Electric work machine

JP2024059481A5Active Publication Date: 2025-08-21MAKITA CORP
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Patent Information

Application Number
JP2022167172
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2022-10-18
Publication Date
2025-08-21
Estimated Expiration
2042-10-18

AI Technical Summary

Technical Problem

The lighting system in electric working machines, particularly those using chip on board light emitting diodes (COB LEDs), experiences deterioration in light emitting performance due to impacts from falls or drops.

Method used

The electric working machine is designed with a specific configuration where the light emitting elements are positioned at a shifted angle on the substrate and surrounded by banks and a phosphor layer, with resistors and electrodes arranged to absorb shocks and maintain light emission.

Benefits of technology

This configuration effectively prevents damage to the light emitting elements during impacts, maintaining light performance and ensuring consistent illumination.

✦ Generated by Eureka AI based on patent content.

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Abstract

To prevent deterioration of light emission performance of a light unit even if an impact is applied to the light unit.SOLUTION: An electric work machine comprises: a motor; a housing with a motor housing portion housing the motor and a grip portion projecting downward from the motor housing portion; an output unit disposed in front of the motor and configured to be operated by a rotational force of the motor; a substrate disposed over an upper side, a left side, and a right side of the output unit; and a plurality of light emitting elements mounted on a front surface of the substrate at intervals in a circumferential direction of the output unit. A light emitting element closest to a vertex portion of the substrate immediately above the output unit is disposed at a position shifted by a predetermined angle in a circumferential direction from the vertex portion.SELECTED DRAWING: Figure 11
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Description

[Technical field]

[0001] The technology disclosed in this specification relates to an electric operating machine. [Background technology]

[0002] 2. Description of the Related Art In the technical field relating to electric power tools, a lighting system for a power tool, such as that disclosed in Patent Document 1, is known. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] US Patent Application Publication No. 2016 / 0354889 Summary of the Invention [Problem to be solved by the invention]

[0004] In Patent Document 1, the power tool lighting system has chip on board light emitting diodes (COB LEDs) as a light unit. When an electric tool is provided with a light unit, if the light unit is subjected to an impact, for example, when the electric tool is dropped, the light emission performance of the light unit may be reduced.

[0005] The technology disclosed in this specification aims to suppress deterioration in the light emitting performance of the light unit even if the light unit is subjected to an impact. [Means for solving the problem]

[0006] This specification discloses an electric working machine. The electric working machine may include a motor, a housing having a motor housing portion that houses the motor and a grip portion that protrudes downward from the motor housing portion, an output portion that is arranged forward of the motor and is operated by the rotational force of the motor, a board arranged above, to the left, and to the right of the output portion, and a plurality of light-emitting elements mounted at intervals in the circumferential direction of the output portion on the front surface of the board. The light-emitting element closest to the apex of the board directly above the output portion may be arranged at a position shifted by a predetermined angle in the circumferential direction from the apex. Effect of the Invention

[0007] According to the above configuration, even if an impact is applied to the light unit, the deterioration of the light emitting performance of the light unit is suppressed. [Brief description of the drawings]

[0008] [Figure 1] FIG. 1 is a perspective view from the front showing an electric operating machine according to this embodiment. [Diagram 2] FIG. 2 is a side view showing an upper portion of the electric operating machine according to this embodiment. [Diagram 3] FIG. 3 is a vertical cross-sectional view showing an upper portion of the electric operating machine according to this embodiment. [Figure 4] FIG. 4 is a cross-sectional view showing an upper portion of the electric operating machine according to this embodiment. [Diagram 5] FIG. 5 is a cross-sectional view showing a part of the light unit according to this embodiment. [Figure 6] FIG. 6 is an exploded perspective view, seen from the front, showing the upper part of the electric working machine according to this embodiment. [Figure 7] FIG. 7 is a perspective view showing the light unit according to this embodiment, seen from the front. [Figure 8] FIG. 8 is a perspective view showing the light unit according to this embodiment, seen from the rear. [Figure 9] FIG. 9 is an exploded perspective view showing the light unit according to this embodiment, as viewed from the front. [Figure 10]FIG. 10 is an exploded perspective view showing the light unit according to this embodiment, as seen from the rear. [Figure 11] FIG. 11 is a front view of the chip-on-board light-emitting diode according to this embodiment. [Figure 12] FIG. 12 is a front view of the substrate according to this embodiment. [Figure 13] FIG. 13 is a diagram that illustrates a state in which the electric operating machine according to this embodiment has been dropped. [Figure 14] FIG. 14 is a front view of a substrate of a chip-on-board light-emitting diode according to another embodiment. [Figure 15] FIG. 15 is a front view of a substrate of a chip-on-board light-emitting diode according to another embodiment. [Figure 16] FIG. 16 is a front view of a substrate of a chip-on-board light-emitting diode according to another embodiment. [Figure 17] FIG. 17 is a front view of a substrate of a chip-on-board light-emitting diode according to another embodiment. [Figure 18] FIG. 18 is a perspective view from the front showing an electric operating machine according to another embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0009] In one or more embodiments, the electric operating machine may include a motor, a housing having a motor housing portion for housing the motor and a grip portion protruding downward from the motor housing portion, an output portion disposed forward of the motor and actuated by a rotational force of the motor, a base plate disposed above, to the left, and to the right of the output portion, and a plurality of light-emitting elements mounted on a front surface of the base plate at intervals in a circumferential direction of the output portion. The light-emitting element closest to a vertex of the base plate directly above the output portion may be disposed at a position shifted by a predetermined angle in the circumferential direction from the vertex.

[0010] In the above configuration, when the light unit has a substrate and a light-emitting element, even if an impact is applied to the top of the substrate due to, for example, a drop of an electric work machine, the light-emitting element is not disposed on the top of the substrate, so that the light-emitting element is prevented from being damaged or separated from the substrate. Therefore, the light-emitting element is prevented from becoming unlit. Therefore, the deterioration of the light-emitting performance of the light unit is prevented.

[0011] In one or more embodiments, the multiple light-emitting elements may be arranged in line symmetry with respect to a straight line that passes through the central axis of the output portion and the apex portion and extends in the up-down direction.

[0012] In the above configuration, the work target of the electric work machine is properly illuminated by the multiple light-emitting elements.

[0013] In one or more embodiments, the substrate may have an annular portion disposed around the output portion, and the plurality of light emitting elements may be mounted on a front surface of the annular portion.

[0014] In the above configuration, a plurality of light-emitting elements are mounted on the front surface of the annular portion of the substrate, so that the work target of the electric work machine is properly illuminated.

[0015] In one or more embodiments, the multiple light emitting elements may be equally spaced circumferentially on the front surface of the annular portion.

[0016] In the above configuration, a plurality of light emitting elements are mounted at equal intervals on the front surface of the annular portion of the substrate, so that the work target of the electric work machine is properly illuminated.

[0017] In one or more embodiments, the light unit may include a bank arranged on the front surface of the annular portion radially inward and radially outward from the light-emitting element, a phosphor arranged inside the bank to cover the light-emitting element, and an optical element having an outer tube portion arranged radially outward from the annular portion and a light-transmitting portion arranged in front of the light-emitting element and through which light emitted from the light-emitting element passes.

[0018] In the above configuration, the light emitted from the light-emitting element is emitted forward of the light unit through the phosphor and the light-transmitting portion. For example, if an electric work machine is dropped, an impact may be applied to the top of the substrate, and the impact may be applied to the bank through the outer tube portion. Even if the bank is deformed or damaged due to the impact, the light-emitting element is not disposed at the top of the substrate, so that the light-emitting element is prevented from being damaged or separated from the substrate.

[0019] In one or more embodiments, the substrate may have a protrusion that protrudes upwardly from a top portion of the annular portion.

[0020] In the above configuration, for example, if the electric operating machine is dropped, the protrusion absorbs the impact on the apex of the annular portion. In other words, the protrusion functions as an impact absorbing portion, thereby preventing excessive impact from being applied to the light-emitting element.

[0021] In one or more embodiments, the upper surface of the protrusion may be a flat surface extending in the left-right direction.

[0022] In the above configuration, the protrusion properly functions as a shock absorbing portion.

[0023] In one or more embodiments, the upper surface of the protrusion may be a curved surface in which the central portion in the left-right direction of the upper surface bulges upward.

[0024] In the above configuration, the protrusion properly functions as a shock absorbing portion.

[0025] In one or more embodiments, the light unit may include a positive electrode provided on the substrate and to which a positive voltage is applied, and a negative electrode provided on the substrate and to which a negative voltage is applied. Each of the plurality of light-emitting elements may be connected in parallel to the positive electrode and the negative electrode.

[0026] In the above configuration, since a plurality of light-emitting elements are connected in parallel, even if one light-emitting element goes out of light, the other light-emitting elements are prevented from going out of light.

[0027] In one or more embodiments, the light unit may include a power supply line provided on the substrate and connected to each of the plurality of light-emitting elements, and a resistor disposed on the power supply line.

[0028] In the above configuration, the voltage applied to the light-emitting element is adjusted by the resistor, and the luminance of the plurality of light-emitting elements is made uniform by the resistor, for example.

[0029] In one or more embodiments, a resistor may be disposed between a pair of adjacent light emitting elements on the front surface of the substrate.

