The invention relates to a sensor mounting/retaining assembly and, more particularly, to a cylinder length sensor mounting/retaining assembly that facilitates access to the sensor without requiring disassembly of the cylinder.
Magnetostrictive length sensors can be incorporated into hydraulic cylinders. The sensors accurately measure a linear position of the cylinder rod. In incorporating such sensors into hydraulic cylinders, in the event a sensor needs to be repaired or replaced, existing designs require disassembly of the cylinder to access the sensor.
Additionally, existing sensors include an electrical connector of a two-piece construction that can be disassembled for sensor removal without soldering or removal of separate pins/conductors. The existing electrical connector, however, requires the use of four small fasteners. Corresponding threads are typically machined into the barrel weldment. This is a disadvantage since damage to the threads could possibly ruin the entire barrel weldment or at a minimum require excessive repair costs. Once the small fasteners are removed, the existing connector can be unsnapped into halves, allowing the sensor to be removed.
It would be desirable to provide a cylinder length sensor mounting/retaining assembly that facilitates access to the sensor without requiring disassembly of the cylinder. It would also be desirable to provide a design that does not require disassembly of the connector when removing the sensor from the cylinder. Such a design increases the reliability of the sensor since it does not require an electrical junction at the cylinder.
In an exemplary embodiment, a cylinder length sensor mounting and retaining assembly for a hydraulic cylinder includes a casing attachable to a blind end of the cylinder and a sensor retention cap affixable adjacent the blind end of the cylinder to close a sensor receiving channel. A first channel extends through the casing and is oriented substantially in alignment with the sensor receiving channel, and a second channel extends through the casing and intersects the first channel. A locking pin is extendable through the second channel, where the second channel is positioned relative to the sensor retention cap such that with the locking pin extending through the second channel, the locking pin is disposed adjacent the sensor retention cap.
The second channel may be substantially perpendicular to the first channel. In one arrangement, the sensor retention cap is secured to the casing with a plurality of mounting bolts. The second channel may be defined by separate and aligned pin receiving sections, where the first channel bisects the pin receiving sections. In this context, with the locking pin extending through the second channel, the locking pin may be positioned to block the first channel. In this context, the locking pin may be spaced from sensor retention cap by an amount that prevents the sensor retention cap from moving enough to leak. The sensor retention cap may include a sensor retention cap cavity that is sized to receive the cylinder length sensor. In this context, the sensor retention cap cavity may be shaped such that it is positively draining and allows moisture to exit freely from the cavity. The assembly may include an overmolded cordset through which a control module connector extends without requiring an electrical junction at the cylinder. The cordset is preferably long enough to attach to a cylinder control module.
In another exemplary embodiment, a cylinder length sensor mounting and retaining assembly for a hydraulic cylinder includes a casing attachable to a blind end of the cylinder, a sensor retention cap affixable to the casing adjacent the blind end of the cylinder, and a locking pin extendable through the casing and positioned adjacent the sensor retention cap.
In yet another exemplary embodiment, a method of mounting and retaining a cylinder length sensor in a hydraulic cylinder includes the steps of securing a casing to a blind end of the cylinder; affixing a sensor retention cap to the casing adjacent the blind end of the cylinder; and positioning a locking pin through a channel in the casing such that the locking pin is disposed adjacent the sensor retention cap.
The positioning step may be practiced by defining a first channel that extends through the casing and is oriented substantially in alignment with a sensor receiving channel, by defining a second channel extending through the casing and intersecting the first channel, and by extending the locking pin through the second channel positioned relative to the sensor retention cap such that with the locking pin extending through the second channel, the locking pin is disposed adjacent the sensor retention cap.
These and other aspects and advantages will be described in detail with reference to the accompanying drawings, in which:
With reference to
The assembly 14 includes a casing 16 attachable to a blind end of the cylinder 10 (as shown in
As shown in
A locking pin 28 is extendible through the second channel 24. The locking pin 28 is the cylinder pivot pin that serves to secure the cylinder to adjoining structure. As shown, the second channel 24 is positioned relative to the sensor retention cap 18 such that with the locking pin 28 extending through the second channel 24, the locking pin 28 is disposed adjacent the sensor retaining cap 18. In this context, with the locking pin 28 extending through the second channel 24, the locking pin 28 is positioned to block the first channel 22.
The sensor retention cap 18 secured to the sensor retention cap cavity 17 is mechanically separate from the main structure of the cylinder 10. As such, the mounting bolts 20 need only accommodate the pressures/forces acting on the sensor (as opposed to the entire cylinder as in the prior art design shown in
In order to access the sensor 12, after removing the locking pin 28 only the retention cap 18 needs to be removed, and disassembly of the cylinder is not required.
In order to avoid requiring disassembly of the connector when removing the sensor 12 from the cylinder 10, the design utilizes an over-molded cordset 30. The cordset 30 includes a cable and plug connector integrated into a single piece with the insulation over-molded to provide strain relief and moisture protection. This structure increases the reliability of the sensor since it does not require an electrical junction at the cylinder 10. The cordset 30 could be long enough to attach directly to the control module/machine interface or to another harnass, an I/O board, a terminal strip, etc. The prior design requires a cable to extend from the cylinder to the control module.
The cylinder length sensor mounting/retaining assembly serves to securely retain a length sensor within a hydraulic cylinder while providing access to the sensor without requiring disassembly of the cylinder. The structure prevents the sensor seal from disengaging in the event that the sensor retention cap mounting bolts were to loosen or fail. Additionally, the use of an over-molded cordset does not require disassembly of the connector when removing the sensor from the cylinder.
While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention is not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
This application claims the benefit of U.S. Provisional Patent Application Ser. No. 61/406,698, filed Oct. 26, 2010, the entire content of which is herein incorporated by reference.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US11/57624 | 10/25/2011 | WO | 00 | 3/26/2013 |
Number | Date | Country | |
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61406698 | Oct 2010 | US |