Nut runner
11014222 · 2021-05-25
Inventors
Cpc classification
B25B23/1475
PERFORMING OPERATIONS; TRANSPORTING
B25B23/1405
PERFORMING OPERATIONS; TRANSPORTING
B25B23/147
PERFORMING OPERATIONS; TRANSPORTING
B25B21/008
PERFORMING OPERATIONS; TRANSPORTING
B25B23/14
PERFORMING OPERATIONS; TRANSPORTING
International classification
B25B23/147
PERFORMING OPERATIONS; TRANSPORTING
B25B23/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In a nut runner with a motor (3) for generating a torque, a tool holder (9) which is operatively connected with the motor (3) and transmits the generated torque to a tool, a measuring device (7) which continuously measures at least one measurement quantity for determining the torque and forwards the measurement value, and a control device (12) which is connected with the motor (3) and the measuring device (7) and controls the operation of the motor (3) such that after starting it generates a continuously increasing torque, and which shuts off the motor upon reaching a setpoint measurement value, the measuring device is a torque sensor (7) and the torque sensor (7) is arranged between the motor (3) and the tool holder (9).
Claims
1. A nut runner, comprising a motor for generating a torque, a tool holder which is operatively connected with the motor and transmits the generated torque to a tool, the tool holder being configured to receive a slip-on tool, a measuring device which continuously measures at least one measurement quantity for determining the torque and forwards the measurement value, a control device which is connected with the motor and the measuring device and controls the operation of the motor such that after starting it generates a continuously increasing torque, and which switches off the motor upon reaching a set point measurement value, wherein the measuring device is a torque sensor (7) and the torque sensor (7) is arranged between the motor (3) and the tool holder (9), wherein the torque sensor (7) is arranged in output direction directly before the tool holder (9) or a support arm (8) and wherein a planetary transmission (6) is arranged between and is operatively connected with motor (3) and tool holder (9); and the torque sensor (7) is part of the planetary transmission (6) and wherein elements (27) are arranged in an outer wall (25) of an output shaft (19) of the planetary transmission (6) and respond to the torsion of the output shaft (19) and wherein the torque sensor (7) is adapted to measure such response of the elements (27).
2. The nut runner according to claim 1, wherein the motor (3) is an electric motor.
3. The nut runner according to claim 1, wherein the torque sensor (7) and the control device (12) are connected with an evaluation unit (13) to which the torque sensor (7) forwards the measured torques and from which the control device (12) receives a switch-off signal for switching off the motor (3) upon reaching a set point torque.
4. The nut runner according to claim 3, wherein the evaluation unit (13) is arranged outside the nut runner (1).
5. The nut runner according to claim 1, further comprising a wireless data transmission connection (22) between torque sensor (7) and evaluation unit (13) or between evaluation unit (13) and control device (12) or between control device (12) and motor (3).
6. The nut runner according to claim 1, further comprising a data output (17) for receiving the measured torques and for transmitting the same to an external data carrier (17a).
7. The nut runner according to claim 6, wherein the data output (17) is equipped to wirelessly transmit the measured torques to an external data carrier (17a).
8. The nut runner according to claim 6, wherein the data output (17) is equipped to transmit the measured torques to an evaluation unit (13) in a wireless manner, to receive the switch-off signal from the evaluation unit (13) and to transmit the same to the control device, in order to switch off the motor (3).
Description
(1) The invention will subsequently be explained in greater detail by way of example with reference to the drawings, in which:
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(14) The exemplary embodiments of a nut runner 1 according to the invention as shown in the Figures in output direction one after the other include a handle 2, a motor 3, a rotary joint 4, a switch-over transmission 5, a planetary transmission 6 with a torque sensor 7 and a support arm 8 as well as an output square 9 with attached slip-on socket 10. The components are attached to each other in said order, wherein the torque sensor 7 and the support arm 8 are attached to the planetary transmission 6.
(15) The motor 3 is an electric motor and is supplied with electricity via the handle 2 to which a power cable 11 is attached. The nut runner 1 can, however, also include a battery for power supply.
(16) In the handle 2 a control device 12 (
(17) On the upper side of the handle 2 a display 14 and an input device 15 are arranged (
(18) Control device 12, display 14 and input device 15 are accommodated in a common electronic component 16.
(19) Furthermore, the handle 2 includes a data output 17 (
(20) By means of the rotary joint 4 between motor 3 and switch-over transmission 5, motor 3 and handle 2 can be rotated with respect to the remaining part of the nut runner 1, in order to bring the handle 2 into a comfortable and safe working position.
(21) By means of the switch-over transmission 5, the operation of the nut runner 1 can be switched to and fro between a fast gear and a low gear. For this purpose, the switch-over transmission 5 includes a rotary switch 18. In the fast gear, it is possible to operate at maximum speed with reduced torque. In the low gear, on the other hand, it is possible to operate with maximum torque at reduced speed.
(22) The planetary transmission 6 serves for generating large torques, for example 150 Nm to 13,000 Nm. At its input or drive end, the planetary transmission 6 is driven by the motor 3. At its output or driven end, an output shaft 19 is located, to which the output square 9 is attached, on which the exchangeable slip-on socket 10 is mounted.
(23) In circumferential direction around the output shaft 19 the torque sensor 7 extends as closed ring, which will be described in detail in connection with
(24) On the output shaft 19 the support arm 8 is fixed, wherein between output shaft 19 and support arm 8 a plain bearing 20 is arranged. The support arm 8 supports on the screw construction or on adjacent screws, in order to generate the counter-torque.
(25) In the exemplary embodiment shown in
(26) Power and data cables 21 installed in the interior of the nut runner 1 connect torque sensor 7, evaluation unit 13, control device 12 and data output 17 with each other. Furthermore, data can be output at the data output 17 in a cable-bound manner.
(27) In the exemplary embodiment shown in
(28) In the exemplary embodiment shown in
(29) In the exemplary embodiment shown in
(30) Consideration also is given to equip the data output 17 to the end that it preferably wirelessly transmits the measured torques to an evaluation unit 13, receives the switch-off signal from the evaluation unit 13 and thereupon transmits the switch-off signal to the control device 12, so that the same switches off the motor 3.
(31) In
(32) In
(33) In the embodiment shown in
(34) In the outer wall 25 of the output shaft 19 two rows parallel to each other each with a plurality of oblong depressions 26 extending in longitudinal direction of the output shaft 19 extend in circumferential direction. The depressions 26 of the two rows face each other at a specified distance in longitudinal direction of the output shaft 19 and are arranged at a constant distance to each other in circumferential direction.
(35) In the depressions 26 elements 27 are arranged, which respond to a torsion of the output shaft 19. Such elements 27 for example can be magnets, optoelectronic elements or strain gauges.
(36) In the exemplary embodiments shown here, the depressions 26 contain magnets 27.
(37) Between the output shaft 19 and the nut runner housing 23 and hence also between the magnets 27 and the nut runner housing 23 a plain bearing 20 is arranged, in order to ensure that the output shaft 19 rotates in the nut runner housing 23 with as little friction as possible.
(38) The torque sensor 7 measures changes in the magnetic field, which are obtained in the magnets 27 due to the torsion of the output shaft 19 upon generation of the torques and likewise change with the change in torque.
(39) The distance 28 between the side of the torque sensor 7 facing the output shaft 19 and the outer wall 25 of the output shaft 19 or the magnets 27 arranged therein is so small that a proper torque measurement is ensured. The thickness of the nut runner housing 23 is adapted correspondingly in this region.
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