DEVICE FOR RELEASING A BOLT WITH AN ACTUATOR FEDING A WIRE MADE OF A SHAPE MEMORY ALLOY

DE502022007379D1Active Publication Date: 2026-04-09DEUTSCHES ZENTRUM FÜR LUFT UND RAUMFAHRT E V
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Patent Information

Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-10
Publication Date
2026-04-09

AI Technical Summary

Technical Problem

Existing bolt release mechanisms using shape-memory alloys are not suitable for repeated use, require complex resets, and can release large elastic forces leading to unwanted movements, making them unsuitable for space applications.

Method used

A compact actuator using a wire made of shape-memory alloy with multiple segments arranged symmetrically between end pieces, controlled by electrical voltage, allows for repeated use without complex resets and controlled force release.

Benefits of technology

The actuator provides reliable, repeatable, and controlled bolt release with reduced electrical demand, suitable for space applications, and maintains stability against tilting and torsional moments.

✦ Generated by Eureka AI based on patent content.
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Description

TECHNICAL AREA OF INVENTION

[0001] The invention relates to a device for clamping and releasing a bolt, comprising a clamping sleeve for receiving a section of the bolt, a base body with a receptacle having a free cross-section decreasing in the depth direction for receiving a portion of the clamping sleeve, and an actuator. Such a device can, for example, be provided on a spacecraft to detach a device attached to the spacecraft via the bolt for the purpose of deployment or to release it for the purpose of deployment. In particular, releasing an elastically prestressed component can be used to deploy a solar panel or other large-area structure on the spacecraft. STATE OF THE ART

[0002] From DE 10 2009 041 907 B4, a braking and / or clamping device is known which has a housing encompassing a cylindrical guide rod. The housing encloses four friction brakes, each of which has a friction jaw that can be pressed against the guide rail as part of an elastic clamping sleeve and is actuated via a sliding wedge mechanism. The sliding wedge mechanisms can be driven by an actuator and spring accumulators to load and unload the friction brakes in each loading and unloading direction. A central body, which supports parts of the sliding wedge mechanisms and radially supports the clamping forces of the sliding wedge mechanisms, and which also supports parts of the spring accumulators, is longitudinally displaceable within the housing along with the actuator. In contrast, the clamping sleeve is arranged axially without play within the housing. Heatable or coolable shape memory elements can be used as the actuator. However, a specific embodiment of a shape memory element is not described.All actuators can be used for both loading and unloading directions.

[0003] From US Patent 5,771,742 A, a release mechanism is known with an actuating element made of a shape-memory alloy. When the actuating element is heated above its transition temperature, it exerts a force on a latch supported by a compression spring. The force moves the latch into a release position. In the release position, the latch releases higher energy stored in a drive spring. This energy drives a retaining element to move it out of engagement with a structure to be released. The retaining element is held in its locked position by a pawl, and the pawl is moved from a captured position to a retracted position to release the retaining element when the latch is moved by the actuating element. The shape-memory alloy actuating element is a wire that shortens when the transition temperature is exceeded, thereby moving the latch.To increase the path over which the actuating element moves the bolt, the shape-memory alloy wire is not stretched along the shortest path between the bolt and a housing of the release mechanism. Instead, from its attachment point on the housing, the wire first runs a longer distance through a bore in the housing before extending from the bore to the bolt. This extension of the wire to the bolt is at an angle of approximately 45° to the bolt's direction of movement. The wire then extends perpendicular to the direction of movement through the bolt before traveling in a mirror-symmetrical path through a second bore in the housing to a second attachment point on the housing.Part of the considerable wire length achieved in this way, which results in a large absolute change in length due to a fixed percentage change in the wire's length due to the shape memory alloy, is compensated for by the wire's orientation at an angle of approximately 45° to the direction of movement of the latch between the housing and the latch. This angle reduces the wire's change in length relative to the resulting movement of the latch. After the retaining element has been released once, the known release mechanism requires a complex reset before it can be used again. This may not be necessary in space. However, it is a disadvantage when testing the release mechanism under varying loads. Furthermore, the known release mechanism also retracts the retaining element from its engagement with the structure.The release mechanism is not suitable for directly releasing a bolt, so it can move away from the rest of the release mechanism.

[0004] From US Patent 7,422,403 B1, a release device for the limited release of a device secured by a bolt with a head is known. The shank of the bolt has a region of reduced diameter where it is plastically deformable. The bolt is surrounded by a sleeve made of a shape-memory alloy that expands axially when heated above its transition temperature. This permanently elongates the bolt. The change in length is retained when the shape-memory alloy is cooled below its original length. This known holding device is intended for single use only and does not fully release the bolt when actuated.

[0005] The Frangibolt product from TiNi Aerospace, Inc., USA, is based on a similar principle to that described in US Patent 7,422,403 B1. In the Frangibolt product, as the sleeve made of a shape-memory alloy expands, a bolt, one end of which is screwed into a structure to be released, protrudes through the sleeve, and its head rests against the end of the sleeve facing away from the structure, is broken in a specially prepared area of ​​its shank by heating the sleeve above its transition temperature. The sleeve is made of a shape-memory alloy with a one-way memory effect and must be mechanically reset to its shortened shape before reuse. The titanium alloy bolt is destroyed upon release of the structure; that is, it is intended for single use only.Another disadvantage is that when the bolt breaks, large elastic forces are suddenly released, which can lead to unwanted movements of the released structure.

