power tools

A power tool with multiple batteries and a backflow prevention circuit ensures efficient power distribution, addressing battery consumption and communication issues, providing extended operation and uninterrupted functionality.

JP7759025B2Active Publication Date: 2025-10-23MAX CO LTD
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Patent Information

Application Number
JP2022064774
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-04-08
Publication Date
2025-10-23
Estimated Expiration
2042-04-08

AI Technical Summary

Technical Problem

Power tools with a single battery face challenges in providing sufficient working time due to battery power consumption by both the motor and communication device, and communication is not possible when the battery is removed.

Method used

A power tool design with multiple batteries, utilizing a first and second voltage supply system with a backflow prevention circuit to manage power distribution efficiently, ensuring effective operation of the motor and communication device independently.

Benefits of technology

The solution allows for extended operation time and maintains communication functionality even when the main battery is removed, enhancing work efficiency by enabling firmware updates without interrupting operations.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an electric power tool with an electric power tool power supply device capable of effectively utilizing each battery, where the electric power tool can be loaded with multiple batteries.SOLUTION: An electric power tool with an electric power tool power supply device comprises: a second voltage supply unit capable of supplying, based on a first power supply voltage supplied from a first battery, a second operating voltage for operating a second control unit, and capable of supplying, based on a second power supply voltage supplied from a second battery, a second operating voltage for operating the second control unit; a first voltage line configured to connect a first voltage supply unit and the second voltage supply unit and capable of supplying the first power supply voltage; a second voltage line configured to connect the first voltage supply unit and the second voltage supply unit and capable of supplying a second voltage lower than the first power supply voltage; and a backflow prevention circuit in the first voltage line capable of permitting a current to flow from the first voltage supply unit to the second voltage supply unit and capable of preventing a current from flowing from the second voltage supply unit to the first voltage supply unit.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to a power tool. [Background technology]

[0002] 2. Description of the Related Art In recent years, power tools have become known that are more convenient to use by incorporating a wireless communication device in the power tool body.

[0003] Patent Document 1 discloses a power tool that can be equipped with such a wireless communication device. This power tool includes a motor, a communication adapter in which the communication device is installed, and a detachable battery. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Special Publication No. 2014-529320 Summary of the Invention [Problem to be solved by the invention]

[0005] However, the power tool of Patent Document 1 has a problem in that it is only equipped with a single battery, and therefore the power of the battery is consumed not only by the motor but also by the communication device, which means that it cannot provide a sufficient working time.In addition, there is a problem in that communication is not possible when the battery is removed from the main body.

[0006] Therefore, as described in Patent Document 1, adding a built-in power source to the power tool may be considered. However, when a built-in power supply is installed in a power tool, it has been observed that while power is being supplied from the main battery to drive the electric motor, the power of the built-in power supply, which shares the same power line, is also consumed to drive the electric motor, making it impossible to effectively use the built-in power supply.

[0007] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a power tool that can be equipped with a plurality of batteries and that can effectively utilize each battery. [Means for solving the problem]

[0008] The present application discloses a power tool including a power tool power supply unit. This power supply device includes a first control unit for controlling an electric motor mounted on a power tool, a first voltage supply unit configured to supply a first operating voltage for operating the first control unit based on a first power supply voltage supplied from a first battery, a second control unit for controlling a communication device mounted on the power tool, a second voltage supply unit configured to supply a second operating voltage for operating the second control unit based on the first power supply voltage supplied from the first battery and to supply the second operating voltage for operating the second control unit based on a second power supply voltage supplied from a second battery, a first voltage line connecting the first voltage supply unit and the second voltage supply unit and configured to supply the first power supply voltage, a second voltage line connecting the first voltage supply unit and the second voltage supply unit and configured to supply a second voltage lower than the first power supply voltage, and a backflow prevention circuit configured to allow current to flow through the first voltage line from the first voltage supply unit to the second voltage supply unit and to prevent current from flowing from the second voltage supply unit to the first voltage supply unit.

[0009] Here, the power supply device for the power tool may be configured to be able to perform a first operation in which, when the first power supply voltage is applied from the first battery to the first voltage line, a current flows from the first battery to the second voltage supply unit in the first voltage line, and a current flows from the first voltage supply unit to the second voltage supply unit in the second voltage line.

[0010] Furthermore, the power supply device for a power tool may be configured to be able to perform a second operation in which, when the first power supply voltage is not applied from the first battery to a first voltage line, no current flows in the first voltage line and a current flows in the second voltage line from the second voltage supply unit to the first voltage supply unit.

[0011] The present application further discloses a power tool including the power supply device for a power tool exemplified in this embodiment, the electric motor, the communication device, the second battery, and the first battery detachably provided in a main body including the power supply device for a power tool, the electric motor, the communication device, and the second battery. The "power tool" of the present invention refers to a tool used for machining or other work that uses electricity as a power source. The "power tool" of the present invention includes not only a product used alone, but also a component or module that constitutes part of another device. For example, the "power tool" of the present invention may be a module that is attached to equipment such as a robot arm. The "power tool" of the present invention may also be a component that constitutes part of a machine tool with multiple functions. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 is a perspective view of a power tool according to one embodiment. [Figure 2] FIG. 2 is a cross-sectional view of a power tool according to one embodiment. [Figure 3] FIG. 3 is a block diagram showing the electrical circuit configuration of the power tool according to one embodiment. [Figure 4] FIG. 4 shows the voltages of the first voltage line and the second voltage line in the operation mode of the reinforcing bar binding machine according to this embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0013] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The following embodiments of the present invention will be described with reference to the accompanying drawings. The following embodiments are merely examples for explaining the present invention, and are not intended to limit the present invention to these embodiments.