[0030] In the above configuration, the light emitting element and the resistor are each properly mounted on the front surface of the substrate.

[0031] In one or more embodiments, the resistor may be located at the apex.

[0032] In the above configuration, even if an impact is applied to the top portion of the board, for example, when an electric work machine is dropped, the resistor is less likely to be damaged than the light-emitting element, so deterioration of the light-emitting performance of the light unit is suppressed.

[0033] In one or more embodiments, the substrate may have an annular portion disposed around the output portion, and the light emitting elements and resistors may be arranged one on top of the other in a circumferential direction on a front surface of the annular portion.

[0034] In the above configuration, the light emitting element and the resistor are each properly mounted on the front surface of the annular portion.

[0035] In one or more embodiments, the output may include an anvil that is rotationally struck by a hammer.

[0036] In the above configuration, the light unit is applied to an impact tool.

[0037] Hereinafter, an embodiment will be described with reference to the drawings. In the embodiment, the positional relationship of each part will be described using the terms left, right, front, rear, top, and bottom. These terms indicate relative positions or directions based on the center of the electric operating machine.

[0038] [Electric work equipment] Fig. 1 is a front perspective view showing an electric working machine 1 according to this embodiment. Fig. 2 is a side view showing an upper part of the electric working machine 1 according to this embodiment. Fig. 3 is a vertical cross-sectional view showing an upper part of the electric working machine 1 according to this embodiment. Fig. 4 is a horizontal cross-sectional view showing an upper part of the electric working machine 1 according to this embodiment.

[0039] In this embodiment, the electric work machine 1 is an electric tool having an electric motor 6 as a power source. A direction parallel to the rotation axis AX of the motor 6 is appropriately referred to as the axial direction, a direction going around the rotation axis AX is appropriately referred to as the circumferential direction or the rotation direction, and a radial direction of the rotation axis AX is appropriately referred to as the radial direction. In the radial direction, a position close to or approaching the rotation axis AX is appropriately referred to as the radial inner side, and a position far from or away from the rotation axis AX is appropriately referred to as the radial outer side. In this embodiment, the rotation axis AX extends in the front-rear direction. One axial side is the front, and the other axial side is the rear.

[0040] In this embodiment, the electric operating machine 1 is an impact tool, which is a type of electric tool. In the following description, the electric operating machine 1 will be referred to as the impact tool 1 as appropriate.

[0041] In this embodiment, the impact tool 1 is an impact driver, which is a type of screw tightening tool. The impact tool 1 includes a housing 2, a rear cover 3, a hammer case 4, a case cover 5, a motor 6, a reduction mechanism 7, a spindle 8, a striking mechanism 9, an anvil 10, a tool holding mechanism 11, a fan 12, a battery mounting section 13, a trigger lever 14, a forward / reverse rotation switching lever 15, a hand mode switching button 16, and a light unit 18.

[0042] The housing 2 is made of synthetic resin. In this embodiment, the housing 2 is made of nylon. The housing 2 includes a left housing 2L and a right housing 2R disposed to the right of the left housing 2L. The left housing 2L and the right housing 2R are fixed together by a plurality of screws 2S. The housing 2 is composed of a pair of half-split housings.

[0043] The housing 2 has a motor accommodating portion 21, a grip portion 22, and a battery holding portion 23.

[0044] The motor accommodating portion 21 is cylindrical and accommodates the motor 6, a part of the bearing box 24, and the rear part of the hammer case 4.

[0045] The grip portion 22 protrudes downward from the motor housing portion 21. The trigger lever 14 is provided on an upper portion of the grip portion 22. The grip portion 22 is held by an operator.

[0046] The battery holding portion 23 is connected to a lower end portion of the grip portion 22. The outer dimensions of the battery holding portion 23 are larger than the outer dimensions of the grip portion 22 in both the front-rear direction and the left-right direction.

[0047] The rear cover 3 is made of synthetic resin. The rear cover 3 is disposed rearward of the motor accommodating portion 21. The rear cover 3 accommodates at least a portion of the fan 12. The fan 12 is disposed on the inner peripheral side of the rear cover 3. The rear cover 3 is disposed so as to cover an opening at the rear end portion of the motor accommodating portion 21. The rear cover 3 is fixed to the rear end portion of the motor accommodating portion 21 with screws 3S.

[0048] The motor accommodating portion 21 has an air intake port 19. The rear cover 3 has an air exhaust port 20. Air in the external space of the housing 2 flows into the internal space of the housing 2 through the air intake port 19. Air in the internal space of the housing 2 flows out to the external space of the housing 2 through the air exhaust port 20.

[0049] The hammer case 4 functions as a gear case that houses the reduction mechanism 7. The hammer case 4 houses at least a part of the reduction mechanism 7, the spindle 8, the striking mechanism 9, and the anvil 10. The hammer case 4 is made of metal. In this embodiment, the hammer case 4 is made of aluminum. The hammer case 4 is cylindrical.

[0050] The hammer case 4 includes a rear cylinder portion 4A, a front cylinder portion 4B, and an annular portion 4C. The front cylinder portion 4B is disposed forward of the rear cylinder portion 4A. The outer diameter of the rear cylinder portion 4A is larger than the outer diameter of the front cylinder portion 4B. The inner diameter of the rear cylinder portion 4A is larger than the inner diameter of the front cylinder portion 4B. The annular portion 4C is disposed to connect the front end portion of the rear cylinder portion 4A and the rear end portion of the front cylinder portion 4B.

[0051] The hammer case 4 is connected to the front part of the motor housing section 21. A bearing box 24 is fixed to the rear part of the rear cylinder section 4A. At least a part of the reduction mechanism 7 is arranged inside the bearing box 24. A screw thread is formed on the outer periphery of the bearing box 24. A screw groove is formed on the inner periphery of the rear part of the rear cylinder section 4A. The screw thread of the bearing box 24 and the screw groove of the rear cylinder section 4A are coupled to each other, thereby fixing the bearing box 24 and the hammer case 4. The hammer case 4 is sandwiched between the left housing 2L and the right housing 2R. A part of the bearing box 24 and the rear part of the rear cylinder section 4A are housed in the motor housing section 21. The bearing box 24 is fixed to each of the motor housing section 21 and the hammer case 4.

[0052] The case cover 5 covers at least a portion of the surface of the hammer case 4. In this embodiment, the case cover 5 covers the surface of the rear cylinder portion 4A. The case cover 5 is made of synthetic resin. In this embodiment, the case cover 5 is made of polycarbonate resin. The case cover 5 protects the hammer case 4. The case cover 5 prevents contact between the hammer case 4 and objects around the impact tool 1. The case cover 5 prevents contact between the hammer case 4 and an operator.

[0053] The motor 6 is a power source of the impact tool 1. The motor 6 generates a rotational force. The motor 6 is an electric motor. The motor 6 is an inner rotor type brushless motor. The motor 6 has a stator 26 and a rotor 27. The stator 26 is supported by the motor accommodating portion 21. At least a portion of the rotor 27 is disposed inside the stator 26. The rotor 27 rotates relative to the stator 26. The rotor 27 rotates about a rotation axis AX extending in the front-rear direction.

[0054] The stator 26 includes a stator core 28 , a front insulator 29 , a rear insulator 30 , and a coil 31 .

[0055] The stator core 28 is disposed radially outward of the rotor 27. The stator core 28 includes a plurality of stacked steel plates. The steel plates are metal plates whose main component is iron. The stator core 28 is cylindrical. The stator core 28 has a plurality of teeth that support the coils 31.

[0056] The front insulator 29 is provided at the front of the stator core 28. The rear insulator 30 is provided at the rear of the stator core 28. The front insulator 29 and the rear insulator 30 are each an electrical insulating member made of synthetic resin. The front insulator 29 is disposed so as to cover a portion of the surface of the teeth. The rear insulator 30 is disposed so as to cover a portion of the surface of the teeth.

[0057] The coil 31 is attached to the stator core 28 via the front insulator 29 and the rear insulator 30. A plurality of coils 31 are arranged. The coils 31 are arranged around the teeth of the stator core 28 via the front insulator 29 and the rear insulator 30. The coils 31 and the stator core 28 are electrically insulated by the front insulator 29 and the rear insulator 30. The multiple coils 31 are connected via fusing terminals 38.

[0058] The rotor 27 rotates about a rotation axis AX. The rotor 27 has a rotor core portion 32, a rotor shaft portion 33, a rotor magnet , and a sensor magnet .

[0059] The rotor core portion 32 and the rotor shaft portion 33 are each made of steel. In this embodiment, the rotor core portion 32 and the rotor shaft portion 33 are integral with each other. A front portion of the rotor shaft portion 33 protrudes forward from a front end surface of the rotor core portion 32. A rear portion of the rotor shaft portion 33 protrudes rearward from a rear end surface of the rotor core portion 32.

[0060] The rotor magnet 34 is fixed to the rotor core portion 32. The rotor magnet 34 is cylindrical. The rotor magnet 34 is disposed around the rotor core portion 32.

[0061] The sensor magnet 35 is fixed to the rotor core portion 32. The sensor magnet 35 is annular. The sensor magnet 35 is disposed on the front end surface of the rotor core portion 32 and the front end surface of the rotor magnet .

