Smart stud-nut assembly
10240627 ยท 2019-03-26
Assignee
Inventors
- Vijay Kumar (Bangalore, IN)
- Thomas Chittakattu NINAN (Kannur District, IN)
- Balaji Sunil Kumar (Bengaluru, IN)
Cpc classification
F16B31/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B41/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16B31/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01B7/14
PHYSICS
Abstract
The present disclosure discloses a fastener assembly. The assembly comprises a stud having a head portion connectable to an actuator, and a shank extending from the head portion. At least a portion of the shank comprises threads, and an insulating material extends on the threads. A resistor module comprising one or more resistors is configured on the insulating material. One end of the one or more resistors is connectable to a power source, and other end of the one or more resistors is connectable to the power source through a nut engageable with the threads. A movement of the stud relative to the nut varies net resistance across the resistor module. The variation of net resistance across the resistor module may be used to determine position of the nut relative to the stud.
Claims
1. A fastener assembly, comprising: a stud comprising a head portion connectable to an actuator and a shank extending from the head portion, wherein at least a portion of the shank comprises one or more threads; an insulating material extending on the threads; and one or more resistors, wherein one end of one or more of the resistors is connectable to a power source and another end of the one or more of the resistors is connectable to the power source through a nut engageable with one or more of the threads, movement of the stud relative to the nut varies net resistance across the resistors, the stud further comprises one or more casings accommodating at least a portion of a circumference of the shank on the insulating material, and the resistors are disposed between the insulating material and at least one of the casings.
2. The assembly as claimed in claim 1, wherein the threads extend from a free end of the shank towards the head portion of the stud.
3. The assembly as claimed in claim 1, wherein the actuator is a motor.
4. The assembly as claimed in claim 1, wherein the nut is configured to be fixed and the head portion of the stud is rotatable by the actuator to perform at least one of fastening and unfastening of the stud with the nut.
5. The assembly as claimed in claim 1, wherein the net resistance across the resistors is configured to be maximum at a free end of the shank and decreases along a length of the at least a portion of the shank from the free end towards the head portion of the stud.
6. The assembly as claimed in claim 1 comprises a control unit interfaced with the resistors and the actuator.
7. The assembly as claimed in claim 6, wherein the control unit is configured to receive a user input corresponding to at least one of fastening and unfastening from an input module and operate the actuator to rotate the stud relative to the nut.
8. The assembly as claimed in claim 6, wherein the control unit is further configured to detect variation in the net resistance across the resistor module to identify position of the nut on the shank.
9. The assembly as claimed in claim 6, wherein the control unit operates the actuator to rotate the stud to vary position of the nut on the shank based on the net resistance across the resistors.
10. The assembly as claimed in claim 1, wherein a predefined position of the nut on the shank is set by the user.
11. The assembly as claimed in claim 1, wherein the resistors comprise a plurality of resistors in series.
12. The assembly as claimed in claim 1, wherein the nut comprises another one or more threads comprising conducting material engageable with the threads of the at least a portion of the shank.
13. The assembly as claimed in claim 1, wherein one or more of the casings comprise an additional one or more threads corresponding to the threads of the at least a portion of the shank.
14. A wheel hub of a vehicle comprising a fastener assembly as claimed in claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and constitute a part of this disclosure, illustrate exemplary embodiments, and, together with the description, serve to explain the disclosed principles. The same numbers are used throughout the figures to reference like features and components. Some embodiments of system and/or methods in accordance with embodiments of the present subject matter are now described, by way of example only, and with reference to the accompanying figures, in which:
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(9) It should be appreciated by those skilled in the art that any block diagrams herein represent conceptual views of illustrative device embodying the principles of the present subject matter. Similarly, it will be appreciated that any flow charts, flow diagrams, state transition diagrams, and the like represent various processes which may be substantially represented in computer readable medium and executed by a computer or processor, whether or not such computer or processor is explicitly shown.
DETAILED DESCRIPTION
(10) In the present document, the word exemplary is used herein to mean serving as an example, instance, or illustration. Any embodiment or implementation of the present subject matter described herein as exemplary is not necessarily to be construed as preferred or advantageous over other embodiments.
