![]() Holder for a rotary tool, such as a hole saw
专利摘要:
Holder (10) for a rotating tool (21) which holder (10) is formed with a holder body (100) in the holder body (100) comprising a rear drive end (11) and a front connection end (12) with a connection thread (13) for connecting the tool ( 21). The holder (10) comprises a pressure ring (14, 64) with a flat contact surface (141) facing a connecting end (12) of the holder (10). The holder comprises an axially movable operating member (15), a number of locking elements (16) placed in one or more spaces (17) in the holding body which locking elements (16) in a first axial position of the operating member (15) are prevented from radial movement in said spaces ( 17) and which locking elements (16) in a second axial position of the operating member (15) allow radial movement in said spaces (17). Each of said spaces (17) for the locking elements (16) is delimited in axial direction partly by a front boundary wall (47) and partly by a rear boundary wall (46, 66) of which two boundary walls (46, 66, 47) are parts of the holding body (100) (Fig. 1) 公开号:SE1650573A1 申请号:SE1650573 申请日:2016-04-29 公开日:2017-10-30 发明作者:Grindlund Erik;Holm Per;Ivner Tomas;Classon Nils 申请人:Kapman Ab; IPC主号:
专利说明:
TECHNICAL FIELD The present invention relates to the type of holder for rotary tools, for example hole saws, which are threaded onto an external holder thread arranged on a holder pin but without so-called drive pins. Background of the invention In the type of holder for hole saws where the holder is provided with an external thread on an axial holder pin, there is a problem when changing the hole saw because the use of the hole saw means that it is tightened tightly in the thread and is difficult to change quickly by unscrewing it. from the holder pin. U.S. Pat. No. 8,721, 236 discloses a holding device which enables a hole saw screwed onto a thread to be removed by displacing an axial friction member relative to the holder to eliminate biasing in the thread. The position of the friction member of this holding device can be changed by means of an operating member which is rotated relative to the holder which rotation gives rise to tangential movement of internal lugs in the operating member. These lugs press against balls located in a gap between the friction member and the holder and are spring loaded by first spring means. . Furthermore, other spring means are connected to the holder to actuate the balls in the radial direction. When the actuator is rotated, the balls are given the possibility of a radial movement through this second spring means, whereby the friction means can move in the direction of the hole saw and thereby eliminate the biasing in the thread. According to the known patent, the friction member is furthermore rotationally fixed relative to the holder. This prior art holding device is complicated in that it requires two different types of springs which act in different directions and from which the single spring acts radially against the balls to press them outwards when such a radial space is present. In addition, this construction is difficult to assemble due to its many components. Furthermore, there is a greater risk with a complicated construction that malfunctions will occur. Such known constructions are also bulky and require diameters which are often larger than the hole saw diameters, which means that the holder will limit the possible drilling depth because the holder will be obstructed by the workpiece. Object of the invention The object of the invention is to provide a holder for rotary tools, for example hole saws, which holder can be manufactured with a slimmer shape so that even small saw diameters can be drilled deeper into a workpiece than is possible with existing holders. The purpose is also to provide a holder in which the number of components has been reduced in relation to similar known holders, which means greater functionality and easier assembly. In addition, the purpose is to increase the speed when disassembling and replacing a rotating tool, for example a hole saw, by the operation taking place with a longitudinal displacement of an operating member either translationally or by rotation. SUMMARY OF THE INVENTION By the present invention, as set forth in the independent patent claim, the above stated objects are fulfilled in which said disadvantages are eliminated. Suitable embodiments of the invention are set out in the dependent claims. The invention relates to a holder for a rotating tool, for example a single-hole saw, which holder is formed with a substantially rotationally symmetrical holder body. The holder body comprises a rear drive end, which is, for example, adapted to be clamped in a chuck of a drilling machine, and a front connection end with a connecting thread for connecting the rotating tool. The holder comprises a pressure ring located at the connection end and around it with at least one contact surface facing the opposite connection end of the holder. The contact surface has a shape directly or indirectly