[0014] For convenience, the left-right direction on the paper in FIG. 2 will be referred to as the front-to-back direction X (an example of a "first direction"), and in particular the left direction on the paper will be referred to as the front X1 and the right direction on the paper will be referred to as the back X2. The up-down direction on the paper will be referred to as the up-down direction Z (an example of a "second direction"), and in particular the up direction on the paper will be referred to as the up Z1 and the down direction on the paper will be referred to as the down Z2. The direction perpendicular to the front-to-back direction X and the up-down direction Z will be referred to as the left-to-right direction Y (an example of a "third direction"), and in particular the right direction when facing forward X1 will be referred to as the right Y1 and the left direction will be referred to as the left Y2. These terms are used for the purpose of explaining relative directional relationships and do not indicate absolute directions.

[0015] An embodiment in which the present invention is applied to a reinforcing bar binding machine, which is a power tool, will be described below. Fig. 1 is a perspective view of a reinforcing bar binding machine 10, which is a power tool according to this embodiment, and Fig. 2 is a cross-sectional view of the reinforcing bar binding machine 10 taken along a plane perpendicular to the left-right direction Y.

[0016] However, the present invention is widely applicable to power tools that have communication capabilities and use an electric motor to perform work, such as drills, impact drivers, nailers, grinders, reciprocating saws, polishers, etc. The motor may be a brushless motor or a motor with a brush.

[0017] [Basic configuration of power tools] The reinforcing bar binding machine 10 according to this embodiment is configured to be able to bind two or three or more reinforcing bars RB by feeding the wire W outward from the end of the front X1.

[0018] Specifically, the rebar tying machine 10 comprises a handle 10H for being held by an operator, a magazine 10M for storing the wire W, a wire feeding unit 12 for feeding the wire W outward from the front end X1, a curl forming unit 14 that forms a path of travel for the wire W for winding the wire W around the rebar RB, a cutting unit 16 for cutting the wire W wound around the rebar RB, a binding unit 18 for twisting the wire W wound around the rebar RB, a tool control unit including a drive control unit 22 for controlling a feed motor 12M and a binding motor 18M that are respectively equipped in the wire feeding unit 12 and the binding unit 18, and a communication unit 30 that comprises a communication device 32 for allowing the rebar tying machine 10 to communicate with external devices and a communication control unit 34 for controlling the communication device 32.

[0019] In the rebar tying machine 10 of this embodiment, the curl forming unit 14, cutting unit 16, tying unit 18, tool control unit, and communication unit 30 constitute the main body 10B of the rebar tying machine 10. The magazine 10M is provided extending downward Z2 from the lower part at the front X1 of the main body 10B. The handle 10H is provided extending downward Z2 from the lower part at the rear X2 of the main body 10B. Therefore, the magazine 10M is provided in front X1 of the handle 10H, and the handle 10H is provided in rear X2 of the magazine 10M. Furthermore, the lower part of the magazine 10M and the lower part of the handle 10H are connected. Each component will be described below.

[0020] The rebar binding machine 10 includes a handle 10H extending downward Z2 from the main body 10B. The handle 10H corresponds to the portion where an operator grips the rebar binding machine 10. The lower end of the handle 10H is formed so that a main battery 10BP can be detachably attached. A trigger 10HT is provided on the surface of the handle 10H facing forward X1. The rebar binding machine 10 is configured so that when an operator presses the trigger 10HT backward X2, the tool control unit starts a control operation as described below, and the binding operation begins.

[0021] The magazine 10M rotatably and detachably stores a reel RL around which a linear wire W is wound. The reel RL is configured to be able to simultaneously feed out one or more wires W. The wire W is a linear body suitable for bundling long, flexible metal wires (including coated wires) and other reinforcing bars RB.

[0022] The wire feeding unit 12 includes a pair of gears 12G configured to rotate in opposite directions while sandwiching the wire W, thereby allowing the wire W to advance, and a feed motor 12M (an example of an "electric motor") that drives the gears 12G. The feed motor 12M includes a rotor and a stator. The wire feeding unit 12 is configured to feed the wire W outward by rotating the rotor of the feed motor 12M in the forward direction, and to retract the wire W by rotating the rotor in the reverse direction. A tool control unit that controls the feed motor 12M of the wire feeding unit 12 will be described later.

[0023] The curl forming unit 14 includes a curl guide 14A that bends the wire W fed by the wire feeding unit 12 to form a curl, and an induction guide 14B that guides the wire W that has been curled by the curl guide 14A to the bundling unit 18. The curl guide 14A is configured to be able to curve the wire W into a loop by advancing the wire W along its inner wall surface. Therefore, by feeding the wire W in a state where multiple reinforcing bars RB are arranged in the space between the curl guide 14A and the induction guide 14B so that they extend in the left-right direction Y, it is possible to wind the wire W around the reinforcing bars RB.

[0024] The cutting unit 16 includes a fixed blade, a movable blade that cuts the wire W in cooperation with the fixed blade, and a transmission mechanism 16A that transmits the operation of the binding unit 18 to the movable blade. The cutting unit 16 is configured to be able to cut the wire W by the rotational operation of the movable blade with the fixed blade as a fulcrum axis. The transmission mechanism 16A is configured to transmit the operation of the binding unit 18 to the movable blade and to rotate the movable blade in conjunction with the binding operation of the binding unit 18. Therefore, the transmission mechanism 16A is configured to be able to cut the wire W at a predetermined timing, as described below, by rotating the movable blade in conjunction with the operation of the binding unit 18.

[0025] The binding unit 18 includes a pair of hooks 18H configured to be openable and closable to clamp the wire W, a rotating shaft for rotating the pair of hooks 18H around the forward / backward direction X as the rotation axis, a reducer for moving the rotating shaft in the rotation axis direction (forward / backward direction X) and rotating the rotating shaft that has moved forward X1, and a binding motor 18M configured to be rotatable around the rotation axis AX.