(11) While the disclosure is susceptible to various modifications and alternative forms, specific embodiment thereof has been shown by way of example in the drawings and will be described in detail below. It should be understood, however that it is not intended to limit the disclosure to the particular form disclosed, but on the contrary, the disclosure is to cover all modifications, equivalents, and alternative falling within the scope of the disclosure.
(12) The terms comprises, comprising, or any other variations thereof, are intended to cover a non-exclusive inclusion, such that a setup, device, assembly or method that comprises a list of components or steps does not include only those components or steps but may include other components or steps not expressly listed or inherent to such setup or device or method. In other words, one or more elements in a system or apparatus proceeded by comprises . . . a does not, without more constraints, preclude the existence of other elements or additional elements in the system or method.
(13) The present disclosure discloses a fastener assembly comprising a stud, having a head portion and a shank extending from the head portion. The head portion is connectable to an actuator such that the stud may be rotated relative to a nut. The shank is configured with threads on at least a portion, and the threads may extend from a free end of the stud on the at least a portion of the shank. The threaded portion of the shank may be insulated with an insulating material. In an embodiment of the disclosure, the insulating material may be provided in the stud such that it may extend on the threads of the stud. Further, the fastener assembly comprises a resistor module comprising one or more resistors configured on the insulating material. The resistor module is configured such that one of the ends of the resistor module is connected to a power source, and other end is connectable to the power source through a nut which is engageable with the stud. The nut comprises threads which are engageable with the threads of the stud. In an embodiment of the present disclosure, the threads in the nut may be made of conducting material engageable with corresponding threads present on the shank. When the stud is engaged with the nut and moved relative to the nut, net resistance across the resistor module varies, which may be used to determine position of the nut on the shank.
(14) In an embodiment of the present disclosure, the nut may be fixed to one of the components to be joined, and the head portion of the stud may be rotated by the actuator to move the stud relative to nut. The movement of the stud relative to nut results either in fastening or unfastening of the stud with respect to nut. In an embodiment of the present disclosure, the net resistance of the resistor module comprising one or more resistors is maximum at the free end of the stud, the net resistance decreases along a length of the stud towards the head portion.
(15) In an embodiment of the present disclosure, the fastener assembly may be associated with a control unit which may be interfaced with the resistor module and the actuator. The control unit may be configured to receive a user input corresponding to at least one of fastening and unfastening from an input module, and accordingly operate the actuator to rotate the stud relative to the nut. Upon receiving the user input, the control unit may detect net resistance of the resistor module, and determine the current status of the assembly. The current status of the assembly will be compared by the control unit with the user input, and alert a user in case of faulty input. If the user input matches with the condition of current status, the control unit operates the actuator to move the stud in respective direction to carry-out fastening or unfastening operation. The control unit may be configured to monitor the net resistance and regulate the actuator if the net resistance matches with pre-set values.
(16) In the following detailed description of the embodiments of the disclosure, reference is made to the accompanying drawings that form a part hereof, and in which are shown by way of illustration specific embodiments in which the disclosure may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the disclosure, and it is to be understood that other embodiments may be utilized and that changes may be made without departing from the scope of the present disclosure. The following description is, therefore, not to be taken in a limiting sense.
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(18) In an exemplary implementation as illustrated in
(19) As shown in
(20) In an embodiment of the present disclosure, the head portion 52A of the stud 52 may be coupled to an actuator 54 [schematically illustrated] in
(21) In an embodiment of the disclosure, the term fastening herein above and below refers to actuation of the head portion of the stud 52 towards the nut 60. In alternate terms, fastening refers to displacement of position of the nut 60 towards the head portion 52A of the stud 52, so that the components present between the head portion 52A and the nut 60 are secured against each other by said displacement. Fastening may be achieved by applying torque on the head portion 52A in first direction, for example, clockwise direction. On the other hand, unfastening refers to a condition where the nut 60 is displaced away from the head portion 52A. Unfastening may be accomplished by actuating the head portion 52A in a second direction which is opposite to first direction, i.e. counter-clockwise if first direction is clockwise. In an embodiment of the present disclosure, the actuator 54 may be coupled to the head portion 52A through a gearbox [not shown], which may be provided between the actuator 54 and the head portion 52A. The gearbox so provided may be configured to impart variable torque to the stud 52.
