This application claims priority under 35 U.S.C. §119 to patent application no. DE 10 2013 222 550.4, filed on Nov. 6, 2013 in Germany, the disclosure of which is incorporated herein by reference in its entirety.
The present disclosure relates to a portable power tool, in particular a straight screwdriver, a drill driver or a cordless drill driver having a tool carrier that is settable in rotation and is drivable by a drive motor via a transmission.
Portable power tools having a transmission, for example a cordless drill driver or a drilling machine, generally have a safety coupling such that the portable power tool does not continue to rotate in an uncontrolled manner if a predefined torque is exceeded. Furthermore, it is known that such portable power tools have actuating elements, by means of which the torque to be transmitted can be set and thus it is possible to choose between different operating modes. Thus, for example, US 2011/0232933 discloses an electric tool having a tool carrier that is settable in rotation, wherein the tool carrier is drivable by a drive motor via a transmission. The known electric tool has in this case an adjusting device, by means of which it is possible to switch between a number of operating modes. Moreover, depending on the position, in addition to the operating mode the rotational speed can also be set, wherein automatic operation with a variable rotational speed is provided. The operating modes are in this case set manually, wherein the different parameters can only be adapted or readjusted manually during the work operation.
An object of the disclosure is to improve the abovementioned disadvantages and to provide a portable power tool which allows easy, safe and flexible setting of the operating modes and in the process has the simplest possible construction and is cost-effective.
This object is achieved by a portable power tool. Advantageous configurations, variants and developments of the disclosure can be gathered from the specification, drawings and claims.
The disclosure includes a portable power tool comprising a transmission having a plurality of transmission gears in a housing, in particular a planetary transmission, for transmitting a torque generated by a drive motor to a drive shaft, at least one adjusting element provided on the housing, in particular for setting the torque and/or a transmission gear of the transmission, characterized in that provision is made of at least one first sensor which detects a position of the at least one adjusting element and transmits a signal corresponding to this position to an electronic control means of the portable power tool. As a result, compared with the prior art, provision is made of a portable power tool which allows safe, easy and user-friendly operation. In this case, it is advantageous for the electronic control to be able to take place from the inside via a microcontroller contained in the housing, said microcontroller evaluating the transmitted signals from the sensor.
Accordingly, in one design embodiment of the disclosure, it is proposed that, depending on the corresponding signal, the control means activates an operating state on the portable power tool with a combination of predefined parameters, with the result that it is possible to ensure that the portable power tool always runs in an operating state that is adapted to the situation and is thus optimal.
In a particularly preferred configuration of the disclosure, a first sensor senses the position of a first adjusting element and a second sensor senses the position of a second adjusting element, wherein the first sensor and the second sensor each transmit a corresponding signal to the electronic control means of the portable power tool and, depending on the corresponding signals, the control means activates an operating state on the portable power tool with a combination of predefined parameters. In this way, it is possible to ensure that, based on the position of the adjusting elements, optimal setting of the parameters takes place and thus the portable power tool can be used in an optimal operating state, while a portable power tool according to the disclosure is individual, safe, easy and above all user-friendly to utilize.
Preferably, the adjusting element is configured in the form of a switch that is directly actuated mechanically, in particular in the form of a slide switch, a pressure switch and/or a switch actuated via sensors, wherein in a particularly preferred embodiment, the adjusting element is a slide switch which can be displaced in the circumferential direction of the housing. In this way, high robustness of the portable power tool, in particular of the adjusting element, can be ensured.
It has been found to be advantageous for provision to be made of an adjusting ring, wherein the adjusting ring is arranged so as to be displaceable in the radial direction beneath the adjusting element and in the circumferential direction of the housing. In this case, the adjusting ring is advantageously connected to the adjusting element via a coupling element such that a movement of the adjusting element is transmitted to the adjusting ring.
In a particularly preferred embodiment, the adjusting ring has at least one channel in the circumferential direction, wherein, in an advantageous embodiment, the channel extends obliquely to the circumferential direction in a first portion and in the circumferential direction in a second portion.
According to one embodiment of the disclosure, at least one actuator that is arranged so as to be displaceable only in the axial direction of the portable power tool is connected to the transmission housing, wherein the actuator engages in the channel of the adjusting ring via at least one connecting element.
Preferably, a rotational movement of the adjusting ring in the circumferential direction brings about an axial movement of the actuator when the connecting element is located in the region of the first portion, and in that a rotational movement of the adjusting ring in the circumferential direction does not bring about any movement of the actuator at all when the connecting element is located in the region of the second portion.
In a preferred embodiment, the transmission housing has at least one first guide means in the circumferential direction and the adjusting ring has at least one second guide means in the circumferential direction, wherein the second guide means interacts with at least the first guide means such that a rotational movement of the adjusting ring in the circumferential direction brings about an axial movement of the actuator.
In a particularly advantageous configuration, the transmission furthermore has a flange, wherein the flange comprises at least one third guide means in the circumferential direction, wherein the third guide means interacts with the second and/or with the first guide means such that a rotational movement of the adjusting ring in the circumferential direction brings about an axial movement of the actuator.
Advantageously, the transmission has at least one ring gear, wherein the ring gear is connected to the actuator in the axial direction by connecting means in such a form-fitting manner that a displacement of the actuator in the axial direction causes an axial movement of the ring gear. In this case, the axial movement of the ring gear causes engagement of the transmission in at least two different speed stages. In this case, it is particularly advantageous for the ring gear to be connected to the actuator in a form-fitting manner in the axial direction by connecting means.
