Tool for inserting or removing a tang-free wire thread insert, production method therefor and method for manually replacing an entraining blade of this tool
09764454 · 2017-09-19
Assignee
Inventors
Cpc classification
Y10T403/602
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T403/60
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B25B27/143
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/53691
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A tool for inserting or removing a tang-free wire thread insert is described, the entraining blade of which is manually fastenable and replaceable within the axial recess of the spindle body by means of a latching connection. In addition to the secure removal of wire thread inserts, this tool construction also ensures a quick replacement of worn entraining blades of the tool. Furthermore, a production method for such a tool is described.
Claims
1. A tool for installing or removing a tang-free wire thread insert, which has the following features: a. a spindle body with a drive section and a receiving section, wherein the receiving section has one of a threaded and a threadless surface for receiving the wire thread insert, wherein the receiving section has an axial recess, the axial recess being open on a front side of the spindle body adjacent to the receiving section, the axial recess being open in a radial direction with respect to the spindle body, creating a radial window to the axial recess, the radial window being adjacent to the front side of the spindle body, b. an entraining blade, which is arranged in the axial recess of the receiving section, the entraining blade comprising a blade projection which is spring-mounted in an engaging position in the radial direction through a spring, so that the wire thread insert is engageable by means of the blade projection of the entraining blade through the radial window, while c. the entraining blade in the axial recess is fastenable and replaceable by means of a fastening connection between the entraining blade and the spindle body, wherein the fastening connection is designed as a latching or plug connection, which is manually establishable and releasable, wherein d. the entraining blade has one of a negative and positive fastening contour, which works together with a suitably designed mounting contour of the spindle body within the recess.
2. The tool according to claim 1, wherein the fastening contour of the entraining blade is one of a pin-like appendage and a ring-shaped opening and the mounting contour is one of a receiving impression and an axially extending projection.
3. The tool according to claim 1, wherein the entraining blade includes a latch bearing contour for the fastening connection on one side, with which the entraining blade is releasably latchable within the axial recess.
4. The tool according to claim 3, wherein the latch bearing contour is one of positively and negatively spring-loaded and works together respectively with a counter bearing, the counter bearing shaped complementarily to the latch bearing contour of the entraining blade.
5. The tool according to claim 4, wherein the counter bearing is integral with the spindle body within the axial recess or is fastened within the axial recess.
6. The tool according to claim 1, wherein the axial recess has one of a pressed in adapter and a pin extending transversely to a longitudinal axis of the receiving section, on which the entraining blade is fastenable.
7. The tool according to claim 1, in which the axial recess is a bore hole and in which a slotted support sleeve is fastened to the bore hole with a pin progressing transversely to a longitudinal direction of a slot of the sleeve for fastening the entraining blade.
8. The tool according to claim 1, wherein the entraining blade is designed in combination with the spring in a U-shaped manner so that at least one U-leg is formed by the entraining blade and another U-leg is formed by the spring.
9. The tool according to claim 8, the spring of which on an axial end comprises a radially outwards protruding projection, which extends in a longitudinal direction of the spring over a blade projection of the entraining blade.
10. The tool according to claim 8, the entraining blade and the spring of which form an integral structure.
11. The tool according to claim 1, wherein the manually establishable and releasable latching or plug connection is achievable by manually grasping of the entraining blade, pulling of the entraining blade out of the axial recess and manually inserting and fastening of another entraining blade in the axial recess.
12. A tool for installing or removing a tang-free wire thread insert, in which the tool has the following features: a. a spindle body with a drive section and a receiving section, wherein the receiving section has one of a threaded and a threadless surface for receiving the wire thread insert, wherein the receiving section has an axial recess, the axial recess being open on the front side of the spindle body adjacent to the receiving section, the axial recess being open in a radial direction with respect to the spindle body creating a radial window to the axial recess, the radial window being adjacent to the front side of the spindle body, b. an entraining blade, which is arranged in the axial recess of the receiving section, the entraining blade comprising a blade projection that is spring-mounted in an engaging position in the radial direction through a spring, so that the wire thread insert is engageable by means of the blade projection of the entraining blade by means of the blade projection through the radial window, while c. the entraining blade is designed as one piece with the spring, and the entraining blade is manually fastenable and replaceable in the axial recess by means of a fastening connection between the entraining blade and the spindle body, wherein d. the entraining blade has one of a negative and positive fastening contour, which works together with a suitably designed mounting contour of the spindle body within the recess.
