The present disclosure generally relates to machining counterbores and, more particularly, relates to apparatus, systems, and methods for machining back counterbores into components of machines.
Processes involving cutting tools are often used to create counterbores on material surfaces. A counterbore is a bore which is concentric with a previously cut bore on a material surface. Counterbores may be flat-bottomed holes that enlarge a portion of an associated coaxial bore. Such counterbores are often used in designs wherein the head of a fastener, such as a hex head or socket head screw, is required to be flush with or below the level plane of a surface of a machine component. Counterbores may also be used to create a perpendicular surface for a fastener head on a non-perpendicular surface, where only enough material is removed so as to make the surface flat once the fastener is installed. Generally, counterbores are machined, with respect to an associated pilot bore, using cutting tools designed to the specification of the desired counterbore. Often, tools for cutting counterbores in a surface are made with standard dimensions for a certain size of insert.
During machining processes, counterbores can be produced using methods wherein the bore is on the opposing side of the surface from which the tool enters the pilot bore. In such processes, the counterbore may be machined using processes for creating back counterbores. A back counterbore is a counterbore created when a tool enters through a pilot bore and the tool machines the counterbore on the side of the machining surface opposite to the side from which the tool entered. Creating back counterbores requires different tools than the tools used for creating standard counterbores because the cutting element of the tool must completely fit within the pilot bore.
Various tools exist for creating back counterbores, said tools entering the pilot bore from the opposing side of the machining surface on which the counterbore is machined. One such modern tool for creating back counterbores includes a straight-line base body designed to fit a specific dimension of pilot bore and a cutting element which protrudes from base body once the tool has passed through the pilot bore. The cutting element of such a tool lays flush with the surface of the base body of the tool upon entering the pilot bore. When the back counterbore is to be cut by the tool, the cutting element protrudes from the base body. Such tools may require spring loaded or pneumatic means for ejecting the cutting element from its flush position with respect to the base body. Once the head of the tool, containing the cutting element, is through the pilot bore and the cutting element protrudes out from the base body, the base body is rotated while the cutting element is in contact with the machining surface. After rotation, the back counterbore is machined. The cutting element may then recess back in to the base body and the tool may be removed from the pilot bore. Such cutting tools are detailed further in U.S. Patent Application No. 2013/0330141 (“Deburring Tools for Deburring Bore Margins”)
While these tools and methods for using said tools are useful for machining back counterbores, the tools have complicated designs including many moving parts internal to the tool. Such parts may deteriorate over time, potentially causing part failure which may lead to a defective tool. Further, these tools having a pop-out cutting element are very expensive due to the complicated design and use of spring-loaded or pneumatic elements. Therefore, a need exists for more cost effective and robust methods and tools for machining back counterbores.
In accordance with one aspect of the present disclosure, a method is provided for machining a counterbore in a machining component, the machining component defining a bore. The method may include positioning the machining component with respect to a machining tool, the positioning of the machining component based on geometric specifications of the counterbore. The machining tool includes a boring bar, the boring bar, the boring bar angled based on the geometric specifications of the counterbore, a head attached to the boring bar, and a cutting element attached to the head. The method may further include traversing the boring bar of the machining tool through the bore on a first side of the machining component until the head of the machining tool emerges from a second side of the machining component. The method may further include repositioning one of the machining component or the tool, once the head has traversed through the bore, such that the cutting element comes in contact with the second side of the machining component. The method may further include rotating at least one of the tool and the machining component with the cutting element in contact with the second side of the machining component.
In accordance with another aspect of the present disclosure, a machining tool is provided for machining a counterbore in a machining component, the machining component defining a bore. The machining tool includes a boring bar, the boring bar contoured based on geometric specifications of the counterbore. The machining tool further includes a tool head attached to the boring bar, the tool head traversing through the bore on a first side of the machining component until it emerges from a second side of the machining component during the machining of the counterbore, the machining component being angled based on the geometric specifications of the counterbore. The machining tool further includes a cutting element, the cutting element making contact with the second side of the machining component when at least one of the tool or the machining component is repositioned after the tool traverses the bore and cutting the counterbore into the second side of the machining component when at least one of the tool and the machining component is rotated.
In accordance with yet another aspect of the present disclosure, a system is provided for machining a counterbore in a machining component, the machining component defining a bore. The system includes a machining tool, the machining tool including a boring bar, the boring bar angled based on geometric specifications of the counterbore, a head attached to the boring bar, and a cutting element attached to the head. The system may further include a controller in operative control of the machining table and the machining tool. The controller may provide instructions for positioning the machining component with respect to a machining tool, the positioning of the machining component based on geometric specifications of the counterbore, and traversing the boring bar of the machining tool through the bore on a first side of the machining component until the head of the machining tool emerges from a second side of the machining component. The controller may further provide instructions for repositioning one of the machining surface or the tool, once the boring bar has traversed through the bore, such that the cutting element comes in contact with the second side of the machining component, and rotating at least one of the tool and the machining component with the cutting element in contact with the second side of the machining component.