[0026] The rotating shaft of the bundling unit 18 rotates forward when the bundling motor 18M rotates in the forward direction. A sliding member is provided around the rotating shaft, and the sliding member is configured to move forward in the X1 direction when the rotating shaft rotates forward. When the pair of hooks 18H is in an open state, the wire W fed by the feed motor 12M advances while curving along the inner wall surfaces of the curl guide 14A and the induction guide 14B, and the tip of the wire W passes through the gap between the pair of open hooks 18H. When the bundling motor 18M rotates in the forward direction and the rotating shaft rotates forward in this state, the sliding member moves forward in the X1 direction, and the pair of hooks 18H close. Therefore, the pair of hooks 18H are configured to be able to clamp the wire W. When the bundling motor 18M further rotates in the forward direction and the rotating shaft rotates in the forward direction, the sliding member moves forward in the X1 direction, and the transmission mechanism 16A rotates the movable blade to cut the wire W. When the bundling motor 18M further rotates in the forward direction, the bundling unit 18 bends the tip of the cut wire W with the pair of hooks 18H clamping the wire W. When the bundling motor 18M further rotates in the forward direction, the rotating shaft rotates together with the sliding unit around the rotation axis in the front-rear direction X. When the pair of hooks 18H clamp the wire W, the pair of hooks 18H are configured to twist the wire W by rotating the rotating shaft.

[0027] [Electric circuit configuration of power tools] 3 is a block diagram showing the electrical circuit configuration of the reinforcing bar binding machine 10 according to this embodiment. Of the electrical circuit configuration of the reinforcing bar binding machine 10, the configuration for controlling the feed motor 12M, the configuration for controlling the communication device 32, and the configuration for supplying power (voltage) to these components constitute the power supply device 40 of this embodiment.

[0028] Specifically, the power supply device 40 of this embodiment includes a battery connection unit 40CN for receiving power (voltage) from a battery 10BP (sometimes referred to as a "driving battery" or "first battery"), a power switch 40S for turning on and off the supply of power (voltage) supplied from the battery connection unit 40CN, a first power control unit 41PC (an example of a "first voltage supply unit") that receives power (voltage) from the battery 10BP via the power switch 40S and supplies a first operating voltage for operating a drive control unit 22 (an example of a "first control unit") based on the first power supply voltage supplied from the battery 10BP, a drive control unit 22 that operates based on the first operating voltage and generates a control signal for controlling the feed motor 12M, and a motor control unit 24 that controls the current flowing through the stator of the feed motor 12M based on the control signal generated by the drive control unit 22.

[0029] Battery 10BP is configured to be capable of supplying power for operating at least drive control unit 22, motor control unit 24, feed motor 12M, binding motor 18M, communication control unit 34, wireless communication device 32, and position information acquisition unit 36 ​​(described later). Battery 10BP is, for example, a rechargeable lithium-ion secondary battery with a predetermined rated capacity, rated voltage, and rated current. For example, battery 10BP has a rated capacity of 5.0 Ah and is configured to be capable of supplying a rated DC voltage of 14.4 V. However, as described later, the DC voltage supplied from battery 10BP gradually decreases as power is consumed by battery 10BP.

[0030] The battery connector 40CN receives a DC voltage from the battery 10BP and supplies it to the first power control unit 41PC. The power supply device 40 includes a first voltage line 41 that connects the battery connector 40CN and the first power control unit 41PC, and the first DC power supply voltage supplied from the battery 10BP is applied to this first voltage line 41.

[0031] The power switch 40S turns on or off the supply of power (voltage) supplied from the battery 10BP to the first power control unit 41PC via the battery connection unit 40CN in accordance with the operation of the main power switch (not shown) of the rebar binding machine 10. Therefore, when the operator turns off the main power switch, the power switch 40S cuts off (turns off) the supply of power (voltage) from the battery 10BP to the first power control unit 41PC, and when the operator turns it on, the power switch 40S permits (turns on) the supply of power (voltage) from the battery 10BP to the first power control unit 41PC.

[0032] The first power control unit 41PC generates a voltage for operating each circuit element, including the drive control unit 22, based on the first power supply voltage supplied from the battery 10BP, and supplies the generated voltage to each circuit element. For example, the first power control unit 41PC generates a voltage of 3.3 V (an example of a "first operating voltage"), which is the operating voltage of the drive control unit 22, based on the first power supply voltage of 14.4 V supplied from the battery 10BP, and supplies the voltage to the drive control unit 22. The first power control unit 41PC is also configured to supply the first power supply voltage (14.4 V) as is to the motor control units 24 and 26 and the stators of each motor. Here, supplying a voltage includes generating and supplying a voltage and passing through and supplying a voltage as is without generating it. The first power control unit 41PC is further configured to generate an intermediate voltage that is higher than the first operating voltage but lower than the first power supply voltage, and supply the intermediate voltage to different circuit elements. The first power control unit 41PC may also include a booster circuit that generates a voltage higher than the first power supply voltage and supplies the voltage to different circuit elements.

[0033] The drive control unit 22 operates based on a voltage of, for example, 3.3 V, generates a control signal for controlling the feed motor 12M, and supplies the control signal to the motor control unit 24. The drive control unit 22 is also configured to be able to control other actuators of the rebar binding machine 10. The drive control unit 22 also supplies the first power supply voltage supplied from the first power control unit 41PC to the motor control unit 24 (for example, to the positive power supply line of the motor control unit 24). The drive control unit 22 is further configured to receive a signal detecting that the trigger 10HT has been pressed, and to start a motor control operation based on this signal. In addition, the drive control unit 22 may be configured to receive a signal indicating the temperature of the power tool (rebar binding machine 10) from a thermistor, and to control the feed motor 12M based on this signal. For example, the drive control unit 22 may generate different control signals and supply them to the motor control unit 24 when the power tool is relatively high and when it is relatively low.

