approximately 20° and approximately 145°. In a further elaboration of the flywheel assembly according to the invention, a or multiple first spacer blocks placed between the first leaf spring and the second leaf spring running parallel to the spacers in which a first side of the first spacer blocks are firmly connected to the second leaf spring. With these measures, the free movement distance of the correction deck can be set. In a preferred form of the flywheel assembly according to the invention the flywheel assembly comprises a second shaft that extends in line with the first shaft through the first leaf spring, in which, during operation, the second shaft slides through the first leaf spring, in which the second shaft extends through the second leaf spring, in which, in operation, the second shaft slides through the second leaf spring, in which a first end of the second shaft is connected to the piston, in which at least a third feather is placed between one of the sides turned away from the first side second side of the first leaf spring and one in a fixed position on the second shaft fitted spring washer. The inventor has chosen to the above-mentioned technical measures the to be called a mass deck. The mass deck contributes to the correction deck on the vertical descending side can correct the free movement again. Preferably, the applied deposit in the flywheel assembly comprises according to the invention a base plate which is permanently attached to a second end of the second shaft and runs parallel to the second leaf spring, such that the second leaf spring is between the first leaf spring and the bottom plate is located, in which on the second leaf spring towards the On the bottom plate turning side, several second spacer blocks have been installed, which are perpendicular. stand on the second leaf. The inventor has chosen to the above-mentioned technical measures the to call a fender deck. The effect of the fender deck is to prevent the at least one piston strikes against the cylinder filler block. The push-up deck contributes to the crumple zone upon collision does not shatter the cylinder chamber and thereby the compressed air escapes and a backlash occurs. Preferably, at least the first spring is designed to empty the entire lower chamber. to press. This has the effect that the range of motion of the attached coupled mass position moves optimally forward and the acceleration due to gravity in the free range of motion accelerates on the downward side of the inventive flywheel assembly. This makes a free second movement possible by removing the additional resistance at the upward side of the flywheel assembly (just like the free movement due to the gravitational pull of the Earth). The invention will be explained in more detail using the following figures, in which: Figure 1 schematically shows the different positions of the parts. of the flywheel assembly; Figure 2 shows an isometric view of the deposition medium in the flywheel assembly. according to Figure 1; Figure 3 shows a cross-section of the seat according to Figure 2 through a imaginary plane passing through two spacers and the first and second axes; Figure 4 shows an isometric view of the deposition medium in the flywheel assembly. according to Figure 2, in which the second pneumatic connection is shown. Figure 5 shows a cross-section of the seat with multiple cylinders; Identical reference numbers and / or reference letters in the various figures indicate equal parts to. Figure 1 schematically shows the different positions of the parts. of the flywheel assembly L. The reference letters in the figure indicate the following: A. The medium of sale according to the invention. B. The coupled connection position of the discharge device to the flywheel. C. The line of motion of the cylinder axis of the depositing device. D. The indirect point of contact of the agent against the mass. E. The positions of the coupled suspended masses. F. The lever distance length of line. G. The connecting axes of movement technique. H. The center / pivot point. The coupled pivot points of the lever movement technique. J. The orbit of the attached movable mass. K. Direction of rotation. L. Flywheel. The applied movement technique is described in the Dutch patent. NL2033561 and the contents thereof are hereby included as venNijzing. Upon viewing the flywheel assembly L from the top, one can the latitude distances HL of the mass at positions E at approximately 95°, 315° and 215° Observe carefully with respect to the center H. The masses in the flywheel assembly L rotating in an orbit J in the direction of rotation K without the distance of a mass to the center H changes in the process. In the flywheel assembly L, 3 masses are used and it has 6 dominant masses. resistance points. These are located at positions E of the attached coupled masses at approximately 325°, 25°, 95°, 155°, 205°, and 265°. At these positions, a mass will move towards and remain if no energy is applied to the flywheel assembly L by means of compressed