The present invention concerns an adjustable arm rest and a locking mechanism.
The arm rest can be adjusted freely about three axes, in addition to being shifted lengthwise by operation of one single lever or handle. The arm rest is particularly adapted for surgeons and other professions that need support, particularly during precision surgery that extends over longer periods, and that normally imposes considerable strain on the surgeon. Furthermore a joint mechanism allowing movement about three axes, in addition to a translatory motion is described.
A chair with an adjustable arm rest, in particular for surgeons, is shown in U.S. Pat. No. 5,029,941, describing arm rests that can be pivoted about two axes by tightening of a lever that additionally is secured to a chair by various joints.
During manual labour with high intensity, and that requires high precision, it can be desirable to have arm support that is easily adjustable. In connection with surgery, it is also necessary that a surgeon remains completely sterile. To achieve this, it is common to rap up elements that not can be sterilized, for instance the operation chair. Accordingly it is a goal with the present invention to be able to provide adjustable arm rests that easily can be adjusted in all angles by for instance a surgeon, and that at the same time the arm rest easily can be wrapped up in sterile material without this restricting operating handles in that the operating handle can be actuated through a sterile wrapping.
This and other aspects are solved with an adjustable arm rest and a locking mechanism according to the present invention.
Accordingly the present invention describes an adjustable arm rest with at least one lever, a joint apparatus adapted to be secured in an arm rest carrier and in the arm rest, and a locking device. The joint apparatus allows pivoting of the arm rest about three axis, and the at least one lever selectively locks or releases the joint apparatus and thereby the positioning of the arm rest in relation to the arm rest carrier in the three axis. At least one lever can be placed in front on the arm rest such that it easily can be reached by someone sitting on a chair where the arm rest is placed. When the lever is pulled in a direction for instance away from the arm rest, the joint apparatus is released, and the arm rest can be adjusted as needed for by user. The three axis the arm rest can be pivot corresponds to pivoting that can be performed by a ball joint or a gimbal joint where a shaft also can be pivoted or rotated, and accordingly allows angular displacement of the arm rest forwards, backwards, sideways and in rotation.
The joint apparatus can also allow translatoric movement between the arm rest and the arm rest carrier. In other words, the arm rest can in one embodiment be shifted back and forth on an arm rest carrier, and accordingly in relation to for instance a chair where the arm rest carrier is placed.
In one embodiment it may be only one lever and this lever locks or releases the arm rest in relation to the arm rest carrier in the motion about the three axes and in translatoric motion. However, the invention may also include other embodiments where for instance one lever can be provided for translatoric motion, and one for pivoting about the three axes. In yet another embodiment it can be one lever for each axis.
Furthermore, the invention concerns a lockable joint apparatus including a housing for securing the joint apparatus. Two guide rails or tracks are connected to the housing. At least one lever can adjust a clamping force applied to a compressible ball joint carrier. The ball joint carrier is adapted for slidable contact with the two tracks or guide rails connected to the housing. At least two clamping faces on the ball joint carrier for contact with a joint ball is placed in the ball joint carrier such that the clamping of the ball joint carrier towards the joint ball by the lever mutually locks the elements of the joint.
The housing can provide a base for securing or placing the components of the joint apparatus. Two parallel locking rails with variable distance therein between, and longitudinal holding parts can be placed in the housing along with a lever for adjusting the mutual distance between the locking rails. A compressible ball joint carrier with a ball socket can be made with at least two parallel faces placed between the locking rails and held between these by the longitudinal holding parts. A joint ball is placed in the ball socket such that clamping of the locking rails simultaneously presses the ball joint carrier towards the joint ball and the locking rails, and mutually locks the elements of the joint.
The faces between the ball joint carrier, the joint ball and/or the locking rails may have a rough surface for improved friction. The ball join carrier can be compressible in that it is divided into two parts or includes a compressible area such that the carrier can be compressed about the joint ball when the locking rails are pressed towards the carrier. The longitudinal holding parts can for instance be formed in that the locking rails are cranked at an angle, such that it is created a guide for the carrier. The holding parts on the locking rails will normally point towards each other to secure that the carrier not can be removed from the rails even when the rails are held apart and the carrier is free to perform a translatoric motion along the rails.
The joint apparatus may furthermore include elastic elements or spring elements pressing or biasing the locking rails towards each other with a force to a normally compressed position, and a release mechanism connected to the lever can release the force when it is actuated. Alternatively the locking rails can be operated or activated by instance actuators, such as pneumatic elements, hydraulic elements or electric motors.
The joint apparatus may furthermore include compressing elements or clamping elements that changes the internal distance between the parallel locking rails by longitudinal displacement of at least one of the locking rails in relation to the housing, and the spring elements can be biased towards a position where the locking rails presses towards the ball joint carrier and locks the joint element. The clamping elements can be pivoted elements that pivot the locking rails apart when the locking rails are moved in relation to the housing for the locking mechanism when the clamping elements are secured between the housing and the locking rails. Alternatively the joint elements can be substituted by balls in keyways, by cam elements, or other elements well known within the subject area for imposing a wedge force by linear displacement of an element.
The joint apparatus may furthermore include elastic elements that directly or indirectly press the ball joint carrier with a force to a normally compressed position. The elastic elements may be metal springs, elastomeric or other suitable elements and may for instance be formed with a leaf shape, a spiral shape, a belleville spring shape etc. A release mechanism connected to the lever releases the force by actuating the lever.
The joint apparatus may include compressing elements that change the internal distance between the parallel locking rails by longitudinal displacement of at least one of the locking rails in relation to the housing. The spring elements may hold the at least one of the locking rails against longitudinal displacement.
The elastic elements may be placed between the two elements forming the ball joint carrier.
