DUMBBELL-LIKE BIDIRECTIONAL TAPERED BOLT-NUT THREADED CONNECTION STRUCTURE WITH LARGE-CONICITY LEFT SIDE AND SMALL-CONICITY RIGHT SIDE
20210010520 ยท 2021-01-14
Inventors
Cpc classification
F16B33/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B35/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B33/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B39/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B35/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Disclosed is a dumbbell-like bidirectional tapered bolt-nut threaded connection structure with a large-conicity left side and a small-conicity right side, which solves the problems that the existing thread is poor in the self-positioning and self-locking property. The internal thread (6) is a cylindrical body (2) with a bidirectional tapered hole (41) on the inner surface (non-solid space). The external thread (9) is a columnar body (3) with a bidirectional truncated cone (71) on the outer surface (material entity). The whole unit thread is a spiral dumbbell-like (94) bidirectional tapered body with a small middle part and two large ends, the conicity of the left side (95) is greater than the conicity of the right side (96). The performance mainly depends on the taper surfaces and the conicity size of the threads matching with each other.
Claims
1. A dumbbell-like bidirectional tapered bolt-nut threaded connection structure with a large-conicity left side and a small-conicity right side, which is a dumbbell-like (the conicity of the left side is greater than the conicity of the right side) asymmetric bidirectional tapered bolt-nut threaded connection structure, comprising an external thread (9) and an internal thread (6) in screw-thread fit with the external thread (9); wherein the whole unit thread of the dumbbell-like (the conicity of the left side is greater than the conicity of the right side) asymmetric bidirectional tapered thread (1) is a spiral dumbbell-like (94) asymmetric bidirectional tapered body with a small middle part and two large ends; the conicity of the left side (95) is greater than the conicity of the right side (96), and the tapered body comprises a bidirectional tapered hole (41) and/or a bidirectional truncated cone (71); the thread of the internal thread (6) is a cylindrical body (2) with a spiral bidirectional tapered hole (41) on the inner surface and exists in the form of non-solid space; the thread of the external thread (9) is a columnar body (3) with a spiral bidirectional truncated cone (71) on the outer surface and exists in the form of a material entity; the left taper surface of the asymmetric bidirectional tapered body forms a first taper angle (1) corresponding to the conicity of the left side (95), the right taper surface forms a second taper angle (2) corresponding to the conicity of the right side (96); the conicity of the left side (95) and the conicity of the right side (96) have opposite directions and different sizes; the internal thread (6) and the external thread (9) enclose the tapered body through the tapered hole till the inner and outer taper surfaces bear mutually; the technical performance mainly depends on the taper surfaces and the conicity size of the threads matching with each other, preferably, the first taper angle (1) is greater than 0 and less than 53, the second taper angle (2) is greater than 0 and less than 53, and for individual special fields, preferably, the first taper angle (1) is greater than or equal to 530 and less than 180.
2. The connection structure of claim 1, wherein the dumbbell-like (94) bidirectional tapered internal thread (6) comprises a left conical surface of a conical surface (42) of the bidirectional tapered hole, which is a first spiral conical surface (421) of the tapered hole, a right conical surface, which is a second spiral conical surface (422) of the tapered hole, and an inner spiral line (5); the shape formed by the first spiral conical surface (421) of the tapered hole and the second spiral conical surface (422) of the tapered hole, that is, the bidirectional spiral conical surface, is the same as the shape of the spiral outer side surface of the convolute formed by two bevel edges of the right-angled trapezoidal combination, the convolute rotates at a uniform speed in the circumferential direction, in which the right-angled side, which coincides with the central axis of the cylindrical body (2), of the right-angled trapezoidal combination with symmetrical and oppositely joined upper bottom lines of two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides is taken as the center of rotation, and the right-angled trapezoidal combination simultaneously moves axially along the central axis of the cylindrical body (2) at a uniform speed; the dumbbell-like (94) bidirectional tapered external thread (9) comprises a left conical surface of a conical surface (72) of the bidirectional truncated cone, which is a first spiral conical surface (721) of the truncated cone, a right conical surface, which is a second spiral conical surface (722) of the truncated cone, and an outer spiral line (8), the shape formed by the first spiral conical surface (721) of the truncated cone and the second spiral conical surface (722) of the truncated cone, that is, the bidirectional spiral conical surface, is the same as the shape of the spiral outer side surface of the convolute formed by two bevel edges of the right-angled trapezoidal combination, the convolute rotates at a uniform speed in the circumferential direction, in which the right-angled side, which coincides with the central axis of the columnar body (3), of the right-angled trapezoidal combination with symmetrical and oppositely joined upper bottom lines of two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides is taken as the center of rotation, and the right-angled trapezoidal combination simultaneously moves axially along the central axis of the columnar body (3) at a uniform speed.
