GAS SPRING AND RELATIVE SAFETY SYSTEM

20230349439 ยท 2023-11-02

Assignee

Inventors

Cpc classification

International classification

Abstract

Described is a gas spring (200), comprising a guide (2), having an outer surface (212), a slider (1), defining with said guide (2) at least one chamber (11) containing pressurised gas, said slider (1) being slidably connected to said guide (2) in such a way as to have a maximum stroke, of expansion, wherein said guide (2) is partially extracted from said slider (1), and a maximum stroke, of compression, characterised in that it comprises a bushing (3), positioned between said slider (1) and said guide (2), comprising sealing means for the tightness of the chamber (11), and removably coupled and so as to move integrally with said slider (1) up to said maximum stroke, in such a way that, when said slider (1) slides with respect to said guide (2) beyond said maximum stroke, said bushing (3) decouples from said slider (1) so as to eliminate the seal of the chamber (11).

Claims

1. A gas spring (200), comprising a guide (2), having an outer surface (212), a slider (1), defining with said guide (2) at least one chamber (11) containing pressurised gas, said slider (1) being slidably constrained to said guide (2) so as to have a minimum stroke, of expansion, in which said guide (2) is partially extracted from said slider (1), and a maximum stroke, of compression, a bushing (3), arranged between said slider (1) and said guide (2), comprising sealing means for tightness of the chamber (11), and removably coupled and so as to move integrally with said slider (1) up to said maximum stroke of compression, so that, when said slider (1) slides with respect to said guide (2) beyond said maximum stroke of compression, said bushing (3) decouples from said slider (1) so as to eliminate the tightness of the chamber (11), a safety element (230) to prevent said slider (1) from disengaging itself from said guide (2) when said slider (1) slides beyond said minimum stroke of expansion, characterised in that said guide (2) has a circular housing (23) in correspondence with an outer surface (212) and in that said safety element (230) is a Seeger or a stop ring, housed n said circular housing (23) so as to protrude with respect to said outer surface (212) of said guide (2).

2. The gas spring (200) according to claim 1, characterised in that said slider (1) has a groove (32) formed on its inner surface (111), in that said bushing (3) has a slot (310) arranged facing said groove (32), so as to form a seat, and in that it comprises a locking element (30) housed in said seat, wherein, when said slider (1) slides with respect to said guide (2) beyond said maximum stroke of compression, the reciprocal position of said slot (310) with respect to said groove (32) varies, in such a way that said locking element (30) comes out of said seat so as to uncouple said bushing (3) from said slider (1) and eliminate the tightness of the chamber (11).

3. The gas spring (200) according to claim 2, characterised in that said groove (32) has a first margin (320), near a first opening (10) of the first chamber (11) of said slider (1), and a second margin (321), tapered in the opposite direction to the first margin (320), so as to cause the movement of said locking element (30) out of said seat when said bushing (3) slides with respect to said slider (1), and in that said bushing (3) has a lower surface (35), which protrudes from the first opening (10) of the first chamber (11) at least by half the width of the section of the locking element (30), in such a way as to as to ensure its displacement from the groove (32) to cause the decoupling of the bushing and eliminate the seal of the chamber (11).

4. (canceled)

5. The gas spring (200), according to claim 1, characterised in that said safety element (230) is arranged so as to protrude from said outer surface (212) of said guide (2).

6. (canceled)

7. The gas spring (200), according to claim 1, characterised in that said guide (2) has a second opening (20) and in that said safety element (230) is arranged on the outer surface (212) of said guide (2) and in correspondence with the second opening (20).

8. The gas spring (200), according to claim 1, characterised in that said bushing (3) comprises a lip (132) on a relative inner surface (311), designed to interfere with said safety element (230) when said slider (1) reaches said minimum stroke.

9. The gas spring (200) according to claim 1, characterised in that it comprises: an end stop (12) comprising a stem (120), integral with said slider (1) and constrained to slide through the second opening (20) of said guide (2), and a head (121), inserted inside said guide (2) and configured to abut with a stop (124) defined by said second opening (20), so as to prevent separation between the slider (1) and the guide (2).