13. The tool according to claim 12, wherein the fastening contour of the entraining blade is one of a pin-like appendage and a ring-shaped opening and the mounting contour is one of a receiving impression and an axially extending projection.
14. The tool according to claim 12, in which the entraining blade has a latch bearing contour for the fastening connection on one side, with which the entraining blade is releasably latchable within the axial recess.
15. The tool according to claim 14, wherein the latch bearing contour is designed one of positively and negatively spring-loaded and works together respectively with a counter bearing, the counter bearing shaped complementarily to the latch bearing contour of the entraining blade.
16. The tool according to claim 15, in which the counter bearing is designed integrally in the spindle body within the axial recess or is fastened within the axial recess.
17. The tool according to claim 12, in which the axial recess has one of a pressed in adapter and a pin extending transversely to a longitudinal axis of the receiving section, on which the entraining blade is fastenable.
18. The tool according to claim 12, in which the axial recess is a bore hole, wherein a slotted support sleeve is fastened to the bore hole with a pin progressing transversely to a longitudinal direction of a slot of the sleeve for fastening the entraining blade.
19. The tool according to claim 12, in which the entraining blade is designed in combination with the spring in a U-shaped manner so that at least one U-leg is formed by the entraining blade and another U-leg is formed by the spring.
20. The tool according to claim 19, the spring of which on an axial end comprises a radially outwards protruding projection, which extends in a longitudinal direction of the spring over the blade projection of the entraining blade.
21. The tool according to claim 19, in which the entraining blade and the spring of which form an integral structure.
22. An entraining blade of a tool for installing and removing a tang-free wire thread insert, with which the tang-free wire thread insert is installable and removable, the entraining blade having a blade projection, and a fastening contour, the entraining blade is manually fastenable and replaceable in the tool by the fastening contour, wherein the fastening contour is designed as one of a latch bearing contour and one of a positive or a negative fastening contour of a plug connection, which is manually establishable and releasable and the entraining blade designed as one piece with a spring so that the entraining blade is spring-mountable in an engaging position in the tool.
23. The entraining blade according to claim 22, wherein the negative or positive fastening contour works together with a suitably designed mounting contour of a recess of a spindle body.
24. The entraining blade according to claim 23, in which the positive fastening contour of the entraining blade is one of a pin-like appendage and a ring-shaped opening.
25. The entraining blade according to claim 24, which is designed in combination with the spring in a U-shaped manner so that at least one U-leg is formed by the entraining blade and another U-leg is formed by the spring.
26. The entraining blade according to claim 25, in which the spring comprises a radially outwards protruding projection on an axial end, the radially outwards protruding projection extending in a longitudinal direction of the spring beyond the blade projection of the entraining blade.
27. The entraining blade according to claim 23, which is designed in combination with the spring in a U-shaped manner so that at least one U-leg is formed by the entraining blade and another U-leg is formed by the spring.
28. The entraining blade according to claim 27, in which the spring comprises a radially outwards protruding projection on an axial end, the radially outwards protruding projection extending in a longitudinal direction of the spring beyond the blade projection of the entraining blade.
29. The entraining blade according to claim 22, wherein the latch bearing contour is designed as one of positively and negatively spring-loaded.
30. The entraining blade according to claim 29, which is designed in combination with the spring in a U-shaped manner so that at least one U-leg is formed by the entraining blade and another U-leg is formed by the spring.
31. The entraining blade according to claim 30, in which the spring comprises a radially outwards protruding projection on an axial end, the radially outwards protruding projection extending in a longitudinal direction of the spring beyond the blade projection of the entraining blade.