[0062] A sensor board 37 is attached to the front insulator 29. The sensor board 37 is fixed to the front insulator 29 with screws 29S. The sensor board 37 has a circular circuit board, a magnetic sensor 37A supported by the circuit board, and a resin molded body 37B that covers the magnetic sensor 37A. At least a portion of the sensor board 37 faces the sensor magnet 35. The magnetic sensor 37A detects the position of the sensor magnet 35 to detect the position of the rotor 27 in the rotational direction.

[0063] A rear portion of the rotor shaft portion 33 is rotatably supported by a rotor bearing 39. A front portion of the rotor bearing 39 is rotatably supported by a rotor bearing 40. The rotor bearing 39 is held by the rear cover 3. The rotor bearing 40 is held by the bearing box 24. The front end portion of the rotor shaft portion 33 is disposed in the internal space of the hammer case 4 through an opening of the bearing box 24.

[0064] A pinion gear 41 is formed on the front end of the rotor shaft portion 33. The pinion gear 41 is connected to at least a part of the reduction mechanism 7. The rotor shaft portion 33 is connected to the reduction mechanism 7 via the pinion gear 41.

[0065] The reduction mechanism 7 transmits the rotational force of the motor 6 to the spindle 8 and the anvil 10. The reduction mechanism 7 is housed in the rear cylinder portion 4A of the hammer case 4. The reduction mechanism 7 has a plurality of gears. The reduction mechanism 7 is disposed forward of the motor 6. The reduction mechanism 7 connects the rotor shaft portion 33 and the spindle 8. The gears of the reduction mechanism 7 are driven by the rotor 27. The reduction mechanism 7 transmits the rotation of the rotor 27 to the spindle 8. The reduction mechanism 7 rotates the spindle 8 at a rotational speed lower than the rotational speed of the rotor shaft portion 33. The reduction mechanism 7 includes a planetary gear mechanism.

[0066] The reduction mechanism 7 has a plurality of planetary gears 42 arranged around the pinion gear 41, and an internal gear 43 arranged around the plurality of planetary gears 42. The pinion gear 41, the planetary gear 42, and the internal gear 43 are housed in the hammer case 4 and the bearing box 24, respectively. Each of the plurality of planetary gears 42 meshes with the pinion gear 41. The planetary gear 42 is rotatably supported by the spindle 8 via a pin 42P. The spindle 8 is rotated by the planetary gear 42. The internal gear 43 has internal teeth that mesh with the planetary gear 42. The internal gear 43 is fixed to the bearing box 24. The internal gear 43 is always non-rotatable with respect to the bearing box 24.

[0067] When the rotor shaft portion 33 is rotated by the drive of the motor 6, the pinion gear 41 rotates and the planetary gear 42 revolves around the pinion gear 41. The planetary gear 42 revolves while meshing with the internal teeth of the internal gear 43. Due to the revolution of the planetary gear 42, the spindle 8 connected to the planetary gear 42 via the pin 42P rotates at a rotational speed lower than the rotational speed of the rotor shaft portion 33.

[0068] The spindle 8 rotates due to the rotational force of the motor 6. The spindle 8 is disposed forward of at least a portion of the motor 6. The spindle 8 is disposed forward of the stator 26. At least a portion of the spindle 8 is disposed forward of the rotor 27. At least a portion of the spindle 8 is disposed in front of the reduction mechanism 7. The spindle 8 is rotated by the rotor 27. The spindle 8 rotates due to the rotational force of the rotor 27 transmitted by the reduction mechanism 7.

[0069] The spindle 8 has a flange portion 8A and a spindle shaft portion 8B that protrudes forward from the flange portion 8A. The planetary gear 42 is rotatably supported on the flange portion 8A via a pin 42P. The rotation axis of the spindle 8 and the rotation axis AX of the motor 6 coincide with each other. The spindle 8 rotates about the rotation axis AX.

[0070] The spindle 8 is rotatably supported by a spindle bearing 44. The spindle bearing 44 is held in the bearing box 24. The spindle 8 has an annular portion 8C that protrudes rearward from the rear of the flange portion 8A. The spindle bearing 44 is disposed inside the annular portion 8C. In this embodiment, an outer ring of the spindle bearing 44 is connected to the annular portion 8C, and an inner ring of the spindle bearing 44 is supported by the bearing box 24.

[0071] The striking mechanism 9 is driven by the motor 6. The rotational force of the motor 6 is transmitted to the striking mechanism 9 via the reduction mechanism 7 and the spindle 8. The striking mechanism 9 strikes the anvil 10 in the rotational direction based on the rotational force of the spindle 8 rotated by the motor 6. The striking mechanism 9 has a hammer 47, a ball 48, and a coil spring 49. The striking mechanism 9 including the hammer 47 is housed in the hammer case 4.

[0072] The hammer 47 is disposed forward of the reduction mechanism 7. The hammer 47 is housed in the rear cylinder portion 4A. The hammer 47 is disposed around the spindle shaft portion 8B. The hammer 47 is held by the spindle shaft portion 8B. The ball 48 is disposed between the spindle shaft portion 8B and the hammer 47. The coil spring 49 is supported by each of the flange portion 8A and the hammer 47.

[0073] The hammer 47 is rotated by the motor 6. The rotational force of the motor 6 is transmitted to the hammer 47 via the reduction mechanism 7 and the spindle 8. The hammer 47 can rotate together with the spindle 8 based on the rotational force of the spindle 8 rotated by the motor 6. The rotation axis of the hammer 47, the rotation axis of the spindle 8, and the rotation axis AX of the motor 6 coincide with each other. The hammer 47 rotates around the rotation axis AX.

[0074] The ball 48 is made of a metal such as steel. The ball 48 is disposed between the spindle shaft portion 8B and the hammer 47. The spindle 8 has a spindle groove 8D in which at least a part of the ball 48 is disposed. The spindle groove 8D is provided on a part of the outer circumferential surface of the spindle shaft portion 8B. The hammer 47 has a hammer groove 47A in which at least a part of the ball 48 is disposed. The hammer groove 47A is provided on a part of the inner surface of the hammer 47. The ball 48 is disposed between the spindle groove 8D and the hammer groove 47A. The ball 48 can roll on the inside of the spindle groove 8D and the inside of the hammer groove 47A. The hammer 47 can move along with the ball 48. The spindle 8 and the hammer 47 can move relative to each other in the axial direction and the rotational direction within a movable range defined by the spindle groove 8D and the hammer groove 47A.

[0075] The coil spring 49 generates an elastic force that moves the hammer 47 forward. The coil spring 49 is disposed between the flange portion 8A and the hammer 47. A ring-shaped recess 47C is provided on the rear surface of the hammer 47. The recess 47C is recessed forward from the rear surface of the hammer 47. A washer 45 is provided inside the recess 47C. The rear end of the coil spring 49 is supported by the flange portion 8A. The front end of the coil spring 49 is disposed inside the recess 47C and supported by the washer 45.

[0076] The anvil 10 is an output part of the impact tool 1 that is actuated by the rotational force of the motor 6. The anvil 10 rotates by the rotational force of the motor 6. The anvil 10 is disposed forward of the motor 6. At least a part of the anvil 10 is disposed forward of the hammer 47. The anvil 10 has a tool hole 10A into which a tip tool 90 is inserted. An example of the tip tool 90 is a driver bit. The tool hole 10A is provided at the front end of the anvil 10. The tip tool 90 is attached to the anvil 10. In addition, a recess 10B is provided at the rear end of the anvil 10. A protrusion is provided at the front end of the spindle shaft portion 8B. The protrusion at the front end of the spindle shaft portion 8B is inserted into the recess 10B provided at the rear end of the anvil 10.

[0077] The anvil 10 has a rod-shaped anvil shaft portion 10C and an anvil protrusion portion 10D. The tool hole 10A is provided at the front end portion of the anvil shaft portion 10C. The tip tool 90 is attached to the anvil shaft portion 10C. The anvil protrusion portion 10D is provided at the rear end portion of the anvil 10. The anvil protrusion portion 10D protrudes radially outward from the rear end portion of the anvil shaft portion 10C.

[0078] The anvil 10 is rotatably supported by the anvil bearing 46. The rotation axis of the anvil 10, the rotation axis of the hammer 47, the rotation axis of the spindle 8, and the rotation axis AX of the motor 6 are aligned. The anvil 10 rotates around the rotation axis AX. The anvil bearing 46 is disposed inside the front cylindrical portion 4B. The anvil bearing 46 is held in the front cylindrical portion 4B of the hammer case 4. The anvil bearing 46 supports the anvil shaft portion 10C. In this embodiment, two anvil bearings 46 are disposed in the front-rear direction.

[0079] The hammer 47 has a hammer protrusion 47B that protrudes forward. The hammer protrusion 47B can come into contact with the anvil protrusion 10D. When the motor 6 is driven while the hammer protrusion 47B and the anvil protrusion 10D are in contact with each other, the anvil 10 rotates together with the hammer 47 and the spindle 8.