10. The gas spring (200) according to claim 1, characterised in that it comprises: means for sealing the chambers (11, 21) and/or guiding means for the reciprocal sliding of said guide (2) with said bushing (3), positioned between said bushing (3) and said guide (2) and/or between said bushing (3) and said slider (1).

Description

[0054] The invention is described, by way of example and without limiting the scope of the invention, with reference to the accompanying drawings, in which:

[0055] FIG. 1 is a front view of a first embodiment of a gas spring according to the invention;

[0056] FIG. 2 is a plan view of the spring of FIG. 1;

[0057] FIG. 3 shows a view of a section along line A-A of the gas spring of FIGS. 1 and 2;

[0058] FIG. 4 shows a detail of the section of FIG. 3;

[0059] FIG. 5 is a front view of a second embodiment of the gas spring according to the invention;

[0060] FIG. 6 is a plan view of the spring of FIG. 5;

[0061] FIG. 7 shows a view of a section along line A-A of the gas spring of FIGS. 5 and 6;

[0062] FIG. 8 shows a section of the spring of FIG. 7 in over-stroke during the expansion phase;

[0063] FIG. 9 shows a section of the spring of FIG. 7 during the compression phase;

[0064] FIG. 10 shows a section of the spring of FIG. 7 at the end of the compression phase;

[0065] FIG. 11 shows a section of the spring of FIG. 7 in over-stroke during the compression phase;

[0066] FIG. 12 shows a section of a detail of the spring of FIG. 11;

[0067] FIG. 13 shows a section of the spring of FIG. 11 following the over-stroke occurring during the compression phase, with consequent decoupling of the bushing;

[0068] FIGS. 14A-14C are sectional views of a third embodiment of the safety system according to the invention applied to a traditional gas spring.

[0069] The similar parts will be indicated in the various drawings with the same numerical references.

[0070] With reference to FIGS. 1-3, the gas spring according to the invention, generically indicated with 100, comprises a first hollow element or slider 1 in which a first chamber 11 is formed, delimited by a first bottom wall 110, by an inner lateral surface 111 and by a first opening 10.

[0071] The first bottom wall 110 is part of a closing element 400, which is necessary in this embodiment to allow the assembly of the components that form the spring 100, as will be described in more detail below.

[0072] The sealing of the closing element 400 with the body of the slider 1 is ensured by a gasket 401 positioned at their interface.

[0073] The spring 100 also comprises a second element or guide 2, which is also hollow and provided with a second chamber 21 delimited by a second bottom wall 210, by a second inner lateral surface 211 and by a second opening 20.

[0074] This bottom wall 210 is part of a reversibly coupled disk 300 which is assembled to the guide 2 at a later time, so as to keep the second chamber 21 accessible until the spring 100 is completely formed.

[0075] According to this first embodiment, the inner lateral surface 111 of the slider 1 is in contact at least partially with an outer surface 212 of the guide 2, almost always by means of gaskets or other accessory elements (not shown), such as for example the so-called guide-stem or scraper-stem.

[0076] The guide 2 is provided, at its opposite end to the opening 20, with a safety stop 22 (FIG. 3) on the outer surface 212 which delimits the chamber 21; in this case, this safety stop 22 is the support base of the spring, which has an upper surface 220.

[0077] The slider 1 and the guide 2 are manufactured in such a way that the guide 2 can be inserted into the slider 1 and can slide inside the chamber 11, only for the two configurations of maximum and minimum extension.

[0078] With reference now to FIGS. 3, 4 and 8, a first housing 130, used for example to house a gasket, is formed along the perimeter of the inner lateral surface 111 of the chamber 11 and in the vicinity of the first opening 10; nevertheless, according to further variant embodiments of the spring, a greater number of housings for further accessories can be provided.

[0079] The housing 130 is delimited, in its portion facing the opening 10 of the chamber 11, by a lower projecting profile or lower lip 132 with respect to the inner lateral surface 111 (visible in FIG. 4).

[0080] A circular seat 23 is formed on the outer surface 212 of the guide 2 near the opening 20.