connected to the mounted rotating tool. By an indirect connection is meant that an intermediate ring or a friction ring is placed between the pressure ring and the tool. Usually the contact surface is flat but also conical friction surfaces are conceivable within the scope of the invention. Also one or more contact surfaces which only connect to the pressure ring are wholly, partly or pointwise included in the invention. The holder further comprises an axially movable actuator. Its axial movement is effected either by translational movement or by rotational movement. The holder also comprises a number of locking elements placed in one or more spaces in the holder body. In embodiments with only one space, this is arranged as a circumferential groove in the holder body. In embodiments with several spaces, such a space can contain several blocking elements in each space, and then preferably the same number of blocking elements in each space. Self-embodiments with a space for each locking element are encompassed by the invention. In addition, the locking elements are also allowed to be displaced during radial movement, even a distance in the axial direction. Each of said spaces the locking elements are delimited in the axial direction partly by a front limiting wall and partly by a rear limiting wall which both limiting walls form parts of the holding body. In an embodiment of the invention, said spaces are designed as a common circumferential groove in the holder body. This design is advantageous from a production point of view. In one embodiment of the invention, a normal to that front boundary wall is parallel to the line of symmetry of the holder body. In an embodiment of the invention, at least the outermost part of the rear boundary wall forms the angle oi with the line of symmetry of the holding body where 100 ° <d <115 °, preferably oi = 107 °. This sloping restriction wall allows the locking elements to move slightly axially as the actuator allows the locking elements to move radially. The axial movement is sufficient to eliminate the stresses that have arisen in the threaded connection between the holder body and the connected tool. In an alternative embodiment, the pressure ring is provided with an inner edge portion which forms the angle ö with the line of symmetry of the holding body where 100 ° <δ <115 °, preferably δ = 107 °. This angled edge portion provides a combination of a radial and an axial movement of the locking elements, which axial movement is sufficient to eliminate the stresses which have arisen in the threaded connection between the holding body and the connected tool. As a complement to this alternative embodiment, a normal to the rear boundary wall may be parallel to the line of symmetry of the carrier body. In an embodiment of the invention, the operating member is designed as a sleeve located around the holding body, which in its two axial positions completely encloses the locking elements and at least partially encloses the pressure ring. In an embodiment of the invention, the actuator abuts in its first axial position against the locking elements with an inner conical surface which forms the angle ß with the line of symmetry of the holder body where 0 ° <ß <10 °, preferably ß = 5 °. In an embodiment of the invention, the actuator in its second axial position allows the locking elements to be axially displaced rearwards and radially outwards in the said spaces. In one embodiment of the invention, the blocking elements are formed as spherical spheres. In one embodiment of the invention, the diameter of the balls is 1 mm to 7 mm, preferably 3 mm. In an embodiment of the invention, the actuator is axially displaceable backwards against the action of a spring. The spring is usually designed as a helical spring which encloses the retaining body and is placed in a lowering in the holding body. The actuator is also provided with a corresponding lowering so that a spring housing is formed between the holding body and the actuator at their overlap. In an embodiment of the invention, the holder is provided with a central cylindrical seat parallel to the axis of symmetry of the holder and in which a radially directed locking thread is arranged, whereby a locking screw can be screwed into the locking thread and fix a center drill placed in the seat. In one embodiment of the invention, the contact surface is flat. This planar contact surface here cooperates with a similarly flat surface on the rotating tool. The rotating tool mainly refers to a hole saw, but other rotating tools are also conceivable, for example cutters, grinding tools, reamers, etc. Brief description of the drawings The invention will now be described in more detail with references in connection with the accompanying drawing figures. Figure 1 shows a holder according to a first embodiment of the invention in a partial section. Figure 2 shows a holder according to figure 1 with the tool mounted according to the invention in a partial section. Figure 3 shows the holder according to figure 2 maneuvered pre-disassembly