3. The connection structure of claim 2, wherein when the right-angled trapezoid combination rotates at a uniform speed for a circle, the axial movement distance of the right-angled trapezoidal combination is at least twice the length of the sum of the two right-angled trapezoidal right-angle sides of the right-angled trapezoidal combination.
4. The connection structure of claim 2, wherein when the right-angled trapezoidal combination rotates at a constant speed for a circle, the axial movement distance of the right-angled trapezoidal combination is equal to the length of the sum of the two right-angled trapezoidal right-angle sides of the right-angled trapezoidal combination.
5. The connection structure of claim 1, wherein the left conical surface and the right conical surface of the bidirectional tapered body, which are the first spiral conical surface (421) of the tapered hole and the second spiral conical surface (422) of the tapered hole, and the inner spiral line (5) are all continuous spiral surfaces or discontinuous spiral surfaces and/or the first spiral conical surface (721) of the truncated cone and the second spiral conical surface (722) of the truncated cone and the outer spiral (8) are all continuous spiral surfaces or discontinuous spiral surfaces.
6. The connection structure of claim 1, wherein the internal thread (6) is a dumbbell-like (94) asymmetrical bidirectional tapered internal thread (6) formed in a spiral shape in which two tapered holes (4) with the same lower bottom surfaces and the same upper top surfaces but different cone heights have symmetrical upper top surfaces which are mutually oppositely joined and lower bottom surfaces which are located at both ends of the bidirectional tapered hole (41) and are mutually joined with the lower bottom surface of the adjacent bidirectional tapered hole (41) and/or are mutually joined with the lower bottom surface of the adjacent bidirectional tapered hole (41) when forming a dumbbell-like (94) asymmetrical bidirectional tapered thread (1), and the external thread (9) is a dumbbell-like (94) asymmetrical bidirectional tapered external thread (9) formed in a spiral shape in which two truncated cones (7) with the same lower bottom surfaces and the same upper top surfaces but different cone heights have symmetrical upper top surfaces which are mutually oppositely joined and lower bottom surfaces which are located at both ends of the bidirectional truncated cone (7) and are mutually joined with the lower bottom surface of the adjacent bidirectional truncated cone (7) and/or are mutually joined with the lower bottom surface of the adjacent bidirectional truncated cone (7) when forming a dumbbell-like (94) asymmetrical bidirectional tapered thread (1).
7. The connection structure of claim 1, wherein the internal thread (6) and the external thread (9) form a thread pair (10), the first spiral conical surface (421) of the tapered hole and the second spiral conical surface (422) of the tapered hole, and the first spiral conical surface (721) of the truncated cone and the second spiral conical surface (722) of the truncated cone, which are matched with each other, take the contact surface as the supporting surface, the inner and outer diameters of the inner cone and outer cone are centered when being guided by the spiral line until the conical surface (42) of the bidirectional tapered hole and the conical surface (72) of the bidirectional truncated cone are enveloped so that the spiral conical surface bears in one direction and/or the spiral conical surface bears in two directions simultaneously and/or until the size realizes self-positioning contact and/or the size realizes interference contact to be self-locked.
8. The connection structure of claim 1, wherein the connection structure of a bolt and double nuts is adopted, in which the double nuts are respectively located on the left and right sides of the fastened workpiece, and/or the connection structure of a bolt and a single nut is adopted, in which a single nut (21) is located on the right or left side of the fastened workpiece, and/or the connection structure of a bolt and double nuts is adopted, in which the double nuts are located on one side of the fastened workpiece; and when a nut has been effectively combined with the bolt, the internal thread (6) and the external thread (9) forming the tapered threaded connection pair (10) are effectively enveloped together, the other nut can be removed and/or retained, the removed nut is used as an installation process nut, the internal thread comprises a traditional thread, such as a bidirectional tapered thread (1), a unidirection tapered thread and a triangular thread, a trapezoidal thread, a sawtooth thread, a rectangular thread, a circular arc thread, etc., which complies with the technical spirit of the present invention due to being in screw-thread fit with the bidirectional tapered external thread (9).