An eccentric or cam shaped rod can be supported in the housing, and can be rotated about a longitudinal axis by actuation of the lever to press the parts of the ball joint carrier apart for releasing the joint ball. The rod may have a circular cross section, have and oval cross section, a shape as a cam shaft of a four stroke combustion engine, or any other shape that when rotated about a shaft will be able to press an element adjacent the rod. The rod is preferably revolvably supported and extends parallel to the housing, the guide rails or the tracks connected to the housing.
The lever may activate the elements that ensure that the parts of the ball joint carrier are separated from each other for releasing the joint ball mechanically or manually in that the lever directly affect the element that ensures that the ball is released in relation to the ball joint carrier.
Alternatively the handle may actuate the elements that ensure that the parts of the ball joint carrier are separated for releasing the joint ball by a powered actuator. In this case, the handle will typically affect an electrical switch, potentiometer or similar elements that typically will affect an electrically driven actuator for releasing the joint.
a and 4b shows the arm rest from the remaining figures where the details of the locking mechanism are further shown and where the locking mechanism is shown in a locked and a released position;
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The locking rails or clamp with the elastic element 8 ensures that the joint element or the ball joint carrier 6 is compressed, and this in turn compresses and locks the joint ball/ball joint carrier 7. When the lever or handle 3 is pulled out, the locking rails 5 are parallely displaced in relation to the housing 2 of the arm rest, such that the ball joint carrier or joint element 6 is released. The ball joint carrier 6 can now be moved along the locking rails 5 and is at the same time released to rotate about the joint ball of the arm rest carrier. When the lever 3 is released, the locking rails 5 are parallely displaced back to the locking position.
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The joint allows pivoting about three axis and linear displacement of the arm rest carrier 7.
In the locked condition, the locking rail 5 presses against the ball joint carrier 6, such that friction between the locking rails 5 and ball joint carrier 6 prevents the ball joint carrier 6 and thereby the arm rest carrier 7 from sliding back and forth along the locking rails 5. Friction between the ball joint carrier 6 and the joint ball 10 on the arm rest carrier 7 prevents motion therein between when the locking rail 5 presses towards the ball joint carrier 6 and accordingly the joint ball 10 on the arm rest carrier 7. When the lever 3 is pulled outwards in relation to the housing 2 for the locking mechanism, the clamping elements 9 between the housing 2 for the locking mechanism and locking rails 5 are released, such that the force between the locking rails 5, the ball joint carrier 6, and the joint ball 10 on the arm rest carrier 7 is reduced and such that these accordingly can mutually be moved. The clamping elements 9 are shown as joint elements rotating the locking rails 5 apart when the locking rails 5 are displaced in relation to the housing 2 for the locking mechanism when the clamping elements 9 are placed between these. Four clamping elements 9 are shown, one at each end of each locking rail. However, one of the locking rails could be fixed to the housing 2 and the other locking rail could ensure release and locking of the ball joint carrier 6.
Ball joint carrier 6 is in two parts or includes an elastic area, that ensures that the forces the clamping elements 9 imposes on the ball joint carrier 6 by the locking rails 5 then are transferred to the joint ball 10 of the arm rest carrier 7. The relationship between the clamping force of the clamping elements 9, the pulling force of the elastic element 8, the friction between the joint elements, the joint ball 10 and the locking rail 5, and the area of the interfaces will have to be adjusted to provide sufficient locking of the arm rest in relation to the arm rest carrier 7 when the lever 3 not is operated.
With the invention it is achieved that the arm rest can be tilted sideways, tilted up/down, the leading or trailing edge can be moved up and down, and the arm rest can at the same time shifted or displaced back and forth with one grip. To perform a change of position of the support face, the handle 3 is pulled out with the fingers simultaneously as an arm rests on the support face. The locking rail 5 is then moved forwards and releases the ball joint carrier 6. The arm rest can now be positioned in a desired working position.
The object of the invention is to achieve a multi functional working face based on one grip. The principal is based on parallel displacement, and this is then intended as a locking mechanism.
By applying a force F frictional forces are applied between the rail 5, the ball joint carrier 6 and the joint ball 10.
From the figure it is clearly shown how the application of a force F will lock both the ball joint carrier 6 in relation to the rails 5 and the joint ball 10 secured to the arm rest carrier 7.
Furthermore, it is clearly shown how the holing parts 11 and the rails 5 holds the ball joint carrier 6 to the rails 5.
The ball joint carrier 6, the ball joint 10 and the released rail 5, must be made of materials that ensures sufficient friction between the elements. Furthermore, the intersection between these elements can be interlocking, had an uneven structure, or in any other way be provided with surfaces that ensures good locking between the elements when the clamping elements 9 clamps the locking rails 5 towards the ball joint carrier 6 and the joint ball 10 on the arm rest 7. The faces between the rails 5, the ball joint carrier 6 and the joint ball 10 can be made of materials that will ensure sufficient friction during locking, and may in alternative embodiment include rough or serrated surfaces to further ensure locking of the elements in relation to each other when the force F is applied.
The clamping—or pivot elements 9 can for instance be substituted by cam—elements or other elements well known within the subject area for applying a wedge force resulting from a linear displacement of an element.
In
With the solution shown on
The levers may preferably be placed at a lower edge of the arm rest, and have a practical motion upwards to adjust the arm rest. The arm rest is locked by releasing the lever.
It is preferably only one adjustment lever or a handle instead of separate handles for allowing adjustment of rotation and translation. Vertical motion of the regulating lever, is considered to be the most use friendly solution, and safest when covered with a sterile cover. The adjustment handle can be pulled upwards to release the locking, and be released to relock the arm rest.
Number | Date | Country | Kind |
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20042444 | Jun 2004 | NO | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/NO05/00199 | 6/10/2005 | WO | 00 | 7/25/2007 |