[0034] The drive control unit 22 may be composed of a single or multiple processors implemented by an integrated circuit (IC) and a memory (including a non-volatile semiconductor memory that stores information non-transitory) that stores firmware including computer instructions that are executed by the processor and perform the processes described in this embodiment. The drive control unit 22 may also be implemented by an IC called an ASIC, FPGA, microcontroller, etc. The drive control unit 22 also functions as part of the tool control unit. The motor control unit 24 controls the current flowing through the stator of the feed motor 12M based on the control signal generated by the drive control unit 22. For example, the motor control unit 24 may include a plurality of (e.g., six) semiconductor elements connected in a three-phase bridge configuration between a positive power supply line and a negative power supply line of ground (reference potential), and a driver circuit for generating and supplying a gate signal (or base signal) to the gate (or base) of each semiconductor element.

[0035] The feed motor 12M, which is an electric motor in this embodiment, includes, for example, a stator made up of three-phase windings connected to three-phase outputs of the motor control unit 24, and a rotor configured to be rotatable in either the forward or reverse direction in accordance with a rotating magnetic field generated by current flowing through the stator windings. The feed motor 12M may further include, for example, a Hall element for detecting the position of the rotor, and the drive control unit 22 may be configured to receive a position signal from the Hall element and generate a control signal based on the signal.

[0036] Similarly, the power supply device 40 also includes a drive control unit for the bundling motor 18M that generates a control signal for controlling the bundling motor 18M and supplies it to the motor control unit 26 of the bundling motor 18M, and a motor control unit 26 that controls the current flowing through the stator of the bundling motor 18M based on the control signal generated by the drive control unit (detailed description will be omitted).The drive control unit for the bundling motor 18M and the drive control unit 22 for the feed motor 12M may be configured to be provided on the same semiconductor chip.

[0037] The power supply device 40 further includes a first wiring board 41PCB on which at least a first power control unit 41PC, a drive control unit 22, a motor control unit 24, and a motor control unit 26 are mounted. The first wiring board 41PCB is provided with a first connection portion 41CN (an example of a "first connector") for connection to a second wiring board 42PCB (described later) via a cable 40CB. As shown in FIG. 3, the first voltage line 41 includes a first wiring portion 41A that connects the battery connection portion 40CN and the first power control unit 41PC, and a second wiring portion 41B that branches from the first wiring portion 41A and connects to the first connection portion 41CN. The power supply device 40 further includes a second voltage line 42 that is configured to be able to apply a first operating voltage (3.3V) generated by the first power control unit 41PC and connects the first power control unit 41PC and the first connection portion 41CN. In Figure 3, the first wiring board 41PCB is drawn conceptually, but the actual first wiring board 41PCB is formed in a rectangular shape having two parallel long sides and two parallel short sides connecting the ends of the long sides.

[0038] The above-described configuration enables the supply of power to realize the functions of the power tool. Next, the configuration relating to the communication function of the power tool will be described.

[0039] As also shown in FIG. 3, the power supply device 40 includes a second battery 42BP for communication (sometimes referred to as a "communication battery"), a second power control unit 42PC (an example of a "second voltage supply unit") that is configured to be able to supply a second operating voltage for operating the communication control unit 34 (an example of a "second control unit") based on a first power supply voltage supplied from the main battery 10BP, and that is configured to be able to supply a second operating voltage for operating the communication control unit 34 based on the second power supply voltage supplied from the second battery 42BP when the main battery 10BP is removed, etc., and a communication control unit 34 that controls the wireless communication device 32 (an example of a "communication device 32") and the location information acquisition unit 36 ​​based on the second operating voltage supplied from the second power control unit 42PC.

[0040] The power tool further includes a communication unit 30 including a position information acquisition unit 36 ​​that acquires position information of the power tool and supplies it to a communication control unit 34, and a wireless communication device 32 for wirelessly transmitting and receiving information to and from external devices.

[0041] The position information acquisition unit 36 ​​includes, for example, an antenna configured to receive signals from GPS (or GLONASS or other GNSS) positioning satellites, and a receiving circuit that acquires position information of the power tool based on the signals received by the antenna.

[0042] The wireless communication device 32 includes an antenna configured to be able to transmit and receive information to and from a remote base station based on a predetermined standard using a frequency band in a licensed or unlicensed band based on, for example, LPWA technology, an RFIC that demodulates an analog signal received by the antenna and supplies it to a baseband IC, and modulates the signal supplied from the baseband IC into an analog signal and transmits it from the antenna, and a baseband IC that decodes or encodes the signal obtained from the RFIC in accordance with a protocol defined in the standard to transmit and receive information. Note that the communication device 32 may be compatible with a short-range wireless communication method such as Bluetooth (registered trademark) or wireless LAN.

[0043] With the above-described configuration, the communication control unit 34 is configured to provide the position information of the power tool to an external device, for example, by transmitting the position information acquired by the position information acquisition unit 36 ​​via the wireless communication unit 30. In this embodiment, the communication control unit 34, the RFIC, and the baseband IC may be stacked in the same semiconductor package. Alternatively, the communication control unit 34 and the baseband IC may be formed on the same semiconductor chip.