32. The entraining blade according to claim 22, which is designed in combination with the spring in a U-shaped manner so that at least one U-leg is formed by the entraining blade and another U-leg is formed by the spring.
33. The entraining blade according to claim 32, in which the spring comprises a radially outwards protruding projection on an axial end, the radially outwards protruding projection extending in a longitudinal direction of the spring beyond the blade projection of the entraining blade.
34. The entraining blade according to claim 32, in which the entraining blade and the spring form an integral structure.
Description
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
(1) The preferred embodiments of the present invention are explained in greater detail with reference to the accompanying drawings. In the figures:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(26) The tool 1 shown as an example in
(27) The tool 1 according to the invention consists of a spindle body 10, a depth stop sleeve T with counter sleeve K, a receiving section 14 with thread 16 or a pin-like, threadless surface (not shown) and an entraining blade 20 with blade projection 22. According to
(28) As can be seen based on
(29) The position of the depth stop sleeve T is freely adjustable on the thread 16 of the receiving section 14, where it is secured by means of the counter sleeve K.
(30) The receiving section 14 has an axial recess 30, in which the entraining blade 20 is arranged. The axial recess 30 extends in the axial direction of the receiving section 14. It is preferably designed like a slot. The axial recess 30 is also open on the front side of the spindle body 10 adjacent to the receiving section 14 (see
(31) Based on the construction of the entraining blade 20, as described in greater detail below, the length of the tool 1 can be set in any manner and reduced to a minimum. The entraining blade 20 is approximately half the length in comparison to the known entraining blades so that the length of the tool 1 is determined by the required dimensions of drive section 12 and threaded section 14. In this manner, the length of tool 1 can be adjusted in any manner for different installation conditions and customer needs.
(32) The entraining blade 20 comprises the blade projection 22 already mentioned above, which engages through the radial window 34 on the wire thread insert D. The shape of the blade projection 22 can be designed differently, as is also known and will not be explained in greater detail.
(33) As
(34) According to one embodiment, the counter bearing 32 consists of the aforementioned tang 32, which extends in the axial direction of the spindle body 10. According to another embodiment, the pin-like counter bearing 32 is formed by an adapter 40 with counter bearing 32, which is pressed, glued or otherwise fastened in the axial recess 30 (see
(35) It is also preferred to releasably latch the U-shaped latch bearing contour 28 on a pin 42, which extends transversely to the longitudinal axis of the receiving section 14 through the axial recess 30 (see
(36) According to another preferred embodiment, which can be seen in
(37) According to a constructive alternative to the embodiment described above, the pin 42 is fastened in the support sleeve 50 and the support sleeve 50 is permanently arranged in the aforementioned bore hole. Thus, a bore hole does not need to be provided in the receiving section 14 for the pin 42.
(38) According to another constructive alternative, the pin 42 runs through the radial outer wall of the receiving section 14 as well as the support sleeve 50 and is fastened there.
(39) The use of the support sleeve 50 with pin 42 has the advantage that the axial recess 30 can be produced through simple processing steps, such as boring, turning, milling and gluing in or pressing in. Naturally, it is also preferred to create the axial recess 30 through eroding in the receiving section 14.
(40) According to a further embodiment, the latch bearing contour 28′ is designed negatively so that it is releasably latched in a counter bearing 32′ with an opening. The latch bearing contour 28′ is preferably O-shaped as shown in
(41) According to different preferred embodiments of the present invention, the entraining blade 20 is designed with or without spring 24. Regardless of the spring 24, the entraining blade 20 is releasably latchable in the axial recess 30, as described above.