[0080] The anvil 10 is struck in the rotational direction by the hammer 47. For example, in a screw tightening operation, when the load acting on the anvil 10 becomes high, a situation may occur in which the anvil 10 cannot be rotated by the power generated by the motor 6 alone. When the anvil 10 cannot be rotated by the power generated by the motor 6 alone, the rotation of the anvil 10 and the hammer 47 stops. The spindle 8 and the hammer 47 can move relatively in the axial direction and the circumferential direction via the ball 48. Even if the rotation of the hammer 47 stops, the rotation of the spindle 8 continues by the power generated by the motor 6. When the spindle 8 rotates while the rotation of the hammer 47 is stopped, the ball 48 moves backward while being guided by each of the spindle groove 8D and the hammer groove 47A. The hammer 47 receives a force from the ball 48 and moves backward along with the ball 48. That is, the hammer 47 moves backward by the rotation of the spindle 8 while the rotation of the anvil 10 is stopped. As the hammer 47 moves rearward, the contact between the hammer projection 47B and the anvil projection 10D is released.

[0081] The coil spring 49 generates an elastic force that moves the hammer 47 forward. The hammer 47 that has moved backward moves forward due to the elastic force of the coil spring 49. When the hammer 47 moves forward, it receives a force in the rotational direction from the ball 48. That is, the hammer 47 moves forward while rotating. When the hammer 47 moves forward while rotating, the hammer protrusion 47B comes into contact with the anvil protrusion 10D while rotating. As a result, the anvil protrusion 10D is struck in the rotational direction by the hammer protrusion 47B. Both the power of the motor 6 and the inertial force of the hammer 47 act on the anvil 10. Therefore, the anvil 10 can rotate around the rotation axis AX with high torque.

[0082] The tool holding mechanism 11 is disposed around the front part of the anvil 10. The tool holding mechanism 11 holds the tool tip 90 inserted into the tool hole 10A.

[0083] The fan 12 rotates due to the rotational force of the motor 6. The fan 12 is disposed behind the stator 26 of the motor 6. The fan 12 generates an airflow for cooling the motor 6. The fan 12 is fixed to at least a part of the rotor 27. The fan 12 is fixed to the rear part of the rotor shaft part 33 via a bush 12A. The fan 12 is disposed between the rotor bearing 39 and the stator 26. The fan 12 rotates due to the rotation of the rotor 27. As the rotor shaft part 33 rotates, the fan 12 rotates together with the rotor shaft part 33. As the fan 12 rotates, air in the external space of the housing 2 flows into the internal space of the housing 2 through the intake port 19. The air that has flowed into the internal space of the housing 2 circulates through the internal space of the housing 2, thereby cooling the motor 6. As the fan 12 rotates, the air that has circulated through the internal space of the housing 2 flows out through the exhaust port 20 into the external space of the housing 2.

[0084] The battery mounting section 13 is disposed below the battery holding section 23. The battery pack 25 is mounted to the battery mounting section 13. The battery pack 25 is detachable from the battery mounting section 13. The battery pack 25 functions as a power source for the impact tool 1. The battery pack 25 includes a secondary battery. In this embodiment, the battery pack 25 includes a rechargeable lithium-ion battery. When mounted to the battery mounting section 13, the battery pack 25 can supply power to the impact tool 1. The motor 6 and the light unit 18 are each driven based on the power supplied from the battery pack 25.

[0085] The trigger lever 14 is provided on the grip portion 22. The trigger lever 14 is operated by an operator to start the motor 6. By operating the trigger lever 14, the motor 6 is switched between being driven and being stopped.

[0086] The forward / reverse switching lever 15 is provided on the upper part of the grip portion 22. The forward / reverse switching lever 15 is operated by an operator. By operating the forward / reverse switching lever 15, the rotation direction of the motor 6 is switched from one of the forward direction and the reverse direction to the other. By switching the rotation direction of the motor 6, the rotation direction of the spindle 8 is switched.

[0087] The hand mode switching button 16 is provided above the trigger lever 14. The hand mode switching button 16 is operated by an operator. A circuit board 16A and a switch 16B are arranged behind the hand mode switching button 16. The switch 16B is mounted on the front surface of the circuit board 16A. The hand mode switching button 16 is arranged in front of the switch 16B. When the hand mode switching button 16 is pressed backward, the switch 16B is actuated and an operation signal is output from the circuit board 16A. The operation signal output from the circuit board 16A is transmitted to a controller (not shown). The controller switches the control mode of the motor 6 based on the operation signal output from the circuit board 16A.

[0088] [Light unit] Fig. 5 is a cross-sectional view showing a part of the light unit 18 according to this embodiment. Fig. 6 is an exploded perspective view from the front showing the upper part of the impact tool 1 according to this embodiment. Fig. 7 is a perspective view from the front showing the light unit 18 according to this embodiment. Fig. 8 is a perspective view from the rear showing the light unit 18 according to this embodiment. Fig. 9 is an exploded perspective view from the front showing the light unit 18 according to this embodiment. Fig. 10 is an exploded perspective view from the rear showing the light unit 18 according to this embodiment.

[0089] The light unit 18 emits illumination light. The light unit 18 illuminates the anvil 10 and the periphery of the anvil 10 with illumination light. The light unit 18 illuminates the front of the anvil 10 with illumination light. The light unit 18 also illuminates the tip tool 90 attached to the anvil 10 and the periphery of the tip tool 90 with illumination light. The light unit 18 also illuminates the work target of the impact tool 1 with illumination light.

[0090] The light unit 18 is disposed in the front part of the hammer case 4. The light unit 18 is disposed around the front cylinder portion 4B. The light unit 18 is disposed around the anvil shaft portion 10C via the front cylinder portion 4B.

[0091] The light unit 18 includes chip on board light emitting diodes (COB LEDs) 50, an optical member 57, and a light blocking member 60.

[0092] The chip-on-board light-emitting diode 50 includes a substrate 51 , an LED chip 52 which is a light-emitting element, a bank 54 , a phosphor 55 , and a resistor 59 .

[0093] Fig. 11 is a front view of the chip-on-board light-emitting diode 50 according to this embodiment. Note that the phosphor 55 is omitted in Fig. 11. Fig. 12 is a front view of the substrate 51 according to this embodiment.

[0094] The substrate 51 supports the LED chip 52 and the resistor 59. Examples of the substrate 51 include an aluminum substrate, a glass cloth-based epoxy resin substrate (FR-4 substrate), and a composite substrate epoxy resin substrate (CEM-3 substrate). The substrate 51 is disposed at least over the upper, left, and right sides of the anvil 10 (anvil shaft portion 10C). In this embodiment, the substrate 51 is annular and disposed around the anvil 10 (anvil shaft portion 10C). A cutout portion may be provided in the lower portion of the substrate 51.

[0095] The LED chip 52 is mounted on the front surface of the substrate 51. A plurality of LED chips 52 are mounted at intervals in the circumferential direction of the anvil 10 (anvil shaft portion 10C) on the front surface of the substrate 51. The LED chips 52 and wiring provided on the substrate 51 are connected via gold wires.

[0096] The bank 54 is provided on the front surface of the substrate 51. The bank 54 protrudes forward from the front surface of the substrate 51. The bank 54 is disposed around the LED chip 52. The bank 54 is disposed radially inward and radially outward from the LED chip 52. The bank 54 defines a compartment space in which the phosphor 55 is disposed.

[0097] The phosphor 55 is disposed so as to cover the LED chip 52 inside the bank 54. As shown in FIG. 12, the positive electrode 61A and the negative electrode 61B are disposed on the front surface of the substrate 51 outside the bank 54. The positive electrode 61A and the negative electrode 61B may be disposed on the rear surface of the substrate 51. Power output from the battery pack 25 is supplied to the electrodes (the positive electrode 61A and the negative electrode 61B). The power supplied to the electrodes is supplied to the LED chip 52 via the substrate 51 and the gold wire. The LED chip 52 emits light based on the power supplied from the battery pack 25. The voltage of the battery pack 25 is stepped down to 5V by a controller (not shown) and applied to the LED chip 52.

[0098] The substrate 51 is annular. The substrate 51 is disposed around the anvil shaft portion 10C via the front cylinder portion 4B. The substrate 51 has an annular portion 51A disposed around the anvil 10 (anvil shaft portion 10C) and a support portion 51B protruding downward from a lower portion of the annular portion 51A.

[0099] The multiple LED chips 52 are mounted on the front surface of the annular portion 51A of the substrate 51. The LED chips 52 are arranged on at least a portion of the periphery of the anvil shaft portion 10C via the front cylinder portion 4B. The multiple LED chips 52 are arranged on the front surface of the annular portion 51A at intervals in the circumferential direction of the annular portion 51A. In this embodiment, 12 LED chips 52 are arranged on the front surface of the annular portion 51A at equal intervals in the circumferential direction of the annular portion 51A.

[0100] The resistor 59 is mounted on the front surface of the annular portion 51A. The resistor 59 is disposed between a pair of adjacent LED chips 52 on the front surface of the annular portion 51A. A plurality of resistors 59 are disposed on the front surface of the annular portion 51A at intervals in the circumferential direction of the annular portion 51A. In this embodiment, 12 resistors 59 are disposed on the front surface of the annular portion 51A at equal intervals in the circumferential direction of the annular portion 51A.