Other features and advantages of the disclosed systems and principles will become apparent from reading the following detailed disclosure in conjunction with the included drawing figures.
While the following detailed description will be given with respect to certain illustrative embodiments, it should be understood that the drawings are not necessarily to scale and the disclosed embodiments are sometimes illustrated diagrammatically and in partial views. In addition, in certain instances, details which are not necessary for an understanding of the disclosed subject matter or which render other details too difficult to perceive may have been omitted. It should therefore be understood that this disclosure is not limited to the particular embodiments disclosed and illustrated herein, but rather to a fair reading of the entire disclosure and claims, as well as any equivalents thereto.
The present disclosure provides methods, apparatus, and systems for machining back counterbores. The proceeding embodiments of the disclosure may be used for machining bores in machinery components. The machinery components may be formed of heavy metallic materials which require bores and associated counterbores for fasteners. However, such systems, methods, and tools are not limited to such applications.
An example tool 10 for machining back counterbores is illustrated in
Turning now to
Referring now to
At step 34, as further detailed in
After the machining component 20 has been positioned, the tool 10 is traversed through the pilot bore 22 (step 35). As shown in the detailed embodiment of step 35 in
After the tool head 12 and contoured boring bar 13 have traversed the pilot bore 22, at least one of the tool 10 and the machining component 20 are repositioned such that the cutting element 14 will come in contact with the second side 23 of the machining component 20 for the counterboring process (step 36). In the example embodiment of step 36 in
Once the tool 10 is in position with the cutting element 14 being in contact with the second side 23 of the machining component 20, at least one of the tool 10 and the machining component 20 is rotated to bore the counterbore 24 in the machining component 20 (step 37). Rotation of the tool 10 and/or machining component 20 may be clockwise or counterclockwise. In the example embodiment of step 37 in
After the counterbore 24 has been cut, the machining component 20 may return to the positioning shown in
In an example embodiment, the method 30 shown in
Algorithms and instructions executed by the controller 44 may be part of a computer numerical control (CNC) program 46 associated with the controller 44. The CNC program 46 provides automation of machine tools by operating with precisely programmed commands encoded on a storage medium. In some examples, the CNC program 46 may execute the methods of
In another embodiment, the controller 44 may provide instructions for positioning the machining component 20 with respect to the tool 10 by the positioning of the machining component 20 based on geometric specifications of the counterbore 24. The controller 44 may also provide the machining table 42 with instructions for traversing the contoured boring bar 13 through the pilot bore 22 on the first side 21 until the head of the tool 10 emerges from the second side 23 of the machining component 20. With the contoured boring bar 13 traversed through the pilot bore 22, the controller 44 may provide instructions for the machining table 42 to reposition the machining surface 20 such that the cutting element 14 comes in contact with the second side 13 of the machining component 20. Additionally or alternatively, the controller 44 may provide instructions to reposition the tool 10, either via the machine spindle 43 or any other means for positioning the tool 10, such that the cutting element 14 comes in contact with the second side 13 of the machining component 20. Further, with the cutting element 14 in contact with the second side 13 of the machining component 20, the controller 44 may provide instructions for rotating at least one of the tool 10 and the machining component 20. Rotating the tool 10 and the machining component 20 may be performed by the machine spindle 43 and the machining table 42, respectively. Lastly, after the counterbore 24 has been cut, the controller 44 may provide the machining table 44 instructions to return the machining component 20 to the positioning based on the geometric specifications of the counter bore, and provide instructions to traverse the tool 10 back out of the pilot bore 22 through the first side 21 of the machining component 20.
The present disclosure relates generally to improved systems, methods, and tools for machining back counterbores. In particular, the tool 10 and associated method 30 may be used to provide an inexpensive means for machining back counterbores because the tool 10 has a design absent expensive parts, such as the protruding cutting elements of the prior art. In general, the disclosed systems provide for a robust and cost effective means for machining back counterbores. Additionally, the provided contoured design of the tool 10 and method 30 using angled motion of the components may provide the ability to create wider counterbores than prior tools and methods for producing counterbores.
It will be appreciated that the present disclosure provides an apparatus, system, and method for machining back counterbores with improved cost efficiency and part durability. While only certain embodiments have been set forth, alternatives and modifications will be apparent from the above description to those skilled in the art. These and other alternatives are considered equivalents and within the spirit and scope of this disclosure and the appended claims.