[0006] Furthermore, it is known to design an actuator in which a wire made of a shape-memory alloy is stretched between two end pieces and can be controlled to change its length. Specifically, the wire can be controlled to shorten thermally by applying an electrical voltage between its ends. The voltage induces a current through the wire, which, due to the wire's electrical resistance, leads to heating of the wire above the transition temperature of its shape-memory alloy. This causes the wire to shorten between its ends, which in turn pulls the two end pieces between which the wire is stretched together.

[0007] From EP 0 841 510 A1, a flow control valve is known that comprises a drum with an axial bore, a base element arranged at one axial end of the drum, a valve body held in the other axial end of the drum which interacts with the base element to define a valve opening between them, a preload spring which pushes the valve body in one direction to vary the valve opening, and a wire made of a shape memory alloy which connects the valve body to the drum. In response to thermal deformation, the shape memory alloy wire exerts a force that moves the valve body against the preload spring to vary the valve opening. The wire is connected to an electrical source to heat the wire in order to induce thermal deformation. The drum has at least one anchoring element for the wire.The valve body features several engagement elements for the wire. In addition to the anchoring element, the drum is equipped with numerous direction-change elements around which the wire extends, such that the wire length is greater than the distances between the anchoring element and the engagement elements. The valve body is guided axially in the axial bore of the drum or on the base element.

[0008] From DE 10 2019 100 694 A1, a shape memory actuator arrangement is known which comprises a wire-shaped shape memory element and two spaced-apart deflection bodies, wherein the shape memory element is wound multiple times around the deflection bodies and forms an actuator arrangement between them. Each deflection body has a wire holder area for retaining the shape memory element, which, together with sections of the shape memory element, is embedded in a potting compound. TASK OF INVENTION

[0009] The invention is based on the objective of demonstrating a powerful compact actuator based on a wire made of a shape memory alloy and a compact and reliable device for clamping and releasing a bolt with this actuator, which is suitable for repeated use without great effort and which releases the bolt without releasing large forces. SOLUTION

[0010] The object of the invention is achieved by a device for clamping and releasing a bolt with the features of independent claim 1. The dependent claims are directed to preferred embodiments of the device according to the invention. DESCRIPTION OF THE INVENTION

[0011] In an actuator with two end pieces elastically supported against each other by a compression spring in the direction of a principal actuator axis, and a wire made of a shape-memory alloy stretched between the end pieces along the principal actuator axis and controllable by a change in length, the wire has at least six connected segments. These segments are arranged side by side along the principal actuator axis between the end pieces, are axially and / or rotationally symmetrical to each other with respect to the principal actuator axis, and run at equal angles to a reference surface to which the principal actuator axis is a surface normal. In other words, the wire runs back and forth between the end pieces. The force exerted by the wire between the end pieces is therefore at least six times greater than if the wire ran with only one segment between the end pieces.At the same time, controlling the wire's length change is no more complex than with a single pass between the end pieces. On the contrary, by repeatedly passing the wire between the end pieces with an even number of segments, both ends of the wire can be located at one of the end pieces and thus be easily accessible for applying an electrical voltage between them. Furthermore, the relative arrangement of the end pieces is stabilized against relative tilting by the at least six wire segments running between them. This is especially true when not just 6, but at least 12, preferably at least 24, and most preferably at least 36 continuous wire segments are stretched along the main axis between the end pieces.

[0012] Changing the length of the wire varies the distance between the end pieces and thus the length of the actuator along its main axis, thereby further tensioning or slightly relaxing the compression spring between the end pieces. This allows the force exerted by the compression spring on external components via the actuator's end pieces to be varied by adjusting the amount of support provided by the wire between the end pieces.

[0013] Compared to a wire stretched only once or twice between the ends, which would need to be thicker to exert the same forces between the ends as the actuator's wire stretched multiple times between the ends, there are also electrical advantages. The current that must flow through the wire for direct resistive heating, in order to raise its temperature above the transition temperature of its shape-memory alloy within a specific time, depends linearly on the wire's cross-sectional area. Therefore, with a thinner wire made of the same shape-memory alloy, this current is lower and can thus be supplied by simpler voltage sources. It follows that these voltage sources must apply a higher voltage to the wire to achieve the same heating power through the thinner, but longer, wire.Nevertheless, advantages remain due to the smaller amount of electricity required, and this is not solely due to lower minimum requirements for the cross-sectional areas of connecting cables.

[0014] It is understood that the wire segments must not be electrically connected to each other by the actuator ends if the wire is to be heated by applying a voltage between its ends. This electrical connection, which would constitute a short circuit between the wire segments, can be prevented by making the ends from an electrically insulating material and / or by coating the ends and / or the wire with an electrically insulating material. If the ends are made of an electrically insulating material, sufficient rigidity must be ensured so that they are not deformed, i.e., not significantly deformed, under the force exerted on them by the compression spring and, in particular, under the force exerted on them by the wire as it changes length.From this perspective, it may be useful to make the end pieces from a ceramic or from a metallic alloy with a ceramic surface coating.