[0101] The bank 54 is provided on the front surface of the annular portion 51A of the substrate 51. The bank 54 protrudes forward from the front surface of the annular portion 51A. The bank 54 is disposed on the front surface of the annular portion 51A radially inward and radially outward of the LED chip 52. The bank 54 defines a partitioned space in which the phosphor 55 is disposed. The bank 54 is annular. In this embodiment, the bank 54 is provided to have a double annular shape. That is, in this embodiment, the bank 54 includes a first annular bank 54 provided on the front surface of the annular portion 51A and a second annular bank 54 provided on the front surface of the annular portion 51A radially outward of the first bank 54. The first bank 54 is disposed radially inward of the LED chip 52. The second bank 54 is disposed radially outward of the LED chip 52. The LED chips 52 are disposed between the first bank 54 and the second bank 54.

[0102] The phosphor 55 is disposed on the front surface of the annular portion 51A of the substrate 51. The phosphor 55 is annular. The phosphor 55 is disposed so as to cover each of the plurality of LED chips 52 inside the bank 54. That is, the phosphor 55 is disposed between the first bank 54 and the second bank 54 so as to cover each of the plurality of LED chips 52.

[0103] A pair of lead wires 58 are connected to the substrate 51. One of the lead wires 58 is a positive lead wire 58A to which a positive voltage is applied. The other lead wire 58 is a negative lead wire 58B to which a negative voltage is applied. The voltage of the battery pack 25 is applied to the lead wires 58 via a controller (not shown). The positive electrode 61A shown in FIG. 12 is connected to the positive lead wire 58A. The negative electrode 61B is connected to the negative lead wire 58B. The pair of lead wires 58 are supported on the rear surface of the support portion 51B. The lead wires 58 may be supported on the front surface of the support portion 51B.

[0104] The current output from the battery pack 25 is supplied to the electrodes (positive electrode 61A and negative electrode 61B) via a controller (not shown) and lead wires 58. The voltage of the battery pack 25 is stepped down by the controller (not shown) and then applied to the electrodes (positive electrode 61A and negative electrode 61B). The current supplied to the electrodes (positive electrode 61A and negative electrode 61B) is supplied to the LED chip 52 via the wiring and gold wires of the substrate 51. The LED chip 52 lights up based on the current supplied from the battery pack 25.

[0105] The optical member 57 is connected to the chip-on-board light emitting diode 50. The optical member 57 is fixed to the substrate 51. The optical member 57 is made of polycarbonate resin. In this embodiment, the optical member 57 is made of polycarbonate resin containing a white diffusing material. At least a portion of the optical member 57 is disposed forward of the chip-on-board light emitting diode 50. The optical member 57 has an outer cylinder portion 57A, an inner cylinder portion 57B, a light transmitting portion 57C, and a convex portion 57D.

[0106] The outer cylinder portion 57A is disposed radially outward of the inner cylinder portion 57B. The outer cylinder portion 57A is disposed radially outward of the LED chip 52. In the radial direction, at least a portion of the chip-on-board light-emitting diode 50 is disposed between the outer cylinder portion 57A and the inner cylinder portion 57B. The outer cylinder portion 57A is disposed radially outward of the annular portion 51A of the substrate 51. The inner cylinder portion 57B is disposed radially inward of the annular portion 51A of the substrate 51. The inner cylinder portion 57B is disposed radially inward of the LED chip 52.

[0107] The light transmitting portion 57C has an annular shape. The light transmitting portion 57C is disposed forward of the LED chip 52. The light transmitting portion 57C is disposed so as to connect the front end of the outer tube portion 57A and the front end of the inner tube portion 57B. The light transmitting portion 57C faces the front surface of the annular portion 51A. The light transmitting portion 57C faces the LED chip 52. The light emitted from the LED chip 52 passes through the light transmitting portion 57C and is irradiated forward of the light unit 18.

[0108] The light transmitting portion 57C has an incident surface 57E through which light from the LED chip 52 enters, and an exit surface 57F through which light transmitted through the light transmitting portion 57C exits. The front surface of the annular portion 51A faces the incident surface 57E of the light transmitting portion 57C. The incident surface 57E faces the LED chip 52. The incident surface 57E faces substantially backward. The exit surface 57F faces substantially forward.

[0109] The protrusion 57D is provided so as to protrude downward from the lower part of the outer cylinder portion 57A. An accommodation space is formed inside the protrusion 57D. The support portion 51B of the substrate 51 is disposed in the accommodation section formed inside the protrusion 57D.

[0110] The light shielding member 60 is disposed radially outward of the outer tube portion 57A of the optical member 57. The light shielding member 60 has a lower light transmittance than the optical member 57. At least a portion of the light emitted from the LED chip 52 may pass through the outer tube portion 57A. The light shielding member 60 blocks the light from the LED chip 52 emitted from the outer circumferential surface of the outer tube portion 57A. The light shielding member 60 prevents the light from the LED chip 52 emitted from the outer circumferential surface of the outer tube portion 57A from being irradiated to the periphery of the optical member 57.

[0111] The light shielding member 60 is made of synthetic resin. In this embodiment, the light shielding member 60 is made of polycarbonate resin. The light shielding member 60 is made of polycarbonate resin containing a colored pigment. Examples of the dominant pigment include a black pigment and a gray pigment. In this embodiment, the light shielding member 60 is made of polycarbonate resin containing a black pigment. The light shielding member 60 is black. The light shielding member 60 may be made of polycarbonate resin containing a gray pigment. The light shielding member 60 may be gray.

[0112] The light blocking member 60 has a tube portion 60A and a protrusion portion 60B. The tube portion 60A is arranged so as to surround the outer tube portion 57A. The tube portion 60A covers the outer peripheral surface of the outer tube portion 57A. The protrusion portion 60B protrudes downward from the lower portion of the tube portion 60A. The protrusion portion 60B covers the outer surface of the protrusion portion 57D. The protrusion portion 60B is arranged so as to cover the protrusion portion 57D from below.

[0113] The light blocking member 60 is fixed to the optical member 57. In this embodiment, the optical member 57 and the light blocking member 60 are fixed by a first adhesive 70. The first adhesive 70 is disposed between the outer peripheral surface of the outer tube portion 57A and the inner peripheral surface of the tube portion 60A.

[0114] In this embodiment, the light blocking member 60 has grooves 60D and 60E recessed radially outward from the inner circumferential surface of the tube portion 60A. The groove 60D is provided rearward of the groove 60E. In the front-rear direction, an abutting surface 60C is provided at the boundary between the groove 60D and the groove 60E. The abutting surface 60C faces rearward. The abutting surface 60C is annular. The optical member 57 has an opposing surface 57T facing the abutting surface 60C. The optical member 57 has grooves 57V and 57W recessed radially inward from the outer circumferential surface of the optical member 57. The groove 57V is provided rearward of the groove 57W. The opposing surface 57T is provided at the boundary between the groove 57V and the groove 57W. The opposing surface 57T faces forward. The abutment surface 60C and the opposing surface 57T are in contact with each other. The first adhesive 70 is filled inside the groove 60D and inside the groove 60E. The first adhesive 70 is filled inside the groove 57V and inside the groove 57W. The first adhesive 70 is stored in the space between the groove 60D and the groove 57V and the space between the groove 60E and the groove 57W. The optical member 57 and the light blocking member 60 are fixed together by the first adhesive 70 filled in the groove 57V and the groove 57W.

[0115] Further, the light blocking member 60 has a convex portion 60G provided so as to protrude radially inward from the inner peripheral surface of the tube portion 60A forward of the groove portions 60D, 60E, 57V, and 57W. The radial inner end portion of the convex portion 60G contacts the outer peripheral surface of the optical member 57. The convex portion 60G is provided so as to surround the optical member 57. The optical member 57 fits inside the convex portion 60G.

[0116] The front end 60F of the light blocking member 60 is disposed around the emission surface 57F of the light transmitting portion 57C. The front end 60F of the light blocking member 60 is disposed forward of the front end of the light transmitting portion 57C. Note that, in the front-rear direction, the front end 60F of the light blocking member 60 may be disposed at the same position as the front end of the light transmitting portion 57C. This makes it difficult for light to leak radially outward from the optical member 57.

[0117] The light unit 18, which includes a chip-on-board light emitting diode 50 and a light blocking member 60, is disposed around the anvil shaft portion 10C of the anvil 10. The light unit 18 is disposed around the front cylinder portion 4B of the hammer case 4. The inner cylinder portion 57B of the optical member 57 is disposed around the front cylinder portion 4B of the hammer case 4. The inner cylinder portion 57B of the optical member 57 is supported by the front cylinder portion 4B of the hammer case 4. The inner cylinder portion 57B of the optical member 57 is fixed to the front cylinder portion 4B of the hammer case 4 so as not to be movable in the axial direction.

[0118] In the radial direction, the substrate 51 is disposed between the outer cylinder portion 57A and the inner cylinder portion 57B. The substrate 51 is fixed to the optical member 57. As shown in FIG. 5, the substrate 51 and the optical member 57 are fixed by a second adhesive 75. The second adhesive 75 fixes the rear surface of the substrate 51 to the inner peripheral surface of the outer cylinder portion 57A. The second adhesive 75 may also fix the rear surface of the substrate 51 to the outer peripheral surface of the inner cylinder portion 57B. The second adhesive 75 has light-blocking properties. In this embodiment, the second adhesive 75 is a black adhesive.