of the tool. Figure 4a shows a section through a second embodiment of a holder according to the invention. Figure 4b shows a partial enlargement according to the marking in figure 4a. Figure 5a shows the holder according to figure 4a in a position for disassembly. Figure 5b shows a partial enlargement according to the marking in figure 5a. Figure 6a shows a section through a third embodiment of a holder according to the invention. Figure 6b shows a partial enlargement according to the marking in figure 6a. Figure 7a shows the holder according to figure 6a in a position for disassembly. Figure 7b shows a partial enlargement according to the marking in figure 7a. Description of the invention Figure 1 shows a holder 10 according to the invention which holder is provided with a connected center drill CB. The holder 10 consists of a holder body 100 with a rear drive end 11 and a front connection end 12. The drive end 11 is designed as a hexagonal shaft for attachment to a driving tool, for example in an enchuck in a drilling machine. Other embodiments of the drive end are also naturally conceivable. The connection end 12 is provided with a connection thread 13 to which a rotating tool 21, for example a hole saw, is screwed. The holder 10 comprises at the connection end 12 and around it a placed pressure ring 14 with a contact surface 141 facing the connection end 12 of the holder 10. In the exemplary embodiment shown, the contact surface 141 is flat and directed so that a normal contact surface 141 is parallel to the holder symmetry axis S. The holder 10 further comprises a axially movable actuator 15 which is axially movable against the action of a single spring 151 which in the figure is shown as a helical spring. This spring 151 encloses the holding body 100. Furthermore, a number of locking elements 16 are placed in one or more spaces 17 in the holding body 100 and which locking elements 16 in a first axial position of the actuator 15, which position is shown in the figure, are prevented by the actuator 15 from radial movement in As can be seen from the figure, the actuator 15 is formed as a sleeve located around the holding body 100 which completely encloses the locking elements 16 and at least partially encloses the pressure ring 14. The pressure ring 14 is provided with a surface-enlarging flange 142 having a diameter corresponding to the diameter of the actuator 15. is placed in a seat 18 as bottom behind / under the actuator 15 and locked in the holding body 100 by a screw a locking thread 19 directed perpendicular to the seat. Figure 2 shows the holder in figure 1 with a connected tool 21, for example a single-hole saw. The hole saw shown in the figure is provided with a hexagonal connection 22 to enable the use of a key for mounting and dismounting the hole saw. As shown in the figure, the hole saw abuts with a flat lower surface against the flat contact surface 141 of the pressure ring. each locking element 16 in place in the respective space 17 without the possibility of either radial or axial displacement in the space 17 relative to the tumbler body 100. The actuator 15 is held in this upper axial position by the spring 151 acting on the actuator 15. In this upper position the actuator 15 comes into operation with the hole saw this to be pulled towards the holder and significant stresses are obtained between cooperating threads. An elimination of these voltages must be done with tools to release the hole saw from the holder. Disassembly would be done in this position. Figure 3 shows the holder 10 with mounted tool 21, here a hole saw, the actuator 15 of the carrier in its lower axial position, the locking elements 16 being able to move radially and axially in the space 17 to the position shown in the figure. The axial movement of the locking elements 16 creates a play G between the flat lower surface of the hole saw and the corresponding flat contact surface of the pressure ring 141. The size of the play G is not greater than that the play eliminates the thread tension in a specific embodiment between the hole saw thread and the connecting thread. . For example, 0.8mm> G> 0.2mm. Figure 4a shows an axial section through a holder 40 according to a second embodiment of the invention. The holder is provided with a seat 41 for a center drill which is locked in the seat with a locking screw in a locking thread 42 perpendicular to the axis direction of the seat and the symmetry axis S. The seat according to this second embodiment bottoms in the area inside the actuator 15 and the locking thread is located in front of / above the actuator 15. The holder 40 is provided with one actuator 15 in its upper axial position, i.e. the reading position, the actuator 15 by means of the spring 151 pours the locking elements 16 into their inner positions. The figure shows an embodiment with a pressure ring 14 of a different design in that the surface-enlarging flange is missing, which gives its contact surface 141 a smaller area. Figure 4b shows an enlargement of the area around a locking element 16 which