[0015] In this actuator, the end pieces can be supported against each other exclusively by the compression spring and the wire, i.e., guided against each other exclusively by the compression spring and the wire in the direction of the actuator's main axis.

[0016] For the stability of the relative arrangement of the end pieces against tilting, it is advantageous that the wire segments stretched between the end pieces are arranged axially and / or rotationally symmetrically to each other with respect to the actuator's main axis. Preferably, the rotational symmetry is present half as many times, and ideally, the rotational symmetry is present as many times as there are wire segments stretched between the end pieces.

[0017] It also has a positive effect on the stability of the relative arrangement of the end pieces against tilting if the length sections of the wire are stretched between points of the end pieces, each of which is arranged along a circular arc running around the main axis of the actuator.

[0018] Specifically, the wire can be guided between its individual segments over hooks arranged around the circumferences of both end pieces. Alternatively, the wire can be guided through holes in the end pieces, with the wire reversing its direction between adjacent holes. Additionally, the wire can be glued to the end pieces between its individual segments, i.e., where it is guided over the hooks or supported between the holes in the end pieces. This allows the wire to be sufficiently fixed to the end pieces in its longitudinal direction for tensioning the segments between them, so that no special clamping of the wire to the end pieces is necessary, except perhaps at the ends of the wire. Any change in the length of the segments directly affects the distance between the end pieces, corresponding to a stroke of the actuator.

[0019] The wire segments stretched between the end pieces run at equal angles to a reference surface to which the actuator's main axis is a surface normal. Therefore, a uniform change in length of all end pieces, which in turn presupposes equal lengths of all segments, results in a uniform approximation of the two end pieces due to the change in length of the segments. In many cases, the angles of the wire segments to the reference surface will be at least approximately 90°, so that the wire segments run at least substantially parallel to the actuator's main axis, with small deviations from 90° of no more than 10° and, in particular, no more than 5° being negligible. In such cases, the change in length of the wire segments will not generate any, or at least no relevant, torsional moments between the end pieces.However, if such torsional moments are balanced by opposing inclinations of the length sections, a reduction of the length change of the length sections into a smaller change in the distance between the end pieces can be achieved by using equal angles of the length sections to the reference surface of less than 90°, which means a translation, i.e. an increase, of the force exerted between the end pieces by the length change of the wire.

[0020] The stability of the relative arrangement of the end pieces against tilting is further enhanced if the longitudinal segments stretched between the end pieces are arranged at radial distances from the actuator's main axis, ranging from 0.5 times, or preferably one, to three times, or preferably two, the length of the longitudinal segments between the end pieces. The relevant factor here is the length of the longitudinal segments between their supports on the end pieces, i.e., generally the distance between the opposite sides of the end pieces. The actuator then has a large overall diameter compared to its length between the opposite sides of the end pieces. As already mentioned, the shape-memory alloy of the wire can be specifically formulated and trained such that the wire—particularly by applying an electrical voltage between its ends—can be controlled to undergo thermally induced shortening.Shortening the wire brings the ends together against the force of the compression spring. This reduces the length of the actuator between its ends. Shortening the wire can be used, for example, to reduce the force exerted by the compression spring on external components via the actuator's ends, by having it partially or substantially supported by the wire between the ends. Furthermore, shortening the wire allows for the application of a high tensile force between the two ends and any attached components.

[0021] Regarding its transition temperature, the shape memory alloy of the wire must be adapted to the conditions under which the actuator will be used. The transition temperature of the shape memory alloy should only be intentionally exceeded when the wire is controlled to change its length. Conversely, the transition temperature should be as close as possible to the highest temperature to which the shape memory alloy would heat up even without control of the wire, in order to exceed it with minimal effort when the wire is controlled. For example, if the actuator is not exposed to external heating above a certain temperature, a shape memory alloy can be selected whose transition temperature is a few Kelvin, i.e., for example, 3 to 10 Kelvin, above the specified temperature.

[0022] In this actuator, the compression spring can be dimensioned such that it lengthens the wire again as soon as it cools below the transition temperature of its shape-memory alloy. This allows the actuator to return to its original shape and be used in both directions. This is not possible if the wire can be controlled to thermally elongate by applying an electrical voltage between its ends, because this change in length is not reversed by the compression spring acting between the ends after the wire has cooled.In order to dimension the compression spring so that it returns the wire to its original length as soon as it cools down below the transition temperature of its shape memory alloy, it may be useful to coordinate the distance between the support surfaces of the compression spring at the end pieces and the length of the wire sections by profiling the end pieces in a suitable way in the direction of the actuator's main axis.

[0023] The shape memory alloy of the wire can also be a two-way shape memory alloy, so that the wire elongates again even without the influence of the compression spring as soon as it cools below the transition temperature of its shape memory alloy. Alternatively, with a two-way shape memory alloy, heating the wire above the transition temperature can cause it to elongate because, due to the properties of its two-way shape memory alloy, it can then shorten again against the force of the compression spring as soon as it cools below the transition temperature of its shape memory alloy.

