The invention relates to a mechanical displacement element that is suitable to effect a change of the spatial arrangement and/or configuration of an object by interaction with further mechanical elements.
From the state of the art, a multitude of mechanical actuators is known that generate a mechanical movement under energy conversion, and that essentially comprise a energy conversion element that interacts with a displacement element. However, the known actuators can be provided only limited and with high development and production costs as a miniature as well, wherein particularly a miniaturized design of their displacement element and its arrangement can be provided only at significant production and assembly effort.
It is therefore desirable to provide a mechanical displacement element that is usable for many and diverse applications, which is extensively universally usable also when being provided as a miniature by far reaching minimization of design, production, and assembly efforts, and which is suitable of being fabricated in series production as well.
The problem is solved by the characteristics of the claims. Advantageous embodiments are mentioned in the sub claims and/or the subsequent description.
For this, it is shown in
a, b and c a schematic representation of a first embodiment of a displacement element according to the invention in a first, second, and third spatial arrangement;
a and b a schematic representation of a second embodiment of a displacement element according to the invention in a first and second spatial arrangement;
a, b and c a schematic representation of a embodiment of a displacement element of a third embodiment according to the present invention in a first, second, and third spatial arrangement;
a a schematic representation of a displacement element according to a fourth embodiment of the present invention in a first spatial arrangement and
a a schematic representation of a top view of a fifth embodiment of a displacement element according to the invention in a first spatial arrangement; and
a a schematic representation of a sixth embodiment of a displacement element according to the present invention in a first arrangement from above;
a, b, and c a schematic representation of a displacement element according to the invention that is arranged at an object in a first, second, and third spatial arrangement; and
a and b a schematic representation of a displacement element according to a seventh embodiment of the present invention in a first and second spatial arrangement;
a and b a schematic representation of a displacement element according to an eighth embodiment of the present invention in a first and second spatial arrangement; and
a, b, and c a schematic representation of a displacement element according to a ninth embodiment of the present invention in a first, second, and third spatial arrangement;
a, b, and c a schematic representation of a displacement element according to a tenth embodiment of the present invention in a first, second, and third spatial arrangement;
a andb respectively a schematic representation of the displacement element of
a and b respectively a schematic representation of the displacement element of
a and b respectively a schematic representation of the displacement element of
The operating principle of a displacement element according to the invention can be described as follows:
An essentially hollow body has a first predetermined shape in the unloaded state. The body is elastically deformable (stretchable) in one or two spatial directions, while it is manufactured to be elastically, but not stretchable into the remaining spatial direction(s).
The hollow body's interior is pressurized in order to transform the body from the first predetermined shape of the unloaded state into a second shape (b) of the loaded state. The transport medium for the (working-) pressure can be provided by liquid as well as gas, or by a mixture of both. The source of the pressure can be a conventional or a miniaturized pump, thermal expansion, expansion due to explosion or chemical reactions, etc. Crucial is a change of pressure relative to the pressure during the first predetermined state of shape. Therefore, generation of a lower than the first pressure (under pressure, vacuum) is basically possible as power source for the change of shape of said body. Adequately, the change of the external pressure while keeping the internal pressure unchanged can be used as well.
Due to the change (here: increase) of the internal pressure (or the relation between internal and external pressure, respectively), the body tends to extend itself along all spatial directions into which it can elastically stretchy deform itself. Together with the extension goes the respective, desired change of shape. Within certain limits, the latter follows the value of the present internal pressure, so that arbitrary intermediate states can be realized between the predetermined end configurations. The end configuration can be defined either by means of constructive limitation of the working pressure (valves, maximal pumping pressure), or by constructive configuration change characteristics (end stops; slack, but non-stretchable strings, that become tensioned just upon reaching the end position).
A displacement element 1 according to the invention particularly comprises a displacement foil 1 with a hollow space 10 which is configured such that by means of the supply and/or the removal of a liquid and/or gaseous medium into and/or from the hollow space 10, a spatial arrangement and/or configuration of the displacement foil 1 occurs, wherein the displacement foil 1 is disposed on an object 2, and/or is at least partially integrated in the object 2, such that a predetermined change of the spatial configuration of the object 2 occurs upon a change of the spatial arrangement and/or configuration of the displacement foil 1.
The displacement element 1 preferably is configured and/or provided in a malleable, but not elastic, foil like material such that a predetermined change of the spatial arrangement and/or configuration the object 2 by means of filling and/or emptying of the hollow space 10 is reversible, and wherein the wall thickness of the displacement foil 1 remains mostly constant.
According to a preferred embodiment of the present invention, the displacement 1 and/or the object 2 can be configured to be single-pieced.
According to another preferred embodiment, the displacement element 1 can be arranged at and/or close to the surface of the object 2, and/or partially be integrated into the object 2.
