The present invention relates to a wireless communications system for a tool; and, more particularly, to the setting of wireless communications parameters including wireless communications frequency, transmission output power and the like.
In a factory where a screw tightening operation is performed by using a tool, the screw tightening operation has been managed by controlling a tightening torque by the tool and transmitting a signal for the completion of tightening at a required torque to a management device. In this case, it is preferable to use wireless communications as shown in Japanese Patent No. 2983124 and Japanese Patent Application Publication No. 2000-024945 rather than wire communications because the wire communications negatively affects the convenience of the tool.
However, there is possibility that there are various kinds of environmental noises, such as wireless LAN and the like, in the factory, thereby causing communications errors due to such noises during the wireless communications. However, conventionally, a wireless communications frequency has to be fixed and cannot be changed in the field and, thus, it is required to make the wireless communications frequency changeable.
Accordingly, there has been proposed to set and change a wireless communications frequency by a DIP switch. However, if many setting switches, including a DIP switch and the like, are provided with the tool, there can be a high possibility of a tool operation failure due to intrusion of foreign material such as iron powder and the like depending on the surrounding environment.
Moreover, in order to eliminate the necessity of providing setting switches for the tool, there has been proposed to use a personal computer (hereinafter, referred to as PC) to set a wireless communications frequency or the ID number of a transceiver by the PC. However, in such a case, when a plurality of tools is used in the factory, each of the tools needs to be connected to the PC to change the settings of all the tools, thus entailing an extremely poor working efficiency.
In view of the above, the present invention provides a wireless communications system for a tool which can easily change settings of wireless communications parameters including a wireless communications frequency and the like.
In accordance with an embodiment of the present invention, there is provided a wireless communications system including: a tool having a first wireless communications unit; and a transceiver having a second wireless communications unit to receive a signal transmitted from the first wireless communications unit, wherein the transceiver has a setting unit for setting wireless communications parameters for wireless communications between the first and the second wireless communications unit, and the tool has a tool control unit for setting in the wireless communications unit the wireless communications parameters set by the setting unit and transmitted to the tool by wireless communication.
In this configuration, the setting unit for the wireless communications parameters is provided in the transceiver which can keep its installation environment in a good condition, and further, the wireless communications parameters set by the setting unit can be easily set to the tool by wireless communication. In addition, the setting unit is not affected by the surrounding environment of the tool.
In accordance with another embodiment of the present invention, there is provided a wireless communications system including: a tool having a first wireless communications unit; and a transceiver having a second wireless communications unit to receive a signal transmitted from the first wireless communications unit, wherein the tool has a setting unit for setting wireless communications parameters for wireless communications between the first and the second wireless communications unit, the setting unit is a remote controller for the tool, and the transceiver has a transceiver control unit for setting in the second wireless communications unit the wireless communications parameters set by the setting unit and transmitted to the transceiver by wireless communications.
In this configuration, the setting unit for the wireless communications parameters is provided in the remote controller for the tool, and further, the wireless communications parameters set by the setting unit can be easily set to the transceiver by wireless communication. In addition, the setting unit is not affected by the surrounding environment of the tool.
Further, a dedicated frequency may be used to transmit the wireless communications parameters. Therefore, even if same systems are operated, interference with each other during normal operations can be eliminated.
Further, the wireless communications parameters may be transmitted at a transmission output power lower than that that of normal communications. Therefore, it is possible to suppress interferences with other systems using different frequency bands and to avoid adverse effects on other systems.
The wireless communications may include the number of retransmissions. An appropriate number of retransmissions can be set depending on operations.
Additionally, the transceiver may communicate with a plurality of tools having their respective identification numbers, the tools can be managed by a single transceiver, the number of installed transceivers and the transceiver installation space can be reduced, and a cost-saving can be achieved.
The objects and features of the present invention will become apparent from the following description of embodiments, given in conjunction with the accompanying drawings, in which:
Hereinafter, embodiments of the present invention will be described with reference to
In a first embodiment of the present invention, an electric impact driver serves as a tool 1 in an illustrated example. As shown in
The wireless communications unit 16 can change a transmission frequency as well as a transmission output power, and includes a wireless control unit 31 for performing transmission and reception, a transmission output power setting unit 32 for changing the transmission output power, and a transmission frequency setting unit 33 for changing the transmission frequency.
The operation state detecting unit 13 detects a tightening torque by detecting strokes of the hammer on the anvil and counting the number of strokes. Upon determination of the completion of the screw tightening, the tool control unit 15 stops the motor 10 and outputs an operation completion signal to the outside through the wireless communications unit 16. Further, the operation state detecting unit 13 may be a torque sensor or a detector for detecting an amount of the rotation angle of the output shaft 12.