air is added. Rotation of the flywheel assembly can occur by moving it. of a few resistance points, which is achieved by moving one of the mass positions E in the flywheel assembly L. To use the gravitational pull of the Earth to make the rotation flywheel assembly L must have the vertical length line VL on the downward side with a larger load downwards, and have a longer length than the vertical length line VL at the upward side. The deposition medium A makes this possible through the mass position E to be corrected twice within the rotation range of approximately 325° to 155°, where the vertical length VL line from position E in orbit J changes. In this process, during the corrective movement of each attached coupled mass the external kinetic energy and absorbed kinetic energy with the released force via the Pressure spring of the deflector preserved in the flywheel. Each coupled adjoining mass is thus twice within a complete rotation of the flywheel displaces by means of the depositing medium which deposits indirectly via C against indirectly pushes away the resistance and the built-up force via B, the coupled connection position on the flywheel, in the path of least resistance in the direction of rotation of the flywheel assembly L as explained in Dutch patent NL2033561. To eliminate a first resistance point, at position E at 320°, the mass moved by means of the cylinder axis of the depositing device, which moves over length C, whereby the point of resistance of the mass at position 320° towards the in viewed in the direction of rotation, the next resistance point shifts by 25°. Upon the removal of a second resistance point at position E, at 90°, mass is also displaced, causing the center of resistance of the mass at a position of 90° to the one viewed in the direction of rotation, the following resistance point shifts by 155°. Thanks to the contact displacement between D, the indirect point of deposition against the mass, and B, the coupled connection position to the flywheel L can the force of the mass within be moved a fraction of a second over a large horizontal distance (HL) with the length between these two points. To move mass in a flywheel, the resistance of the upward mass at positions E, 320°, virtually equal to the resistance of the descending mass position E, 90°. This is because the ascending mass positions E, 320° is indirectly pulled against the direction of rotation by the centrifugal force at its resting point. This force will increase during rotation of the flywheel assembly L. As a result, no compressed air pressure can be generated without the deflector according to this invention. reused, because the compressed air pressure at both positions (320°, 90°) is virtually the same. The mass that must be corrected on the downward side has its greatest resistance at position E, 90° of the arc. To convert this external kinetic energy with the In order to preserve flywheel L, the resistance on the deposition medium A, which indirectly is coupled to the mass, be higher than the resistance at the indirect discharge point B with which the deposition medium A is coupled to the flywheel. The battery cover of the demountable device as described in the characteristic part of the conclusions contribute to the fact that the attached coupled mass provides extra resistance creates. It is a resistance that will increase when the piston is driven with more compressed air force. makes a larger movement. In summary, due to the applied deposit medium in the well-known flywheel assembly the following is not possible, which has been solved in the inventive flywheel assembly: It is not possible to rotate 360° of the arc with 17% external kinetic energy. realize The external energy cannot be conserved, because the force of mass does not fully propel the total mass of the flywheel in the direction of rotation at the desired position. The compression springs cannot be positioned along the entire vertical longitudinal line in the desired manner. set. The desired setting of the compression springs can only be selected at 1 movement speed. (counterforce) be applied. The external kinetic energy cannot be absorbed. by approximately 48%, because the compressed air pressure is the same during the first and second movement. Figure 2 shows an isometric view of the deposit medium A in the flywheel assembly L according to Figure 1. Figure 3 shows a cross-section of the seat A according to Figure 2 through a imaginary plane passing through two spacers 5 and the axes 11-1;11-2. The Reference figures indicate the following components: 1. Mounting eye. 2. bottom plate 3. Threaded end of cylinder shaft. 4.1. First compressed air supply connection from air compressor to lower chamber for first pneumatic connection. 4.2. Second supply connection for external reused kinetic energy (=compressed air) originating from lower chamber) to upper chamber cylinder for second pneumatic connection. 