9. The connection structure of claim 1, wherein when the connecting hole of the cylindrical body (2) is screwed into the screw-in end of the columnar body (3), there is a screw-in direction requirement, that is, the connecting hole of the cylindrical body (2) cannot be screwed in the opposite direction, the connecting hole is a threaded hole provided on the nut (21) and the nut (22), the connecting hole is provided in the nut (21) and the nut (22), and the nut refers to the object comprising a nut with a threaded structure on the inner surface of the cylindrical body (2).
10. The connection structure of claim 1, wherein the internal thread (6) and/or the external thread (9) comprises a single thread body which is an incomplete tapered geometry, that is, the single thread body is an incomplete unit thread.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052] In the figures, tapered thread 1, cylindrical body 2, nut 21, nut 22, columnar body 3, screw 31, tapered hole 4, bidirectional tapered hole 41, conical surface of bidirectional tapered hole 42, first spiral conical surface of tapered hole 421, first taper angle 1, second spiral conical surface of tapered hole 422, second taper angle 2, internal spiral line 5, internal thread 6, truncated cone 7, bidirectional truncated cone 71, conical surface of bidirectional truncated cone 72, first spiral conical surface of truncated cone 721, first taper angle 1, second spiral conical surface of truncated cone 722, second taper angle 2, external spiral line 8, external thread 9, dumbbell-like 94, conicity of the left side 95, conicity of the right side 96, left distribution 97, right distribution 98, thread connection pair and/or thread pair 10, clearance 101, locking supporting surface 111, locking supporting surface 112, tapered thread supporting surface 122, tapered thread supporting surface 121, workpiece 130, nut locking direction 131, washer 132, conical axis 01, thread axis 02, slider on inclined surface A, inclined surface B, gravity G, component of gravity along inclined surface G1, friction F, thread lead angle , equivalent friction angle P, traditional external thread major diameter d, traditional external thread minor diameter d1, traditional external thread middle diameter d2.
DESCRIPTION OF THE EMBODIMENTS
[0053] The present invention will be further described in detail below with reference to the drawings and specific embodiments.
Embodiment 1
[0054] As shown in
[0055] For the bidirectional tapered threaded bolt and nut in this embodiment, the conical cone 7 and/or the tapered hole 4 of the tapered thread connection pair 10 reach a certain conicity, that is, the cones forming the cone pair reach a certain taper angle. The tapered threaded connection pair 10 can have self-locking and self-positioning properties. The conicity comprises the conicity at the left side 95 and the conicity at the right side 96. The taper angle comprises the left taper angle and the right taper angle. In this embodiment, the asymmetric bidirectional tapered thread 1 has the conicity at the left side 95 greater than the conicity at the right side 96. The conicity at the left side 95 corresponds to the left taper angle, that is, the first taper angle 1, preferably, the first taper angle 1 is greater than 0 and less than 53 preferably, the first taper angle 1 takes a value of 2-40. In individual special fields, that is, connection application fields where self-locking is not required and/or self-positioning is required to be weak and/or axial bearing capacity is required to be high, preferably, the first taper angle 1 is greater than or equal to 530 and less than 180, preferably, the first taper angle 1 takes a value of 53-90; the conicity at the right side 96 corresponds to the right taper angle, that is, the second taper angle 2, preferably, the second taper angle 2 is greater than 0 and less than 53, preferably, the second taper angle 2 takes a value of 2-40.
[0056] The external thread 9 is provided on the outer surface of the columnar body 3, wherein the columnar body 3 has a screw 31. The truncated cone 7 is spirally distributed on the outer surface of the screw 31. The truncated cone 7 comprises an asymmetric bidirectional truncated cone 71. The asymmetric bidirectional truncated cone 71 is a dumbbell-like 94 special bidirectional tapered geometry. The columnar body 3 can be solid or hollow, comprising workpieces and objects such as a cylinder and/or a cone, a pipe that need to process the external thread on the outer surface.