[0081] This circular seat 23 is used to house a first safety element 230, such as a conventional stop ring.

[0082] The spring 100 additionally comprises an end stop 12, for example a piston, positioned inside the first chamber 11 and integral with the slider 1.

[0083] This end stop 12 is provided with a stem 120 fixed to the bottom wall 110 of the chamber 11, and with a head 121, with a larger diameter than the stem 120 and which is inserted inside the second chamber 21 of the guide 2.

[0084] The stem 120 is constrained inside the second opening 20.

[0085] The head 121 has an upper surface 122 and a lower surface 123.

[0086] In this way, in the slider 1-guide 2 system the two sliding elements are constrained to translate along the direction of a axis of symmetry X of the spring 100.

[0087] The head 121, and in particular its lower surface 123, is used to prevent the two elements from sliding relative to each other until they are released.

[0088] For this purpose, the inner walls 211 of the chamber 21 have a smaller bore (or internal diameter) section at the opening 20, which has a first abutment surface or step 124 which extends along the entire periphery of the opening 20.

[0089] During the operation of the spring, this abutment surface 124 acts as an upper limit to the relative sliding of the elements 1 and 2; the lower surface of the head 121 of the end stop 12, abutting the step 124, stops the expansion of the spring, and therefore its movement in the axial direction.

[0090] Observing the above-mentioned circular seat 23, its position on the outer surface 212 is such that, when the spring is in normal operating conditions, the safety element 230 housed in the circular seat 23 does not interfere with the sliding of the slider 1.

[0091] The head 121 of the end stop 120 in fact prevents the slider 1 from rising freely, avoiding contact between the projecting profile 132 and the safety element 230 located in the circular seat 23.

[0092] When this is not the case, for example due to fractures of the internal spring components, the stroke range exceeds the maximum allowable limit.

[0093] The safety element 230 located in the circular seat 23, comes into contact with the lip 132 after the slider 1 exceeds the minimum stroke, bringing the sealing means in such a position as to no longer guarantee the tightness between the guide 2 and the slider 1.

[0094] In this way, the drawback of the prior art is avoided, according to which the breakages of hidden components of the springs may not be immediately evident and remain dangerously hidden for a more or less long period of time before reaching failure.

[0095] With reference to FIGS. 5-13, a second embodiment of the gas spring according to the invention is now described.

[0096] The equivalent parts and components in the different embodiments represented and/or described are identified by the same references.

[0097] The spring 200 shown in FIGS. 5-8 comprises a cylinder or slider 1 and a piston or guide 2 in the same configuration as the first embodiment.

[0098] The embodiment of the spring 200 also comprises an end stop 12, similar to that present in the variant described above.

[0099] On the inner lateral surface 111 of the slider 1, near the opening 10, a groove 32 is formed, delimited by a first margin or lower margin 320 and a second margin or upper margin 321, the profiles of which are asymmetrical to each other.

[0100] The lower margin 320 is, in fact, a traditional shoulder.

[0101] The upper margin 321, on the other hand, has a profile slightly tapered towards the inside of the chamber 11; in other words, the diameter of the inner side wall 111 gradually increases as the surface of the groove 32 is moved away from the bottom wall 110 and approaches the opening 10.

[0102] An initially flared profile is thus obtained, which however ends with the shoulder represented by the lower margin 320.

[0103] Furthermore, according to this embodiment of the spring, the diameter of the first opening 10 is greater than in the first embodiment described, to allow the introduction of a bushing 3 into the clearance which consequently is created between the inner lateral surface 111 of the slider 1 and the outer surface 212 of the guide 2.

[0104] In the first case, the chambers 11 and 21 are in communication, and this advantageously allows the inner sealing surface of the spring to be increased and the pressure values to be significantly lowered during operation, thus improving the safety of the spring itself.