As shown in
Meanwhile, in a management device that carries out the management of a screw tightening operation, the transceiver 2 receives the operation completion signal transmitted from the wireless communications unit 16 and includes a transceiver control unit 21, to which a wireless communications parameter setting unit 22 and a mode setting unit 23 are connected, and a wireless communications unit 24 as shown in
Here, the mode setting units 17 and 23 are respectively provided in the tool 1 and the transceiver 2 to switch between a normal communications mode and a registration mode for performing registration processing. The wireless communications parameters for wireless communications between the two wireless communications units 16 and 24 are set during the registration mode. Examples of the wireless communications parameters are shown in
First, an operation in the normal communications mode will be described with reference to
Then, if a registration mode switch, which is the mode setting unit 17, is not ON (No in step S10), the tool control unit 15 stops the motor 10 (step S11) when the trigger switch 19 is OFF in step S12, while the tool control unit 15 drives the motor 10 when the trigger switch 19 is ON in step S12. If an operation completion determination is detected by the operation state detecting unit 13 (Yes in step S13), the motor 10 is stopped in step S14, and, as stated above, an operation completion signal is transmitted from the wireless communications unit 16 in step S15. If the answer is NO in step S13, the process returns to step S12.
As shown in
The tool control unit 15 that receives the reception completion signal in step S21 determines that transmission has been completed when the transceiver ID number and the tool ID number match with those stored in the nonvolatile memory (Yes in step S22). Thereafter, the process returns to the step S10 when the trigger switch 19 is OFF in step S23.
Further, if the ID numbers do not match with those stored in the nonvolatile memory (No in Step S22), retransmission is repeated a predetermined number of times. If the number of retransmissions is infinite, the above-described process is repeated until the tool control unit 15 determines that the transmission is completed in step S24. The retransmission time duration may be set instead of the number of retransmissions. Various operations can be processed in a factory and the like and the operation intervals can be various, too. Thus, if a system requires to attempt retransmission until wireless transmission is successful is required, the number of retransmission is set to an infinite value and, if otherwise, it is set to a certain number of retransmissions available in each operation interval, thereby improving overall performance of the wireless communications in each operation to the maximum extent.
Next, the registration mode will be described. Upon recognition of the ON states of the respective registration mode switches (mode setting unit 17 and 23), the tool control unit 15 and the transceiver control unit 21 make a transition to the registration mode, respectively (Yes in step S10 shown in
The tool control unit 15 in the registration mode sets a usable frequency to a frequency CHO dedicated to registration in step S30, and sets a transmission output power setting to 0 (minimum output) in step S31 (
Then, the tool control unit 15 in the registration mode sends a registration request signal containing registration request identification data and its own tool ID number in step S32 shown in
This registration confirmation signal contains registration confirmation identification data, the transceiver ID number, the frequency for the operation completion signal, the transmission output power for the operation completion signal, and the number of retransmissions, as well as the tool ID number.
The tool control unit 15, which receives the registration confirmation signal in step S35 shown in
If the ID numbers match (Yes in step S40 shown in
Although the basic configurations and functions of a second embodiment are the same as those of the first embodiment, the second embodiment of the present invention is different from the first embodiment in that the mode setting unit 17 (shown in
The remote controller 3 of the tool 1 is a wireless type that performs signal transmission and reception to and from the tool control unit 15 by e.g., infrared communication and has a wireless communications parameter setting unit 30 therein. An example of the wireless communications parameters to be set is shown in
Hereinafter, operations in a wireless communications mode and in a registration mode in accordance with the present embodiment will now be described with reference to
As shown in
Next, the changing of the settings of the wireless communications parameters by using the remote controller 3 will now be described. As shown in
Meanwhile, as shown in
Referring back to
The tool control unit 15, which receives the registration request signal in step S54 shown in
The tool control unit 15 receives the registration completion signal transmitted from the transceiver 2 in step S57 shown in
Therefore, if the tool 1 and the transceiver 2 are switched back to the normal communications mode from the registration mode, wireless communications between the tool 1 and the transceiver 2 are achieved based on the wireless communications parameters newly stored in the nonvolatile memories of the respective control units 15 and 21.
Although the tool 1 is provided in a one-to-one relationship with the transceiver 2 in the foregoing first and second embodiments, multiple tools 1 having different tool ID numbers may be registered in a single transceiver 2 by repeating a registration operation and may communicate wirelessly with a single transceiver by setting wireless communications parameters. In this case, the number of transceivers 2 used for a process in a factory can be reduced, thereby saving the transceiver layout space and the costs.
Further, although the switching operation between the normal communications mode and the registration mode is performed by manipulating the remote controller 3 in the second embodiment, the mode setting unit 17 may be provided in the tool 1 to perform such switching operation.
While the invention has been shown and described with respect to the embodiments, it will be understood by those skilled in the art that various changes and modification may be made without departing from the scope of the invention as defined in the following claims.
Number | Date | Country | Kind |
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