System for controlling variable load in a hydraulic device
10323712 ยท 2019-06-18
Assignee
Inventors
Cpc classification
F16F2222/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/348
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F13/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
F16F2228/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G15/061
PERFORMING OPERATIONS; TRANSPORTING
F16F9/483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G2202/312
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16F13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
F16F9/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/516
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/348
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hydraulic device includes a tubular housing containing a rod to which a plunger is rigidly secured that separates an upper chamber and a lower chamber both filled with a hydraulic fluid such that the plunger and the rod move together in a relative manner axially inside the tubular housing, thereby moving the hydraulic fluid from one chamber to the other and varying the volumes thereof. The hydraulic device further includes a spring that operates under compression resisting the movement of the plunger in one direction when the plunger moves toward a maximum extension position of the hydraulic device. The hydraulic device also includes an open elastic ring, the ends of which define an adjustable intermediate passage for the hydraulic fluid in order to adjust damping at the end of maximum extension of the hydraulic device and in other relative positions.
Claims
1. A system for controlling variable load in a hydraulic device, wherein the hydraulic device comprises a tubular housing containing a rod to which a plunger is rigidly secured that separates an upper chamber and a lower chamber both filled with a hydraulic fluid, such that, when the plunger and the rod move, the plunger and the rod move together in a relative and axial manner through the tubular housing, the hydraulic fluid is moved from a first of the upper chamber and the lower chamber to a second of the upper chamber and the lower chamber, varying a volume of the upper chamber and a volume of the lower chamber, also comprising a spring that operates under compression resisting movement of the plunger in one direction when the plunger moves toward a maximum extension position of the hydraulic device; wherein the movement of the plunger towards the maximum extension position progressively reduces the volume of the upper chamber, the hydraulic device also being capable of adopting a rest position of minimum extension in which the spring has a maximum length; wherein: the system comprises an open elastic ring located inside the tubular housing surrounding at least one part of the plunger, the open elastic ring having an adjustable intermediate passage between first and second radial ends of the open elastic ring through which the hydraulic fluid is to flow between the upper chamber and the lower chamber in both directions, the open elastic ring being configured to be dragged by the movement of the rod and the plunger; the first radial end of the open elastic ring defines a first inner surface extending in an axial direction of the tubular housing, the second radial end of the open elastic ring defines a second inner surface extending in the axial direction of the tubular housing; and the first inner surface is parallel to the second inner surface such that no portion of the open elastic ring overlaps any other portion of the open elastic ring in a circumferential direction of the open elastic ring; the tubular housing comprises an upper part having an interior comprising at least one tubular hole that narrows from bottom to top and a lower edge of greater diameter which joins a lower part of the tubular housing by an annular seat onto which at least an outer portion of the open elastic ring is supported in the rest position of the hydraulic device; the open elastic ring has an outer diameter between a smaller diameter of the tubular hole and a larger diameter of the tubular hole, and the outer diameter of the open elastic ring is greater than an outer diameter of the plunger; and wherein during the movement of the plunger towards the maximum extension position of the hydraulic device, an outer side of the open elastic ring is in contact with an inner side of the tubular hole so as to progressively change a passing section of the adjustable intermediate passage as the open elastic ring approaches the maximum extension position of the hydraulic device.
2. The system according to claim 1, wherein a minimum passing section of the adjustable intermediate passage of the open elastic ring coincides with a maximum compression of the spring.
3. The system according to claim 1, wherein during a maximum compression of the spring, the first and second radial ends of the open elastic ring are in contact with each other, completely blocking the adjustable intermediate passage.
4. The system according to claim 2, wherein, at the maximum compression of the spring in which the hydraulic device is at the maximum extension position, coils of the spring are in contact with each other.
5. The system according to claim 1, wherein the plunger comprises a lower section of greater diameter and an upper section of smaller diameter around which the open elastic ring is attached.
6. The system according to claim 1, wherein the open elastic ring is configured to come into contact with an inner surface of the tubular hole through an edge integrated at a junction of the outer diameter of the open elastic ring and a flat base of the open elastic ring.
7. The system according to claim 1, wherein the spring comprises a tapered structure.
8. The system according to claim 1, wherein a lower end of the spring is coupled to a washer having free axial movement, the washer being arranged around the rod and above the plunger onto which the washer rests.
9. The system according to claim 8, wherein axial movement of the open elastic ring is restricted by the washer and by a lower section of the plunger.
10. The system according to claim 8, wherein the washer comprises an upper section of smaller diameter and a lower section of greater diameter, an inner side of the lower end of the spring being adjusted to the upper section of the washer, while the spring acts as a stop against a frontal side of the lower section of the washer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF A SAMPLE EMBODIMENT
(7) The hydraulic device shown in the figures is a shock absorber for vehicles arranged in a vertical position comprising a tubular housing (1) containing a rod in its interior (2) to which a plunger (3) is rigidly secured that separates a first upper chamber and a second lower chamber filled with a hydraulic fluid, such that, during the movement of the shock absorber wherein the assembly of rod (2) and plunger (3) is displaced relatively and axially with respect to the tubular housing (1) through its inside, the hydraulic fluid moves from one chamber to the other varying volumes thereof, which depend on the relative position of the plunger (3) at every moment.