An advantageous embodiment of a displacement element 1 according to the invention can comprise a multitude of first hollow spaces 10 that are connected to each other, such that a first hollow space row is provided, wherein the hollow spaces 10 of the first hollow space row can advantageously be arranged subsequent to each other, approximately linear in a first direction X.
Suitably, the hollow spaces 10 that are filled with the medium can approximately be sphere-shaped and arranged such that a contraction of the displacement foil 1 in the first direction X occurs and an extension of the displacement foil 1 occurs in a second direction Y upon a filling of the hollow spaces 10; and such that an extension of the displacement foil 1 in the first direction X occurs and a contraction of the displacement foil 1 occurs in a second direction Y upon emptying of the hollow spaces 10, wherein the first direction X and the second direction Y advantageously are arranged approximately perpendicular to each other.
A displacement element according to the invention can further advantageously comprise a multitude of hollow space rows that are adjacently arranged and that are connected to each other and form a first layer, and a multitude of such layers can be arranged adjacently in tiers. The multitude of hollow space rows can suitably comprise differently configured displacement foils and/or functional intermediate layers, wherein particularly advantageous, a joint structure can be provided.
a shows in a first spatial arrangement a schematic representation of a first embodiment of the present invention with a displacement element 1 which is provided by means of a displacement foil 1 made from a suitable material (e.g. plastic) in a first spatial arrangement. The displacement foil 1 comprises a hollow space 10 and is configured such that by means of the supply and/or the removal of a liquid and/or gaseous medium into and/or from the hollow space 10, a change of the spatial arrangement and/or configuration of the displacement foil 1 occurs. The displacement foil 1 of
The displacement foil 1 is further configured and chosen from a suitable material such that the displacement foil 1 takes an approximately two dimensional shape upon complete emptying of the medium from the hollow space 10. A displacement foil 1 according to the invention can further be configured and/or chosen from a suitable material such that an extension or contraction of the displacement foil 1 in a first spatial direction occurs and further a contraction or extension of the displacement foil 1 in a second spatial direction occurs upon filling and/or emptying of the hollow space 10, wherein the first spatial direction and the second spatial direction suitably are vertically arranged.
Further, a displacement foil element 1 is provided by means of an above described displacement foil 1 by which a multitude of further embodiments of the invention can be built in similar and/or different configurations, being subsequently described.
The
According to the invention, the contraction- or extension effect upon emptying or filling of the hollow spaces 10 is increased relative to the first embodiment by the advantageously adjacent arrangement of at least two displacement foil elements 1 according to
The above described effect according to the invention is further made use of by the third embodiment as schematically shown in
a shows a fourth embodiment of the present invention in a first arrangement with entirely filled hollow spaces 10, wherein a multitude of displacement foil elements 1 are adjacently arranged in a plane that is defined by the directions X and Y such that the hollow spaces 10 are suitably connected to each other. As an example, the schematic representation of the fourth embodiment of
b shows a cut view through the fourth embodiment of the invention of
c shows a top view on the fourth embodiment of the invention of
With the adjacent arrangement of display foil elements according to the invention according to the fourth embodiment of a displacement foil 1 it is advantageously achieved that upon filling and emptying of the hollow spaces 10, the extension of the displacement foil 1 remains almost constant in a first and second direction X and Y, whereas a contraction or extension, respectively, only occurs in a third direction Z.
a shows a fifth embodiment of the invention in a first arrangement, wherein a multitude of displacement foil elements is adjacently arranged according to the first embodiment of the invention in a plane defined by the directions X and Yin a first displacement foil layer 11 according to the invention, and wherein at least two such displacement foil layers 11 are adjacently arranged in tiers.
a shows a schematic representation of a displacement foil 1 of a sixth embodiment of the invention in a first arrangement from above, and
Further, the hollow spaces 10 of adjacent first and second rows 11′ and 11″ are respectively isolated from each other. By means of the previously described advantageous arrangement of the upper and lower layer and their formation in first 11′ and second 11″ connected rows of hollow spaces 10, a particularly simple and efficient change of the spatial arrangement of the displacement foil 1 which occurs similar to the third embodiment of the invention as described above is achieved in particular with regard to the plane that is defined by X and Y by the mutual emptying or filling of the hollow spaces 10 of the upper and/or lower layer.
It is clear that more than two displacement foil layers 11 can be arranged above each other as well. E.g., at least a first layer 11 of the sixth embodiment can be combined with at least one layer of the fifth embodiment of the invention, and that e.g. the first direction X of the sixth embodiment and the second direction Y of the sixth embodiment can be arranged in another angle with respect to each other, such as e.g. 60 or 45 degrees.
a, b and c show an advantageous arrangement of a displacement foil 1 according to the invention at an object 2 using the example of a toy, wherein particularly advantageous, e.g. a mimic of a toy doll can be controlled by means of arrangement of the displacement foil 1 close to and/or at the surface of the object 2.