(22) The fastener assembly 50 of the present disclosure is configured with smart features to detect the position of the nut 60 on the shank 52B, and automatically adjust the nut 60 position based on the user input and identification of current position of the nut. In one configuration, the fastener assembly 50 comprises an arrangement to determine position of the nut 60 on the shank 52B using the characteristic of resistance variation. In an embodiment of the present disclosure, an insulating material 56 is configured in the stud 52 along the threads 52C. The insulting material 56 extends along the length of the at least a portion of the shank 52B, and surrounds core portion 52E of the stud 52. In an embodiment of the present disclosure, the core portion 52E comprises of a conductive material like a metal, and insulting material may be made of material such as but not limiting to plastic. The insulating material 56 may be wrapped or wound around the core portion as depicted in
(23) Now, referring again to
(24) The circuit comprising the resistor module 58 gets closed and electric current flows when the nut 60 is accommodated on free end 52D of stud 52, and resistance gradually reduces as the nut 60 advances towards the head portion 52A. In an embodiment, when the nut 60 is present at the free end 52D of the stud 52, the closed circuit formed will have maximum net resistance i.e. effective resistance of all the resistors R will be maximum. As the nut 60 is fastened towards head portion 52A, the net resistance across the resistor module 58 decreases. Thus, net resistance across the resistor module 58 or the closed circuit varies with varying position of the nut 60 on the stud 52. Conversely, position of the nut 60 on the stud 52 may be identified by determining the variation in resistance across the resistor module 58. Further, when the stud 52 is actuated by the actuator 54 to perform fastening, the nut 60 may be displaced towards the head portion 52A, resulting in drop of net resistance across the resistor module 58. Similarly, during unfastening, nut 60 may be displaced away from head portion 52A causing an increase in net resistance across the resistor module 58. In an embodiment of the present disclosure, the conductive wire CW may be replaced by a resistor module 58, so that distinct resistor modules 58 are present along the stud 52 at distinct portions.
(25) The assembly 50 is also associated with a control unit 70, which is interfaced with the resistor module 58 and the actuator 54. The control unit 70 may be configured to receive signals corresponding to net resistance value from the resistor module 58, and operate the actuator 54 to rotate the stud 52 relative to nut 60 based on net resistance value received. The rotation of stud 52 relative to nut 60 corresponding to net resistance across resistor module 58 allows the nut 60 be accurately positioned in torqued or tightened condition.
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(27) The fastener assembly 50, as depicted in
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(29) As illustrated in
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(32) As illustrated in
(33) As shown in step 505, if the nut 60 is found placed on the stud 52 on receiving an input from the user, then the control unit 70 analyzes the net resistance across the resistor module 58 [step 510] of the stud-nut assembly to determine the state of the fastener assembly 50, i.e. whether the fastener assembly 50 is in assembled state or disassembled state. Maximum the net resistance, the fastener assembly 52 may be considered to be in disassembled state and minimum the net resistance, the fastener assembly 50 may be considered to be in assembled state. Once the state is determined, the control unit 70 validates the input given by the user. If the user gives an input to assemble the fastener assembly 50 while the nut 60 is already found assembled with the stud 52, then it is an indication of a wrong input. Similarly, if the user gives input for disassembling the fastener assembly while the nut 60 is already found disassembled from the stud 52, that too is a wrong input. The user shall be alerted about such wrong inputs [step 507] through the indication module 74 and current operation shall be aborted.