the reading position is located in the innermost space 17 and retained in this position by an inner conical surface 44 of the actuator 15. In this position the locking elements 16 constitute an axial reading for the pressure ring 14 by its inner edge portion 45 abuts the counter-locking elements 16 with an axial force which is balanced with a counter-axial force by preventing the locking elements 16 from axial movement of a rear limiting wall 46 of the space 17 which is axially limited in front by a front front limiting wall 47. This rear limiting wall 46 or at least the outermost part of the rear limiting wall 46 forms the angle oi in the symmetry line S of the carrier body 100 where 100 ° <oi <115 °, and preferably oi = 107 °. The figure also shows that the conical inner surface 44 of the actuator 15 forms the angle ß with the line of symmetry S of the pouring body 100 where 0 ° <ß <10 °, and preferably ß = 5 °. Figure 4b also shows the position of a loaded locking element 16 where it abuts in the space 17 partly against a corner 48 at the front limiting wall 47, partly against the inner edge portion 45 of the pressure ring, partly against the rear angled limiting wall 46 and partly against the inner conical surface 44. In this loaded position, the tool, the pressure ring, the locking elements and the pouring body have been pressed against each other. Figure 5a shows the holder 40 according to Figure 4a with the actuator 15 displaced against the action of the spring 151 to its second axially lower position in which the locking elements 16 can move to a limited extent partly in radial direction but also in axial direction. Because the locking elements 16 move axially construction soup between the flat lower surface of the heel saw and the corresponding flat contact surface 141 of the pressure ring to be eliminated and the heel saws can be easily screwed off the holder. Figure 5b shows an enlargement of the area around a locking element 16, which by displacing the actuator 15 downwards allows the locking element 16 to be displaced both radially leaky and axially rearwardly, i.e. downwards in the figure, which means that an axial displacement backwards of the pressure ring 14 distance G is possible .This displacement completely eliminates the tension between said surfaces and the hole saw can be easily screwed off the holder. During the displacement of the operating member 15, the inner conical surface 44 will no longer abut against the locking elements 16, but still an edge surface 51 on the operating member 15 will limit the radial and axial movement of the locking elements 16, as can be seen from the figure. Figure 5b also shows the position of an unloaded locking element 16 which has been released by the actuator 15 being moved backwards. The locking element 16 has in this case been displaced both radially outwards and axially rearwards and abuts only the edge surface 51 of the counter-actuator 15, the rear angled boundary wall 46 of the space 17 or its corner 52, partly against the inner edge portion 45 of the pressure ring 14. Alternatively the locking element is displaced so that a clearance G In this unloaded position, the stresses between the tool, the pressure ring, the locking elements and the holding body have released and the tool can be unscrewed from the connection end. Thus, the holder 10 comprises a pressure ring 14 against which the tool, the hole saw, bottoms and locks under load. A number of locking elements 16, e.g. balls, lies between the pressure ring 14 and a surface 46 of the holding body 100 which surface has an angle o 1 to the main axis. Sleeve which in its upper position locks the balls in a position closer to the main axis and in a lower position allows the balls to be pushed outwards whereby the pressure ring 14 can move the distance G towards said rear drive end 11 of the holder body and thereby release the lock between the hole saw and the pressure ring 14. a conical surface 44 at an angle ß to the main axis which in the upper position of the sleeve abuts against the balls and a larger inner diameter which the second position of the sleeve allows the balls to move radially outwards. The coil spring holding the sleeve in its upper position according to Figures 1, 2, 4 allows the user to manually pull the sleeve to its lower position according to Figures 3, 5a. In the embodiments described so far, the holding body space / spaces for the locking elements are formed with an angled rear limit wall which contributes to the locking elements being displaced radially outwards by the denaxial force transmitted to the locking elements by the pressure ring when the actuator allows such radial movement. Figures 6a-7b show a third embodiment of the invention, which embodiment differs from the embodiments described above in that the holder is provided with a pressure ring whose abutment surface against the locking elements forms an angle with the line of symmetry of the holder with the same function as the previously angled rear boundary wall. to contribute to the locking elements