[0057] The dumbbell-like 94 asymmetric bidirectional truncated cone 71 is formed in which two truncated cones with the same lower bottom surfaces and the same upper top surfaces but different cone heights have symmetrical upper top surfaces which are oppositely joined and lower bottom surfaces which are located at both ends of the bidirectional truncated cone 71 and are mutually joined with the lower bottom surface of the adjacent bidirectional truncated cone 71 and/or are mutually joined with the lower bottom surface of the adjacent bidirectional truncated cone 71 when forming an asymmetrical bidirectional tapered thread 1. The outer surface of the truncated cone 7 has a conical surface 72 of an asymmetric bidirectional truncated cone. The external threads 9 comprise a first spiral conical surface 721 of the truncated cone and a second spiral conical surface 722 of the truncated cone and the outer spiral line 8. In the section passing through the thread axis 02, the whole single-section asymmetric bidirectional tapered external thread 9 is a dumbbell-like 94 special bidirectional tapered geometry with a small middle part and two large ends, and the conicity of the left side of the truncated cone is greater than the conicity of the right side of the truncated cone. The asymmetric bidirectional truncated cone 71 comprises the conical surface 72 of a bidirectional truncated cone. The included angle between two element lines of the conical surface of the left side, namely the first spiral conical surface 721 of the truncated cone, is the first taper angle 1. The first spiral conical surface 721 of the truncated cone forms the conicity of the left side 95 and is distributed in the right direction 98. The included angle between two element lines of the conical surface of the right side, namely the second spiral conical surface 722 of the truncated cone, is the second taper angle 2. The second spiral conical surface 722 of the truncated cone forms the conicity of the right side 96 and is distributed in the left direction 97. The first taper angle 1 and the second taper angle 2 correspond to the opposite conicity direction. The element line is the intersection of the conical surface and the plane passing through the conical axis 01. The shape formed by the first spiral conical surface 721 of the truncated cone and the second spiral conical surface 722 of the truncated cone of the bidirectional truncated cone 71 is the same as the shape of the spiral outer side surface of the convolute formed by two bevel edges of the right-angled trapezoidal combination, the convolute rotates at a uniform speed in the circumferential direction, in which the right-angled side, which coincides with the central axis of the columnar body 3, of the right-angled trapezoidal combination with symmetrical and oppositely joined upper bottom lines of two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides is taken as the center of rotation, and the right-angled trapezoidal combination simultaneously moves axially along the central axis of the columnar body 3 at a uniform speed. The right-angled trapezoidal combination refers to a special geometry with symmetrical and oppositely joined upper bottom lines of two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides and lower bottom lines which are located at both ends of the right-angled trapezoidal combination.
[0058] The internal thread 6 is provided on the inner surface of the cylindrical body 2, wherein the cylindrical body 2 comprises a nut 21 and a nut 22. The inner surface of the nut 21 and the nut 22 has tapered holes 4 distributed spirally. The tapered holes 4 comprise an asymmetric bidirectional tapered hole 41. The asymmetric bidirectional tapered hole 41 is a dumbbell-like 94 special bidirectional cone geometry. The cylindrical body 2 comprises workpieces and objects such as a cylinder and/or non-cylinder that need to process the inner thread on the inner surface.