[0024] If the wire has several parallel conductors or sub-wires connected in parallel, where these sub-wires may, but need not, be electrically insulated from each other, and preferably are not, the operational reliability of the actuator is increased with regard to breaks in the wire or one of its sub-wires. The thinner sub-wires are subjected to less mechanical stress when changing direction at the ends and therefore break less readily than a single wire of the same overall cross-section. If a break does occur, it is highly likely to occur in only one of the sub-wires and can then be bridged by the other sub-wires.Even if the individual wires are electrically insulated from each other, the current and resulting heating of the remaining wires can also lead to the heating and the desired change in length of a broken wire. The individual wires may or may not be twisted together. The number of wires can be between 2 and 6, or between 3 and 5, i.e., specifically four.

[0025] The actuator's compression spring can include at least one disc spring. Preferably, two disc springs are stacked in opposite directions between the end pieces. Each disc spring can be supported radially to the actuator's main axis at at least one of the end pieces. This support can be provided with or without play, the latter increasing the stiffness of the elastic support between the end pieces in the direction of the actuator's main axis.

[0026] As already mentioned, it can be advantageous to coordinate the spacing of the compression spring's support surfaces at the ends with the length of the wire segments by appropriately profiling the ends along the actuator's main axis. For example, at least one end can have a hat profile whose edge, where the wire is tensioned, is further away from the other end along the actuator's main axis than a central area where the compression spring is supported. This effectively reduces the spacing of the compression spring's support surfaces and / or increases the length of the wire segments, thus increasing their absolute change in length when the wire is energized to its change in length—in other words, the actuator's stroke.

[0027] In a specific embodiment of the actuator, aligned through-openings extend parallel to the actuator's main axis through both end pieces. Preferably, these through-openings, particularly if they are the actuator's only through-openings, extend around the actuator's main axis. Additional aligned through-openings or through-openings extending only through one of the end pieces may be present, for example, for bearing or guide elements.

[0028] The device according to the invention for clamping and releasing a bolt comprises a clamping sleeve for receiving a section of the bolt, a base body having a receptacle with a free cross-section decreasing in the depth direction for receiving a part of the clamping sleeve, and an actuator which has two end pieces elastically supported against each other by a compression spring in the direction of a main actuator axis, and a wire made of a shape memory alloy stretched along the main actuator axis between the end pieces, which can be controlled to change its length, wherein the wire has continuous length sections which are stretched side by side along the main actuator axis between the end pieces, and wherein the length sections stretched between the end pieces are arranged axially and / or rotationally symmetrical to each other with respect to the main actuator axis and run at equal angles to a reference surface.to which the main axis of the actuator is a surface normal, wherein the wire has at least six connected length segments which are stretched side by side along the main axis of the actuator between the end pieces, and wherein the actuator is arranged between the clamping sleeve and an abutment supported on the base body such that the compression spring acts on the clamping sleeve into the receptacle of the base body.

[0029] By controlling the length of the actuator wire, the pressure exerted on the clamping sleeve by the compression spring is varied. Specifically, when the wire is shortened, the pressure exerted on the clamping sleeve by the compression spring is reduced to such an extent that a bolt previously held in the clamping sleeve is released.

[0030] It is understood that in the device according to the invention, as in any other application of the actuator, several actuators can be connected in series and / or parallel in order to achieve the required forces and stroke when controlling the wire to change its length.

[0031] The force exerted on the clamping sleeve by the compression spring when the actuator is engaged can be translated in a generally known manner by the actuator engaging a conical outer surface of the clamping sleeve via a conical inner surface of one of its end pieces. The two conical surfaces preferably have the same full angles.

[0032] The clamping sleeve of the device according to the invention is, in particular, an elastically deformable clamping sleeve, such as a clamping sleeve made of spring steel and provided with longitudinal slots. Furthermore, it is preferred if the recess in the base body is limited by a conical-shell section-shaped inner surface of the base body having a first full angle, and the part of the clamping sleeve received in the recess has a conical-shell section-shaped outer surface having a second full angle, wherein the first and second full angles are equal, so that the clamping sleeve bears against the inner surface of the base body over a large area with its outer surface and is aligned therewith, or is radially compressed when the clamping sleeve is forced into the recess. Specifically, the first and second full angles can be in a range of 10° to 20°.This allows high radial forces to be applied to the bolt being clamped, and also enables a movement of the clamping sleeve out of the receptacle to be initiated by a restoring force of the clamping sleeve, which is necessary to release the bolt.

[0033] It is particularly advantageous if one of the actuator's end pieces is fixed to the abutment in the direction of the actuator's main axis, and the other end piece is fixed to the clamping sleeve in the direction of the actuator's main axis, such that the clamping sleeve is pulled out of its receptacle in the base body a shortening distance when the wire is actuated. This ensures that the bolt is reliably released when the actuator's wire is actuated to shorten. Due to the significant force that can be generated by the wire between the actuator's end pieces, this also applies even with higher static friction between the sliding sleeve and the base body.