[0105] The inner surface or wall 311 of the bushing 3 is in contact with the outer surface 212 of the guide 2, and is provided with a plurality of housings: [0106] a first housing 130, delimited in its portion facing the bottom wall 110 by a first projecting profile or lip 131, and in its portion facing the opening 10, by a second projecting profile or lip 132; [0107] a second housing 140 and a third housing 150, placed side by side with the first housing 130 and placed at a variable distance according to the design requirements.

[0108] These housings are also used to house accessory components (not shown) such as sealing means for the gas, guides to facilitate and guide the sliding between the elements, scraping means for cleaning the exposed surfaces and/or for their protection from attack by dust or external agents.

[0109] The profiles 131, 132 of the bushing 3 have the same function of upper limit to the stroke existing between the sliding elements 1 and 2, which is shown more clearly in FIG. 8.

[0110] The outer surface or wall 312 of the bushing 3, on the other hand, is in contact with the inner lateral surface 111 of the slider 1.

[0111] The following are formed on the outer surface 312: [0112] a fourth housing 40, designed to house suitable sealing means (not shown) with the inner lateral surface 111 of the slider 2, which prevent the gas from escaping from the chamber 11; [0113] a fifth housing 31, delimited at the bottom by the lower surface 35 of the bushing 3 itself and at the top by a joint or by a chamfer, the profile of which ends with a slot 310. The bushing 3 is coupled to the slider 1 itself near the opening 14, and is manufactured in such a way that its slot 310 and the groove 32 of the slider 1 are mutually adjacent and facing each other.

[0114] In this way, the slot 310 and the groove 32 together define a seat in which to house a locking element 30, which makes the bushing 3 integral with the slider 1; such locking means can be, for example, a harmonic or elastic steel ring.

[0115] During normal operation of the spring 200, in fact, the pressure of the gas contained inside the chamber 11 would push the bushing 3 in the direction of the opening 10, and would cause the separation from the slider 1.

[0116] The presence of the locking element 30, which is in fact trapped by the lower margin 320 of the groove 32 and by the slot 310, integrally locks the bushing 3 and the slider 1.

[0117] Advantageously, the locking element 30 can be of reduced size with respect to the prior art, since it is not subjected to dynamic loads during the operation of the spring and only serves to keep two elements coupled together.

[0118] Prior art technical solutions make use of larger sized rings or threaded elements, in order to be able to withstand the high pressure stresses that can develop.

[0119] Therefore, this variant of gas spring behaves during use in a conventional manner.

[0120] In the event of an over-stroke in the expansion phase, the safety mechanism already illustrated in the previous description of the first embodiment intervenes, the operation of which is shown in FIG. 8.

[0121] It is also possible to make springs without this first safety mechanism, if necessary.

[0122] With reference to FIGS. 9 to 13, the operation of the second embodiment of the safety device according to the invention is now illustrated, in the case of over-stroke during the compression phase of the spring and in correspondence with the so-called bottom dead centre configuration.

[0123] As already mentioned, during the conventional use of gas springs it is preferable that the two main sliding elements do not come into contact with each other.

[0124] This is achieved, for example, through a careful adjustment of the movements of the elements with which the spring itself interacts, so as not to cause excessive stresses that lead to excessive compression and, therefore, to unwanted contact between the components of the spring itself.

[0125] As can be seen in FIGS. 7 to 13, the bushing 3 is manufactured in such a way that its lower surface 35 protrudes slightly along the axial direction with respect to the opening 10 of the slider 1.

[0126] In other words, the lower surface 35 protrudes slightly out of the opening 10, towards the stop 22 of the guide 2, which in this case also functions as a support base on a reference surface (not shown).

[0127] The extent of the protrusion is minimal, and is sufficient to cause, in the event of over-stroke, the contact of the lower surface 35 of the bushing 3 with the guide 2, specifically with the upper surface 220 of the stop 22 (as shown in FIGS. 10 and 11).

[0128] This contact in turn causes a relative translation between the slider 1 and the bushing 3; in particular, it generates a movement along the direction of the X axis of the bushing 3 towards the bottom wall 110 of the slider 1.

[0129] In this way the upper marge 321 of the groove 32 moves and, due to its tapering, forces the locking element 30 to leave its natural seat, represented by the slot 310 (as shown in detail in FIG. 12).

