The invention concerns a drilling device for the manufacture of a component with bores that are aligned with one another.
In aircraft construction freight doors are often manufactured in a componental form of construction, and have two skin fields, between which is arranged a stiffening structure made up of a multiplicity of ribs and stringers. They are often mounted in the region of an upper edge such that they can be pivoted about a hinge axis. The locking of the freight door is undertaken by means of a multiplicity of hooks, which are arranged in the region of a lower edge of the freight door. The adjustment of the hooks as well as their locking action takes place by means of a drive shaft and a security shaft extending parallel to the drive shaft; each of the hooks is guided into a rib fork.
A method of known art for the manufacture of such a freight door 2 is shown in
The object of the present invention is to create a drilling device for purposes of introducing bores into a component that are aligned with one another, which removes the above-cited disadvantages, and allows the manufacture of precision bores.
This object is achieved by means of a drilling device with the features of Claim 1.
An inventive drilling device, in particular a CNC-controlled shaft-drilling and spindle facility, has a reception device for purposes of receiving a component, in particular a freight door of an aerospace vehicle, with at least one drilling head for purposes of introducing at least one bore into the component. In accordance with the invention the reception device allows the component to be mounted in the drilling device in a stress-free manner in its installed orientation, or in a position that is close to its installed orientation. By this means the introduction of undesirable stresses into the component during the drilling process is avoided. This is particularly advantageous if a multiplicity of bores are to be introduced into the component in precise alignment, which serve, for example, to receive shafts or axes. Deformations or stresses in the component as a result of its weight are inventively taken into account during the drilling process.
In one example of embodiment the reception device defines a pivot axis for purposes of pivoting the component. This preferably runs underneath a centre of gravity of the received component, so that a pivotal movement of the component about the pivot axis can be automatically introduced by means of its weight. The component is mounted in a quasi-vertical position in the reception device.
In one example of embodiment a multiplicity of pairs of bores are introduced into fork-shaped component sections. For purposes of introducing such pairs of bores the drilling device can have a drilling head, which has diametrically arranged clamping elements, in each case for purposes of clamping a cutting tool. For purposes of using two identical cutting tools it is advantageous if the drilling head is fitted with a direction of rotation reversal unit.
The drilling device can have a second machining head, which can be activated independently of the first drilling head. By this means different machining tasks can be carried out on the component at the same time. The second machining head is preferably also a drilling head with a measurement device for purposes of determining a machining depth, so that it is possible, for example, to monitor a countersink depth in the surface region during the drilling process, and to halt the drilling process automatically when a design countersink depth has been achieved. The measurement device determines the countersink depth electronically and has a sensor system, which measures a current rise of a spindle drive receiving the cutting tool. However, the sensor system can also be embodied such that the machining depth can be determined by means of structure-borne sound.
The drilling device preferably has a fixture device for the positioning of parts to be attached to the component. By this means it is possible to align the parts that are to be attached, such as for example hinge elements, in their design position, i.e. corresponding to the design position of a hinge axis relative to the component, and by means of the necessary tolerance compensation measures, such as the use of adapters and washers, to attach the parts to the component in a stress-free manner.
Other advantageous examples of embodiment of the invention are the subject of further subsidiary claims.
In what follows preferred examples of embodiment of the invention are elucidated in more detail with the aid of schematic representations. Here:
In the figures the same design elements have the same reference numbers, wherein where there is a plurality of the same design elements in one figure, only some of these design elements are provided with a reference number for reasons of clarity.
In accordance with the lateral sectional representation in
Locking of the freight door 20 in the fuselage opening takes place in the region of a lower edge 42 by means of a multiplicity of hooks 44. The hooks 44 are arranged on a free end section 46 of each of the ribs 28, and can be adjusted by means of a drive shaft 48 extending parallel to the hinge axis 36, and can be secured in the locked position by means of a security shaft 50 extending parallel to the drive shaft 48.
In accordance with the representation in
In what follows an inventive method for the manufacture of the freight door 20 in
In accordance with
After the pilot-drilling of the bores 58, 64 the stiffening structure 22 is constructed on the outer skin field 24, and is connected with the latter. The skin field 24 is then lined up with the stiffening structure 22 and is translated into its design shape, i.e. into its final geometry. As a result of the lining up process, as shown in
The skin field 24, reinforced and lined up by means of the reinforcement structure 22, i.e. the lined up freight door 20, is mounted in a CNC-controlled shaft drilling and spindle facility—in what follows called a drilling device—in a vertical position in a reception device of the drilling device; it is mounted by means of its hook bores 54 in a stress-free manner such that it can pivot about a pivot axis, wherein its centre of gravity is arranged above the pivot axis. Here the pivot axis is simulating the pin axis of the hooks 44 (cf.
The door-side hinge elements 38 are then, as shown in
The attachment of the hinge elements 38 to the skin field 24 is preferably undertaken by means of rivets, whose heads are sunk in appropriate funnel-shaped countersinks in the skin field, such that an aerodynamically favourable outer surface is created. The countersinks are formed during the drilling process, wherein the drilling head is equipped with an appropriate measurement device for measuring a respective countersink depth. The measurement device preferably has a sensor system, which measures a current rise of a spindle drive of the drilling head and halts the drilling procedure as soon as the required countersink depth is achieved. However, the countersink depth can also be determined by means of structure-borne sound. After the drilling of the attachment holes these are cleaned appropriately, and the hinge elements 38 are connected by means of attachment means such as rivets to the skin field 24.
At the same time as the orientation and connection of the hinge elements 38 is taking place, each of the bores 58, 64 is finish-drilled to a final dimension (cf.
In accordance with
For purposes of finish-drilling the drilling head 72 is arranged in a starting position between the arms 52a, 52b of the respective rib fork 46. The drive unit 74 is then activated and the drills 76a, 76b are set into rotation. Now, as shown in
After the bore 58a in the left-hand arm 52a has been finish-drilled, the bore 58b in the right-hand arm 52b is finish-drilled to its final dimension. This is undertaken, as shown in
The finish-drilling of the bores 64 for the security shaft can be undertaken by the same drilling head 72. The drilling device can, however, also make use of at least one second CNC-drilling head with diametrically arranged cutting tools.
Disclosed is a drilling device with a reception device for purposes of receiving a component 20, in particular a freight door, with at least one drilling head 72 for purposes of introducing at least one bore 58 into the component 20, wherein the reception device allows stress-free mounting of the component 20 in its installed orientation.
Number | Date | Country | Kind |
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10 2009 050 476.1 | Oct 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2010/006485 | 10/22/2010 | WO | 00 | 7/20/2012 |