In particular, provision is made of at least one spring element, wherein the spring element holds the adjusting element in the different positions.
Furthermore, it has been found to be advantageous for provision to be made of at least one optical display device, in particular a binary display, a numeric display, or an analog display, wherein, in a particular embodiment of the disclosure, the at least one display device displays the position, sensed by the sensors, of the adjusting element and/or the operating state, activated by the control means, of the portable power tool, such that a user can quickly register the operating state and if necessary make alterations.
In a preferred embodiment, the portable power tool is a cordless drill driver, a drilling machine, a percussion drilling machine or a hammer drill, wherein a drill bit, core bit or various bit attachments can be used as the tool.
A portable power tool should be understood as meaning generally all portable power tools having a tool carrier which is settable in rotation and is driveable by a drive motor via a planetary transmission, for example straight screwdrivers, cordless drills, percussion drilling machines, multifunctional tools and/or drill drivers. The transmission of electrical energy should in this connection be understood as meaning in particular that the portable power tool passes on energy to the body via a rechargeable battery and/or a power cable connection.
Further features, possible applications and advantages of the disclosure can be gathered from the following description of an exemplary embodiment of the disclosure, said exemplary embodiment being illustrated in the drawings. In this case, it should be noted that the features described or illustrated in the figures, individually or in any desired combination, have only a descriptive character the subject matter of the disclosure, regardless of their summary in the claims or the back-references therein, and regardless of their formulation and illustration in the description and in the drawings, respectively, and are not intended to limit the disclosure in any form.
Arranged in the housing 105 are an electric drive motor 180 that is supplied with power, and a transmission 170. The drive motor 180 is connected to a drive shaft 120 via the transmission 170. The drive motor 180 is illustratively arranged in a motor housing 185 and the transmission 170 in a transmission housing 110, wherein the transmission housing 110 and the motor housing 185 are arranged by way of example in the housing 105.
The drive motor 180 is actuable, i.e. able to be switched on and off, for example via a hand switch, and can be any desired motor type, for example an electronically commutated motor or a DC motor. Preferably, the drive motor 180 is electronically controllable or regulatable such that both reversing operation and parameters with regard to a desired rotation speed are realizable. The functioning and the construction of a suitable drive motor are well known from the prior art and so a detailed description is dispensed with here in order to keep the description concise.
The drive shaft 120 is mounted rotatably in the housing 105 via a bearing arrangement and provided with a tool receptacle 140 which is arranged in the region of an end side 112 of the housing 105 and has for example a drill chuck 145. The tool receptacle 140 serves to receive a tool 150 and can be integrally formed on the drive shaft 120 or connected to the latter in the form of an attachment.
Furthermore, the portable power tool has a first adjusting element 202 which serves for setting a transmission gear of the transmission 170, and a second adjusting element 204 which serves to set the torque. The first adjusting element 202 is configured as a slide switch 202 in the form of a rotary ring, which is arranged on the housing 105 so as to be displaceable preferably in a stepless manner within a particular rotary angle range in the circumferential direction. The second adjusting element 204 is configured as a pressure switch. Alternatively, the adjusting elements could each also be configured as rotary switches, pressure switches or slide switches.
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A second variant of a setting unit is illustrated in
In the illustrated second variant, the actuator 130 has two axially opposite connecting elements 132. By way of these connecting elements 132, the actuator 130 engages in the channels 230 of the adjusting ring 220 such that a rotational movement of the adjusting ring 230 in the circumferential direction also causes a rotational movement of the actuator 130 and thus also a movement of the connecting elements 132 in the channels 230.
Furthermore, the transmission housing 110 has a plurality of first guide means 111 in the circumferential direction, said guide means 111 interacting with a plurality of second guide means 224, distributed in the circumferential direction, of the adjusting ring 220 and a plurality of third guide means 173, distributed in the circumferential direction, of a flange 172, such that a rotational movement of the adjusting ring (220) in the circumferential direction brings about an axial movement of the actuator (130). As can be clearly seen in
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A further, third position 603 (not illustrated) would be for example “drilling operation”. This third position 603 would likewise comprise the second gear having a high rotational speed and a low torque, but in this position a maximum rotational speed and a maximum torque would be automatically specified by the motor control means.
Furthermore, a spring element 300, which holds the slide switch 202 in the different positions, can be provided between the transmission housing 110 and the slide switch 202.
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In principle, it is also possible to use other sensors, for example Hall sensors, potentiometers, pressure sensors and/or other optical sensors, which each have at least one transmitter that emits light beams and a receiver that receives light beams, as optical sensor components for object sensing, or other sensors which are suitable for this purpose, wherein both active and passive sensors can be used. When active sensors are used, it is very advantageously possible to dispense with the provision of a supply voltage for the sensor, such that overall a very simple and cost-effective solution for sensing the position of the adjusting elements 200, 202, 204 is possible. Preferably, sensors that operate on the basis of a piezoelectric effect or by way of electromagnetic induction can be used as active sensors. Alternatively, it is also possible to use passive sensors which, although requiring the provision of a supply voltage, allow changing physical parameters to be sensed very reliably with high precision. Preferably, capacitive, resistive, inductive, galvanomagnetic or optical sensors can be used as passive sensors.
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In addition to the described and depicted embodiments, further embodiments which may comprise further modifications and combinations of features are conceivable.
Number | Date | Country | Kind |
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10 2013 222 550.4 | Nov 2013 | DE | national |