IMPACT FASTENING TOOL AND TORQUE TESTER
20170266788 · 2017-09-21
Assignee
Inventors
Cpc classification
B25B21/02
PERFORMING OPERATIONS; TRANSPORTING
B25B23/1475
PERFORMING OPERATIONS; TRANSPORTING
B25B23/1456
PERFORMING OPERATIONS; TRANSPORTING
H01R39/24
ELECTRICITY
International classification
B25B21/02
PERFORMING OPERATIONS; TRANSPORTING
B25B23/147
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided are: an impact fastening tool which prevents a torque detecting means from missing a signal and extends service life by adopting a fixed connector that prevents the trouble of being instantaneously separated (bounced) from a rotating electrode by intermittent impacts and has a shape allowing the progression of friction to be delayed structurally; and a torque tester. Both end portions of the fixed connector are fixed, and at least two protrusion portions are formed between the both end portions. The rotating electrode is disposed between one protrusion portion and the other protrusion portion such that the rotating electrode contacts the fixed connector at two or more points or in a line form. A signal required for the torque detecting means is transmitted through the contact between the rotating electrode and the fixed connector.
Claims
1. An impact fastening tool for converting a rotary force of a rotary drive source into intermittent impacts by an impact generation mechanism, and fastening a screw by a rotary force of a main shaft applied by impact force, the impact fastening tool comprising: a housing; a slip ring portion; and a torque detection means that detects a tightening torque, wherein: the slip ring portion includes a rotating electrode that rotates integrally with the main shaft, and a fixed connector that is in contact with the rotating electrode both end portions of the fixed connector are fixed, and at least two protrusion portions are formed between both end portions; the rotating electrode is disposed between one protrusion portion and the other protrusion portion such that the rotating electrode contacts the fixed connector at two or more points or in a line form; and a signal required for the torque detection means is transmitted through the slip ring portion.
2. The impact fastening tool according to claim 1, wherein: a part between a top of one protrusion portion and a top of the other protrusion portion is a valley portion; a curvature of the valley portion is smaller than a curvature of the rotating electrode; and two contact points are formed between the rotating electrode and the fixed connector.
3. A torque tester for measuring a tightening torque of a fastening tool, comprising: a housing; a shaft receiving portion that receives a main shaft of the fastening tool; a slip ring portion; and a torque detection means that detects a tightening torque, wherein: the slip ring portion includes a rotating electrode that rotates integrally with the shaft receiving portion, and a fixed connector that is fixed and in contact with the rotating electrode; both end portions of the fixed connector are fixed, and at least two protrusion portions are formed between the both end portions; the rotating electrode is disposed between one protrusion portion and the other protrusion portion such that the rotating electrode contacts the fixed connector at two or more points or in a line form; and a signal required for the torque detection means is transmitted through the slip ring portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DESCRIPTION OF EMBODIMENTS
[0030] Hereinafter, the impact fastening tool and the torque tester will be described with reference to the drawings illustrated as embodiments.
Embodiment 1
[0031] [1. Basic Configuration of Impact Fastening Tool 1]
[0032]
[0033] As shown in
[0034] To be specific, the impact fastening tool 1 is referred to as an impulse wrench or an impact wrench.
[0035] [2. Torque Detection Means 3 and Slip Ring Portion 12]
[0036] The torque detection means 3 is configured to detect a tightening torque, and when a preset torque is detected on the basis of the detection, the impact fastening tool 1 does not perform fastening. An example of this process is to stop the rotating portion 2.
[0037] The slip ring portion 12 including the rotating electrode 4 and the fixed connector 5 shown in
[0038] To enable transmission of a signal as mentioned above, the rotating electrode 4 is provided on the outer periphery of the main shaft 22 and rotates integrally with the main shaft 22, while the fixed connector 5 is fixed to the non-rotary housing 10 side and is in contact with the rotating electrode 4, as shown in
[0039] Signal transmission of the torque detection means 3 will be described in more detail. As shown in
[0040] [3. Rotating Electrode 4 and Fixed Connector 5]
[0041] As shown in
[0042] As shown in
[0043] Then, if a part between the top of one protrusion portion 52 and the top of the other protrusion portion 53 is formed into a valley portion 54, and the curvature of the valley portion 54 is smaller than the curvature of the rotating electrode 4, two contact points are formed. This can favorably improve abrasion resistance. As shown in
[0044] The shape of the fixed connector 5 is not limited to the substantial M shape shown in
[0045] Examples of the grooves 40 to 43 of the rotating electrode 4 include brass, a silver alloy, a gold alloy and the like formed into a ring shape, and examples of the material of the fixed connector 5 include carbon, a silver alloy, a gold alloy, a senary alloy and the like formed into a wire shape.