[0059] The dumbbell-like 94 asymmetric bidirectional tapered hole 41 is formed in which two tapered holes with the same lower bottom surfaces and the same upper top surfaces but low cone heights have symmetrical upper top surfaces which are oppositely joined and lower bottom surfaces which are located at both ends of the bidirectional tapered hole 41 and are mutually joined with the lower bottom surface of the adjacent bidirectional tapered hole 41 and/or are mutually joined with the lower bottom surface of the adjacent bidirectional tapered hole 41 when forming an asymmetrical bidirectional tapered thread 1. The tapered hole 4 comprises an asymmetric bidirectional tapered hole conical surface 42. The internal threads 6 comprise a first spiral conical surface 421 of the tapered hole and a second spiral conical surface 422 of the tapered hole and the inner spiral line 5. In the section passing through the thread axis 02, the whole single-section asymmetric bidirectional tapered internal thread 6 is a dumbbell-like 94 special bidirectional tapered geometry with a small middle part and two large ends, and the conicity of the left side of the tapered hole is greater than the conicity of the right side of the tapered hole. The bidirectional tapered hole 41 comprises the conical surface 42 of a bidirectional tapered hole. The included angle between two element lines of the conical surface of the left side, namely the first spiral conical surface 421 of the tapered hole, is the first taper angle 1. The first spiral conical surface 421 of the tapered hole forms the conicity of the left side 95 and is distributed in the right direction 98. The included angle between two element lines of the conical surface of the right side, namely the second spiral conical surface 422 of the tapered hole, is the second taper angle 2. The second spiral conical surface 422 of the tapered hole forms the conicity of the right side 96 and is distributed in the left direction 97. The first taper angle 1 and the second taper angle 2 correspond to the opposite conicity direction. The element line is the intersection of the conical surface and the plane passing through the conical axis 01. The shape formed by the first spiral conical surface 421 of the tapered hole and the second spiral conical surface 422 of the tapered hole of the bidirectional tapered hole 41 is the same as the shape of the spiral outer side surface of the convolute formed by two bevel edges of the right-angled trapezoidal combination, the convolute rotates at a uniform speed in the circumferential direction, in which the right-angled side, which coincides with the central axis of the cylindrical body 2, of the right-angled trapezoidal combination with symmetrical and oppositely joined upper bottom lines of two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides is taken as the center of rotation, and the right-angled trapezoidal combination simultaneously moves axially along the central axis of the cylindrical body 2 at a uniform speed. The right-angled trapezoidal combination refers to a special geometry with symmetrical and oppositely joined upper bottom lines of two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides and lower bottom lines which are located at both ends of the right-angled trapezoidal combination.
[0060] This embodiment adopts a bolt-double nut connection structure. The double nuts comprise a nut 21 and a nut 22. The nut 21 is located on the left side of the fastened workpiece 130, and the nut 22 is located on the right side of the fastened workpiece 130. When the bolt and the double nuts are working, the relationship with the fastened workpiece 130 is a rigid connection. The rigid connection means that the supporting surface of the nut end face and the supporting surface of the workpiece 130 are mutually supporting surfaces, comprising the locking supporting surface 111 and the locking supporting surface 112. The workpiece 130 refers to the connected object comprising the workpiece 130.
[0061] The threaded working supporting surfaces of this embodiment are different, comprising the tapered thread supporting surface 121 and the tapered thread supporting surface 122. When the cylindrical body 2 is located on the left side of the fastened workpiece 130, that is, when the left end surface of the fastened workpiece 130 and the right end surface of the cylindrical body 2, that is, the left nut 21, are the locking supporting surfaces 111 of the tapered thread supporting surface 121 and the tapered thread supporting surface 122, the left nut 21 and the cylindrical body 3, that is, the screw 31, that is, the spiral conical surface of the left side of the bidirectional tapered thread 1 of the bolt, are the threaded working supporting surfaces, that is, the first spiral conical surface 421 of the tapered hole and the first spiral conical surface 721 of the truncated cone are the tapered thread supporting surfaces 122, and the first spiral conical surface 421 of the tapered hole and the first spiral conical surface 721 of the truncated cone are the mutually supporting surfaces. When the cylindrical body 2 is located on the right side of the fastened workpiece 130, that is, when the right end surface of the fastened workpiece 130 and the left end surface of the cylindrical body 2, that is, the right nut 22, are the locking supporting surface 112 of the right nut 22 and the fastened workpiece 130, the right nut 22 and the cylindrical body 3, that is, the screw 31, that is, the spiral conical surface of the right side of the bidirectional tapered thread 1 of the bolt, are the threaded working supporting surfaces, that is, the second spiral conical surface 422 of the tapered hole and the second spiral conical surface 722 of the truncated cone are the tapered thread supporting surfaces 121, and the second spiral conical surface 422 of the tapered hole and the second spiral conical surface 7422 of the truncated cone are the mutually supporting surfaces.