(34) If the user input is validated and found correct while the nut 60 is placed on the stud 52, then the control unit 70 may activate the actuators 54 [step 511] to tighten or loosen the stud 52 relative to the nut 60, thus assembling or disassembling the nut 60 to or from the stud 52. During the operation, the control unit 70 keeps analyzing the net resistance across the resistor module 58 of the stud-nut assembly and regulates the actuator 54 automatically once the respective operation is completed. In an embodiment, the assembling operation shall be considered as complete once the net resistance of the stud-nut across the resistor module 58 of the assembly 50 has reached the possible minimum resistance, as shown in step 512. The disassembling operation shall be considered as complete once the net resistance across the resistor module 58 of the stud-nut assembly has reached the highest resistance i.e. greater than maximum net resistance corresponding to free end 52D position of the nut 60, as indicated in step 512. The user shall be provided with appropriate alerts on completion of the operations.
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(36) As illustrated in
(37) Reference is now made to
(38) As shown in
(39) In an embodiment of the present disclosure, resistor module 58 and insulating material 56 may be provided in each stud 52 in a manner where the net resistance is proportional to the position/tightness of the nut 60 on the respective stud 52. The net resistance across the resistor module 58 may be considered to be less when the nut 60 is in fully tightened condition, and the net resistance across the resistor module 58 may considered to be maximum when the nut 60 is in fully loosened condition. The control unit 70 may receive and analyze the resistance information from the resistor module 58 to determine the tightness of each of nut 60 relative to stud 52. During the automatic assembly process, the control unit 70 operates the actuators 54 till the net resistance of all the stud-nut assemblies 50 reach minimum equal level, hence ensuring equal tightness of all the nuts 60 relative to the respective studs 52. Whenever there is an increase in resistance of the resistor module 58 above the minimum or least resistance value, an un-torqued condition or loosened condition of nut 60 relative to the stud 52 is detected. Accordingly, the control unit 70 actuates the stud 52 to fasten the stud 52 relative to the nut 60, until the net resistance across the resistor module 58 reaches minimum or least value. This automatic correction or fastening of stud 52 relative to the nut 60 based on identification of variation in resistance fixes the concerns associated with loosening of the nut 60 relative to the stud 52.
(40) In an embodiment of the present disclosure, the nut 60 may be fastened onto the shank 52B of the stud 52 by applying torque by means, including but not limited to hand-held tools and power tools. For fastening, the nut 60 may be placed at free end 52D of the stud 52, and torque may be applied on nut 60 to drive the nut 60 towards the head portion 52A of the stud 60. Similarly, for unfastening the nut 60, torque is to be applied in opposite direction, when the nut 60 gets displaced away from the head portion 52A of the stud 52.
(41) In an embodiment of the disclosure, the control unit 70 may be an electronic control unit of the vehicle or may be an external control unit. The control unit 70 may include a processing unit which may include specialized processing units such as integrated system (bus) controllers, memory management control units, floating point units, graphics processing units, digital signal processing units, etc. The processing unit may include a microprocessor, such as AMD Athlon, Duron or Opteron, ARM's application, embedded or secure processors, IBM PowerPC, Intel's Core, Itanium, Xeon, Celeron or other line of processors, etc. The processing unit may be implemented using mainframe, distributed processor, multi-core, parallel, grid, or other architectures. Some embodiments may utilize embedded technologies like application-specific integrated circuits (ASICs), digital signal processors (DSPs), Field Programmable Gate Arrays (FPGAs), etc.
(42) [In some embodiments, the processing unit may be disposed in communication with one or more memory devices (e.g., RAM, ROM etc.) via a storage interface. The storage interface may connect to memory devices including, without limitation, memory drives, removable disc drives, etc., employing connection protocols such as serial advanced technology attachment (SATA), integrated drive electronics (IDE), IEEE-1394, universal serial bus (USB), fiber channel, small computing system interface (SCSI), etc. The memory drives may further include a drum, magnetic disc drive, magneto-optical drive, optical drive, redundant array of independent discs (RAID), solid-state memory devices, solid-state drives, etc.
(43) In some embodiments, the memory unit may store data as described in this disclosure. Such databases may be implemented as fault-tolerant, relational, scalable, secure databases such as Oracle or Sybase. Alternatively, such databases may be implemented using standardized data structures, such as an array, hash, linked list, struct, structured text file (e.g., XML), table, or as object-oriented databases (e.g., using ObjectStore, Poet, Zope, etc.). Such databases may be consolidated or distributed, sometimes among the various computing units discussed above in this disclosure. It is to be understood that the structure and operation of the any computer or database component may be combined, consolidated, or distributed in any working combination.