[0034] Specifically, the other end piece of the actuator, or an actuator element attached to it, can engage radially inwards towards the actuator's main axis in an annular groove formed on the outer circumference of the clamping sleeve to secure the other end piece of the actuator to the clamping sleeve in the direction of the actuator's main axis. This engagement can have some play, as long as the clamping sleeve is pulled sufficiently far out of its receptacle in the base body when the wire is shortened to release the bolt.

[0035] In a specific embodiment of the device according to the invention, the abutment is a cover fixed to the base body, preferably a cover placed on the base body and bonded to it. The cover has an opening that aligns with through-holes of the actuator running along the actuator's main axis, thus allowing the bolt to pass through the cover and into the clamping sleeve. Alternatively, the bolt can also exit through a through-hole on the side of the base body opposite the cover, provided at the base of the base body's receptacle for the clamping sleeve.

[0036] Advantageous further developments of the invention result from the patent claims, the description and the drawings.

[0037] The advantages of features and combinations of features mentioned in the description are merely exemplary and can have an effect alternatively or cumulatively, without the advantages necessarily having to be achieved by embodiments according to the invention.

[0038] Regarding the disclosure content—not the scope of protection—of the original application documents and the patent, the following applies: Further features can be derived from the drawings—in particular, the geometries depicted and the relative dimensions of several components to one another, as well as their relative arrangement and functional connection. The combination of features from different embodiments of the invention or from features of different claims is also possible, deviating from the chosen cross-references of the claims, and is hereby encouraged. This also applies to features that are illustrated in separate drawings or mentioned in their description. These features can also be combined with features from different claims.Likewise, features listed in the patent claims may be omitted for further embodiments of the invention, but this does not apply to the independent patent claims of the granted patent.

[0039] The features mentioned in the claims and the description are to be understood, with regard to their number, as meaning that exactly that number or a greater number than the stated number is present, without the need for the explicit use of the adverb "at least". Thus, for example, if a clamping sleeve is mentioned, this is to be understood as meaning that exactly one clamping sleeve, two clamping sleeves, or more clamping sleeves are present. The features listed in the claims may be supplemented by further features or may be the only features that the respective product possesses.

[0040] The reference numerals contained in the patent claims do not constitute a limitation of the scope of the subject matter protected by the patent claims. They merely serve the purpose of making the patent claims easier to understand. BRIEF DESCRIPTION OF THE FIGURES

[0041] The invention will now be further explained and described with reference to preferred embodiments shown in the figures. Fig. 1 is a perspective view of an actor. Fig. 2 is an exploded view of the actuator according to Fig. 1 from the same perspective as in Fig. 1 . Fig. 3 is a longitudinal section through a device according to the invention with the actuator according to the Fig. 1 and 2 . Fig. 4 is an exploded view of the device according to Fig. 3 . Fig. 5 is an external view of the device according to Fig. 3 and 4 from the same perspective as the exploded view according to Fig. 4 . Fig. 6 is an exploded view of essential parts of a further embodiment of the device according to the invention with a further embodiment of the actuator; and Fig. 7 is a longitudinal section through the device according to the invention Fig. 6 . FIGURE DESCRIPTION

[0042] The one in the Fig. 1 and 2 The actuator 1 shown has two end pieces 2 and 3, which are elastically supported against each other by a compression spring 4 in the direction of a main actuator axis 5. The compression spring 4 is composed of two disc springs 6 and 7 stacked in opposite directions along the main actuator axis 5. The disc springs 6 and 7 have internal support surfaces 8 and 9, which support them radially to the main actuator axis 5 against counter surfaces 10 on the end pieces 2 and 3. Of the counter surfaces 10, only that of the end piece 2 is shown. Fig. 2as can be seen. Furthermore, a wire 11 made of a shape-memory alloy is stretched between the end pieces 2 and 3. Specifically, hooks 14 and 15 are formed on the outer circumferences 12 and 13 of the end pieces 2 and 3, around which the wire 11 is alternately guided. Longitudinal sections 16 of the wire 11 run between the hooks 14 and 15. In the present embodiment of the actuator 1, the longitudinal sections 16 run parallel to the actuator's main axis 5. In the specific embodiment according to the Fig. 1 and 2The number of length segments 16 ≥ 50. At least 4, preferably at least 6, more preferably at least 12, even more preferably at least 24, and most preferably at least 36. The length segments 16 are parts of the continuous wire 11 and are therefore connected. When an electrical voltage is applied between the ends 17 and 18 of the wire 11, a current flows through the wire 11, which heats the wire 11 due to its electrical resistance. If, during this heating, the transition temperature of the shape-memory alloy of the wire 11 is exceeded, the wire 11 contracts. This causes the end pieces 2 and 3 to move towards each other, contrary to their elastic support by the compression spring 4. In other words, the length of the actuator 1 shortens along the actuator's main axis 5.Even without the thermally induced shortening of the wire 11, the length sections 16 of the wire 11 between the end pieces 2 and 3 can be under a preload applied by the compression spring 4. As can be seen in particular from . Fig. 1As can be seen, the diameter of the circumferences 12 and 13 of the end pieces 2 and 3 is approximately three times the height of the actuator 1 along the actuator's main axis 5. Accordingly, the distances of the length segments 16 from the actuator's main axis 5 are approximately one and a half times the lengths of the length segments 16. This, along with the large number of length segments 16 arranged in a 50-fold rotationally symmetric arrangement around the actuator's main axis 5, results in a high degree of stabilization of the end pieces 2 and 3 against mutual tilting relative to the actuator's main axis 5. The large number of length segments 16 also provides a high force with which the end pieces 2 and 3 are moved towards each other when the wire 11 is heated above the transition temperature of its shape-memory alloy. A comparatively small current through the wire 11, which has a small cross-section, is sufficient for this heating.For the mechanical connection of the actuator 1, through-openings 19 and 20 and 21 and 22, respectively, are provided in the end pieces 2 and 3, respectively. The central through-opening 19 in end piece 2 aligns with the central through-opening 21 in end piece 3, and the other through-openings 20 in end piece 2 each align with one of the other through-openings 22 in end piece 3. The disc springs 6 and 7 are shaped such that they do not obstruct the alignment between the through-openings 19 and 20 on the one hand and 21 and 22 on the other. Mounting holes 23 are also provided in end piece 3.