[0119] As shown in Fig. 5 and Fig. 6, a protrusion 4D is provided on the outer peripheral surface of the front cylinder portion 4B. The protrusion 4D protrudes radially outward from the outer peripheral surface of the front cylinder portion 4B. A plurality of protrusions 4D are provided at intervals in the circumferential direction. In this embodiment, four protrusions 4D are provided at intervals in the circumferential direction. The surface of the protrusion 4D includes a rear surface 4E facing rearward and an inclined surface 4F that slopes radially inward toward the front.

[0120] The light unit 18 is supported by the front cylinder portion 4B of the hammer case 4. A rear slide portion 57M and a front slide portion 57N are provided on the inner peripheral surface of the inner cylinder portion 57B of the optical member 57. The rear slide portion 57M and the front slide portion 57N each protrude radially inward from the inner peripheral surface of the inner cylinder portion 57B. The front slide portion 57N is disposed forward of the rear slide portion 57M. Four rear slide portions 57M are provided at intervals in the circumferential direction. The front slide portion 57N is disposed forward of each of the four rear slide portions 57M. A recess 57K is provided between the rear slide portion 57M and the front slide portion 57N. The convex portion 4D is disposed inside the recess 57K. The rear slide portion 57M has a front surface 57P that contacts the rear surface 4E of the convex portion 4D. The front slide portion 57N has a slope 57Q that faces the slope 4F of the protrusion 4D.

[0121] An insertion opening is provided between one circumferential end of the rear slide portion 57M and the front slide portion 57N. The convex portion 4D is disposed in the recess 57K through the insertion opening. After the convex portion 4D is inserted into the insertion opening, the light unit 18 is rotated so that the convex portion 4D is inserted into the inside of the recess 57K. This fixes the optical member 57 and the front cylinder portion 4B of the hammer case 4. By fixing the optical member 57 and the front cylinder portion 4B of the hammer case 4, the light unit 18 and the hammer case 4 are fixed.

[0122] Light emitted from the LED chip 52 is incident on the incident surface 57E via the phosphor 55. As shown in Fig. 5 and other figures, the incident surface 57E is inclined forward toward the inside in the radial direction. The light incident on the incident surface 57E passes through the light transmitting portion 57C and then is emitted from the emission surface 57F.

[0123] At least a portion of the light incident on incident surface 57E reaches inclined surface 57Q. Inclined surface 57Q is inclined forward toward the inside in the radial direction. The light that reaches inclined surface 57Q is totally reflected by inclined surface 57Q and travels forward. The light totally reflected by inclined surface 57Q is emitted from emission surface 57F.

[0124] In this embodiment, the sponge ring 80 is disposed behind the chip-on-board light-emitting diode 50. The rear surface of the sponge ring 80 is supported by the annular portion 4C of the hammer case 4. At least a portion of the sponge ring 80 contacts the light unit 18 in a compressed state. In the example shown in FIG. 5, the sponge ring 80 contacts the inner cylinder portion 57B of the optical member 57 and the second adhesive 75. The light unit 18 is supported by the compressed sponge ring 80, so that rattling of the light unit 18 relative to the hammer case 4 is suppressed. The sponge ring 80 may support the inner cylinder portion 57B.

[0125] 11, multiple LED chips 52 are mounted on the front surface of the annular portion 51A of the substrate 51. The LED chips 52 are arranged on at least a portion of the periphery of the anvil shaft portion 10C via the front cylinder portion 4B. Multiple LED chips 52 are arranged on the front surface of the annular portion 51A at intervals in the circumferential direction of the annular portion 51A. In this embodiment, 12 LED chips 52 are arranged on the front surface of the annular portion 51A at equal intervals in the circumferential direction of the annular portion 51A.

[0126] The resistor 59 is disposed between a pair of adjacent LED chips 52 on the front surface of the annular portion 51A. A plurality of resistors 59 are disposed at intervals in the circumferential direction of the annular portion 51A on the front surface of the annular portion 51A. In the present embodiment, twelve resistors 59 are disposed at equal intervals in the circumferential direction of the annular portion 51A on the front surface of the annular portion 51A.

[0127] The LED chips 52 and the resistors 59 are arranged alternately in the circumferential direction on the front surface of the annular portion 51A.

[0128] The banks 54 include a first annular bank 54 provided on the front surface of the annular portion 51A, and a second annular bank 54 provided on the front surface of the annular portion 51A radially outward of the first bank 54. The LED chips 52 and the resistors 59 are each disposed between the first bank 54 and the second bank 54.

[0129] An apex portion 51T is defined in a portion of the annular portion 51A directly above the anvil shaft portion 10C of the anvil 10. The position of the apex portion 51T in the circumferential direction is defined as the 0° position. The 0° position is the position directly above the rotation axis AX (anvil shaft portion 10C). The 180° position is the position directly below the rotation axis AX (anvil shaft portion 10C).

[0130] The LED chip 52 closest to the vertex 51T of the substrate 51 directly above the anvil shaft portion 10C is disposed at a position shifted from the vertex 51T in the circumferential direction by a predetermined angle θ. In this embodiment, the predetermined angle θ is 15°. The LED chips 52 are disposed at positions of 15°, 45°, 75°, 105°, 135°, 165°, 195°, 225°, 255°, 285°, 315°, and 345° around the rotation axis AX.

[0131] One resistor 59 is disposed at the apex portion 51T. The resistors 59 are disposed at respective positions of 0°, 30°, 60°, 90°, 120°, 150°, 180°, 210°, 240°, 270°, 300°, and 330° around the rotation axis AX.

[0132] The multiple LED chips 52 are arranged at positions that are line-symmetrical with respect to a line that passes through the central axis (rotation axis AX) of the anvil shaft portion 10C and the apex portion 51T and extends in the vertical direction. The multiple resistors 59 are arranged at positions that are line-symmetrical with respect to a line that passes through the central axis (rotation axis AX) of the anvil shaft portion 10C and the apex portion 51T and extends in the vertical direction.

[0133] As shown in FIG. 12, a positive electrode 61A and a negative electrode 61B are provided on the front surface of the support portion 51B of the substrate 51. The positive electrode 61A and the negative electrode 61B are arranged outside the bank 54. The positive electrode 61A is connected to a positive lead wire 58A. The negative electrode 61B is connected to a negative lead wire 58B. A positive voltage is applied to the positive electrode 61A by the battery pack 25 via the positive lead wire 58A. A negative voltage is applied to the negative electrode 61B by the battery pack 25 via the negative lead wire 58B. Each of the multiple LED chips 52 is connected in parallel to the positive electrode 61A and the negative electrode 61B. In this embodiment, a positive relay line 62A and a negative relay line 62B are provided on the front surface of the annular portion 51A. Each of the positive relay line 62A and the negative relay line 62B is substantially annular. The positive relay line 62A is arranged radially inward from the LED chip 52. The negative relay line 62B is disposed radially outward from the LED chip 52. A plurality of positive power supply lines 63A branch off from the positive relay line 62A. A plurality of negative power supply lines 63B branch off from the negative relay line 62B. Twelve positive power supply lines 63A are provided. Twelve negative power supply lines 63B are provided. Each of the positive power supply line 63A and the negative power supply line 63B is provided on the front surface of the annular portion 51A. The positive power supply line 63A and the negative power supply line 63B are connected to each of the plurality of LED chips 52. One positive power supply line 63A and one negative power supply line 63B are connected to one LED chip 52. Resistors 59 (not shown in FIG. 12) are disposed on each of the plurality of positive power supply lines 63A. One resistor 59 is disposed on each of the positive power supply lines 63A.

[0134] The current output from the battery pack 25 is supplied to the positive electrode 61A via a controller (not shown) and a positive lead wire 58A. The current supplied to the positive electrode 61A is supplied to each of the twelve LED chips 52 via a positive relay line 62A and a positive power supply line 63A. The LED chips 52 are illuminated based on the power supplied from the battery pack 25.

[0135] [Assembly method] When assembling the light unit 18, first, the light shielding member 60 is attached to the optical member 57. When attaching the light shielding member 60 to the optical member 57, the optical member 57 is placed on a predetermined support surface so that the emission surface 57F faces upward. After the optical member 57 is placed on the support surface, a first adhesive 70 is applied to the outer peripheral surface of the optical member 57 including the facing surface 57T. In this embodiment, the first adhesive 70 is applied to the grooves 57V and 57W. After the first adhesive 70 is applied to the grooves 57V and 57W, the light shielding member 60 is inserted into the optical member 57 from above the optical member 57. Note that the first adhesive 70 may be applied to the grooves 60D and 60E of the light shielding member 60, and then the light shielding member 60 may be inserted into the optical member 57. By inserting the light shielding member 60 into the optical member 57, the abutment surface 60C and the facing surface 57T come into contact with each other. Also, the front part of the optical member 57 fits into the convex part 60G. The optical member 57 is lightly pressed into the inside of the convex part 60G. By lightly pressing the light shielding member 60 into the optical member 57, the first adhesive 70 spreads in the grooves 57V and 57W. Since the first adhesive 70 applied to the grooves 57V and 57W is difficult to move upward, even if the light shielding member 60 is inserted into the optical member 57, it does not reach the emission surface 57F. In addition, the radial inner end of the convex part 60G contacts the outer circumferential surface of the optical member 57, so that the first adhesive 70 applied to the grooves 57V and 57W is prevented from reaching the emission surface 57F. Although at least a part of the first adhesive 70 may flow into the gap between the rear end (lower end) of the outer tube portion 57A of the optical member 57 and the rear end of the inner circumferential surface of the light blocking member 60, it does not flow into the emission surface 57F, and therefore the emission surface 57F is prevented from being contaminated by the first adhesive 70. Furthermore, since the first adhesive 70 does not adhere to the emission surface 57F, the light emitted from the emission surface 57F is prevented from being obstructed by the first adhesive 70. Furthermore, the substrate 51 and the optical member 57 are fixed by the second adhesive 75.

