Tapped insert for cylindrical bore and installation equipment for such insert
10408253 ยท 2019-09-10
Assignee
Inventors
Cpc classification
Y10T403/7069
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
Y10T403/7064
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
F16B13/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B37/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49815
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
F16B13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method and equipment for installing a tapped insert in a cylindrical bore, the equipment including a tool body comprising a threaded end portion, the threaded end portion being adapted to a threaded inner wall portion of a cylindrical body of the tapped insert; a screw of diameter lower than a diameter of an inner bore of the tool body, the comprising at one end a thread complementary to the inner tapped aperture of the core of the tapped insert; and a positioning ring installed to slide on the tool body, the tool body and the positioning ring comprising complementary sliding means adapted to enable relative sliding of the positioning ring on the tool body in a longitudinal direction and to maintain the positioning ring on the tool body in a defined longitudinal transverse section.
Claims
1. A tapped insert installation and removal equipment for a cylindrical bore, the cylindrical bore including at least one tapped insert including a cylindrical body that includes an inner bore of frusto-conical shape, and at least one longitudinal slot extending into the cylindrical body and communicating with said frustoconical inner bore; and a core of frustoconical shape complementary with said frustoconical inner bore of the cylindrical body, said core including an inner tapped aperture, wherein said cylindrical body also includes a threaded inner wall portion at one end of said frustoconical inner bore, said installation and removal equipment comprising: a tool body comprising, at a first end, a threaded end portion, the threaded end portion being adapted to said threaded inner wall portion of the cylindrical body of said tapped insert, said tool body comprising an inner bore; a screw of diameter lower than a diameter of the inner bore of the tool body, said screw comprising, at a first end, a thread complementary to the inner tapped aperture of the core of said tapped insert, and, at a second end, a screw head; and a positioning ring installed to slide on said tool body, said tool body and said positioning ring comprising complementary sliding means adapted to enable relative sliding of said positioning ring on said tool body in a longitudinal direction and to maintain said positioning ring on said tool body, in a defined longitudinal transverse section, wherein a length of the screw in the longitudinal direction is greater than a length of the tool body in the longitudinal direction such that the first end of the screw protrudes beyond the threaded end portion of the tool body, and the screw head protrudes beyond a second end of the tool body, and wherein a length of the positioning ring in the longitudinal direction is less than the length of the tool body in the longitudinal direction.
2. The tapped insert installation and removal equipment of claim 1, wherein the tool body is cylindrical.
3. The tapped insert installation and removal equipment of claim 2, wherein the complementary sliding means comprises an external thread on the tool body and a corresponding internal tapping of the positioning ring.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) Other features and advantages of the invention will become apparent on reading the following description.
(2) On the accompanying drawings, given as non-limitative examples:
(3)
(4)
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DETAILED DESCRIPTION OF THE INVENTION
(12) A description will first of all be given in reference to
(13) This tapped insert comprises a cylindrical body 10 with a shape adapted to a cylindrical bore to be equipped.
(14) In practice, the diameter of the cylindrical body 10 is determined so that it is somewhat smaller than the diameter of the cylindrical bore to be equipped.
(15) Moreover, the length of the cylindrical body 10 of the tapped insert is substantially equal to the diameter of the cylindrical bore to be equipped.
(16) As clearly illustrated on
(17) As a non-limitative example, the half-angle of the cone defining the frusto-conical shape of the inner bore 11 is approximately equal to 2.5.
(18) The value of the half-angle of the cone can also be greater than 2.5 whilst preferentially remaining lower than 5.
(19) The cylindrical body 10 also comprises at least one longitudinal slot, here a single slot 12 extending in the length of the cylindrical body 10 and communicating with the frusto-conical inner bore 11.
(20) Preferentially, the width of this longitudinal slot 12 is as low as possible, determined by the manufacturing constraints of the slotted cylindrical body 10.
(21) Thus, this longitudinal slot 12 extends along a generatrix of the cylindrical body 10, with central longitudinal axis X.
(22) The tapped insert also comprises a core 20 of frusto-conical shape complementary to the frusto-conical inner bore 11 of the cylindrical body 12.
(23) Thus, the core of frusto-conical shape 20 has a frustum of a cone shape with same half-angle as that of the frusto-conical inner bore 11 of the cylindrical body 10, between 2.5 and 5 and, here, approximately equal to 2.5.
(24) The length of the core of frusto-conical shape 20 is substantially equal to the length of the cylindrical body 10 in the longitudinal direction.
(25) Moreover, the diameter of the large base 20a of the core of frusto-conical shape 20 is substantially greater than or equal to the diameter of the large base 11a of the frusto-conical inner bore 11 of the cylindrical body 10.