(8) The plunger (3) is loosely located within the tubular housing (1), that is, there is an annular space between the outline of the plunger (3) and the inner side of the tubular housing (1).
(9) The shock absorber shown in the figures also comprises a spring (4) that operates under compression, such that when the shock absorber is moved according to a first stroke upwards and towards a maximum extension of the shock absorber, the spring (4) is compressed offering resistance, whereas when the shock absorber is moved according to a second stroke towards a rest position of maximum compression, the spring (4) offers less compression resistance extending its length.
(10) From this premise, the system of the invention comprises regulating the flow of hydraulic fluid between the upper and lower chambers, thus controlling the hydraulic load while the shock absorber operates.
(11) To such purpose, a washer (5) has been provided attached from the inside to the lower end of the spring (4), at the same time said washer (5) is coupled and guided around the rod (2) above the plunger (3). The washer (5) has an upper section (5a) of a smaller diameter where an end of the spring (4) fits diametrically and a lower section (5b) of greater diameter which has a frontal side (5c) where the above-mentioned spring (4) acts as a stop.
(12) The plunger (3) comprises an upper section (3a) of smaller diameter and a lower section (3b) of greater diameter.
(13) An essential feature of the invention is an open elastic ring (6) located inside the tubular housing (1). This open elastic ring (6) is located at the height of the upper section (3a) of smaller diameter of the plunger (3), whereas onto the lower section (3b) of greater diameter of the plunger (3) an inner portion supports said open elastic ring (6).
(14) Above the open elastic ring (6) the washer (5) is placed, which does not allow for the open elastic ring (6) to be placed above the washer (5) at any time and neither can the open elastic ring be located below the plunger (3).
(15) The tubular housing (1) comprises an upper part and a lower part, the lower part arranged below the upper part, such that the junction of both parts is composed in the inside of the tubular housing (1) making up an annular seat (7) where an outer portion of the open elastic ring (6) is resting when the shock absorber is in a rest position, that is, when the spring (4) is in its most extended position pressing against the plunger (3) through the washer (5).
(16) The upper part of the tubular housing (1) internally comprises at least a tapered hole (8) whose lower edge is joined to the lower part of the tubular housing (1) by means of the annular seat (7). In turn, this lower part of the tubular housing (1) internally comprises a cylindrical hole (9).
(17) The spring (4) that operates under compression is attached by its lower end to the washer (5) as previously described, whereas the upper end of the spring (4) is attached to the inner side of the upper part of the tubular housing by means of a ring or any other stop, such as a flat washer (11).
(18) In addition, between the ends of the open elastic ring (6) an intermediate passage (10) is defined through which the hydraulic fluid of the upper chamber travels to the lower chamber and vice versa, during the movement of the shock absorber, said intermediate passage being variable during the relative movement of the open elastic ring (6) as described below.
(19) Depending on the relative position of the different elements of the shock absorber, the rod (2) moves upwards during the extension stroke of the shock absorber. Therefore, a few moments before the system for controlling the shock absorber's load starts operating, the rod (2) is in a position such that the plunger (3) is not in contact with any other element. That is, the plunger (3) is located in an area of the tubular housing (1) at a lower level below the area where the diameter begins to vary in the tubular housing (1) related to the annular seat (7) that separates both parts of the tubular housing (1).
(20) In this situation, the spring (4) presses against the washer (5), and in turn, this washer (5) presses and maintains the open elastic ring (6) positioned against the annular seat (7) of the tubular housing (1). The hydraulic fluid may freely move and flow from one chamber to the other.
(21) When the shock absorber is moved towards its maximum extension, the operation is as follows: The upper side of the plunger (3) is in contact with the lower side of the washer (5). The open elastic ring (6) is housed around the upper section (3a) of smaller diameter comprised in the plunger (3). The package created by the plunger (3) and washer (5) compresses the spring (4) releasing the pressure that keeps the open elastic ring (6) against the annular seat (7) of the tubular housing (1). Thus, the pressure increase in the cavity of the hydraulic fluid housed in the region or upper chamber above the open elastic ring (6), along with the ascent of the plunger (3), causes the open elastic ring (6) to be supported against the plunger (3) in a transitional frontal side (3c) between the outer diameter (3a) and the outer diameter (3b) of the plunger (3). It is worth noting that
(22) If the stroke towards the maximum extension position of the shock absorber is reached, the spring (4) comprises a block contacting the coils (
(23) The controlled transition between the smaller passing area (10a) and the greater passing area (10b), through the controlled reduction of the diameter (6a) of the open elastic ring (6) and, therefore, of the intermediate passage (10), is what generates an increase in the load as the rod (2) and the plunger (3) ascend towards the maximum extension of the shock absorber. By reducing the passing area of the fluid, the speed decreases and pressure increases in the upper chamber, generated above the open elastic ring (6).
(24) The smaller the passing area related to the intermediate passage (1), the greater the pressure in the upper chamber above the open elastic ring (6). This pressure phenomenon is transmitted to the rod (2) through the plunger (3), which generates a force opposing the extension movement of the shock absorber that does not end until the rod (2) is fully stopped.