[0044] The power supply device 40 further includes a second wiring board 42PCB on which at least the second power control unit 42PC, the communication control unit 34, the communicator 32, and the position information acquisition unit 36 ​​are mounted. The second wiring board 42PCB is provided with a second connection portion 42CN (an example of a "second connector") for connection to the first wiring board 41PCB via a cable 40CB. As shown in FIG. 3, the first wiring portion 41A and the second wiring portion 41B of the first voltage line 41 are formed on the first wiring board 41PCB, while the third wiring portion 41C electrically connected to the first wiring portion 41A and the second wiring portion 41B via a connector is formed on the second wiring board 42PCB. Furthermore, the wiring portion connecting the first connection portion 41CN of the second voltage line 42 to the first power control unit 41PC is formed on the first wiring board 41PCB, while the wiring portion electrically connected to this wiring portion via a connector and connected to the second power control unit 42PC is formed on the second wiring board 42PCB.

[0045] The power supply device 40 further includes a second battery 42BP, which supplies power for operating at least the communication control unit 34, the wireless communication device 32, and the position information acquisition unit 36. The second battery 42BP is, for example, a rechargeable lithium-ion secondary battery having a predetermined rated capacity, rated voltage, and rated current. For example, the second battery 42BP has a rated capacity smaller than that of the main battery 10BP and is configured to supply a DC voltage rated at 3.6 V (an example of a "second power supply voltage"). In addition, since the second battery 42BP is housed within a housing constituting the power tool body 10B, unlike the main battery 10BP, it is not easily detachable and is instead integrally fixed to the second wiring board 42PCB. Note that the second battery 42BP does not have to be integrally fixed to the second wiring board 42PCB; for example, it may be detachable from the second wiring board 42PCB.

[0046] The second power control unit 42PC is configured to be able to generate a voltage for operating each circuit element including the communication control unit 34 and the drive control unit 22 based on the power supply voltage supplied from the battery 10BP and supply the generated voltage to each circuit element, etc. For example, the second power control unit 42PC generates a voltage of 3.3 V (an example of a "second operating voltage") that is the operating voltage of the communication control unit 34 based on the power supply voltage of 14.4 V supplied from the battery 10BP and supplies the voltage to the communication control unit 34 via a third voltage line 43 that connects the second power control unit 42PC and the communication control unit 34. Similarly, the second power control unit 42PC generates a predetermined operating voltage and supplies it to the position information acquisition unit 36 ​​and the wireless communication unit 30.

[0047] Additionally, the second power control unit 42PC is configured to generate an operating voltage for operating each circuit element, etc., based on a DC voltage of 3.6 V, equivalent to the second power supply voltage, supplied from the second battery 42BP, and supply the operating voltage to each circuit element, etc., including the communication control unit 34 and the drive control unit 22. Here, the second power control unit 42PC includes a boost circuit capable of generating a voltage higher than the second power supply voltage to operate the antenna. However, the rebar binding machine 10 does not necessarily have to include a boost circuit. In this embodiment, because the operating voltage of the antenna is higher than the second power supply voltage, the rebar binding machine 10 includes a boost circuit such as a charge pump circuit. However, for example, if the circuit elements are selected so that the operating voltage of the circuit elements driven by power from the second battery 42BP is equal to or lower than the second power supply voltage, or if the second power supply voltage is set, the rebar binding machine 10 does not necessarily have to include a boost circuit.

[0048] With the above-described configuration, when the main battery 10BP is removed, the second power control unit 42PC is configured to operate the drive control unit 22, the communication control unit 34, the position information acquisition unit 36, and the wireless communication unit 30 based on the second power supply voltage supplied from the second battery 42BP, thereby enabling wireless transmission and reception of information with an external device. Therefore, even when the main battery 10BP is removed, the communication control unit 34 is configured to provide the position information of the power tool to an external device by transmitting the position information acquired by the position information acquisition unit 36 ​​via the wireless communication unit 30, and is also configured to store update data for updating the firmware of the drive control unit 22, received via the wireless communication unit 30, in, for example, a nonvolatile semiconductor memory constituting the drive control unit 22.

[0049] Furthermore, the second power control unit 42PC is configured to generate a charging voltage for charging the second battery 42BP based on the power supply voltage supplied from the main battery 10BP, and to charge the second battery 42BP. Therefore, the power supply device 40 according to this embodiment is configured to operate the drive control unit 22, motor control unit 24, motor control unit 26, motors (feed motor 12M and bundling motor 18M), communication control unit 34, position information acquisition unit 36, and wireless communication unit 30 based on the power supplied from the battery 10BP when the battery 10BP is attached, and to charge the second battery 42BP, and is configured to operate the drive control unit 22, communication control unit 34, position information acquisition unit 36, and wireless communication unit 30 based on the power supplied from the second battery 42BP when the main battery 10BP is removed. As mentioned above, supplying a voltage includes passing it through without generating it and supplying it as is, so the power supply voltage may be supplied to the communication control unit 34, etc. by directly connecting the wiring to which the output voltage from the second battery 42BP is applied to the power supply terminal of the communication control unit 34, etc., or the power supply voltage may be supplied to the drive control unit 22, etc. by directly connecting the wiring to which the output voltage from the second power control unit 42PC is applied to the power supply terminal of the drive control unit 22, etc.

[0050] The power supply device 40 further includes a second wiring board 42PCB on which at least a second power control unit 42PC, a communication control unit 34, a position information acquisition unit 36, and a wireless communication unit 30 are mounted. The second wiring board 42PCB is provided with a second connection unit 42CN (an example of a "second connector") for connecting to the first wiring board 41PCB via a cable 40CB.

[0051] As shown in FIG. 3, the first voltage line 41 to which the power supply voltage from the battery 10BP is applied not only supplies voltage to the first power control unit 41PC via the power switch 40S, but also supplies voltage to the second power control unit 42PC by having wiring that connects to the second power control unit 42PC via the first connection portion 41CN of the first wiring board 41PCB, the cable 40CB, and the second connection portion 42CN of the second wiring board 42PCB.