(26) Thus, the core of frusto-conical shape 20 can be inserted into the frusto-conical inner bore 11 of the cylindrical body 10 and come into contact by its large base 20a with the large base 11a of the frusto-conical inner bore 11.
(27) Moreover, the core of frusto-conical shape 20 includes an inner tapped aperture 21.
(28) This inner tapped aperture 21 is of cylindrical shape and extends in the longitudinal direction of the core of frusto-conical shape 20, of same central longitudinal axis X, when the core of frusto-conical shape 20 is inserted into the cylindrical body 10.
(29) Preferentially, as illustrated in this embodiment, the inner tapped aperture 21 communicates on each side with the core of frusto-conical shape 20.
(30) Moreover, the diameter of the small base 11b of the frusto-conical inner bore 11 of the cylindrical body 10 is slightly greater than the diameter of the inner tapped aperture 21 of the core of frusto-conical shape 20.
(31) A description will now be given in reference to
(32) In the embodiment illustrated on
(33) The assembly of the tapped insert is performed as follows.
(34) The core of frusto-conical shape 20 is placed in the slotted cylindrical body 10, the two elements being in perfect geometrical adequation on account of the complementary frusto-conical shapes.
(35) The installation of the tapped insert is done by simply positioning said insert in the bore 30 of part A, the diameter of which is very slightly higher than the diameter of the cylindrical body 10.
(36) It is to be noted concerning this that the cylindrical bore 30 can be communicating or not.
(37) In the embodiment illustrated on
(38) The insert of frusto-conical shape 20 is inserted into the frusto-conical inner bore 11 via the large base 11a of said frusto-conical inner bore 11 in such a way that the small base 20a of the core of frusto-conical shape 20 is moved in direction of the small base 11b of the frusto-conical inner bore 11 along the central longitudinal axis X of the tapped insert, also corresponding to the central longitudinal axis X of the cylindrical bore 30 to be equipped.
(39) Moreover, concerning the installation direction, the tapped insert is inserted into the cylindrical bore 30 in such a way that the large base 20a of the core of frusto-conical shape 20 comprises a terminal end of the tapped insert thus positioned.
(40) Thanks to the inner tapped aperture 21 of the core of frusto-conical shape 20, a traction force can be exerted on this core of frusto-conical shape 20 by means of an installation screw 40 the thread 41 of which is adapted to the tapping of the inner tapped aperture 21 during the rotation of the installation screw 40.
(41) Thus, with the cylindrical body 10 held in position in the cylindrical bore 30, the traction force exerted by the installation screw 40 on the core of frusto-conical shape 20 causes the translation movement of the core of frusto-conical shape 20 in the frusto-conical inner bore 11 of the slotted cylindrical body 10.
(42) Once contact has been made between the core of frusto-conical shape 20 and the frusto-conical inner bore 11, the traction force in the direction of arrow F exerted on the core of frusto-conical shape 20 causes an increase in the contact pressure between the core of frusto-conical shape 20 and the cylindrical body 10 which leads to the deformation of said cylindrical body 10.
(43) This deformation is reflected by an expansion of the diameter of the cylindrical body 10 thanks to the presence of the longitudinal slot 12.
(44) This diametral expansion of the cylindrical body 10 will fill the small clearance existing between the initial diameter of the cylindrical body 10 and the diameter of the cylindrical bore 30 to be equipped.
(45) Thus, the elimination of this clearance leads to the locking of the tapped insert in the cylindrical bore 30.
(46) It is to be noted that the lower the difference in diameter between the cylindrical bore 30 and the cylindrical body 10, the more the deformation of the slotted cylindrical body 10 can be limited.
(47) Moreover, once the cylindrical body 10 is in contact with the cylindrical bore 30 of part A, an additional locking force may be required to ensure the correct anchoring of the tapped insert in the cylindrical bore 30.
(48) Concerning this, it is to be noted that a direct relation exists between the traction force exerted by the installation screw 40 and the maximum axial force to which the tapped insert can be submitted once positioned.
(49) The tightening torque exerted on the installation screw 40 can thus be measured, for example by a torque wrench, to adjust the maximum axial force liable to be supported by the tapped insert.
(50) It is to be noted that a direct relation exists between the traction force exerted by the installation screw 40 and the contact pressure between the core of frusto-conical shape 20 and the cylindrical body 10.
(51) Thus, the maximum axial traction force that the tapped insert can support varies according to the value of the half-angle of the core of frusto-conical shape 20 and of the frusto-conical inner bore 11 and the friction coefficient between the cylindrical bore 30 to be equipped in part A and the cylindrical body 10 (depending on the materials used for the part A and the cylindrical body 10).