[0043] The Fig. 3 and 4Figure 1 shows the actuator 1 as part of a device 24 for the controlled clamping and release of a bolt (not shown here) that can be inserted along a device main axis 25, which coincides with the actuator main axis 5. A clamping sleeve 26 is provided for clamping a section of the bolt. It has a cylindrical inner surface 27 for bearing against a cylindrical outer surface of the bolt section. The clamping sleeve 26 is made of spring steel and is provided with slots 28 and 29, so that it can be elastically compressed by reducing the diameter of its inner surface 27 and elastically expanded again by increasing the diameter of its inner surface 27. An outer surface 30 of the clamping sleeve is conical and bears against a similarly conical inner surface 31 of a base body 32 of the device 24.As the clamping sleeve is pressed further into a recess 33 in the base body 32, which is bounded by the inner surface 31, it is compressed radially towards the main axis 25 of the device, and the inner diameter of its inner surface 27 decreases, or the inner surface 27 presses against the outer surface of the bolt to be clamped with a radial clamping force. The clamping sleeve 26 is pressed in by the actuator 1, specifically by one of its end pieces 3, which bears against a conical outer surface 35 of the clamping sleeve 26 via a conical inner surface 34. A force transmission is achieved via these conical surfaces 34 and 35, with which the end piece 3 is elastically supported against the other end piece 2 by the compression spring 4 consisting of the disc springs 6 and 7.The other end piece 2 is supported by a support 36 in the form of a cover 37 placed on and bonded to the base body 32, through which the ends 17 and 18 of the wire 11 pass. Screws 39 are screwed into threaded bores 40 in the base body 32 through the through holes 20 and 22 in the end pieces 2 and 3. The screw heads 38 of the screws 39, which abut the end piece 2, serve as further supports 36. Furthermore, the actuator 1 can be precisely aligned with its main actuator axis 5 relative to the base body 32 and the clamping sleeve 26 by rotating the screws 39 to screw them into the threaded bores 40 to varying depths. This alignment allows the actuator 1 to be precisely aligned with the main axis 25 of the device and in the direction of the main axis 25 of the device.When the end piece 3 is bonded to the screw heads 38 with adhesive 46, not only is the set orientation of the actuator 1 fixed, but the screw heads 38 of the screws 39 can also serve as abutments 36 for the end piece 2 when the actuator 1 contracts to shorten the length segments 16 along the actuator's main axis when the wire 11 is actuated. The end piece 2 can also be bonded to the cover 37, so that the end piece 2 can also be supported against the cover 37 in the direction of tension. This support in the direction of tension is necessary to slightly pull the clamping sleeve 24 out of the receptacle 33 when the wire 11 is actuated to shorten the length segments 16 with an actuator element 41, in order to definitively release the bolt clamped in the clamping sleeve 26. The actuator element 41 engages in an annular groove 42, which is formed outside the receptacle 33 on the outer circumference of the clamping sleeve 26.The actuator element 41 is attached to the end piece 3, for example, with fastening screws that engage in the fastening holes 23, and / or screwed in place with adhesive (not shown separately). The bolt to be clamped and released in a defined manner can be inserted into the clamping sleeve 26 through a central cover opening 43 in the cover 37, which is aligned with the through-holes 19 and 21 in the end pieces 2 and 3, or through a through-hole 44 at the base of the receptacle 33 from the opposite side of the base body 32. The bolt can then be easily inserted into the clamping sleeve 26 once the wire 11 has been heated above the transition temperature of its shape memory alloy. After the wire 11 cools below the transition temperature of its shape memory alloy, the compression spring 4 elongates the length sections 16 of the wire 11. Then the compression spring 4 acts again on the clamping sleeve 26 and presses it into the receptacle 33.This compresses the clamping sleeve 26 radially and clamps the bolt in the clamping sleeve 26. When the wire 11 is reheated above the transition temperature of its shape-memory alloy, the bolt is released again. This process can be repeated any number of times.

[0044] Fig. 5 Figure 1 shows the compact dimensions of the device 1 in its assembled state. In addition to the step 45 provided here, further support or fastening contours can easily be formed on the base body 32 of the device 1 in order to fix the base body to a higher-level structure.