[0046] [4. Comparison with Conventional Technique and Effects of Present Invention]
[0047]
[0048] As shown in
[0049] Abrasion and bouncing of the brush B and the rotating electrode 4 when applied large and small pressing forces F, were compared with abrasion and bouncing of the fixed connector 5 and the rotating electrode 4 of the present invention. The following Table 1 shows contents of the comparison.
TABLE-US-00001 TABLE 1 Abrasion Bounce resistance prevention (wear resistance) (slosh resistance) Conventional technique: large F x ∘ (in PERIOR ART F is large) Conventional technique: small F ∘ x (in PERIOR ART F is small) Present invention ∘ ∘ (THIS INVENTION) ∘: Good (Good) x: Poor (Bad)
[0050] As shown in Table 1, the fixed connector 5 of the present invention prevents bouncing from the rotating electrode 4, and abrades slowly. Hence, the impact fastening tool 1 adopting the fixed connector 5 prevents the torque detection means 3 from missing a signal, and extends service life.
Embodiment 2
[0051] [5. Basic Configuration of Torque Tester 6]
[0052]
[0053] The torque tester 6 is retrofitted to the impact fastening tool 1 or used to test the impact fastening tool 1, and is configured to measure the tightening torque with which the impact fastening tool 1 fastens a screw. The torque tester 6 can also measure the tightening torque of a nut runner, for example, that generates torque continuously. As shown in
[0054] The shaft receiving portion 61 is connected by receiving the shaft end portion 23 of the impact fastening tool 1 shown in
[0055] The torque tester 6 illustrated in
[0056] [6. Torque Detection Means 7 and Slip Ring Portion 63]
[0057] The torque detection means 7 is configured to detect the tightening torque of a fastening tool (e.g., impact fastening tool 1 and nut runner) connected to the shaft receiving portion 61, and the torque tester 6 outputs a measured value of the torque of the connected fastening tool, on the basis of the detection.
[0058] The slip ring portion 63 including the rotating electrode 8 and a fixed connector 9 shown in
[0059] To enable transmission of a signal as mentioned above, the rotating electrode 8 is provided on the outer periphery of the main shaft 62 and rotates integrally with the main shaft 62, while the fixed connector 9 is fixed to the non-rotary housing 60 side and is in contact with the rotating electrode 8, as shown in
[0060] Signal transmission of the torque detection means 7 will be described in more detail. As shown in
[0061] [7. Rotating Electrode 8 and Fixed Connector 9]
[0062] As shown in
[0063] Also, as shown in
[0064] Other configurations, effects and advantages of Embodiment 2 are the same as Embodiment 1.
INDUSTRIAL APPLICABILITY
[0065] The present invention relates to connection between the rotating electrode 4 and the fixed connector 5, and between the rotating electrode 8 and the fixed connector 9, which addresses the characteristic problem of the impact fastening tool 1 and the torque tester 6 that abrupt vibration is caused by looseness of a socket or impact when fastening, for example. Hence, the invention is applicable not only to the impact fastening tool 1, but also to tools, devices, and other equipment that have similar problems.
REFERENCE SIGNS LIST
[0066] 1 impact fastening tool [0067] 10 housing [0068] 11 trigger [0069] 12 slip ring portion [0070] 2 rotating portion [0071] 20 rotary drive source [0072] 21 impact generation mechanism [0073] 22 main shaft [0074] 23 shaft end portion [0075] 3 torque detection means [0076] 30 strain gauge [0077] 31 wiring [0078] 32 wiring [0079] 4 rotating electrode [0080] 40 groove [0081] 41 groove [0082] 42 groove [0083] 43 groove [0084] 5 fixed connector [0085] 50 end portion [0086] 51 end portion [0087] 52 protrusion portion [0088] 53 protrusion portion [0089] 54 valley portion [0090] 6 torque tester [0091] 60 housing [0092] 61 shaft receiving portion [0093] 62 main shaft [0094] 63 slip ring portion [0095] 7 torque detection means [0096] 70 strain gauge [0097] 71 wiring [0098] 72 wiring [0099] 8 rotating electrode [0100] 80 groove [0101] 81 groove [0102] 82 groove [0103] 83 groove [0104] 9 fixed connector [0105] 90 end portion [0106] 91 end portion [0107] 92 protrusion portion [0108] 93 protrusion portion [0109] B brush [0110] F force