(52) For a half-angle value of the core of frusto-conical shape of comprised between 2.5 and 5, all materials, metallic or non-metallic, can be used to make the tapped insert and guarantee locking of the tapped insert in the cylindrical bore 30 to be equipped.
(53) Once the tapped insert is locked in the cylindrical bore 30, the installation screw 40 can be removed to leave the tapped insert in position for its later use.
(54) This tapped insert thus allows a plain cylindrical bore to be equipped with an inner tapping.
(55) Now, a tapped insert in accordance with a second embodiment of the invention will be described in reference to
(56) This tapped insert is from all points of view identical to the one described previously in reference to
(57) However, this tapped insert also comprises, on the cylindrical body 10, a collar 13 protruding from the outer wall 10 of the cylindrical body 10.
(58) Here, this collar 13 has a annular shape concentric with the cylindrical body 10, with same central longitudinal axis X.
(59) This collar 13 extends protruding in the plane of the proximal face of the tapped insert, opposite the large base 11a of the frusto-conical inner bore 11 of the cylindrical body 10.
(60) Thus, this collar 13 extends in the plane into which the small base 11b of the frusto-conical inner bore 11 of the cylindrical body 10 extends.
(61) The collar 13 thus enables positioning in abutment for the installation of the insert in a cylindrical bore.
(62) In practice, the cylindrical bore communicating with a front face of a part, the collar 13 of the tapped insert comes into abutment with this front face when the cylindrical body 10 is inserted into the cylindrical bore to be equipped.
(63) This collar 13 thus allows the tapped insert to be perfectly positioned in the cylindrical bore 30 and also the cylindrical body to be held in position during the traction force exerted by an installation screw on the core of frusto-conical shape 20.
(64) Of course, the collar 13 can have a shape different from an annular shape and, for example, be limited to one or more separate portions, forming flanges protruding from the outer wall 10 of the cylindrical body 10.
(65)
(66) In this third embodiment, the cylindrical body 10 comprises several longitudinal slots 12, 12.
(67) Preferentially, when the cylindrical body comprises several longitudinal slots 12, these are equally distributed angularly on the outer wall 10 of the cylindrical body to obtain a uniform deformation of the cylindrical body 10 during the expansion of its diameter in the cylindrical bore to be equipped.
(68) The presence of several longitudinal slots 12, 12 in the cylindrical body 10 also allows the expansion capability of the cylindrical body in the cylindrical bore to be increased.
(69) Now, a fourth embodiment of the tapped insert according to the invention will be described in reference to
(70) This fourth embodiment of the invention is substantially identical to the one described previously in reference to
(71) Here, to improve the anchoring of the tapped insert in the cylindrical bore, especially when the part comprising the cylindrical bore is made from a soft material, the cylindrical body 10 comprises an outer wall 10 with a structured surface and, for example, knurled or striated.
(72) Unlike a plain surface, the structuring of the surface of the outer wall 10 of the cylindrical body 10 allows the anchoring to be improved and thus the holding in position of the tapped insert in the cylindrical bore to be equipped.
(73) Moreover, in this fourth embodiment, the cylindrical body 10 comprises a tapped inner wall portion 14 at one end of the frusto-conical inner bore, opposite the large base 11a of the frusto-conical inner bore 11.
(74) The cylindrical body 10 thus comprises a tapped inner wall portion 14, defining a cylindrical inner bore portion, joined at the small base 11b to the frusto-conical inner bore 11.
(75) As will be described below, said tapped inner wall 14 advantageously allows the use of an installation and removal tool for such insert to hold the cylindrical body 10 in position in the cylindrical bore to be equipped.
(76) In this embodiment, the core of frusto-conical shape 20 has then a length somewhat lower than the length of the cylindrical body 10 so that it can be accommodated in the part of the frusto-conical inner bore 11 extending beyond the tapped inner wall 14 of the cylindrical body 10.
(77) Now, the installation and removal tool for the tapped insert as illustrated on
(78) This installation and removal tool 50 comprises a cylindrical body 51 comprising at least one threaded end portion 52.
(79) As can be clearly seen on
(80) It is thus to be noted that the cylindrical body 51 of the installation and removal tool 50 can be screwed into the tapped inner wall portion 14 of the cylindrical body 10 of the tapped insert.
(81) The cylindrical body 51 and its threaded end 52 must of course have a nominal diameter lower than the diameter of the cylindrical bore to be equipped.