[0052] Furthermore, the second voltage line 42 to which the first operating voltage (3.3V) generated by the first power control unit 41PC is applied has a wiring section connected to the second power control unit 42PC and the communication control unit 34 via a connection section of the first wiring board 41PCB, the cable 40CB, and a connection section of the second wiring board 42PCB, so that when the main battery 10BP is attached, it is configured to be able to supply power (voltage and current) in the direction from the first power control unit 41PC to the second power control unit 42PC, and when the main battery 10BP is removed, it is configured to be able to supply power (voltage and current) in the direction from the second power control unit 42PC to the first power control unit 41PC.

[0053] Here, the third wiring portion 41C of the first voltage line 41 provided on the second wiring board 42PCB is provided with, as a circuit configured to allow a current to flow from the first power control unit 41PC to the second power control unit 42PC and to prevent a current from flowing from the second power control unit 42PC to the first power control unit 41PC, for example, a diode (an example of a "backflow prevention circuit") having an anode connected to the first power control unit 41PC side and a cathode connected to the second power control unit 42PC. Note that the backflow prevention circuit may be provided in the second wiring portion 41B of the first voltage line 41 provided on the first wiring board 41PCB.

[0054] The inventors of the present application noticed that when multiple batteries 10BP are installed in an electric tool, when power is supplied from the main battery 10BP to drive the electric motor and communication device 32, the power of the second battery 42BP may also be unintentionally consumed. They came up with the idea of ​​providing a backflow prevention circuit and verified that the backflow prevention circuit can reduce power consumption from the second battery 42BP.

[0055] That is, if a power tool is configured without a backflow prevention circuit, the DC voltage supplied from the main battery 10BP to the first voltage line 41 gradually decreases as the power tool is used, resulting in a DC voltage lower than the initial 14.4V. It has been observed that if the power tool's electric motor (e.g., feed motor 12M) continues to be used despite the decrease in DC voltage applied to the first voltage line 41, power is supplied from the second battery 42BP to the motor to make up for the power shortage. In this case, it has been observed that in addition to the current flowing from the main battery 10BP to the first power control unit 41PC, a current also flows from the second battery 42BP to the first power control unit 41PC via the second power control unit 42PC. As a result, the second battery 42BP may not be charged as expected, or the second battery 42BP may not be able to provide sufficient power to the communication control unit 34 and other components due to a power shortage, which may impair the communication function when the main battery 10BP is removed.

[0056] Therefore, the inventors of the present application came up with the idea of ​​providing a backflow prevention circuit that is capable of allowing current to flow from the first power control unit 41PC (first voltage supply unit) to the second power control unit 42PC (second voltage supply unit) on the first voltage line 41, and is configured to prevent current from flowing from the second power control unit 42PC (second voltage supply unit) to the first power control unit 41PC (first voltage supply unit).

[0057] By providing a backflow prevention circuit, it is possible to prevent current from flowing from the second battery 42BP to the first power control unit 41PC via the second power control unit 42PC, thereby making it possible to effectively utilize the main battery 10BP and the second battery 42BP.

[0058] It is preferable that the second voltage line 42 is configured to be capable of allowing current to flow from the first power control unit 41PC (first voltage supply unit) to the second power control unit 42PC (second voltage supply unit), and to be capable of allowing current to flow from the second power control unit 42PC (second voltage supply unit) to the first power control unit 41PC (first voltage supply unit).

[0059] With this configuration, it is possible to supply power (voltage) to the power terminal of the drive control unit 22 of the first wiring board 41PCB via the second voltage line 42 that connects the second wiring board 42PCB, which is a communication board, the second connector, the first connector, and the first power control unit 41PC.

[0060] This allows the drive control unit 22 to operate even when the main battery 10BP is removed. For example, the drive control unit 22 can update firmware, which is a control program. This reduces the need for an operator to interrupt work in order to update firmware for the drive control unit 22, thereby improving work efficiency.

[0061] The second voltage line 42 may be provided to connect the first connector and the power supply terminal of the drive control unit 22 of the first wiring board 41PC directly without going through the first power control unit 41PC.

[0062] Additionally, the power supply device 40 according to this embodiment is configured to connect the first wiring board 41PCB and the second wiring board 42PCB via a cable 40CB (including wiring that forms part of the first voltage line 41 and wiring that forms part of the second voltage line 42). This allows the first wiring board 41PCB and the second wiring board 42PCB to be located in different positions. For example, the first wiring board 41PCB may be located above the motor 18M (Z1) so that the board is substantially perpendicular to the vertical direction Z, and the second wiring board 42PCB may be located to the left and right of the motor 18M (e.g., to the right Y1) so that the board is substantially perpendicular to the horizontal direction Y. This configuration allows the two wiring boards to be located substantially perpendicular to each other and surround the motor (either the motor 18M or the feed motor 12M). Here, the two wiring boards may be arranged so that the distance between the rotation axis of the motor (e.g., bundled motor 18M) (e.g., rotation axis AX of bundled motor 18M) and second wiring board 42PCB is greater than the distance between the rotation axis of the motor and first wiring board 41PCB. This configuration allows second wiring board 42PCB to be arranged farther from the motor than first wiring board 41PCB, reducing the possibility that noise associated with motor rotation will adversely affect communication, and allows first wiring board 41PCB to be arranged closer to the motor than second wiring board 42PCB, making it possible to reduce the distance between motor control unit 24 (or motor control unit 26) and the stator of the motor.

[0063] [Rebar binding machine operation] The operation of the reinforcing bar binding machine 10 will be described below. The reinforcing bar binding machine 10 according to this embodiment is configured to be able to execute each of the operation modes described below. Figure 4 shows the voltages of the first voltage line 41 and the second voltage line 42 in each operation mode of the reinforcing bar binding machine 10 according to this embodiment.

