This application is a National Phase Patent Application of International Patent Application Number PCT/EP2006/008807, filed on Sep. 06, 2006, which claims priority of German Utility Model Application Number 20 2005 014 393.6, filed on Sep. 08, 2005.
The invention relates to a retaining bracket for spotlights.
In order to connect spotlights for illumination purposes, in particular studio, television, theatre, event spotlights and the like, to a rig for a suspended arrangement or to a supporting rack or stand for a standing arrangement of a spotlight, retaining brackets are known which connect the spotlight housing to a crossmember of the rig or to the stand or substructure and have an axis of rotation and a pivot axis for rotating the spotlight about a vertical axis and for pivoting the spotlight about a horizontal axis. In particular when accommodating heavy spotlights, the retaining brackets are capable of being moved by means of a motor, i.e. are capable of being adjusted by means of a motor about the axis of rotation and pivot axis and additionally are capable of being remote controlled for suspension of the spotlight, for example on a studio ceiling or on a rig, so that the respective setting of the alignment of the spotlight can also be carried out by a person located at a distance from the spotlight. In particular for fitting the spotlight in such a way that it is arranged at a distance from the control location, the retaining bracket is additionally connected to a focusing adjustment drive, which is fitted on the spotlight housing and sets the desired focal width of the spotlight from SPOT, for a small, centered illumination area, to FLOOD, for a large illumination area.
Retaining brackets or remote controllable retaining brackets which are moved by means of a motor and are referred to as motor brackets comprise a bracket-shaped housing, whose bracket bearings have a predetermined distance from one another which is matched to the specific spotlight for the purpose of connection to the spotlight housing, so that the length of the bracket arms from the bracket bearings up to the supporting apparatus is matched to the respective spotlight. In order to accommodate and adjust spotlights of different sizes and powers, the provision of a correspondingly large number of retaining brackets or motor brackets is therefore required, which not only means a high space requirement for storing the motor or retaining brackets but also involves high investment costs.
The object of the present invention is to provide a retaining bracket for spotlights of different powers and therefore different sizes of the spotlight housing which firstly is mounted in a space-saving manner and secondly is suitable for very large spotlights.
An exemplary solution according to an exemplary embodiment of the invention provides a retaining bracket for spotlights in a large power range and therefore for spotlights with spotlight housings of different sizes which therefore requires minimum investment costs and is characterized firstly by a minimum space requirement for the dedicated warehousing and storage and secondly by the fact that it can also be matched to very large spotlights.
Exemplary, the bracket bearings are capable of being adjusted in self-centering fashion, so that there is no displacement of the center of gravity when accommodating a spotlight, which is of considerable importance in particular in the case of large and heavy spotlights with the risk of static problems. Furthermore, as a result of the self-centering the optical axis of the various spotlights accommodated by the retaining bracket is maintained.
In particular, both the distance of the bracket bearings from one another and their distance from the supporting bearing is adjustable, so that matching to different spotlight housings in all directions can be performed.
In an exemplary embodiment, the bracket bearings are capable of being pivoted about a pivot axis for setting the inclination of the spotlight, while the supporting bearing is rotatably connected to the supporting apparatus for the purpose of rotating the spotlight about a vertical axis of rotation. As a result, different regions can be illuminated without the position of the spotlight being changed.
Exemplary, the retaining bracket comprises a frame construction which is preferably rigid in terms of connections and with a crossmember and bracket arms, which are connected to the crossmember and on whose end sections the bracket bearings are arranged.
This configuration of the retaining bracket allows for simple manufacture and fitting using standardized component parts, in particular when, in accordance with a further feature of the invention, the crossmember and the bracket arms comprise mutually adjustable rods or tubes.
In order to set the distance of the bracket bearings from one another, the crossmember and the bracket arms are connected to one another via adjustable coupling elements.
In accordance with a further exemplary feature of the invention, the crossmember comprises a rectangular frame with cross tubes, which are connected via lateral flanges, while the bracket arms are designed to be L-shaped and have horizontal and vertical arms, which are spaced apart with respect to one another by the length of the lateral flanges of the crossmember and are connected to one another via cross arms, with the horizontal arms being connected to the coupling elements and the vertical arms being connected to the bracket bearings.
In order to set the distance of the bracket bearings from one another in a simple manner, the coupling elements are adjustable along the cross tubes of the crossmember and preferably synchronously adjustable via a drive device, which is connected to the crossmember.
This exemplary configuration of the solution according to the invention allows for self-centering adjustment of bracket bearings and therefore optimum mounting with respect to the center of gravity of a spotlight in the retaining bracket.