is displaced radially outwards by the axial force transmitted to the locking elements by the pressure ring when the operating member allows such a radial movement. In the following, the same reference numerals are used for corresponding details in previously shown embodiments. Figure 6a shows an axial section through a holder 40 according to a third embodiment of the invention. The holder is provided with a seat 41 for a center drill which is locked in the seat with a locking screw in a locking thread 42 perpendicular to the axis direction of the seat and the symmetry axis of the holder S. The seat according to this second embodiment bottoms in the area inside the actuator 15 and the locking thread is located in front of / above the actuator 15. provided with one actuator 15 in its upper axial position, i.e. the locking position, then the actuator 15 by means of the spring 151 holds the locking elements 16 in their inner positions. The figure shows an embodiment with a pressure ring 64 of a different design partly in that the surface enlarging flange according to figures 1-3 is missing, which gives its contact surface 141 a smaller area and partly in that the pressure ring abutment surface towards the locking elements 16 is angled. Figure 6b shows in magnification the area around a blocking element 16 according to the marking in figure 6a. The locking element 16 shown in the locking position is located in the innermost space 17 and is retained in this position by the inner conical surface 44 on the actuator 15. In this position the locking elements 16 constitute an axial locking the pre-pressure ring 64 by its inner edge portion 65 abutting the locking elements 16 with an axial force which is balanced with an opposite axial force by the locking elements 16 is prevented from axial movement of a rear restraining wall 66 of the space 17 which is axially limited forward by a front restraining wall 47.This rear restraining wall 66 or at least the outermost part of the rear restraining wall 46 forms a right angle with the retainer body 100. S. The front boundary wall 47 also forms the right angle of symmetry line S of the holder body 100. In this embodiment the pressure ring 64 is provided with a lower surface 65, which abuts the locking elements 16, which forms the angle ö with the line of symmetry S of the holder body 100 where 100 ° <ö <115 ° , and preferably δ = 107 ° . As previously shown, the conical inner surface 44 of the actuator 15 forms the angle ß with the line of symmetry S of the holding body 100 where 0 ° <ß <10 °, and preferably ß = 5 °. The figure shows the position when a loaded locking element 16 abuts in the space 17 and partly against the inner edge portion 65 of the pressure ring 64, and partly against the rear perpendicular boundary wall 66 and partly against the inner conical surface 44 of the actuator 15. In this loaded position the tool, pressure ring, locking elements and the holding body is pressed firmly against each other. Figure 7a shows the holder 40 according to Figure 6a with the actuator 15 displaced against the action of the spring 151 to its second axially lower position in which the locking elements 16 can move to a limited extent partly in radial direction but also in axial direction. Because the locking elements 16 move axially construction soup between the flat lower surface of the hole saw and the corresponding flat contact surface 141 of the pressure ring to be eliminated and the hole saw can be easily screwed off the holder. Figure 7b shows an enlargement of the area around a locking element 16, which by the actuator 15 being displaced axially downwards / backwards allows the locking element 16 to be displaced both radially outwards and axially backwards, i.e. downwards in the figure, which means that an axial displacement backwards of the pressure ring 64 is possible. This displacement completely eliminates the tension between said surfaces and the hole saw can be easily screwed off the holder. When the actuator 15 is displaced, the inner conical surface 44 will no longer abut against the locking elements 16, but still an edge surface 51 on the actuator 15 will cause the radial and axial movement of the locking elements 16 as shown in the figure. Figure 7b also shows the position of an unloaded locking element 16 which has been released by the actuator 15 being moved backwards. The locking element 16 has in this case been displaced both radially outwards and axially rearwards by the angled inner edge portion 65 of the pressure ring 64 and abuts only against the edge surface 51 of the operating member 15, the corner 52 of the rear boundary wall 66 of the space 17, and partly against the inner edge portion 65 of the pressure ring 64. Alternatively, the locking element has been displaced so that a clearance G is formed between the pressure ring 64 and the locking element 16. In this unloaded position, the stresses between the tool, the pressure ring, the locking elements and the holding body have released and the tool can be unscrewed from the connection end.