(42) According to another preferred embodiment, which is shown in
(43) As can be seen based on the enlarged representations in
(44) According to another preferred embodiment of the projection 26, it extends radially outward or respectively in the direction facing away from the blade projection 22 as well as in the longitudinal direction of the spring 24. The longitudinal extension of the projection 26 is greater than the axial length of the blade projection 22 with respect to the longitudinal direction of the entraining blade 20. Furthermore, it is preferred that the longitudinal extension of the projection 26 is greater than the axial length of the window 34 with respect to the receiving section 14 (see
(45) According to the preceding description, in tool 1, the entraining blade 20 is fastened in the recess 30 of the spindle body 10 by means of a latching connection. It is also preferred to fasten the entraining blade 20 within the recess 30 of the spindle body 10 by means of a fastening connection 29, 33. This fastening connection 29, 33 does not represent a latching connection between the entraining blade 20 and the spindle body 10. Instead, this fastening connection should be understood on the one hand as the connections between spindle body 10 and entraining blade 20 known from the state of the art (not shown). This means that, by means of the fastening connection, the entraining blade 20 is installed within the recess 30 of the spindle body 10 by means of a tool. For this purpose, the entraining blade has a closed eyelet for example on its end protruding into the recess 30 so that the entraining blade is fastenable within the recess 30 by means of a pin running through the spindle body 10. This pin and thus also the entraining blade 20 is installed or deinstalled by means of a tool (not shown).
(46) According to another preferred embodiment of the present invention, the fastening connection is a plug connection between entraining blade 20 and spindle body 10. The entraining blade 20 therein comprises a negative fastening contour 33, as is shown for example in
(47) According to a further preferred embodiment of the fastening connection 29′, 33′ between entraining blade 20 and spindle body 10, the entraining blade 20 comprises a positive fastening contour 33′. This positive fastening contour 33′ is shown schematically in
(48) With respect to the latch bearing contours 28, 28′, 32, 32′ described above, it is also preferred to implement them as negative and positive fastening contours according to the
(49) The present invention also discloses a preferred production method for the tool 1 described above. One embodiment of this production method is shown by means of the flow chart in
(50) In a second step S2, the axial recess 30 within the receiving section 14 is produced with a one-sided radial window 34. According to a preferred embodiment, the axial recess 30 is created through eroding. The counter bearing 32; 32′ is also eroded within the axial recess 30 according to a production alternative. It is also preferred to separately create the counter bearing 32; 32′ as an adapter (see above) and to then press, glue or otherwise fasten it into the axial recess 30.
(51) According to a further preferred production alternative, the receiving section 14 in step S2a is drilled open in the axial direction. The support sleeve 50 described above with the pin 42 is then inserted into the created bore hole so that the slot 52 of the support sleeve 50 forms the axial recess 30. It is also preferred to insert the pin 42 only after the insertion of the support sleeve 50 into the created bore hole. In this case, the pin 42 also runs through holes in the receiving section 14 in addition to the holes 54 in the support sleeve 50.
(52) In a further step S3, the entraining blade 20 is produced with fastening contour 33; 33′ or latch bearing contour 28, 28′. While other production methods for producing the entraining blade 20 with fastening contour 33; 33′ or with latch bearing contour 28; 28′ can also be used, the entraining blade 20 with fastening contour 33; 33′ or latch bearing contour 28; 28′ is preferably wire-eroded. According to a further preferred embodiment of the production step, the entraining blade 20 is produced in combination with the spring 24 as an integral structure. According to the design described above, this integral structure is preferably designed in a U-shaped manner. During the production of the entraining blade 20 with latch bearing contour 28; 28′ or fastening contour 33; 33′ or of the integral structure consisting of entraining blade 20 and spring 24, a positive fastening 33 or latch bearing contour 28, in particular a U-shaped latch bearing contour, or a negative fastening 33′ or latch bearing contour 28′, in particular an O-shaped latch bearing contour, is preferably provided on the entraining blade 20 (step S3).
(53) In conclusion, a connecting of the fastening contour 33; 33′ or latch bearing contour 28; 28′ of the entraining blade 20 with a corresponding counter bearing 29, 29′; 32, 32′ takes place in step S4 within the axial recess 30. The counter bearing is formed by a tang 32, a corresponding impression 32′, an adapter 40 with tang 32, an axial appendage 33 or a pin 42, as described in detail above. The established connection between entraining blade 20 or integral structure with entraining blade 20 is manually establishable and also releasable again
(54) The present invention also discloses a preferred embodiment of a method for manually replacing the entraining blade 20 in the tool 1 described above based on the flow chart in