4.3. First atmospheric exhaust connection from upper cylinder chamber for third pneumatic connection 4.4. Second discharge connection used external kinetic energy (= used compressed air) originating from the lower chamber) for second pneumatic connection 4.5 Airflow direction. 5. Spacer 7.1 Second Compression Spring. 7.2 Third Compression Spring. 8-1. First distance block. 8-2. Second distance block. 9. Spring ring. 10. Carrying sheet. 11-1. First axis. 11-2. Second axis. 12. Cylinder above cover. 13. As escort shell. 14. Fixing nut. 15-1. First Leaf. 15-2. Second Leaf. 16. Piston. 17. Cylinder lower chamber. 18. Cylinder upper chamber. 19. filler block 20. Cylinder perimeter jacket. 21. Cylinder mounting thread length. 22. First feather. 23. Sealing ring. 24. Sliding belt piston 25. Sliding sleeve cylinder shaft. 26. Cylinder under sealing cover. 27. Bumper block. 28. Range of motion of cylinder. 29. Free movement distance. 30. Total movement distance. Figure 4 shows an isometric view of the deposit A ​​in the flywheel assembly L according to Figure 2, in which the second pneumatic connection is 31 shown. The second pneumatic connection 31 connects the second drain connection 4.4 with the second supply connection 4.2. This connection is to be interrupted remotely through an operable valve 32. The compressed air from the lower chamber 17 flows into the direction 4.5 via the operable valve 32 to the upper chamber 18. The battery cover of the deposit A ​​includes: - the direct pneumatic second connection 31 between the lower chamber 17 and the upper chamber 18 of the cylinder via the second drain connection 4.4 and second supply connection 4.4, which second connection 31 by means of a remotely controllable first valve 32 is breakable; - a pneumatic third connection to the ambient air via first drain connection 4.3, which third connection by means of a remotely controllable second valve is breakable, - at least a first spring 22 which is enclosed in the upper chamber 18 of the cylinder 16 which itself extends from the top of the cylinder space to the top of the piston 16. Additionally, the controls on the battery deck are configured for 1) operating the first valve 32, such that the first valve 32 at the position of The corresponding mass of approximately 325 degrees is open and is closed at 90 to 325 degrees; 2) operating the second valve in such a way that the second valve at a position of the corresponding mass of approximately 90 degrees is opened for the transition to atmospheric pressure bringing the upper chamber 18 of the cylinder and is closed from 110 degrees. At the filling the lower chamber 17, so the second valve opens to the atmosphere. When filling stopping the filling of the lower chamber 17 simultaneously closes the second valve to atmosphere. When filling the lower chamber, the valve attached to the first is Supply connection 4.1 open. In the upper chamber, the second valve to atmosphere is located. open, whereby valve 32 in the ring main 31 to the upper chamber is closed. When the upper chamber is filled, valve 32 is open and the second valve is (direction atmosphere) closed. The valve for filling the lower chamber is then closed. The battery deck provides additional resistance on the first movement. unloading point 3 of unloading device A, so that the attached coupled mass never touches the The direction of rotation of the flywheel can be pushed away. The battery cover preserves the external at the first movement. kinetic energy (compressed air force) during the first movement at approximately 80 to 145° from the bow. The battery deck ensures the extension of the vertical movement upon the first movement. longitudinal line VL on the descending side, which corresponds to an extension of the duration of the mass at the desired position). The battery deck accelerates the flywheel upon the first movement, because the flywheel is pressed from the position of the mass in the direction of rotation. The battery deck ensures, through the use of filler block 19, that the kinetic energy from the first movement simply via the second pneumatic connection 31 also for the second movement with approximately 65% ​​of the compressed air force together with the pushing force of the conserved kinetic energy via the compression spring 22 can be reused. The battery deck also accelerates the flywheel during the second movement, because the flywheel is pressed in the direction of rotation from the position of the mass. The mass deck of the detachment A comprises a second axle 11-2 that extends into the extension of the first shaft 11-1 through the first leaf spring 15-1. In operation, the second slides shaft 11-2 through the first leaf spring 15-1. The second shaft 11-2 extends through the second leaf spring 15-2, in which, during operation, the second shaft 11-2 slides through the second leaf spring 15-2. A first end of the second shaft 11-2 is connected to the piston 16. At least a third spring 7-2 is fitted to the second axis 11-2 between one of the sides turned away from the first second side of the first leaf spring 15-1 and one at a fixed position on the second