(25) Upon initiating the compression stroke opposite to the extension movement of the shock absorber, the rod (2) descends, therefore the plunger (3) no longer drags the open elastic ring (6), increasing the fluid passage between an inner diameter (6b) of the open elastic ring (6) and the rod diameter (2), thus discontinuing the generation of pressure. The spring (4) through the washer (5) pushes the open elastic ring (6) until it is returned to its initial rest position, wherein it is supported against the annular seat (7) of the tubular housing (1). It is worth highlighting that, as shown in the perspective view of
(26) One of the advantages of the current design of the invention is that the finish of the components could be made component by component to enhance the continuous control of the passing area related to the intermediate passage (10), based on the variation of the outer diameter (6a) of the open elastic ring (6) and the intermediate passage (10) of the ring (6). In this regard, the following is observed: The open elastic ring (6), as previously referred to, is the key element of the invention, since the continuous and detailed control of the passing area of the hydraulic fluid depends on its significant geometry variation, contrary to other inventions of similar characteristics.
(27) In this regard, the geometry of the open elastic ring (6) is not exclusively related to that illustrated in
(28) In addition, the open elastic ring may comprise recesses, orifices or, in general, any kind of slot that contributes to the way in which the passing area varies.
(29) It is also worth noting that the open elastic ring can be built using different methods such as stamping, sintering, extrusion and bending, machining, etc., and with any material capable of resisting the stresses generated during its operation, such as steel, bronze, aluminum, etc.
(30) The plunger (3) fulfils the function of supporting the open elastic ring (6), of limiting the inner area of the open elastic ring (6) by means of a greater outer diameter (3d) of the lower section (3b) and also acts as a force-transmission element to the rod (2). The upper section (3a) of the plunger (3) has a smaller outer diameter that is referenced with number (3e).
(31) Once again, its geometry is not limited exclusively to that shown in the drawings, as furnished herewith.
(32) The outer diameters, the greater (3d) and smaller (3e) diameters of the plunger (3), may be carried out by means of one or several components, provided that the lower component of the package works rigidly with the rod (2) and drags the assembly. Said lower component may be joined to the rod (2) by welding, stapling, etc.
(33) The open elastic ring may have recesses, orifices and, in general, any type of split that contributes in a positive manner to the way in which the passing area of the intermediate passage (10) of the open elastic ring (6) varies when it is resiliently deformed.
(34) The component or components that generate the greater outer diameter (3d), as well as the working area of the open elastic ring (6), may be manufactured with metallic material, compounds or plastic, depending on the stresses and difficulties of the splits or orifices carried out.
(35) The tubular housing (1) has an inner geometry that comprises the assembly and guides the open elastic ring (6) through the inside. Once again, its geometry is not limited exclusively to that illustrated in the drawings.
(36) Thus, the diameter variation may be achieved by processes on a straight pipe, such as narrowing, bell mouthing, machining, etc., or by means of an additional accessory.
(37) The washer (5) works as spring support (4), fixes from the top the space where the open elastic ring (6) is located and pushes it by means of the spring (4) until its initial position when the stop action ends. Based on the geometry of the spring (4), the washer (5) is optional, thus, the spring (4) would directly be supported on the open elastic ring (6).
(38) The washer (5) may be manufactured both in metal to ensure high strength, or in plastic material or compound to ensure smoothness and lack of noises upon the support.
(39) The spring (4) is in charge of returning the assembly to its initial rest position, as well as of providing the load depending on the position. To optimize the development of the load and the return of the assembly to its position, the spring (4) is provided with constant or variable rigidity and may be composed of a cross section wire of any choice in terms of shape and size, or of a series of rings. The spring (4) may operate freely within the tubular housing (1) or be fastened by interference or by an additional component similar to the washer (5).
(40) Given the versatility and the many possible designs of the invention, the assembly can be used in different positions for various applications. As regards the shock absorber, the invention may be used as a hydraulic rebound stop or as a hydraulic compression stop. It is valid for any shock absorber technology and may be installed in the main body of the shock absorber or in adjacent bodies, for example, in reserve chambers of hydraulic fluid.
(41) In general, the invention is applicable for any hydraulic device designed to be part of a structure, both mobile or fixed, to provide a mechanical-hydraulic end of stroke, as it occurs in structures (solar panels, metallic structures for buildings, etc.) or in vehicles.
(42) Taking into account the numbering adopted for the figures, the system for controlling variable load in a hydraulic device comprises the following nomenclature used in the description: 1. Tubular housing 2. Rod 3. Plunger 3a. Upper section 3b. Lower section 3c. Frontal side 3d. Greater outer diameter 3e. Smaller outer diameter 4. Spring 5. Washer 5a. Upper section 5b. Lower section 5c. Frontal side 6. Open elastic ring 6a. Outer diameter 6b. Inner diameter 6c. Curb 7. Annual seat 8. Tubular hole 9. Cylindrical hole 10. Intermediate passage 10a. Minimum passing area 10b. Maximum passing area 11. Flat washer