[0064] 4 also shows the state of power supply from second battery 42BP to circuit elements on first wiring board 41PCB. When power is being supplied from second battery 42BP to circuit elements on first wiring board 41PCB, the graph showing power in FIG. 4 shows a negative value. At this time, current flows from second wiring board 42PCB to first wiring board 41PCB through the wiring portion of second voltage line 42 connecting first wiring board 41PCB and second wiring board 42PCB, and second battery 42BP supplies power to the circuit elements on first wiring board 41PCB.

[0065] When power is being supplied from the first battery to the circuit elements on second wiring board 42PCB, the graph showing power in Fig. 4 shows a positive value. At this time, a current flows from first wiring board 41PCB to second wiring board 42PCB through at least one of the wiring portion of first voltage line 41 connecting first wiring board 41PCB and second wiring board 42PCB and the wiring portion of second voltage line 42 connecting first wiring board 41PCB and second wiring board 42PCB, and the first battery supplies power to the circuit elements on second wiring board 42PCB.

[0066] When power is not supplied from the first battery to the circuit elements on second wiring board 42PCB and power is not supplied from second battery 42BP to the circuit elements on first wiring board 41PCB, the graph showing power in Fig. 4 shows zero. At this time, no current flows through either the wiring portion of first voltage line 41 connecting first wiring board 41PCB and second wiring board 42PCB or the wiring portion of second voltage line 42 connecting first wiring board 41PCB and second wiring board 42PCB.

[0067] However, the rebar binding machine 10 can execute each operation mode in any order. The power tool of the present invention may be configured to execute any one of the operation modes described below, or may be configured to execute any two or more of the operation modes described below.

[0068] [Motor and drive control unit - not working, communication device - working] When the main battery 10BP is removed or the power switch 40S is turned off, the electric motor is in a non-operating state, and the communication device 32 of the power tool is configured to be operable.

[0069] 4 corresponds to an operating mode in which the electric motor and drive control unit 22 of the power tool are inactive and the communication device 32 is active. At this time, no DC voltage from the first battery is applied to the first voltage line 41, so the first voltage line 41 is at 0 V (ground level), and no current flows through the first voltage line 41. Furthermore, since there is no need to operate the circuit elements on the first wiring board 41 PCB, including the drive control unit 22, the second voltage line 42 is also at 0 V (ground level), and no current flows through the second voltage line 42. Furthermore, since power is not supplied from the first battery to the circuit elements on the second wiring board 42 PCB, or from the second battery 42BP to the circuit elements on the first wiring board 41 PCB, the graph showing power indicates zero.

[0070] At this time, the second battery 42BP supplies a second power supply voltage of 3.6 V to the second power control unit 42PC, and the second power supply unit generates an operating voltage for operating each circuit element, etc. of the communication unit 30 based on a DC voltage of 3.6 V equivalent to the second power supply voltage supplied from the second battery 42BP, and applies an operating voltage (3.3 V) of the communication control unit 34 to the third voltage line 43. Similarly, the second power control unit 42PC generates an operating voltage for operating each circuit element, etc., of the communication unit 30, such as the antenna, and supplies it to each circuit element, etc., including the communication control unit 34 and the drive control unit 22. Therefore, the communication unit 30 is configured to be operable.

[0071] With the above configuration, even when the main battery 10BP is removed, the power tool is configured to be able to provide the position information of the power tool to an external party by transmitting the position information acquired by the position information acquisition unit 36 ​​via the wireless communication unit 30. Therefore, even if the power tool is stolen, the position information of the power tool can be acquired.

[0072] [Motor - not operating, drive control unit and communication device - operating] The period from time t1 to time t2 in FIG. 4 corresponds to an operation mode (an example of "second operation") in which the electric motor of the power tool is in an inactive state and the drive control unit 22 and the communication device 32 are in an active state. At this time, no DC voltage from the first battery is applied to the first voltage line 41, so the first voltage line 41 is at 0 V (ground level), and no current flows through the first voltage line 41. Meanwhile, the second power control unit 42PC applies the operating voltage (3.3 V) of the drive control unit 22 to the second voltage line 42 based on the second power supply voltage supplied from the second battery 42BP. Similarly, the second power control unit 42PC applies the operating voltage (3.3 V) of the communication control unit 34 to the third voltage line 43 based on the second power supply voltage supplied from the second battery 42BP. Similarly, the second power control unit 42PC generates an operating voltage for operating each circuit element, such as the antenna of the communication unit 30, and supplies it to each circuit element, including the communication control unit 34 and the drive control unit 22. At this time, power is supplied from second battery 42BP to drive control unit 22, which is a circuit element on first wiring board 41PCB, so the graph showing power shows a negative value, and current flows in the direction from second wiring board 42PCB to first wiring board 41PCB in the wiring portion connecting first wiring board 41PCB and second wiring board 42PCB of second voltage line 42. Therefore, drive control unit 22 and communication unit 30 are configured to be operable.

[0073] With the above configuration, the power tool is configured to receive update data for the firmware, which is the control program of the drive control unit 22, using the communication unit 30, store the update data in the memory unit using the drive control unit 22, and update the firmware based on the update data, even when the main battery 10BP is removed.

[0074] [Motor operation, drive control unit and communication device operation] The period from time t2 in FIG. 4 corresponds to an operation mode ("an example of a first operation") in which the electric motor, drive control unit 22, and communication device 32 of the power tool are in operation. This operation mode begins when the operator turns on the main power switch to perform work. At this time, DC voltage from the first battery is applied to the first voltage line 41, so the first voltage line 41 is at 14.4 V. When the operator presses the trigger 10HT in this state, the motors (binding motor 18M and feed motor 12M) start to drive, and a current flows through the first wiring portion 41A of the first voltage line 41 toward the stator of the motor via the first power control unit 41PC.