shaft 11-2 fitted spring washer 9. The mass-deck compression spring 7-2 is tensioned via a fixed connection to the spring ring 9 on the cylinder shaft 11 so that the compression spring 7-2 against the upper cylinder spring leaf presses 15-1. The Ground deck has a different function than the Battery deck. It must be attached. contribute so that the Correction deck on the vertical downward side can regain free movement correct. The attached coupled masses at positions E must be visible in a curve movements can move up and down on orbit J. The mass deck and the Correction decks ensure that the free movement distance 29 the attached coupled mass via F at its position E is not hindered and can take place around 20°, where the force of the mass the battery deck via the Cylinder leaf spring 15-1 against the Spacer blocks 8 presses down and is corrected around 145° without recoil collision. For this, it is important that the force of the attached coupled mass at position E is equal to the force of the compression springs 7-1 of the Correction deck, where the compression springs 7-1 between the Top and bottom Cylinder spring leaves 15-1 and 15-2 are clamped. The Spacers 5 slide through the lower Cylinder leaf spring 15-2 and are fixedly mounted to the upper Leaf cylinder 15-1, used to determine the free range of motion. The Cylinder Shaft 11 has an indirect fixed hinge connection with the attached coupled mass at position E. The Cylinder shaft 11 has a at the position of the cylinder permanent connection to Piston 16. The correction cover of the product A comprises: - a first leaf spring 15-1, one side of which forms the underside of the cylinder - a second leaf spring 15-2, running parallel to the first leaf spring 15-1, and - multiple spacers 5 fitted between the first leaf spring 15-1 and the second leaf spring 15-2, each perpendicular to both the first leaf spring 15-1 and the second leaf spring 15-2. A first end of the spacers 5 is firmly connected to the first leaf spring 15-1 and the second end of the spacers 5 are sliding through the second leaf spring 15-2. Around each spacer 5 is a second spring 7-1 applied The correction deck ensures that no kickback occurs on the second movement. The mass is sandwiched between two resistors. The cylinder shaft 11-1 and the The resistance force of the correction deck ensures that the force is in the direction of the rotation is pressed. At approximately 325 degrees, approximately 65% ​​of the compressed air force in the upper chamber of the cylinder be accommodated. This is because the volume of the upper chamber is larger than the lower chamber of the cylinder. The spring force of the battery deck and the mass deck press together the entire contents of the lower room or lower room 17. Because the force of the mass presses against the correction deck in this process, the kinetic energy is also conserved here in the direction of rotation of the composite flywheel. Because the mass force on the downward side has increased in this process, it presses this force pushes the correction deck completely into the spacer blocks 8-1 with a build-up power from approximately 20 degrees. Because the attached coupled mass is clamped between the cylinder Due to the compressive force and the counterforce of the correction deck, no kickback is possible. The mass deck makes it possible that during the first and second forced movement the correction deck offers resistance differences for the movements on the downward side for the attached coupled mass at the position of approximately 20° immediately lower resistance and the position of approximately 145° for a corrective movement. The mass deck offers a higher correction force than the 7-1 compression springs of the correction deck. It Mass deck takes the higher downward correction during the first forced movement force partially removed and helps the push-up springs 7-1 of the correction deck the free movement 29 to correct. The compound flywheel L has a for every mass at positions E Movement length required with a crumple zone without recoil. This movement length comes established with the selling medium A. It has an indirect connection with the coupled attached masses at the positions on the end of the cylinder shaft (11-1) against the indirect point of attachment to the mass (D) and with the mounting eyes (1) to the frame of the compound flywheel at position (B). The range of motion consists of three parts. The first and second forced movements that are indirectly via the cylinder axis 11-1 achieved and the free movement that takes place between take-off blocks 8-1) and the first leaf spring (15-1). The free motion length is the motion that is performed solely with the force of the coupled mass takes place. Both movements take place on the downward side. The reason for the mutual movements via F with the attached coupled mass is to create imbalance, where the resistance force on the upward vertical side is lower than the descending side. The greater the distances between them, the the more