权利要求:
Claims (14) [1] Holder (10) for a rotating tool (21), for example a hole saw, which holder (10) is formed with a substantially rotationally symmetrical holder body (100) comprising a rear drive end (11), for example adapted to clamp a chuck to a drilling machine, and a front connecting end (12) with a single-threaded thread (13) for connecting the rotating tool (21), that the holder (10) comprises at the connecting end (12) and around it a placed pressure ring (14, 64) with a contact surface (141) facing the connection end (12) the holder (10) and that the contact surface (141) abuts at least partially directly or indirectly against the mounted rotating tool (21), that the holder further comprises an axially movable actuator (15) and a number of locking elements (16). ) placed in one or more spaces (17) in the holding body (100) and which locking elements (16) in a first axial position of the operating member (15) are prevented by the operating member (15) from radial movement in said spaces (17) and which locking elements (16) in a second axial position of the actuator (15) are unimpeded to a radial movement in said spaces (17), characterized in that during said radial movement the locking elements (16) are also displaced a distance (G) in axial direction and that each of the board spaces (17) for the locking elements (16) are delimited in the axial direction partly by a front limiting wall (47) and partly by a rear limiting wall (46, 66) which both limiting walls (46, 66, 47) form parts of the holding body (100). [2] Holder according to claim 1, characterized in that said spaces (17) are formed as a common circumferential groove in the holder body (100). [3] Holder according to one of Claims 1 to 2, characterized in that a normal to the front boundary wall (45) is parallel to the line of symmetry of the holder body (100). [4] Holder according to one of Claims 1 to 3, characterized in that at least the outermost part of the rear boundary wall (46) forms the angle d with the line of symmetry of the holder body (100) where 100 ° <oi <115 °, preferably oi = 107 °. [5] Holder according to one of Claims 1 to 3, characterized in that the pressure ring (64) 12 is provided with an inner edge portion (65) which forms the angle med with the line of symmetry of the pouring body (100) where 100 ° <ö <115 °, preferably ö = 107 °. [6] Holder according to claim 5, characterized in that a normal to the rear boundary wall (66) is parallel to the line of symmetry of the pourer body (100). [7] Holder according to one of the preceding claims, characterized in that the actuating means (15) is designed as a sleeve located around the holder body (100) which in its two axial positions completely encloses the locking elements (16) and at least partially encloses the pressure ring (14, 64). [8] Holder according to one of the preceding claims, characterized in that the actuator (15) in its first axial position abuts against the locking elements (16) with an inner conical surface (44) which forms the angle ß with the line of symmetry of the holder body (100) where 0 ° <ß < 10 °, preferably ß = 5 °. [9] Holder according to any one of the preceding claims, characterized by the actuating means (15) in its second axial position allows the locking elements (16) to be moved axially rearwardly and radially leaky in said spaces (17). [10] 10. the locking elements (16) are designed as spherical balls. Pourer according to any one of the preceding claims, characterized in that [11] 11. to 7 mm, preferably 3 mm. Pourer according to Claim 8, characterized in that the diameter of the balls is 1 mm [12] The actuator (15) is axially displaceable rearwardly against the action of a spring (151). Pourer according to any one of the preceding claims, characterized in that [13] Provided with a central cylindrical seat (41) in which a radially directed reading thread (42) is mounted according to any one of the preceding claims, characterized in that it is arranged wherein a reading screw can be screwed into the reading thread (42) and fix one in the seat (41). ) center drill (CB). 13 [14] Holder according to one of the preceding claims, characterized in that the contact surface (141) is flat.
类似技术:
公开号 | 公开日 | 专利标题 US11154940B2|2021-10-26|Hole saw arbor assembly US8690500B2|2014-04-08|Tool interface US20170341157A1|2017-11-30|Tool holder for a cutting tool and sleeve for a tool holder KR20070045354A|2007-05-02|Cutting tip and tool with a frustoconical mounting portion DK2826579T3|2017-07-24|Holding device for a hollow saw and tool arrangement US20070216113A1|2007-09-20|Expansion Chucking Device EP2987574B1|2017-06-21|A clamping device SE500251C2|1994-05-24|Shaft for different types of couplings and coupling for connecting this to a cutter. JP2006263828A|2006-10-05|Cutting tool KR101098270B1|2011-12-23|Interface of a tool SE1650573A1|2017-10-30|Holder for a rotary tool, such as a hole saw JP2008161989A|2008-07-17|Device and method for adjusting processing diameter for boring bar JP5140081B2|2013-02-06|Tool coupling US7980794B2|2011-07-19|Ring with cutting edge | RU2302939C1|2007-07-20|Parts basing and fastening apparatus US9687913B1|2017-06-27|I. D. collet JP6185158B2|2017-08-23|Collet assembly JP2006007396A|2006-01-12|Cutting tool and tool body used for this cutting tool US10189090B2|2019-01-29|Drilling tool JP2005103706A|2005-04-21|Cutting tool US9707626B2|2017-07-18|Hole saw assembly JP2007301664A|2007-11-22|Multi-pawl chuck JP2008503361A|2008-02-07|Workpiece cutting tool by chip removal SE516545C2|2002-01-29|Chuck CN209614481U|2019-11-12|Screw tap clamping device
同族专利:
公开号 | 公开日 CA3022283A1|2017-11-02| EP3448608B1|2021-11-24| BR112018072289A2|2019-02-12| WO2017188878A1|2017-11-02| AU2017256709A1|2018-11-22| EP3448608A4|2019-12-11| CN109070243B|2020-08-04| US10661354B2|2020-05-26| CN109070243A|2018-12-21| EP3448608A1|2019-03-06| US20190134716A1|2019-05-09| SE540445C2|2018-09-18|
引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题 US856A|1838-07-26|Machine fob cutting beet-boots fob the manufacture of sugar | US700412A|1901-09-24|1902-05-20|Max H Fischer|Clutch.| US2459649A|1944-06-08|1949-01-18|Jahrl Erik Torsten Wilhelm|Chuck| US2481945A|1944-10-30|1949-09-13|Springfield Detail & Machine P|Toolholding chuck| SE316967B|1967-09-15|1969-11-03|E Jahrl| DE4105414A1|1991-02-21|1992-08-27|Hilti Ag|TOOL AND TOOL HOLDER FOR HAND TOOLS| GB2270018A|1992-08-28|1994-03-02|Black & Decker Inc|Tool chuck| JPH08323521A|1995-06-06|1996-12-10|Daiko Seimitsu Kk|Hole saw mounting device for keypunch| EP1016480B1|1997-02-28|2004-09-01|Kabushiki Kaisha Miyanaga|Shank fitting structure| CA2489805C|1999-10-19|2005-11-22|Kabushiki Kaisha Miyanaga|Shank attaching structure and cutter| DE10031938B4|2000-06-30|2006-03-16|Robert Bosch Gmbh|Tool holder for a drilling and / or percussion machine tool| DE602004029213D1|2003-02-18|2010-11-04|Greenlee Textron Inc|Quick-change spindle unit for hole saw| WO2005000506A2|2003-06-27|2005-01-06|Jore Corporation|Hole saw arbor| DE102005010265A1|2005-03-07|2006-09-14|Robert Bosch Gmbh|Tool holder and hand tool| TWM294374U|2006-01-11|2006-07-21|K & W Tools Co Ltd|Hole cutter knife with quick-release function| WO2008056399A1|2006-11-06|2008-05-15|Kabushiki Kaisha Miyanaga|Shank installation device| US8721236B2|2009-10-23|2014-05-13|Milwaukee Electric Tool Corporation|Power tool arbor device| US9144847B2|2013-03-11|2015-09-29|Miyanach Ind. Co., Ltd.|Cutter assembly| DE202013006690U1|2013-07-19|2013-08-07|EasyWork UG |Pick-up for a hole saw and tool arrangement| NL2013758B1|2014-11-07|2016-10-06|Boorwerk B V|System for releasably coupling a hole saw to a drill shank.|
法律状态:
优先权:
[返回顶部]
申请号 | 申请日 | 专利标题 SE1650573A|SE540445C2|2016-04-29|2016-04-29|Holder for a rotary tool, such as a hole saw|SE1650573A| SE540445C2|2016-04-29|2016-04-29|Holder for a rotary tool, such as a hole saw| CA3022283A| CA3022283A1|2016-04-29|2017-04-21|Holder for a rotary tool comprising with radially and axially movable restriant elements| AU2017256709A| AU2017256709A1|2016-04-29|2017-04-21|Holder for a rotary tool comprising with radially and axially movable restriant elements.| US16/096,149| US10661354B2|2016-04-29|2017-04-21|Holder for a rotary tool, for example one hole saw| PCT/SE2017/050389| WO2017188878A1|2016-04-29|2017-04-21|Holder for a rotary tool comprising with radially and axially movable restriant elements.| EP17790011.5A| EP3448608B1|2016-04-29|2017-04-21|Holder for a rotary tool comprising radially and axially movable restraint elements| CN201780026657.7A| CN109070243B|2016-04-29|2017-04-21|Holder for a rotary tool comprising a radially and axially movable constraining element| BR112018072289-8A| BR112018072289A2|2016-04-29|2017-04-21|support for a rotary tool comprised of radially and axially movable restraint elements| 相关专利
Sulfonates, polymers, resist compositions and patterning process
Washing machine
Washing machine
Device for fixture finishing and tension adjusting of membrane
Structure for Equipping Band in a Plane Cathode Ray Tube
Process for preparation of 7 alpha-carboxyl 9, 11-epoxy steroids and intermediates useful therein an
国家/地区
|