The invention concerns a power tool comprising a drive motor that drives a work tool and comprising an optical guiding device that is secured on the power tool in alignment relative to the work tool.
DE 10 2004 002 747 A1 discloses a motor chainsaw that comprises a laser for measuring partial lengths of a workpiece wherein the laser generates a laser dot as a visual aid on the workpiece. The laser is fixedly connected to the housing by a holder.
In electric power tools such as electric hand-held circular saws or electric jigsaws, lasers are known as a guide for the cutting direction. The lasers are fixedly mounted on the housing of the power tool.
In operation of such a motor-driven power tool vibrations are generated. On the one hand, these vibrations cause mechanical stress on the laser and, on the other hand, they cause imprecise guiding.
The invention has the object to provide a power tool of the aforementioned kind whose guiding device has a long service life and provides a satisfactorily precise guiding.
This object is solved by a power tool of the aforementioned kind wherein the guiding device is arranged in a low-vibration arrangement on the power tool.
The low-vibration arrangement of the guiding device on the power tool has the result that only minimal vibrations are transmitted onto the guiding device. In this way, the mechanical stress on the guiding device is reduced, on the one hand, and impairment of guiding as a result of vibrations is reduced, on the other hand. In a simple way, a guiding action of excellent quality can be achieved.
Advantageously, the guiding device is secured on the power tool in a low-vibration area of the power tool. With the targeted selection of the area in which the guiding device is secured on the power tool, the vibrations transmitted onto the guiding device can be minimized. Usually, in operation of the power tool at least one section of the power tool vibrates in at least one direction in the form of a standing wave. A low-vibration arrangement of the guiding device on the power tool can be achieved in a simple way in that the guiding device is arranged in the area of a node of the standing wave. In the area of the node of the standing wave the amplitude is zero. In the adjoining areas, the resulting amplitudes are also very low so that an arrangement of the guiding device at the node, or closely adjacent to the node, is expedient in order to achieve a minimal vibration load of the guiding device. By a suitable selection of the arrangement of the guiding device, a minimal transmission of vibrations onto the guiding device can be achieved in a simple way.
In order to achieve a low-vibration arrangement of the guiding device on the power tool, it can be provided alternatively or additionally that the guiding device is secured by means of at least one vibration damping element on the power tool. The vibration damping element can be, for example, a rubber buffer for a damping element of foamed plastic material. Other known vibration damping elements can also be advantageous.
In order to ensure that the guiding device in operation is not excited to perform resonant vibrations, it is provided that eigenfrequency of the guiding device is outside of the working engine speed range of the power tool. The eigenfrequency of the guiding device is selected in particular such that the eigenfrequency is a frequency where the amplitude of the vibration of the power tool has a local minimum. In this connection, the amplitude of the vibration of the power tool is decisive within an area in which the guiding device is secured. Advantageously, the amplitude of the vibration of the power tool at eigenfrequency of the guiding device has a global minimum. In this way, it is ensured that the guiding device is excited only at very small amplitudes at its eigenfrequency. In this way, large amplitudes of the guiding device can be avoided.
It is provided that the guiding device generates a line-shaped guide mark. In particular, the guiding device is arranged so as to be rotatable about an axis of rotation on the power tool. In this way, the guiding device can indicate the cutting direction of the work tool as well as an angular alignment of the work tool, for example, in order to perform perpendicular cuts. For this purpose, the guide mark can be aligned, for example, relative to an edge of the workpiece. Advantageously, the work tool is rotatable about an axis of rotation wherein the axis of rotation of the guiding device extends perpendicularly to the axis of rotation of the work tool. In order to adjust the position of the guide mark on the workpiece, it is provided that the guiding device is pivotably arranged on the power tool. The guiding device in this connection is in particular pivotable about a pivot axis that is parallel to the axis of rotation of the rotatingly driven work tool.
It is provided that the power tool has an energy supply device that supplies the guiding device with electric energy. In particular, the energy supply device is a generator. It is provided that the drive motor is an internal combustion engine. In particular in power tools that are driven by an internal combustion engine the vibrations that occur in operation are comparatively great. In this context, a low-vibration arrangement of the guiding device is expedient in order to project sufficiently good and precise guide marks on a workpiece. The internal combustion engine drives advantageously a crankshaft in rotation wherein the generator is arranged on the crankshaft of the drive motor. In that the guiding device is supplied with energy by a generator that is driven by the internal combustion engine, no additional energy supply is required. However, it can also be provided that the energy supply device is a battery.