[0130] The locking element 30 is therefore pushed in the same direction as the movement of the slider 1, and occupies the fifth housing 31 in an irreversible manner, due to the elasticity of the material with which the locking element 30 is manufactured.

[0131] According to preferred embodiments, the above-mentioned lower surface 35 of the bushing 3 protrudes from the first opening 10 of the first chamber 11 to an extent at least equal to half the sectional width of the locking element 30, so as to ensure its movement from the groove 32.

[0132] The displacement is shown more clearly in the detail of FIG. 12, in wherein the contraction of the locking element 30 is schematically shown with the arrow F.

[0133] At this point, due to the clearance that is established between the slider 1 and the bushing 3, the gasket positioned in the housing 40 no longer forms a complete seal with the walls 111, causing the gas to escape from the chamber 11.

[0134] Therefore, a loss of pressure is obtained inside one or both chambers, and it becomes possible to detect the contact between the surfaces of slider 1 and guide 2.

[0135] FIG. 13 shows the spring 200 after the locking element 30 has changed position, releasing the bushing 3 from the slider 1.

[0136] The particular shape of the housing 31 of the bushing 3, together with the elastic material with which the locking element 30 is made, does not allow the latter to spontaneously return to occupy its original position in the slot 310.

[0137] The locking element 30 undergoes a movement from the seat 310 by the upper margin 321 of the groove 32; at the same time, the locking element 30 contracts elastically, consequently reducing its diameter.

[0138] The movement of the locking element 30 continues to such an extent that it permanently occupies the housing 31.

[0139] The slider 1 is released from the bushing 3, and causes the total loss of tightness of the gaskets, releasing the gas contained inside the chambers.

[0140] Consequently, the spring cannot continue to be used in conditions of potential risk for its integrity, and can therefore be readily identified and replaced.

[0141] This avoids inadvertently prolonging the use of damaged springs and/or in any case close to fracture, avoiding accidents that may derive from this incorrect practice and the potentially harmful consequences.

[0142] FIGS. 14A-14C show a further embodiment of the safety system according to the invention applied to a type of gas springs already present on the market.

[0143] This embodiment provides a structure substantially identical to those already described, but which is used in an inverted configuration.

[0144] For this reason, in order to facilitate the reading, the components of the latter embodiment are identified with the same references used previously, and have substantially the same functions.

[0145] In fact, the slider 1 and the guide 2 are always constrained to slide reciprocally, while the bushing 3 is constrained to the slider 1 in an intermediate position between it and the guide 2.

[0146] The chamber 11 containing the gas is defined by the slider 1, the bushing 3 and the guide 2, which consists solely of a piston equipped with a stem 120 and a head 121.

[0147] In this simplified embodiment, therefore, the guide 2 lacks the outer protection and containment walls present in the other embodiments.

[0148] The hermetic seal of the chamber 11 is ensured by seals (not shown) which can be inserted in the housings 40 and 130.

[0149] In addition, further housings may be provided for means for guiding and/or cleaning the stem 120 which may be necessary.

[0150] The structure and operation of the safety system of the spring according to this variant, in case of exceeding the length of the stroke of the spring in the compression phase, are substantially identical to what has been described up to now.

[0151] As occurs in the embodiments described above in the event of unwanted contacts of external elements with the guide 1 (for example press surfaces or the like), the surface 35 of the bushing 3, projecting with respect to the first opening 10, is pushed towards the inside of the chamber 11.

[0152] The shape of the groove 32 means that the locking element 30, which normally prevents the bushing 3 from disengaging itself from the guide 1, leaves the seat to which it belongs following the movement of the bushing 3 itself, and can no longer keep the two elements 1 and 2 locked.

[0153] Consequently, with the displacement of the bushing 3, the tightness of the chamber 11 is lost, and the total escape of the gas renders the spring useless.

[0154] The invention is described by way of example only, without limiting the scope of application, according to its preferred embodiments, but it shall be understood that the invention may be modified and/or adapted by experts in the field without thereby departing from the scope of the inventive concept.