In one exemplary embodiment, the drive device comprises a spindle drive with a drive motor, at least one spindle and spindle nuts, which are connected to the coupling elements and in which the at least one spindle engages.
Alternatively, provision can be made for a spindle, which is connected to the drive motor, with opposed threads, which engage in spindle nuts, which are connected to the coupling elements, with a left-handed thread on one side and a right-handed thread on the other side, or there are arranged two spindles, which are connected to the drive motor and whose threads engage in spindle nuts, which are connected to the coupling elements.
In order to securely mount the spindles, they are supported on the flanges of the crossmember.
In order to optimize the operation of the retaining bracket in particular for its remote control, the crossmember is connected to an adapter, drive and control module, which has an adapter for connecting the retaining bracket to the supporting apparatus, the drive motor of the spindle drive and a drive motor for rotating the retaining bracket about the vertical axis of rotation, a first sensor for detecting the rotary angle of the retaining bracket and a control device, which is connected to a first sensor for detecting the rotary angle of the retaining bracket, a setpoint encoder and the drive motors.
The adapter and flange plate can additionally be connected to a safety suspension device for a suspended operation of the retaining bracket.
In order to set the distance of the bracket bearings from one another, stored values of spotlight housing data can be called up, and the distance between the bracket bearings and/or the contact pressure between the bracket bearings and the spotlight housing can be detected by means of a second sensor.
In order to connect the retaining bracket to a spotlight in a simple and rapid manner, in particular in order to exchange spotlights rapidly, the bracket bearings have a pivot drive for rotating adapter or flange plates, which are connected to the bracket bearings, for accommodating the spotlight housing and setting the inclination of the spotlight about the pivot axis with the adapter or flange plates preferably being equipped with a quick-action fastening device.
The axis of rotation can also be connected to an adapter plate, to which the standard fastening elements such as studio pins, tubular clamps or special adapters such as so-called “Mitchell adapters”, for example, can be flange-connected.
In order to optimize control, the pivot drive is connected to the control device of the adapter, drive and control module.
In order to set the distance of the bracket bearings from the supporting bearing, it is possible to change the connection between the bracket bearings and the vertical arms of the bracket arms by, as an alternative, a spindle or telescope drive, which is connected to the bracket bearings and the crossmember, being provided or by the articulation of the bracket bearings on the bracket arms being variable, for example, by means of drilled holes, which are offset with respect to one another, in the bracket arms and pins, plug-in sleeves or the like.
In order to protect against damage to the spotlight or injury to personnel when actuating one of the drive devices, the drive devices are connected at least partially via a friction coupling to the respective adapter or flange.
One exemplary configuration of the invention is characterized by remote control for driving at least some of the functions of the retaining bracket, which remote control is connected, in particular via a Digital Multiplex (DMX) interface or wirelessly, to the control device of the retaining bracket.
In particular when connecting the retaining bracket to a rig or a crossmember, preferably all of the functions of the retaining bracket can be set or stored and called up from remote locations by means of remote control without complex control at the location of the spotlight being required for this purpose.
In order to be able to set the illumination area as well in particular in the case of remote control of the retaining bracket which can be adjusted by means of a motor, in accordance with a further feature of the invention, the adapter, drive and control module is connected to a focusing drive device for adjusting the light exit angle of the spotlight, which focusing drive device is arranged in a focusing transmission housing, which can be flange-connected to the spotlight housing, and is connected to the adapter, drive and control module via a control and power supply line.
In order to set the maximum pivoting range of the spotlight, the control module is programmable and is provided with a program-controlled shut-off limit device, preferably the pivoting speed of the spotlight being continuously regulable and the control device of the adapter, drive and control module having a PID regulating device for regulating the starting and braking response of at least one of the drive devices of the retaining bracket.
By means of coupling the vertical axis of rotation and the horizontal pivot axis to rotary angle encoders, additionally a position signal can be emitted to the control device of the adapter, drive and control module.
The features of the invention and the concept on which the invention is based will be explained in more detail with reference to an exemplary embodiment illustrated in the figures, in which:
In
In addition, the focal axis of the spotlight 1 can be connected to a focusing drive device 8 as shown in
The frame construction of the retaining bracket 2 which is rigid in terms of connections comprises a crossmember 3 in the form of a rectangular frame and two bracket arms 4, 5, which protrude substantially at right angles from the crossmember 3 and on whose ends opposite the crossmember 3 bracket bearings 6, 7 are arranged, which form the pivot axis 12 and are connected to the housing of the spotlight 1 in a suitable manner and possibly in such a way that they are adjustable in the longitudinal direction of the spotlight housing. The crossmember 3 is connected to an adapter, drive and control Module 10, which is connected to the vertical axis of rotation 11 for accommodating an adapter flange and possibly an additional safety suspension device 18. Standard fastening elements such as studio pins, tubular clamps or special adapters such as so-called “Mitchell adapters”, for example, can be flange-connected to the adapter flange of the vertical axis of rotation 11.