[0075] Furthermore, the first battery is configured to be able to supply power to the communication unit 30. Specifically, the first power supply unit is configured to generate an operating voltage of 3.3 V for the communication control unit 34 based on a DC voltage of 14.4 V, which corresponds to the first power supply voltage, supplied from the first battery, and to supply the operating voltage to the communication control unit 34 via the second voltage line 42.

[0076] Additionally, when the charge amount of the second battery 42BP is low, the first battery is configured to be able to charge the second battery 42BP. Specifically, the second power supply unit is configured to generate a charging voltage for charging the second battery 42BP based on a DC voltage of 14.4 V, which corresponds to the first power supply voltage supplied from the first battery, and to charge the second battery 42BP.

[0077] At this time, power is supplied from the first battery to the communication unit 30 on the second wiring board 42PCB and the second battery 42BP, so the graph showing the power shows a positive value, and current flows in the direction from the second wiring board 42PCB to the first wiring board 41PCB in the wiring sections connecting the first wiring board 41PCB and the second wiring board 42PCB of the first voltage line 41 and the second voltage line 42, respectively.

[0078] Here, a diode (an example of a "backflow prevention circuit") is provided in the third wiring section 41C of the first voltage line 41, so that when power is supplied from the first battery 10BP to the electric motor to drive the electric motor, it is possible to prevent the electric power of the second battery 42BP from being unintentionally consumed in driving the electric motor.

[0079] As described above, with the electric power tool of this embodiment, when multiple batteries, such as a main battery and a sub-battery, are installed, it is possible to prevent a situation in which the power of the sub-battery is also consumed to drive the electric motor while power is being supplied from the main battery, thereby making it possible to make effective use of each battery.

[0080] The present invention can be modified in various ways without departing from the spirit of the invention. For example, within the scope of ordinary creativity of a person skilled in the art, some components in a certain embodiment can be replaced with other known elemental technologies. Also, some components in a certain embodiment can be replaced with other known elemental technologies. For example, the drive control unit and the communication control unit can operate at different voltages. [Explanation of symbols]

[0081] 10 Rebar binding machine (power tool) 10H handle 10HT Trigger 10M Magazine 10B Main body 10BP Battery (Battery Pack, 1st Battery) 12 Wire feed section 12G Gear 12M Feed Motor 14 Curl forming section 14A Curl Guide 14B Guidance guide 16 Cut section 16A Transmission Mechanism 18 Binding section 18H hook 18M Binding Motor (Electric Motor) 22 drive control unit (first control unit) 24 Motor control unit 26 Motor control unit 30 Communications Department 32 Communication Device 34 Communication control unit (second control unit) 36 Location information acquisition unit 40 Power supply 40CB cable 40CN battery connection 40D Diode (reverse current prevention circuit) 40S Power Switch 41 First voltage line 41A 1st wiring section 41B 2nd wiring section 41C 3rd wiring section 41PCB First wiring board 41PC First power control unit (first voltage supply unit) 41CN 1st connection part (1st connector) 42 Second voltage line 42PC Second power control unit (second voltage supply unit) 42CN Second connection part (second connector) 43 Third voltage line 42PCB Second wiring board 42BP Second Battery RL Reel W Wire RB rebar

Claims

1. An electric motor, a first control unit for controlling the electric motor; a first voltage supply unit configured to supply a first operating voltage for operating the first control unit based on a first power supply voltage supplied from a first battery; A communication device and a second control unit for controlling the communication device; A first battery; A second battery; a second voltage supply unit configured to be capable of supplying a second operating voltage for operating the second control unit based on the first power supply voltage supplied from the first battery and to be capable of supplying the second operating voltage for operating the second control unit based on the second power supply voltage supplied from the second battery; a first voltage line that connects the first voltage supply unit and the second voltage supply unit and is configured to be able to supply the first power supply voltage; a second voltage line that connects the first voltage supply unit and the second voltage supply unit and is configured to be able to supply a second voltage that is lower than the first power supply voltage; a backflow prevention circuit configured to allow a current to flow from the first voltage supply unit to the second voltage supply unit through the first voltage line and to prevent a current from flowing from the second voltage supply unit to the first voltage supply unit; A power tool comprising:

2. The second voltage line is The power tool according to claim 1, characterized in that it is configured to be able to allow current to flow from the first voltage supply unit to the second voltage supply unit and to be able to allow current to flow from the second voltage supply unit to the first voltage supply unit.

3. The power tool according to claim 1 , wherein the first operating voltage, the second operating voltage, and the second voltage are the same.

4. a first wiring substrate on which the first control unit and the first voltage supply unit are mounted; a second wiring board on which the second control unit and the second voltage supply unit are mounted; a first connector provided on the first wiring board; a second connector provided on the second wiring board; a cable connecting the first connector and the second connector, the cable including a power supply line constituting at least a part of the first voltage line and a power supply line constituting at least a part of the second voltage line; The power tool of claim 1 .

5. When the first power supply voltage is applied from the first battery to the first voltage line, a first operation is configured to be able to perform in which a current flows through the first voltage line from the first battery to the second voltage supply unit, and a current flows through the second voltage line from the first voltage supply unit to the second voltage supply unit; When the first power supply voltage is not applied from the first battery to the first voltage line, The second operation is configured to be able to perform in which no current flows through the first voltage line and a current flows through the second voltage line from the second voltage supply unit to the first voltage supply unit. The power tool according to any one of claims 1 to 4.

Citation Information

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