(82) The cylindrical body 51 of the installation and removal tool 50 also comprises an inner bore 53 and a screw 55 of diameter substantially lower than the diameter of the inner bore 53 of the cylindrical body 51 of the installation and removal tool 50.
(83) This screw 55 comprises at one end 55a a thread complementary to the tapped inner aperture 21 of the core of frusto-conical shape 20 of the tapped insert.
(84) This screw 55 has a sufficient length to pass through the cylindrical body 51 of the tool and protrude beyond the threaded end portion 52 to be inserted into the tapped inner aperture 21 of the core of frusto-conical shape 20.
(85) Moreover, in this embodiment, and in an in no way limitative manner, a positioning ring 60 is installed so as to slide on the cylindrical body 51 of the tool 50.
(86) Generally, the cylindrical body 51 and the positioning ring 60 comprise complementary sliding means adapted to enable the relative sliding of the positioning ring 60 on the cylindrical body 51 and the maintaining of this positioning ring 60 on the cylindrical body 51 in a defined transverse section of the cylindrical body 51 of the installation and removal tool 50.
(87) In this embodiment, the complementary sliding means are ensured thanks to an external thread on the cylindrical body 51 and a corresponding internal tapping of the positioning ring 60.
(88) Thus, the rotation of the positioning ring 60 around the cylindrical body 51 causes the longitudinal displacement of this positioning ring 60 along the cylindrical body 51 of the installation and removal tool 50.
(89) The existence of the complementary thread between the positioning ring 60 and the cylindrical body 51 automatically enables said positioning ring 60 to be maintained in translation in a defined transverse section of the cylindrical body 51.
(90) Now, the installation of a tapped insert of
(91) The threaded end 52 is installed by screwing into the tapped inner wall portion 14 of the cylindrical body 10 of the tapped insert and the screw 55 of the tool is inserted and partially screwed into the tapped inner aperture 21 of the core of frusto-conical shape 20 placed in the frusto-conical inner bore 11 of the cylindrical body 10 of the tapped insert.
(92) Dimension C, corresponding to the depth by which the tapped insert will be inserted into a cylindrical bore 30 of part A, is then adjusted by moving the positioning ring 60 on the cylindrical body 51 of the tool as illustrated on
(93) The adjustment of this dimension C is thus done by screwing or unscrewing the positioning ring 60 on the cylindrical body 51 of the tool 50.
(94) As illustrated on
(95) The screw 55 of the tool is then screwed into the tapped insert as illustrated on
(96) The screw 55 is thus tightened according to the torque according to the required anchoring force.
(97) As illustrated on
(98) The tapped insert is then positioned in the cylindrical bore 30 of part A as illustrated on
(99) Now, the removal of such insert, from its position in the cylindrical bore 30 as illustrated on
(100) First of all, as illustrated on
(101) The positioning ring 60 is then moved along the cylindrical body 51 of the tool to come into contact with the front face of part A.
(102) The screw 55 is then inserted into the tapped inner bore 21 of the core of frusto-conical shape 20.
(103) This screw 55 is screwed in until a clearance J is left between the head 55b of the screw 55 and the cylindrical body 51 of the installation and removal tool 50.
(104) As illustrated on
(105) The pressure exerted by this insert of frusto-conical shape 20 on the cylindrical body 10 is thus eliminated thanks to the backward movement of the core of frusto-conical shape 20 in the direction (arrow G) of the force exerted on the screw 55.
(106) The installation and removal tool can then be removed with the tapped insert attached to the threaded end 55a of the screw 55.
(107) This removal of the tapped insert installed on the screw 55 inserted into the cylindrical body 51 of the tool can also be obtained by screwing the positioning ring 60 against the front face of part A as illustrated on
(108) Indeed, the screwing of this positioning ring 60, held in abutment against the front face of the part A, leads to the relative movement, according to arrow H, of the complete cylindrical body 51 of the installation and removal tool 50.
(109) As illustrated on
(110) Thus, the positioning and the removal of the tapped insert can be done without damaging the cylindrical bore 30.
(111) The replacement of the tapped insert can thus be easily achieved thanks to the installation and removal tool.
(112) Of course, the present invention is not limited to the embodiment examples described above.
(113) In particular, the various characteristics described in relation to the various embodiments can be combined in a variable manner.
(114) Thus, in particular, the tapped insert with several slots illustrated on
(115) Also, the tapped insert of
(116) However, it is to be noted that during the use of an installation and removal tool allowing the tapped insert to be positioned at a determined depth in a cylindrical bore, said tapped insert is not equipped with a collar intended to come into abutment with a front face of the part with the cylindrical bore to be equipped.