[0062] When the bidirectional tapered threaded bolt and nut are connected in transmission, the bidirectional tapered hole 41 is screwed and connected to the bidirectional truncated cone 71, which bears in both directions. When the external thread 9 and the internal thread 6 form a thread pair 10, there must be a clearance 101 between the bidirectional truncated cone 71 and the bidirectional tapered hole 41. If there is oil and other media lubrication between the internal thread 6 and the external thread 9, it will easily form a bearing oil film. The clearance 101 is conducive to the formation of the bearing oil film. The tapered thread connection pair 10 is equivalent to a set of sliding bearing pairs formed by one pair or several pairs of sliding bearings, that is, each section of bidirectional tapered internal thread 6 bidirectionally contains a corresponding section of bidirectional tapered external thread 9 to form a pair of sliding bearings. The number of the formed sliding bearings is adjusted according to the application conditions, that is, the number of the containing and contained threaded section of the effective bidirectional engagement of the bidirectional tapered internal thread 6 and the bidirectional tapered external thread 9, which is the effective bidirectional contact envelopment, is designed according to the application conditions. The tapered hole 4 bidirectionally contains the truncated cone 7 and is positioned in multiple directions such as in radial, axial, angular, and circumferential directions. A special combining technology of the cone pair and the thread pair is formed to ensure the accuracy, efficiency and reliability of transmission connection of the tapered thread technology, especially the bidirectional tapered bolt-nut threaded connection structure.
[0063] When the bidirectional tapered threaded bolt and nut is connected in a fastened and sealed manner, its technical performance is realized by the screw connection of the bidirectional tapered hole 41 and the bidirectional truncated cone 71, that is, the first spiral conical surface 721 of the truncated cone and the first spiral conical surface 421 of the tapered hole are sized until the interference is achieved, and/or the second spiral conical surface 722 of the truncated cone and the second spiral conical surface 422 of the tapered hole are sized until the interference is achieved. According to the application conditions, bearing is achieved in one direction and/or in two directions simultaneously. That is, the bidirectional truncated cone 71 and the bidirectional tapered hole 41 are guided by the spiral line, and the inner and outer diameters of the inner cone and the outer cone are centered until the first spiral conical surface 421 of the tapered hole and the first spiral conical surface 721 of the truncated cone are enveloped, until the interference contact is achieved, and/or the second spiral conical surface 422 of the tapered hole and the second spiral conical surface 722 of the truncated cone are enveloped until the interference contact is achieved, so as to realize the technical performance of mechanical mechanism connection, locking, anti-loosening, bearing, fatigue and sealing.
[0064] Therefore, for the bidirectional tapered threaded bolt and nut in this embodiment, the technical performance, such as the transmission accuracy and transmission efficiency, the bearing capacity, the self-locking force, the anti-loosening capacity, the sealing property, and reusability is related to the first spiral conical surface 721 of the truncated cone and the formed conicity of the left side 95, that is, the first taper angle 1, and the second spiral conical surface 722 of the truncated cone and the formed conicity of the right side 96, that is, the second taper angle 2, the first spiral conical surface 421 of the tapered hole and the formed conicity of the left side 95, that is, the first taper angle 1, and the second spiral conical surface 422 of the tapered hole and the formed conicity of the right side 96, that is, the second taper angle 2. The material friction coefficient, processing quality and application conditions of the columnar body 3 and the cylindrical body 2 also have a certain influence on the cooperation of the cone.
[0065] In the bidirectional tapered threaded bolt and nut, when the right-angled trapezoid combination rotates at a uniform speed for a circle, the axial movement distance of the right-angled trapezoidal combination is at least twice the length of the sum of the right-angle sides of the two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides. This structure ensures that the first spiral conical surface 721 of the truncated cone and the second spiral conical surface 722 of the truncated cone and the first spiral conical surface 421 of the tapered hole and the second spiral conical surface 422 of the tapered hole have sufficient length, thereby ensuring that when the conical surface 72 of the bidirectional truncated cone is matched with the conical surface 42 of the bidirectional tapered hole, it has sufficient effective contact area and strength as well as the efficiency required for spiral movement.
[0066] In the bidirectional tapered threaded bolt and nut, when the right-angled trapezoid combination rotates at a uniform speed for a circle, the axial movement distance of the right-angled trapezoidal combination is equal to the length of the sum of the right-angle sides of the two right-angled trapezoids with the same lower bottom lines and the same upper bottom lines but different right-angled sides. This structure ensures that the first spiral conical surface 721 of the truncated cone and the second spiral conical surface 722 of the truncated cone and the first spiral conical surface 421 of the tapered hole and the second spiral conical surface 422 of the tapered hole have sufficient length, thereby ensuring that when the conical surface 72 of the bidirectional truncated cone is matched with the conical surface 42 of the bidirectional tapered hole, it has sufficient effective contact area and strength as well as the efficiency required for spiral movement.