A displacement element 1 according to the invention with a displacement foil 1 according to the invention has been described above exemplarily with the help of approximately sphere shape designed hollow spaces.
a and b show a schematic representation of a displacement element 1 according to an eighth embodiment of the present invention in a first and second spatial arrangement, wherein the displacement element 1 according to the invention comprises a multitude of cylinder elements that are arranged in a plane and that can have cylindrical hollow spaces which can be connected with each other.
It is clear that also a multitude of displacement elements 1 according to the eighth embodiment of the present invention can be spatially arranged above each other, so that the change in Y direction is increased.
a, b, and c show a schematic representation of a displacement element according to a ninth embodiment of the present invention in a first, second, and third spatial arrangement. The displacement element of
b shows the displacement element 100 of
It is clear that a similarly functional displacement element 100 can also be provided with a second layer II having at least one joint and at least two displacement elements that are moveably attached to the joint, wherein the layer II can be arranged sandwich like between two layers I very similar to each other, as depicted in
a, b, and c show a schematic representation of a displacement element according to a tenth embodiment of the present invention in a first, second, and third spatial arrangement according to the previously described ninth embodiment of
In the following, a method according to the invention for the production of a displacement element 1 according to an embodiment of the present invention is described under exemplary reference to the embodiment of
A further method for fabrication according to the invention comprises joining of two foils along parallel panels between which accordingly unjoined areas remain. In this way, oblong hollow spaced develop that transform into a cylindrical shape upon pressurizing (
a and b respectively show a schematic representation of the displacement element of
a and b respectively show a schematic representation of the displacement element of
a and b respectively show a schematic representation of the displacement element of
According to the invention and to
A longitudinal axis 101, preferably a bimorphic displacement element 1 which is capable of bending around the Z-axis in positive (right) and negative (left) direction. A multitude of at least three monomorphic leg joints 102; monomorphic displacement elements which can bend around the Y-axis in one direction, and at whose ends stabilizing feet 103 (I, II, III, and IV) are respectively arranged.
A complete motion sequence can be provided in a subsequent survey of
Firstly, two diagonally opposite feet 103 (e.g. II and IV) lift off from the ground according to
In the
Naturally, a reverse motion can be effected as well by reversion of the previously described motion pattern. Furthermore, different curve radii are possible by different developments of the right- or left bend of the main joint 101. If e.g. the right bend is significantly stronger developed than the left bend, the object 2, 100 gradually describes a right curve, and vice-versa.
It should further be mentioned that the time in which one respective pair of feet 103 is in the air must be measured such that during the bending of the main axis 101 that follows the lifting, the object 2, 100 remains substantially parallel to the ground and does not fall over to the one or the other side.
It should further be mentioned that according to
In particular, a previously described displacement foil or a displacement element 1, respectively, according to one of the first to the twelfth embodiment of the present invention can be manufactured also in miniature by usage of common micro techniques, so that it is therefore suitable for being used at very small objects 2 as well.
It is clear that the displacement elements according to the invention according to the fist to the twelfth embodiment of the present invention can suitably be altered, wherein comb like structures can be built up according to the seventh and/or eighth embodiment of the invention e.g. from a multitude of cylindrical and arranged apart from each other displacement elements.
It is also clear that the displacement elements according to the invention can also suitably be combined with each other according to the first to the tenth embodiment of the present invention.
In order to stay with the aforementioned example of a toy, an accordingly miniaturized developed displacement foil 1 can e.g. control the mimic and/or motion of an also very small toy figure.
It is clear that a displacement element 1 according to the invention is not restricted to the aforementioned example of a toy, but that it can be used in a wide variety of applications, such as e.g. in industrial robotics, or e.g. at a control and/or output device element of e.g. an electronic computer, e.g. a computer mouse, according to which the displacement foil 1 can also be controlled such that an arrangement and/or spatial formation of a computer mouse occurs depending on signals received from the computer and/or from the mouse.
According to the first to twelfth embodiment of the present invention and in particular, the ninth and tenth embodiment, a displacement element 1 according to the invention can be integrated into a mechanically operatable instrument and/or coupled with the instrument, so that it cooperates with an intended mechanical effect of the instrument in a synchronous or asynchronous manner, wherein in particular the mechanical effect of the instrument can be amplified and/or altered and/or complemented.
Such a mechanical instrument can further be e.g. a tool or a household appliance.
Such a mechanical instrument can e.g. be a keyboard of a computer or a telephone, wherein in particular, an operation of predetermined keys or key combinations can provide a spatial change of also predetermined keys or key combinations be means of a displacement element according to the invention.
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP07/00169 | 1/10/2007 | WO | 00 | 12/2/2009 |