In order to match the retaining bracket 2 to spotlights 1 of different powers and therefore generally of different housing dimensions, the distance of the bracket bearings 6, 7 with respect to one another is adjustable by means of a spindle drive 9, which will be described below with reference to
The connection of a spotlight to the adapter plate 14 of the bracket bearings 6, 7 takes place by means of it being flange-connected or clipped on in conjunction with a clip or a hinged closure or a bayonet-type closure, so that rapid exchange of spotlights is ensured if required.
The crossmember 3 of the retaining bracket 2, corresponding to the plan view illustrated in
The coupling elements 90 to 93 are therefore displaced in the longitudinal direction of the crossmember 3 in the event of a rotation of the spindles 96, 97 by the spindle drive motor and therefore cause an adjustment of the bracket bearings 6, 7 with automatic centering of the center of gravity, so that spotlights with different housing dimensions and therefore generally with different powers can be accommodated by the retaining bracket 2 without a displacement of the center of gravity with respect to the vertical axis of rotation 11 taking place.
The bracket arms 4, 5 of the frame construction, as shown in
In addition to the setting of the distance between the bracket bearings 6, 7 by means of the spindle drive 9, it is possible to provide for setting of the distance of the bracket bearings 6, 7 from the crossmember 3 which can be realized in different ways.
In the embodiment shown in
As an alterative to this and corresponding to the spindle drive for setting the distance of the bracket bearings 6, 7 from one another, a spindle drive 25 can be provided and connected to the bracket bearings 6, 7 or the bracket flanges 46, 47 and 56, 57.
In order to select the distance of the bracket bearings 6, 7 from one another, in a first embodiment a selection of programmed values of the distance for different spotlight types can be carried out and input via the remote control means. By activating the spindle drive, the bracket arms are set to the input distance and in the process automatic centering of the center of gravity is performed.
As an alternative or in addition, remote control of the distance of the bracket bearings 6, 7 can be indicated, so that corresponding setting can be performed given known dimensions of the spotlight housing. Since the control device is programmable, the set value can be stored and, provided with an identification, approached directly for renewed setting of the distance.
The setting of the inclination of the spotlight 1 by means of pivoting the spotlight about the pivot axis 12 optionally takes place via programmed set values or by direct actual value inputting by means of remote control. Preferably, the maximum pivoting range is programmed by, for example, the limits of the pivoting range being approached and confirmed so that, in the event of a subsequent direct input of inclination settings, the maximum pivoting range is not exceeded. At the same time, sensitive setting is possible when inputting the limits by means of a corresponding extension of the setting range.
Preferably, the pivoting speed is continuously regulable and gentle starting and braking when setting the inclination of the spotlight 1 is ensured by PID regulation, which is provided in the control device of the adapter, drive and control module. Furthermore, the characteristic of the starting or braking response can be matched to the individual requirements of the operator. As an additional safety measure, the pivoting drive is provided with a friction coupling, which can be set from the outside, in order to avoid damage to the spotlight as a result of collision with objects or risk to personnel by means of limiting the maximum torque when pivoting the spotlight.
Number | Date | Country | Kind |
---|---|---|---|
20 2005 014 393 U | Sep 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2006/008807 | 9/6/2006 | WO | 00 | 5/15/2008 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2007/028643 | 3/15/2007 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2097537 | Snyder | Nov 1937 | A |
4306279 | Cohen | Dec 1981 | A |
4519021 | Oram | May 1985 | A |
5176442 | Richardson | Jan 1993 | A |
6428197 | Downing | Aug 2002 | B1 |
6953270 | Richardson | Oct 2005 | B1 |
7111966 | Jenkins | Sep 2006 | B1 |
Number | Date | Country |
---|---|---|
299 05 443 | Jul 1999 | DE |
Entry |
---|
International Search Report, dated Dec. 5, 2006, corresponding to PCT/EP2006/008807. |
English Translation of International Preliminary Examination Report, with Written Opinion, for corresponding International Application No. PCT/EP2006/008807, dated Apr. 8, 2008. |
Number | Date | Country | |
---|---|---|---|
20090251905 A1 | Oct 2009 | US |