[0067] In the bidirectional tapered threaded bolt and nut, the first spiral conical surface 721 of the truncated cone and the second spiral conical surface 722 of the truncated cone are both continuous spiral surfaces or discontinuous spiral surfaces; the first spiral conical surface 421 of the tapered hole and the second spiral conical surface 422 of the tapered hole are both continuous spiral surfaces or discontinuous spiral surfaces.
[0068] In the bidirectional tapered threaded bolt and nut, when the cylindrical body 2 connecting hole is screwed into the screwing end of the columnar body 3, there is a screwing direction requirement, that is, the cylindrical body 2 connecting hole cannot be screwed in the opposite direction.
[0069] In the bidirectional tapered threaded bolt and nut, one end of the columnar body 3 is provided with a head having a size larger than the outer diameter of the columnar body 3 and/or one end and/or both ends of the columnar body 3 are provided with a head smaller than the small diameter of the external thread 9 of the tapered thread of the columnar body 3 screw 31. The connecting hole is a threaded hole provided on the nut 21. That is, the columnar body 3 herein connected to the head is a bolt. The columnar body having no head and/or having the heads at both ends smaller than the small diameter of the bidirectional tapered external thread 9 and/or having no thread in the middle but having bidirectional tapered external threads 9 at both ends is a bolt. The connecting hole is provided in the nut 21.
[0070] Compared with the prior art, the advantages of the tapered threaded connection pair 10 of the bidirectional tapered bolt-nut threaded connection structure are as follows: the design is reasonable, the structure is simple, the cone pair formed by the inner and outer cones is sized until there is interference fit to realize the function of fastening and connection, it is convenient to operate, the locking force is large, the bearing value is large, the anti-loose performance is good, the transmission efficiency and the precision are high, the mechanical sealing effect is good, the stability is good, the loosening phenomenon can be prevented during connection, and there are self-locking and self-positioning functions.
Embodiment 2
[0071] As shown in
[0072] The threaded working supporting surface of this embodiment is the tapered threaded supporting surface 122, that is, the cylindrical body 2, that is, the nut 21, that is, the single nut, is located on the right side of the fastened workpiece 130. When the bolt-single nut connection structure works, the right end surface of the workpiece 130 and the left end surface of the nut 21 are the locking supporting surfaces 111 of the nut 21 and the fastened workpiece 130. The right spiral conical surface of the nut 21 and the cylindrical body 3, that is, the screw 31, that is, the bidirectional tapered thread 1 of the bolt, is the threaded working supporting surface, that is, the second spiral conical surface 422 of the tapered hole and the second spiral conical surface 722 of the truncated cone are the tapered thread supporting surfaces 122, and the second spiral conical surface 422 of the tapered hole and the second spiral conical surfaces 722 of the truncated cone are mutually supporting surfaces.
[0073] In this embodiment, when the hexagon head of the bolt is located on the right side, its structure, principle and implementation steps are similar to those of this embodiment.
Embodiment 3
[0074] As shown in
[0075] The threaded working supporting surface of this embodiment is different, comprising a tapered thread supporting surface 121 and a tapered thread supporting surface 122. The cylindrical body 2 comprises a left nut 21 and a right nut 22. The right end surface of the left nut 21 (that is, the locking supporting surface 111) and the left end surface of the right nut 22 (that is, the locking supporting surface 112) are in direct contact with each other oppositely and are mutually locking supporting surfaces. When the right end surface of the left nut 21 is a locking support supporting surface 111, the left nut 21 and the columnar body 3, that is, the screw 31, that is, the spiral conical surface of the left side of the bidirectional tapered thread 1 of the bolt, are threaded working supporting surfaces, that is, the first spiral conical surface 421 of the tapered hole and the first spiral conical surface 721 of the truncated cone are the tapered thread supporting surfaces 122, and the first spiral conical surface 421 of the tapered hole and the first spiral conical surface 721 of the truncated cone are the mutually supporting surfaces. When the left end surface of the right nut 22 is a locking support supporting surface 112, the right nut 22 and the columnar body 3, that is, the screw 31, that is, the spiral conical surface of the right side of the bidirectional tapered thread 1 of the bolt, are threaded working supporting surfaces, that is, the second spiral conical surface 422 of the tapered hole and the second spiral conical surface 722 of the truncated cone are the tapered thread supporting surfaces 121, and the second spiral conical surface 422 of the tapered hole and the second spiral conical surface 722 of the truncated cone are the mutually supporting surfaces.