[0045] The in Fig. 6 and 7 The illustrated embodiment of the device 24 according to the invention serves for the controlled clamping and release of a bolt 48, shown here, which can be inserted along the main axis 25 of the device, which also coincides with the main axis 5 of the actuator. The device 24 according to Fig. 6 and7 This comprises an embodiment of the actuator 1 with the following features. The wire 11, made of a shape-memory alloy, runs through holes 49 and 50 in the end pieces 2 and 3, which are connected to each other in pairs by short circumferential grooves 51 and 52 in the opposing end faces of the end pieces 2 and 3. Additional holes 60 in the end piece 2 serve to secure the wire 11 to the end piece 2. Not directly from the Fig. 6 and 7It can be seen that the wire 11 consists of several parallel partial wires, which are also electrically connected in parallel. The end piece 3 has a hat profile 53, the edge 54 of which, to which the wire 11 is fixed, is further away from the other end piece 2 in the direction of the actuator's main axis 5 than its central region 54, against which the compression spring 4 is supported. In this way, the length sections 16 of the wire 11 between the end pieces 2 and 3 are comparatively long compared to the axial extension of the compression spring 4, in order to achieve a sufficient stroke of the actuator 1 with a limited percentage change in length of the wire 11 made of the shape memory alloy. The edge 54 of the hat profile 53 of the end piece 3 dips into an annular groove 56 running around the main axis 25 of the device in the base body 32, resulting in a particularly compact structure of the device 24 in the axial direction.The effective length of the longitudinal sections 16 between the end pieces 2 and 3 is slightly greater than the radial distance of the longitudinal sections 16 to the actuator's main axis 5, but significantly smaller than the diameter of circular arcs around the actuator's main axis 5 on which the holes 49 and 50 in the end pieces 2 and 3 are arranged. In conjunction with the plurality of longitudinal sections 16 (24 in this case), this results in an inherent guidance of the end pieces 2 and 3 against each other, without the need for additional linear guidance in the direction of the actuator's main axis 5. The short axial overlap 57 between the end pieces 2 and 3 is insufficient for linear guidance in the direction of the actuator's main axis 5. The bolt 48 is inserted into the clamping sleeve 26, which sits in the conical receptacle 33 of the main body 32, from the end of the base body 32 furthest from the end piece 2, by means of a cylindrical shaft 58.At its free end, the bolt 48 has a fastening arrangement 59, for example an internal thread, for fastening an object to be released by releasing the bolt 48. Fastening screws 47 screwed into the threaded bores 40 are in the . Fig. 6 and 7 Not shown, but fundamentally present. The shape memory alloy of the wire 11 can be a two-way shape memory alloy, so that the wire 11 elongates again when the transition temperature of the shape memory alloy is undershot, even without the action of the compression spring 4. This allows for greater freedom in adjusting the spring constant of the compression spring 4. In addition, the actuator 1 has higher functionality, which can be used in other applications of the actuator 1 than in the device 24 shown here. REFERENCE MARK LIST

[0046] 1 Actuator 2 End piece 3 End piece 4 Compression spring 5 Actuator main shaft 6 Disc spring 7 Disc spring 8 Support surface 9 Support surface 10 Counter surface 11 Wire 12 Circumference 13 Circumference 14 Hook 15 Hook 16 Longitudinal section 17 End 18 End 19 Through opening 20 Through opening 21 Through opening 22 Through opening 23 Mounting hole 24 Device 25 Device main shaft 26 Tension sleeve 27 Inner surface 28 Slot 29 Slot 30 Outer surface 31 Inner surface 32 Base body 33 Mounting 34 Inner surface 35 Outer surface 36 Abutment 37 Cover 38 Screw head 39 Screw 40 Threaded hole 41 Actuator element 42 Ring groove 43 Cover opening 44 Through opening 45 Step 46 Adhesive 47 Fastening screw 48 Bolt 49 Hole 50 Hole 51 Groove 52 Groove 53 Hat profile 54 Edge 55 Center area 56 Ring groove 57 Overlap 58 Shank 59 Fastening arrangement 60 Hole

Claims

1. Apparatus (24) for clamping and releasing a bolt, comprising - a clamping sleeve (26) for receiving a part of the bolt, - a main body (32) having a receptacle (33) with a free cross sectional area decreasing in depth direction for receiving a part of the clamping sleeve (26), and an actuator (1), characterized in that the actuator (1) comprises - two endpieces (2, 3) elastically supported against one another in the direction of an actuator main axis (5) by means of a compression spring (4), and - a wire (11) made of a shape-memory alloy which is tensioned between the endpieces (2, 3) along the actuator main axis (5) and which can be controlled to implement a change in length, - wherein the wire (11) comprises contiguous length portions (16) which are side by side tensioned between the endpieces (2, 3) each along the actuator main axis (5), and - wherein the length portions (16) tensioned between the endpieces (2, 3) are arranged axially symmetrically and / or rotationally symmetrically to one another and at equally sized angles to a reference plane to which the actuator main axis (5) is a surface normal, wherein the wire (11) comprises at least six contiguous length portions (16) which are side by side tensioned between the endpieces (2, 3) each along the actuator main axis (5), and wherein the actuator (1) is arranged between the clamping sleeve (26) and a counter-bearing supported against the main body (32) in such a way that the compression spring (4) presses the clamping sleeve (26) into the receptacle (33) of the main body (32).