(44) Furthermore, one or more computer-readable storage media may be utilized in implementing embodiments consistent with the present disclosure. A computer-readable storage medium refers to any type of physical memory on which information or data readable by a processor may be stored. Thus, a computer-readable storage medium may store instructions for execution by one or more processors, including instructions for causing the processor(s) to perform steps or stages consistent with the embodiments described herein. The term computer-readable medium should be understood to include tangible items and exclude carrier waves and transient signals, i.e., are non-transitory. Examples include random access memory (RAM), read-only memory (ROM), volatile memory, non-volatile memory, hard drives, CD ROMs, DVDs, flash drives, disks, and any other known physical storage media.
(45) In an aspect of the disclosure, the fastener assembly 50 disclosed in embodiments of the present disclosure may be implemented for connecting or fixing or securing two or more components, sub-assemblies, members, structures, elements or materials. These may include industrial couplings like flexible couplings, rigid couplings and torsionally rigid couplings among other forms of industrial couplings. Another implementation would be in the field of power transmission, such as shaft and hub couplings for turbines, pumps, motors and compressors. A still another implementation of the fastener assembly 50 of the present disclosure would be in the field of sealing arrangements of fluid systems, like fluid seals and vacuum seals. In the field of automobile engineering, the fastener assembly 50 of the present disclosure may be implemented in coupling of flanges, hydraulic couplings, actuators, rotary assemblies, transmission/drive trains and the like.
(46) Advantages of the Embodiments of the Present Disclosure are Illustrated Herein:
(47) In an embodiment, the present disclosure provides a fastener assembly in which a stud may be automatically fastened/tightened relative to a nut, without the need of manual inspection or intervention.
(48) In an embodiment, the fastener assembly may be implemented in a vehicle wheel hub assembly, where wheel position is continuously monitored relative to wheel hub. This ensures accurate alignment between the wheel rim and the hub, at the same time prevents dis-assembling of the wheel rim from the wheel hub.
(49) In an embodiment, the present disclosure provides a method for providing a real-time notification to the user regarding unfastening of the nut from the stud.
(50) The terms an embodiment, embodiment, embodiments, the embodiment, the embodiments, one or more embodiments, some embodiments, and one embodiment mean one or more (but not all) embodiments of the invention(s) unless expressly specified otherwise.
(51) The terms including, comprising, having and variations thereof mean including but not limited to, unless expressly specified otherwise.
(52) The enumerated listing of items does not imply that any or all of the items are mutually exclusive, unless expressly specified otherwise.
(53) The terms a, an and the mean one or more, unless expressly specified otherwise.
(54) A description of an embodiment with several components in communication with each other does not imply that all such components are required. On the contrary a variety of optional components are described to illustrate the wide variety of possible embodiments of the invention.
(55) When a single device or article is described herein, it will be readily apparent that more than one device/article (whether or not they cooperate) may be used in place of a single device/article. Similarly, where more than one device or article is described herein (whether or not they cooperate), it will be readily apparent that a single device/article may be used in place of the more than one device or article or a different number of devices/articles may be used instead of the shown number of devices or programs. The functionality and/or the features of a device may be alternatively embodied by one or more other devices which are not explicitly described as having such functionality/features. Thus, other embodiments of the invention need not include the device itself.
(56) Finally, the language used in the specification has been principally selected for readability and instructional purposes, and it may not have been selected to delineate or circumscribe the inventive subject matter. It is therefore intended that the scope of the invention be limited not by this detailed description, but rather by any claims that issue on an application based here on. Accordingly, the embodiments of the present invention are intended to be illustrative, but not limiting, of the scope of the invention, which is set forth in the following claims.
(57) While various aspects and embodiments have been disclosed herein, other aspects and embodiments will be apparent to those skilled in the art. The various aspects and embodiments disclosed herein are for purposes of illustration and are not intended to be limiting, with the true scope and spirit being indicated by the following claims.