[0136] After the optical member 57, the light blocking member 60, and the chip-on-board light emitting diode 50 are fixed by the first adhesive 70 and the second adhesive 75, the light unit 18 and the hammer case 4 are fixed. As described above, the convex portion 4D is inserted into the insertion opening provided between the end of the rear slide portion 57M on one side in the circumferential direction and the front slide portion 57N, and then the light unit 18 is rotated so that the convex portion 4D is inserted into the inside of the recess 57K. This fixes the light unit 18 and the hammer case 4. The sponge ring 80 supported by the annular portion 4C comes into contact with at least a part of the light unit 18, thereby suppressing rattling of the light unit 18 relative to the hammer case 4. By fixing the inner cylinder portion 57B of the optical member 57 to the front cylinder portion 4B of the hammer case 4, the light unit 18 is fixed to the hammer case 4 only in the axial direction, and then the hammer case 4 and the convex portion 60B of the light blocking member 60 are sandwiched between the left housing 2L and the right housing 2R, and the hammer case 4 and the light unit 18 are fixed in the rotational direction relative to the housing 2. After that, the left housing 2L and the right housing 2R are fixed together by the screw 2S.

[0137] [How to use] When the trigger lever 14 is operated by an operator, the motor 6 starts and light is emitted from the LED chip 52 of the chip-on-board light-emitting diode 50. The light emitted from the chip-on-board light-emitting diode 50 has high brightness and can brightly illuminate the work target.

[0138] On the other hand, if at least a part of the light emitted from the LED chip 52 passes through the outer cylinder portion 57A, when the light emitted from the outer peripheral surface of the outer cylinder portion 57A enters the eyes of the worker, the worker may feel dazzled, and as a result, it may become difficult to visually recognize the work target. In this embodiment, the light shielding member 60 prevents the worker from feeling dazzled.

[0139] [effect] As described above, in this embodiment, the impact tool 1 includes the motor 6, the housing 2 having the motor housing 21 for housing the motor 6 and the grip portion 22 protruding downward from the motor housing 21, the anvil 10 which is an output portion disposed forward of the motor 6 and operated by the rotational force of the motor 6, the substrate 51 disposed above, to the left, and to the right of the anvil 10, and the LED chips 52 which are a plurality of light-emitting elements mounted at intervals in the circumferential direction of the anvil 10 on the front surface of the substrate 51. The LED chip 52 closest to the apex portion 51T of the substrate 51 directly above the anvil 10 is disposed at a position shifted by a predetermined angle θ in the circumferential direction from the apex portion 51T.

[0140] In the above configuration, when the light unit 18 has the substrate 51 and the LED chip 52, even if an impact is applied to the apex 51T of the substrate 51 due to, for example, the impact tool 1 being dropped, the LED chip 52 is not disposed on the apex 51T of the substrate 51, so that the LED chip 52 is prevented from being damaged or separated from the substrate 51. Therefore, the LED chip 52 is prevented from becoming unlit. Therefore, the deterioration of the light emitting performance of the light unit 18 is prevented.

[0141] FIG. 13 is a diagram showing a state in which the impact tool 1 according to the present embodiment has been dropped. When the impact tool 1 is dropped and the upper part of the light unit 18 hits the ground (floor surface), an impact is applied to the light unit 18. As described above, the light unit 18 has the bank 54 arranged on the front surface of the annular portion 51A radially inward and radially outward from the LED chip 52, the phosphor 55 arranged to cover the LED chip 52 on the inside of the bank 54, and the optical member 57 having the outer tube portion 57A arranged radially outward from the annular portion 51A and the light transmitting portion 57C arranged forward from the LED chip 52 and through which the light emitted from the LED chip 52 passes. When the impact tool 1 is dropped, an impact is applied to the apex portion 51T of the annular portion 51A, and there is a possibility that an impact is applied to the bank 54 via the outer tube portion 57A of the optical member 57. When an impact is applied to the bank 54 of the apex portion 51T, the bank 54 of the apex portion 51T may be deformed or damaged. When the LED chip 52 is arranged at the apex portion 51T, the impact applied to the optical member 57 may be applied to the LED chip 52 through the bank 54. In this embodiment, since the LED chip 52 is not arranged at the apex portion 51T, even if an impact is applied to the bank 54 of the apex portion 51T and the bank 54 of the apex portion 51T is deformed or damaged, the impact is suppressed from being applied to the LED chip 52. Therefore, the LED chip 52 is suppressed from being damaged or separated from the substrate. Therefore, the LED chip 52 is suppressed from not being lit, and the deterioration of the light emitting performance of the light unit 18 is suppressed.

[0142] In this embodiment, the multiple LED chips 52 are arranged at positions that are line-symmetrical with respect to a straight line that passes through the central axis (rotation axis AX) of the anvil 10 and the apex portion 51T and extends in the vertical direction.

[0143] In the above configuration, the work target of the impact tool 1 is properly illuminated by the multiple LED chips 52.

[0144] In this embodiment, the substrate 51 has an annular portion 51A that is disposed around the anvil 10. A plurality of LED chips 52 are mounted on the front surface of the annular portion 51A.

[0145] In the above configuration, since a plurality of LED chips 52 are mounted on the front surface of the annular portion 51A of the substrate 51, the work target of the impact tool 1 is properly illuminated.

[0146] In this embodiment, the multiple LED chips 52 are disposed at equal intervals in the circumferential direction on the front surface of the annular portion 51A.

[0147] In the above configuration, since the plurality of LED chips 52 are mounted at equal intervals on the front surface of the annular portion 51A of the substrate 51, the work target of the impact tool 1 is properly illuminated.

[0148] In this embodiment, the light unit 18 has a positive electrode 61A provided on the substrate 51 and to which a positive voltage is applied, and a negative electrode 61B provided on the substrate 51 and to which a negative voltage is applied. Each of the multiple LED chips 52 is connected in parallel to the positive electrode 61A and the negative electrode 61B.

[0149] In the above configuration, since multiple LED chips 52 are connected in parallel, even if, for example, one LED chip 52 breaks down or stops lighting, power is supplied to the other LED chips 52, so that the other LED chips 52 are prevented from stopping lighting.

[0150] In this embodiment, the light unit 18 is provided on a substrate 51 and has a positive power supply line 63A and a negative power supply line 63B connected to each of the multiple LED chips 52, and a resistor 59 arranged on at least one of the positive power supply line 63A and the negative power supply line 63B.

[0151] In the above configuration, the voltage applied to the LED chips 52 is adjusted by the resistor 59. The resistor 59 makes the luminance of the plurality of LED chips 52 uniform, for example.

[0152] In this embodiment, the resistor 59 is disposed on the front surface of the substrate 51 between a pair of adjacent LED chips 52 .

[0153] In the above configuration, the LED chip 52 and resistor 59 are each properly mounted on the front surface of the substrate 51 .

[0154] In this embodiment, resistor 59 is disposed at vertex 51T.

[0155] In the above configuration, even if the apex portion 51T of the substrate 51 is impacted by, for example, the impact tool 1 being dropped, the resistor 59 is less likely to be damaged than the LED chip 52, so that the deterioration of the light emission performance of the light unit 18 is suppressed.

[0156] In this embodiment, the LED chips 52 and the resistors 59 are arranged alternately in the circumferential direction on the front surface of the annular portion 51A.

[0157] In the above configuration, the LED chip 52 and the resistor 59 are properly mounted on the front surface of the annular portion 51A.

[0158] [Other embodiments] Fig. 14 is a front view of the substrate 51 of a chip-on-board light-emitting diode 500 according to another embodiment. In the above-described embodiment, 12 LED chips 52 are arranged at intervals on the annular portion 51A of the substrate 51. As shown in Fig. 14, 24 LED chips 52 may be arranged at intervals on the annular portion 51A of the substrate 51. Also, 24 resistors 59 may be arranged at intervals on the annular portion 51A of the substrate 51. The LED chips 52 and the resistors 59 are arranged alternately one by one in the circumferential direction on the front surface of the annular portion 51A.

[0159] Fig. 15 is a front view of a substrate 511 of a chip-on-board light-emitting diode 501 according to another embodiment. As shown in Fig. 15, the substrate 511 has a protruding portion 51C protruding upward from an upper portion of the annular portion 51A. The upper surface of the protruding portion 51C is a flat surface extending in the left-right direction.

[0160] In the above configuration, for example, if the impact tool 1 is dropped, the protruding portion 51C absorbs the impact applied to the apex of the annular portion 51A. That is, the protruding portion 51C functions as an impact absorbing portion, so that the LED chip 52 is prevented from being subjected to an excessive impact.