2. Apparatus (24) of claim 1, characterized in that the receptacle (33) is delimited by an inner surface (31) of the main body (32) shaped like a section of an envelope of a cone and having a first full cone angle, and that the part of the clamping sleeve (26) which is received in the receptacle (33) has an outer surface (30) shaped like a section of an envelope of a cone and having a second full cone angle, wherein the first full cone angle and the second full cone angle are equal, wherein, preferably, the first full cone angle and the second full cone angle are in a range from 10° to 20°.

3. Apparatus (24) of claim 1 or 2, characterized in that the one of the endpieces (2) of the actuator (1) is fixed to the counter-bearing (36) in the direction of the actuator main axis (5) to such an extent and that the other of the endpieces (3) of the actuator (1) is fixed to the clamping sleeve (26) in the direction of the actuator main axis (5) to such an extent that the clamping sleeve (26), upon controlling the wire (11) to implement a shortening of its length, is pulled out of the receptacle (33) in the main body (32) over some distance, wherein, optionally, the other of the endpieces (3) of the actuator (1) or an actuator member (41) fixed thereto engages with a ring notch (42) formed in the outer circumference of the clamping sleeve (26) in a direction radially inwards with respect to the actuator main axis (5).

4. Apparatus (24) of any of the claims 1 to 3, characterized in that the counter-bearing (36) comprises a lid (37) fixed to the main body (32), preferably a lid (37) placed upon the main body (32) and glued to the main body, wherein, preferably, the lid (37) has a lid opening (43) which is aligned with the through openings (19, 21) of the actuator (1) running on the actuator main axis (5) so that they allow for a passage of the bolt through the lid (37) into the clamping sleeve (26).

5. Apparatus (24) of any of the preceding claims, characterized in that the wire (11) comprises at least 12, preferably at least 24 and even more preferably at least 36 contiguous length portions (16) which are tensioned between the endpieces (2, 3) each along the actuator main axis (5).

6. Apparatus (24) of any of the preceding claims, characterized in that the endpieces (2, 3) are supported against one another exclusively by the compression spring and the wire (11).

7. Apparatus (24) of any of the preceding claims, characterized in that the equally sized angles to a reference plane are 80° to 90°, preferably to 85° to 90°, and more preferably 90°.

8. Apparatus (24) of any of the preceding claims, characterized in that the length portions (16) tensioned between the endpieces (2, 3) are arranged at distances to the actuator main axis (5) which are in a range from 0.5 times or one times to two times or three times a length of the length portions (16) between the endpieces (2, 3).

9. Apparatus (24) of any of the preceding claims, characterized in that, in case of a rotational symmetry of the length portions (16) with respect to the actuator main axis (5), the arrangement of the length portions (16) tensioned between the endpieces (2, 3) is half as many times rotationally symmetric and preferably as many times rotationally symmetric with respect to the actuator main axis (5) as length portions (16) are tensioned between the endpieces (2, 3).

10. Apparatus (24) of any of the preceding claims, characterized in that the compression spring (4) comprises at least one cup spring (6, 7), preferably two cup springs (6, 7) stacked with opposite orientations, wherein, preferably, each cup spring (6, 7) is supported against at least one of the endpieces (2, 3) in a radial direction with respect to the actuator main axis (5), wherein, optionally, at least one of the endpieces (3) has a cap profile (53) whose rim (54) at which the wire (11) is tensioned has a larger distance to the other endpiece (2) in the direction of the actuator main axis (5) than a central area (55) against which the compression spring (4) is supported.

11. Apparatus (24) of any of the preceding claims, characterized in that the length portions (16) are tensioned between points of the endpieces (2 ,3) which are each arranged along a circular arc around the actuator main axis (5).

12. Apparatus (24) of claim 11, characterized in - that the wire (11), between its length portions (16), is guided around hooks (14, 15) which are arranged at the circumferences (12, 13) of both endpieces (2, 3), or - that the wire (11) is passed through holes in the endpieces (2, 3), wherein the wire (11) reverses its direction between neighboring holes in the endpieces (2, 3).

13. Apparatus (24) of claim of any of the preceding claims, characterized in that the wire (11) can be controlled to implement a thermally caused shortening in length by applying a voltage between its ends (17, 18), wherein, optionally, the compression spring (4) is dimensioned such that it increases the length of the wire (11) again as soon as the wire (11) cools down below the transition temperature of its shape-memory alloy again, and / or that the shape-memory alloy is a two-way shape-memory alloy.

14. Apparatus (24) of any of the preceding claims, characterized in that the wire (11) has a plurality of conductors which run in parallel to one another and which are electrically connected in parallel.

15. Apparatus (24) of any of the preceding claims, characterized in that aligned through openings (19 to 22) extend through both endpieces in a direction parallel to the actuator main axis (5), wherein, preferably, the through openings (19, 21) each extend around the actuator main axis (5).