[0076] In this embodiment, when the cylindrical body 2 on the inner side, that is, the nut 21 adjacent to the fastened workpiece 130, is effectively combined with the columnar body 3, that is, the screw 31, that is, the bolt, the internal thread 6 and the external thread 9 forming the tapered thread connection pair 10 are effectively enveloped together. The cylindrical body 2 on the outer side, that is, the nut 22 that is not adjacent to the fastened workpiece 130, needs to remain intact and/or be disassembled, leaving only one nut according to the application working conditions (for example, the application fields that require lightweight devices or do not require double nuts to ensure the reliability of the connection technology). The removed nut 22 is not used as a connecting nut, but is only used as an installation process nut. The internal thread of the installation process nut is not only made of bidirectional tapered threads, but also is the nut 22 made of threads using unidirection tapered threads and other threads that can be screwed with tapered threads 1, comprising non-tapered threads such as triangular threads, trapezoidal thread, sawtooth threads, etc. On the premise of ensuring the reliability of the connection technology, the tapered thread connection pair 10 is a closed-loop fastening technology system, that is, after the internal thread 6 and the external thread 9 of the tapered thread connection pair 10 are effectively enveloped together, the tapered thread connection pair 10 will become an independent technical system without relying on the technical compensation of the third party to ensure the technical validity of the connection technology system. Even if there is no support from other objects, the gap between the tapered thread connection pair 10 and the fastened workpiece 130 will not affect the effectiveness of the tapered thread connection pair 10. This will help greatly reduce the weight of the device, remove the ineffective load, and improve the technical requirements such as the effective load capacity, braking property, and energy conservation and emission reduction of the device. This is the advantage of thread technology that is unique no matter when the relationship between the tapered thread connection pair 10 and the fastened workpiece 130 of the bidirectional tapered bolt-nut threaded connection structure is non-rigid connection or rigid connection, and that other thread technologies do not have.
[0077] In this embodiment, when the hexagon head of the bolt is located on the right side, the nut 21 and the nut 22 are both located on the left side of the fastened workpiece 130, and the structure, principle and implementation steps are similar to those of this embodiment.
Embodiment 4
[0078] As shown in
[0079] The specific embodiments described herein are merely examples to illustrate the spirit of the present invention. Those skilled in the art to which the present invention pertains can make various modifications or additions to the described specific embodiments or use similar alternatives, but they will not deviate from the spirit of the present invention or exceed the scope defined by the appended claims.
[0080] Although the present invention more widely uses tapered thread 1, cylindrical body 2, nut 21, nut 22, columnar body 3, screw 31, tapered hole 4, bidirectional tapered hole 41, conical surface of bidirectional tapered hole 42, first spiral conical surface of tapered hole 421, first taper angle 1, second spiral conical surface of tapered hole 422, second taper angle 2, internal spiral line 5, internal thread 6, truncated cone 7, bidirectional truncated cone 71, conical surface of bidirectional truncated cone 72, first spiral conical surface of truncated cone 721, first taper angle 1, second spiral conical surface of truncated cone 722, second taper angle 2, external spiral line 8, external thread 9, dumbbell-like 94, conicity of the left side 95, conicity of the right side 96, left distribution 97, right distribution 98, thread connection pair and/or thread pair 10, clearance 101, self-locking force, self-locking, self-positioning, intensity of pressure, conical axis 01, thread axis 02, mirror image, bushing, shaft, single-tapered body, double-tapered body, cone, inner cone, tapered hole, outer cone, cone, cone pair, spiral structure, spiral movement, thread, whole unit thread, axial force, axial force angle, anti-axial force, anti-axial force angle, centripetal force, anti-centripetal central force, oppositely collinear, internal stress, bidirectional force, unidirection force, sliding bearing, sliding bearing pair, locking supporting surface 111, locking supporting surface 112, tapered thread supporting surface 122, tapered thread supporting surface 121, non-solid space, material entity, workpiece 130, nut locking direction 131, non-rigid connection, non-rigid material, transmission part, washer 132, etc., the possibility of using other terms is not excluded. These terms are used only for more convenient description and explanation of the essence of the present invention, and interpreting them as any additional limitation is contrary to the spirit of the present invention.