Advantageously, the power tool is a cut-off machine with a rotatingly driven cutting wheel. In connection with a cut-off machine, the guiding device can indicate different cuts depending on the type of work being performed. A guiding device is advantageous in particular when manually guiding the cut-off machine. The guiding device is advantageous also when panels or the like are to be cut where angled cuts are required. The cutting wheel is at least partially covered by a protective cover. The guiding device is in particular arranged on the protective cover of the cutting wheel. The arrangement of the guiding device on the protective cover enables projection of an excellent simple guide mark for the cut to be performed by the cutting wheel. However, great vibrations occur on the protective cover in operation so that particularly when arranging a guiding device on the protective cover of a cut-off machine a low-vibration arrangement of the guiding device on the protective cover is advantageous. In particular, the guiding device is arranged in the plane of the cutting wheel on the protective cover. Minimal vibrations on the guiding device will result when the guiding device is arranged on the circumference of the protective cover in a central area of the circumference of the protective cover. A central area of the protective cover in this connection is an area that extends approximately across one third of the circumferential length of the protective cover. This area can include the node of the resulting vibration. As a result of the sine shape of the vibration the amplitude can be sufficiently small across one third of the circumferential length of the protective cover.
The drive motor is advantageously an internal combustion engine.
In
The cut-off machine 1 has a cutting wheel 6 as a work tool that is rotatingly driven by the drive motor 3 about axis of rotation 7. The cutting wheel 6 is partially covered by a protective cover 8. The protective cover 8 extends about half of the circumference of cutting wheel 6 and covers also the lateral faces of the cutting wheel 6 in this area.
The cut-off machine 1 can be mounted on a guide carriage but the cut-off machine 1 can also be freely guided by hand. In order to indicate to the operator where the cutting wheel 6 engages a workpiece, for example, the ground or panels to be cut, a guiding device 9 is secured on the protective cover 8. The guiding device 9 comprises a laser that generates a guide mark 32, schematically indicated in
The guiding device 9 is secured by a holder 10 on the protective cover 8. The holder 10 is of a two-part configuration wherein one part of the holder 10 is secured on the protective cover 8 and a second part of the holder 10 secures the guiding device 9. The two parts of the holder 10 are pivotable relative to one another about a pivot axis 11. The pivot axis 11 is positioned parallel to the axis of rotation 7 of the cutting wheel 6. In
The guiding device 9 is arranged in an area 38 of the protective cover 8 in which the amplitudes of the vibrations produced in operation are minimal. This area 38 extends in the shown embodiment across an angle of approximately 60° about the circumference of the protective cover 8. The guiding device 9 is arranged on the circumference of the protective cover 8 such that the guide mark 32 in the alignment of the guiding device 9 illustrated in
The guiding device 9 is supplied with electric energy by connecting line 12. The connecting line 12 can be guided, for example, about the outer circumference of the protective cover 8 to the housing 2. However, it can also be provided that the energy supply device is arranged directly on the guiding device 9.
On the crankshafts 17 a generator 18 is arranged in which voltage is induced as a result of the rotational movement of the crankshaft 17. The generator 18 is connected to a control unit 26 and supplies it with energy. The guiding device 9 is connected, as shown in
On the opposite side of the drive motor 3 a clutch 20 is arranged on the crankshaft 17. The clutch 20 connects the crankshaft 17 with a pulley 21. On the side of the pulley 21 facing away from the clutch 20 a starter device 23 is provided that serves for starting the drive motor 3. The starting device 23 can be actuated by a starter handle 24.
A drive belt 22 is guided on the pulley 21 and is driven in rotation by the crankshaft 17 by means of clutch 20. As shown in
In
The schematic illustration in
In the embodiment according to
In order to prevent that the guiding device 9 in operation is excited to perform resonant vibrations, it is provided to adjust the resonant vibration e1, e2 of the guiding device 9 to the frequency at which the protective cover 8 vibrates in operation. This is shown in
In the exemplary course of the amplitude a illustrated in
As shown in
When the guiding device 9 is rotated by 90° in accordance with arrow 31 illustrated in
The guiding device 9 can be, for example, a laser that generates a linear guide mark 32. However, other optical guiding devices 9 can be expedient.
The specification incorporates by reference the entire disclosure of German priority document 10 2007 032 043.6 having a filing date of 10 Jul. 2007.
While specific embodiments of the invention have been shown and described in detail to illustrate the inventive principles, it will be understood that the invention may be embodied otherwise without departing from such principles.
Number | Date | Country | Kind |
---|---|---|---|
102007032043.6 | Jul 2007 | DE | national |