imbalance, like on a seesaw, the smaller the distance from the center and how smaller the horizontal resistance at the center. The free movement is quite unbalanced difference caused by the gravitational force on the mass. The falling / downward movement of the attached coupled mass at position E takes place at the top. Correction (or repositioning) only takes place at the bottom side on the downward side, where the correction must be realized for the position of 165° of the arc. The correction to this movement will the contact displacement bring about within a fraction of a second at approximately 325° from the arc, because the force of the attached coupled mass position at approximately 170° from the arc on will be corrected in a natural way with an enormous collision (damage and energy) loss), when the position of the force of the mass on B and D become horizontally equal to lie. The bumper deck of the discharge device in the inventive flywheel assembly comprises: - comprises a base plate 2 which is fixedly attached to a second end of the second shaft 11-2 and runs parallel to the second leaf spring 15-2, such that the second leaf spring 15- 2 is situated between the first leaf spring 15-1 and the bottom plate 2, in which on the second leaf spring 15-2 on the side facing the bottom plate 2 multiple second spacer blocks 8-2 are fitted, which are perpendicular to the second leaf spring 15-2. The function of the thrust deck is to ensure that the piston 16 the filling block 19 does not touch. To this end, the height of spacer blocks 8-2 is configured such that this does not is possible Figure 5 shows a cross-section of a deposit A ​​with multiple cylinders. Deposit medium A can be used in a flywheel assembly in which the masses have a high have weight. The deflector A preferably has a first leaf spring 15-1 and a second leaf spring 15-2. The action of the deposition agent A is otherwise the same as the action of the deposit A ​​from the previous figures, but is especially suitable for heavier flywheel assemblies. By placing the cylinders in a row, the free movement length is 30 (sum of movement length 28 and 29) of the barrier A not greater than the length of the composite cylinder shaft of the deposit A ​​with equal dimensioning of the cylinder shafts 11-1 and 11-2. Without the discharge medium in the inventive flywheel assembly L, the following can points are not realized: 1. Conserving external energy during rotation between approximately 75 and 145° degrees of the arc. 2. Capturing and reusing the used external energy (compressed air pressure) with 65% at 325 degrees. 3. The indirect transformation of energy forms by the gravitational pull of the Earth in kinetic energy. The second movement is now only possible with the mass object at position E at approximately 325°. the flywheel assembly L can be realized. In doing so, the captured compressed air is utilized from the lower chamber 17 and the compressive force of the first spring in the upper chamber 18 without using additional external kinetic energy. 5. With the application of the mass deck, the resistance force of the total can the mass present of the flywheel assembly constant over 360 degrees of the arc become resist 6. With the application of the battery deck, the resistance force of its own mass can of the flywheel assembly L and the third resistor applied to the drive shaft constant be withstood over 360 degrees of the arc. The advantage of the combination of the assembled cylinder shaft 11, which consists of shaft 11-1 and as 11-2, of the deposit medium A with, for example, a diameter of approximately 20 mm to 120mm that keeps the barrier A straight during stable large ranges of motion. With this the forced and free movement together become greater than 400mm where there is no recoil is. This ensures the movement, whereby the cylinder shaft 11 (A) is stable in one maintains a straight line and the spacers through relatively short sliding sleeves through the second leaf spring 15-2 can slide and not bind. 5

Claims

1. Flywheel assembly (L), which is actuable by means of compressed air, comprising a flywheel with a drive shaft, which is mounted at the center of the flywheel; a support device in which the flywheel is mounted vertically; an odd number of at least 1 articulating mass, preferably 3 masses, each are mounted by means of a rod at a distance from the drive shaft and radially evenly distributed are about the flywheel; a first end of the rod is hinged to the flywheel near the drive shaft and a second end of the rod are attached to the mass; in which near each bar a pneumatically operated barrier (A) comprising at least one pneumatic cylinder is installed, comprising a cylinder chamber, a in the piston (16) placed in the cylinder space and a first piston (16) coupled to the piston (16) cylinder shaft (11-1), which first cylinder shaft (11-1) lies in the extension of the cylinder space, in which each deposit (A) has an indirect connection with the coupled attached mass (D) has at a position on the