[0161] Fig. 16 is a front view of a substrate 512 of a chip-on-board light-emitting diode 502 according to another embodiment. As shown in Fig. 16, the substrate 512 has a protruding portion 51D protruding upward from an upper portion of the annular portion 51A. The upper surface of the protruding portion 51D is a curved surface in which the central portion in the left-right direction of the upper surface bulges upward.

[0162] Even in the above configuration, for example, if the impact tool 1 is dropped, the protruding portion 51D reduces the impact applied to the apex of the annular portion 51A. That is, the protruding portion 51D functions as an impact absorbing portion, so that the LED chip 52 is prevented from receiving an excessive impact.

[0163] FIG. 17 is a front view of the substrate 51 of the chip-on-board light-emitting diode 503 according to another embodiment. In the example shown in FIG. 17, one LED chip 52T of the twelve LED chips 52 is disposed at the apex of the annular portion 51A. The LED chips 52 are disposed at positions of 0°, 30°, 60°, 90°, 120°, 150°, 180°, 210°, 240°, 270°, 300°, and 330° around the rotation axis AX. In the example shown in FIG. 17, in the radial direction of the rotation axis AX (the center of the annular portion 51A), the distance between the rotation axis AX and the LED chip 52T is shorter than the distance between the rotation axis AX and the other LED chips 52. That is, the LED chip 52T disposed at the apex is disposed radially inward from the other LED chips 52.

[0164] In the above configuration, even if the impact tool 1 is dropped and an impact is applied to the apex of the annular portion 51A, the distance between the outer periphery of the annular portion 51A and the LED chip 52T is long, so that excessive impact is prevented from being applied to the LED chip 52T.

[0165] In the above embodiment, the light blocking member 60 is made of polycarbonate resin containing a colored pigment. The light blocking member 60 may have a black coating film applied to the surface of a member made of polycarbonate resin. The light blocking member 60 may also be made of rubber, elastomer, or metal.

[0166] In the above-described embodiment, the impact tool 1 is an impact driver. The impact tool 1 may be an impact wrench.

[0167] In the above embodiment, the electric work machine 1 is an impact tool, which is a type of electric tool. The electric tool is not limited to an impact tool. Examples of the electric tool include a driver drill, an angle drill, a screwdriver, a hammer, a hammer drill, a circular saw, and a reciprocating saw.

[0168] The electric working machine 1 does not have to be an electric tool. FIG. 18 is a front perspective view showing an electric working machine 100 according to another embodiment. The electric working machine 100 shown in FIG. 18 is an air duster. The electric working machine 100 includes a housing 200, a battery mounting section 130, a trigger switch 140, an output section 1000, and a light unit 18. The housing 200 includes a motor housing section 210, a grip section 220 extending downward from a lower section of the motor housing section 210, and a battery holding section 230 connected to a lower section of the grip section 220. The motor housing section 210 houses a motor and a fan (not shown in FIG. 18). The trigger switch 140 is disposed in the grip section 220. The battery mounting section 130 is disposed in a lower section of the battery holding section 230. A battery pack 25 is attached to the battery mounting section 130. The output section 1000 is operated by the rotational force of the motor. The output part 1000 is disposed forward of the front end part of the motor housing part 210. When the motor rotates, the fan rotates, and as a result, air is sprayed from the nozzle 1000A of the output part 1000. The light unit 18 described in the above embodiment may be disposed around the output part 1000 of the electric operating machine 100.

[0169] In the above-described embodiment, the power source for the electric operating machine (1, etc.) does not have to be the battery pack 25, and may be a commercial power source (AC power source). [Explanation of symbols]

[0170] 1...Electric work machine (impact tool), 2...Housing, 2L...Left housing, 2R...Right housing, 2S...Screw, 3...Rear cover, 3S...Screw, 4...Hammer case, 4A...Rear cylinder part, 4B...Front cylinder part, 4C...Annular part, 4D...Convex part, 4E...Rear surface, 4F...Slope, 5...Case cover, 6...Motor, 7...Reduction mechanism, 8...Spindle, 8A...Flange part, 8B...Spindle shaft part, 8C...Annular part, 8D...Spindle groove, 9...Impact mechanism, 10...Anvil (output part), 10A...Tool hole, 10B...Concave part, 10C...Anvil shaft part, 10D...Anvil protrusion part, 11 ...tool holding mechanism, 12...fan, 12A...bush, 13...battery mounting section, 14...trigger lever, 15...forward / reverse switching lever, 16...hand mode switching button, 16A...circuit board, 16B...switch, 18...light unit, 19...air intake, 20...air exhaust, 21...motor housing section, 22...grip section, 23...battery holding section, 24...bearing box, 25...battery pack, 26...stator, 27...rotor, 28...stator core, 29...front insulator, 29S...screw, 30...rear insulator, 31...coil, 32...rotor core section, 33...rotor shaft a pinion gear, a rotor magnet, a sensor magnet, a resin molded body, a fuse terminal, a rotor bearing, a rotor bearing, a pinion gear, a planetary gear, a pin, an internal gear, a spindle bearing, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, a washer, portion, 51B...support portion, 51C...protruding portion, 51D...protruding portion, 51T...vertex portion, 52...LED chip (light emitting element), 54...bank, 55...phosphor, 57...optical member, 57A...outer cylinder portion, 57B...inner cylinder portion, 57C...light transmitting portion, 57D...convex portion, 57E...entrance surface, 57F...exiting surface, 57K...concave portion, 57M...rear slide portion, 57N...front slide portion, 57P...front surface, 57Q...inclined surface, 57T...opposing surface, 57V...groove portion, 57W...groove portion, 58...lead wire, 58A...positive lead wire, 58B...negative lead wire, 59...resistor, 60...light shielding member, 60A...cylinder portion, 60B...convex portion,60C...butt surface, 60D...groove portion, 60E...groove portion, 60F...front end portion, 60G...projection portion, 61A...positive electrode, 61B...negative electrode, 62A...positive relay line, 62B...negative relay line, 63A...positive power line, 63B...negative power line, 70...first adhesive, 75...second adhesive, 80...sponge ring, 90...tip tool, 100...electric work machine, 130...battery mounting portion, 140...trigger switch, 200...housing, 210...motor accommodating portion, 220...grip portion, 230...battery holding portion, 500...chip-on-board light-emitting diode, 501...chip-on-board light-emitting diode, 502...chip-on-board light-emitting diode, 503...chip-on-board light-emitting diode, 511...substrate, 512...substrate, 1000...output portion, 1000A...jet nozzle, AX...rotating shaft.

Claims

1. A motor; a housing having a motor accommodating portion that accommodates the motor and a grip portion that protrudes downward from the motor accommodating portion; an output section disposed forward of the motor and actuated by a rotational force of the motor; a substrate disposed above, to the left of, and to the right of the output unit; a plurality of light-emitting elements mounted on the front surface of the substrate at intervals in the circumferential direction of the output section, the light-emitting element closest to the vertex of the substrate directly above the output section is disposed at a position shifted by a predetermined angle in the circumferential direction from the vertex; Electric work equipment.

2. the plurality of light-emitting elements are arranged at positions that are line-symmetrical with respect to a line that passes through the central axis of the output portion and the vertex portion and extends in the up-down direction; The electric operating machine according to claim 1 .

3. the substrate has a circular ring portion disposed around the output portion; A plurality of light emitting elements are mounted on the front surface of the annular portion. The electric operating machine according to claim 1 .

4. The plurality of light-emitting elements are arranged at equal intervals in the circumferential direction on the front surface of the annular portion. The electric operating machine according to claim 3.

5. banks disposed on the front surface of the annular portion radially inward and radially outward of the light emitting element; a phosphor disposed inside the bank so as to cover the light emitting element; an optical member including an outer tubular portion disposed radially outward of the annular portion and a light-transmitting portion disposed forward of the light-emitting element and through which light emitted from the light-emitting element passes, The electric operating machine according to claim 3.

6. The substrate has a protrusion protruding upward from an upper portion of the annular portion. The electric operating machine according to claim 3.

7. The upper surface of the protrusion is a flat surface extending in the left-right direction. The electric operating machine according to claim 6.

8. The upper surface of the protrusion is a curved surface in which the center portion in the left-right direction of the upper surface bulges upward. The electric operating machine according to claim 6.

9. a positive electrode provided on the substrate and to which a positive voltage is applied; a negative electrode provided on the substrate and to which a negative voltage is applied; Each of the plurality of light-emitting elements is connected in parallel to the positive electrode and the negative electrode. The electric operating machine according to claim 1 .

10. a power supply line provided on the substrate and connected to each of the plurality of light-emitting elements; a resistor disposed on the power supply line, The electric operating machine according to claim 1 .

11. the resistor is disposed between a pair of adjacent light-emitting elements on the front surface of the substrate; The electric operating machine according to claim 10.

12. The resistor is disposed at the apex. The electric operating machine according to claim 11.

13. the substrate has a circular ring portion disposed around the output portion; The light emitting elements and the resistors are alternately arranged one by one in the circumferential direction on the front surface of the annular portion. The electric operating machine according to claim 10.

14. The output portion includes an anvil that is struck in a rotational direction by a hammer. The electric operating machine according to claim 1 .