end of the cylinder axis (11-1) by means of screw thread (3) against an indirect point of contact with the mass and on a coupled position (B) is attached to the flywheel, the outlet (A) is designed to create an imbalance in the operation flywheel, such that the time duration of a mass on the downward side, between 0 and 180 degrees, is higher than the time duration of a mass on the ascending side, between 180 and 359 degrees, the flywheel assembly comprises a control device for operating the outlets (A) in which compressed air is supplied under the pneumatic first connection piston (16) is introduced into which compressed air comes from an air compressor; in which the control device is also configured for: - creating an initial movement via a lower chamber (17) of the cylinder, in which at least one piston (16) of a deposit (A) is expressed as a corresponding mass is located between approximately 70 arc degrees and 145 arc degrees, in particular at 110 arc degrees; - creating a second movement, in which at least one piston (16) of a deposit (A) is pressed through an upper chamber (18) of the cylinder as a corresponding mass is located between approximately 300 and 10 arc degrees, with the characteristic that the means of sale (A) comprises: - a direct pneumatic second connection (31) includes between the lower chamber (17) and an upper chamber (18) of the cylinder via second drain connection (4.4) and second supply connection (4.4), which second connection (31) by means of a remote the first valve (32) is breakable; - includes a pneumatic third connection to the ambient air by means of a first drain connection (4.3), which third connection by means of a remotely controllable second valve is breakable, - the upper chamber (18) of the cylinder (16) contains at least one first spring (22) which is extends from the top of the cylinder space to the top of the piston (16); and the controls are configured for 1) operating the first valve (32), such that the first valve (32) only is opened during the second movement; 2) operating the second valve in such a way that the second valve only during the First movement is opened.

2. Flywheel assembly according to claim 1, in which the upper chamber (18) a filler block (19) includes that extends from the top of the cylinder space towards the top of the piston (16), such that the total maximum volume available for compressed air in the upper chamber (18) approximately 1.3x the maximum volume of the lower chamber (17) amounts to 3. Flywheel assembly within the meaning of claim 1 or 2, in which the deposit (A) is a first spring leaf (15-1) comprises, on one side of which the underside of the cylinder is placed, in which the thrust device (A) includes a second leaf spring (15-2), which runs parallel to the first leaf (15-1), several spacers (5) have been placed between the first leaf spring (15-1) and the second leaf spring (5-2), each of which is perpendicular to both the first leaf spring (15-1) and the second leaf (5-2), in which a first end of the spacers (5) is attached to the first spring leaf (15-1) and the second end of the spacers (5) are adjustable by the second leaf (15-2), in which a second spring (7-1) is fitted around each spacer (5).

4. Flywheel assembly within the meaning of claim 3, in which one or more first Spacer blocks (8-1) are placed between the first leaf spring (15-1) and the second leaf spring (15-2) running parallel to the spacers (5) in which a first side the first spacer blocks (8-1) is firmly connected to the second leaf spring (15-2).

5. Flywheel assembly within the meaning of claim 3 or 4, comprising a second shaft (11-2) which extends in line with the first shaft (11-1) through the first leaf spring (15-1), in which in operation the second shaft (11-2) slides through the first leaf spring (15-1), in which the second shaft (11-2) extends through the second leaf spring (15-2), in which in the second shaft (11-2) slides through the second leaf spring (15-2), in which a first end of the second shaft (11-2) is connected to the piston (16), in which at least a third spring (7-2) is fitted to the second shaft (11-2) between one second side of the first leaf facing away from the first side (15-1) and a spring washer (9) fitted at a fixed position on the second shaft (11-2).

6. Flywheel assembly according to one of the previous claims, in which the deposit medium (A) a base plate 2 comprises, which is fixedly attached to a second end of the second shaft (11-2) and runs parallel to the second leaf spring (15-2), such that the second spring leaf (15-2) is located between the first spring leaf (15-1) and the bottom plate (2), in which on the second leaf spring (15-2) on the side facing the bottom plate (2) several second spacer blocks (8-2) have been installed, which are perpendicular to the second leaf (15-2).

7. Flywheel assembly according to one of the previous claims, in which the at least first spring (22) is designed to empty the entire lower room 17. 32090180150210ABCADDEFGGGBBBJHIIKFFEELFIG1HLLVLVLHLHL