Exemplary embodiments relate to an apparatus for the removal of cuttings from a drill hole and, more particularly, to a particulate skimmer apparatus having an articulated mount.
It is common in mining operations to utilize a mobile drilling platform for drilling holes in various earth formations for the placement of explosives, for example, for the loosening of earth to be removed by excavation. During the drilling of a hole in a formation, compressed air may be used to flush cuttings out of the hole being drilled. Due to health and environmental concerns the cuttings being flushed out of the hole may be gathered and filtered to limit their released into the environment. A dust collection system may be utilized with the mobile drill unit and may comprise a pickup, a pre-skimmer or centrifugal separator and a dust collector. The dust collector establishes a vacuum that draws the cuttings into the dust pickup pot, through the pre-skimmer and into the dust collector itself.
The pre-skimmer is designed to separate larger cuttings that will drop through a bottom chute with smaller and lighter particles continuing to the dust collector where there are filtered from the air flow by mechanical means such as filters. For the pre-skimmer to work most efficiently, and to avoid clogging, it should be mounted vertically, with respect to the ground, in order for the larger/heavier particles separated from the cuttings to drop out of a bottom chute.
Since drilling may often occur in a non-vertical orientation it is often necessary to reorient the pre-skimmer, with respect to the drill feed, in order to maintain its desired vertical orientation. Such reorientation of the pre-skimmer in the field may be time consuming, thereby lowering operational efficiency.
In an exemplary embodiment an articulated pre-skimmer mount for a pre-skimmer associated with a drill bit feed unit comprises a feed mounting arm mounted to, and extending outwardly from the drill bit feed unit. The feed mounting arm comprises a first end configured for attachment to the drill bit feed unit, a second end including a cylindrical mounting shaft and an axial positioning plate located intermediate of the first and the second ends. An intermediate arm has a first end comprising a cylindrical sleeve mounted thereto. The cylindrical sleeve has an inner cylindrical opening configured for sliding engagement with the cylindrical mounting shaft and a mating plate located on the sleeve and configured for locking, face-to-face engagement with the axial positioning plate. A second end comprises a pre-skimmer mounting assembly configured for attachment to the pre-skimmer, wherein the axial positioning plate and the mating plate are operable to disengage, for rotation of the intermediate arm about an axis of the feed mounting arm to position the pre-skimmer and to re-engage to fix the pre-skimmer in position.
In another exemplary embodiment an articulated pre-skimmer mount for a pre-skimmer associated with a drill bit feed unit comprises a feed mounting arm mounted to, and extending outwardly from the drill bit feed unit comprising a first end configured for attachment to the drill bit feed unit, a second end including a cylindrical mounting shaft, and an axial positioning plate located intermediate of the first and the second ends. An intermediate arm has a first end comprising a cylindrical sleeve mounted thereto. The cylindrical sleeve has an inner cylindrical opening configured for sliding engagement with the cylindrical mounting shaft and a mating plate located on the sleeve and configured for locking, face-to-face engagement with the axial positioning plate. A second comprises a pre-skimmer mounting assembly configured for attachment to the pre-skimmer, wherein the axial positioning plate and the mating plate are operable to disengage, for rotation of the intermediate arm about an axis of the feed mounting arm to position the pre-skimmer and to re-engage to fix the pre-skimmer in position. A second cylindrical mounting shaft extending outwardly from the second end of the intermediate arm and a second cylindrical sleeve configured for sliding engagement with the second cylindrical sleeve. A second mating plate is located on the second cylindrical sleeve and is configured for locking, face-to-face engagement with a second axial positioning plate mounted to the second cylindrical mounting shaft, wherein the second axial positioning plate and the second mating plate are operable to disengage, for rotation of the pre-skimmer mounting assembly about an axis of the second cylindrical mounting shaft and to re-engage to fix the pre-skimmer in position.
The above features and advantages, and other features and advantages of the present invention are readily apparent from the following detailed description of the invention when taken in connection with the accompanying drawings.
The following description is merely exemplary in nature and is not intended to limit the present disclosure, its application or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
Referring to
During operation of the dust collecting system 28, it is desirable to maintain the pre-skimmer 32 in a vertical position relative to the ground 46 in order to assure efficient operation and to prevent clogging thereof.
Referring to
In an exemplary embodiment, an intermediate arm 66 includes a first end 68 and a second, distal end 70. The first end 68 includes a cylindrical sleeve 72 fixed thereto and having an inner cylindrical opening 74 configured for sliding engagement with the cylindrical mounting shaft 62 of the feed mounting arm 50. Mounted inboard of the cylindrical sleeve 72 (relative to the second end 56 of the feed mounting arm 50) is a mating plate 76 that is configured for face-to-face engagement with the axial positioning plate 58. The mating plate 76 includes a plurality of spaced, locking apertures 78 that extend through and circumferentially about the mating plate 76. The locking apertures 78 include the same radial positioning from the axis 80 of the feed mounting arm 50 as the spaced engagement studs 60 of the axial positioning plate 58. As such, when the mating plate 76 is brought into face-to-face engagement with the axial positioning plate 58 the plurality of spaced engagement studs 60 engage corresponding locking apertures 78 to prevent rotational movement of the cylindrical sleeve 72 and associated intermediate arm 66 about the axis 80 of the feed mounting arm 50. A locking pin receiver 82 extends tangentially through an outer radial portion of the cylindrical sleeve 72 and is configured to receive a locking pin 84 which, when engaged in the locking pin receiver 82 is disposed within the locking groove 64 of the cylindrical mounting shaft 62. In this configuration axial movement of the cylindrical sleeve 72 along the cylindrical mount shaft 62 of the feed mounting arm 50 is prevented and engagement of the spaced engagement studs 60 with the locking apertures 78 is maintained. In the locked configuration movement of the intermediate arm 66 relative to the axis 80 of the feed mounting arm 50 is thereby prevented. It is contemplated that the spaced engagement studs 60 and the locking apertures 78 may, of course be positioned in either of the axial mounting plate 58 and the mating plate 76 without departing from the scope of the present invention. In addition, the use of the spaced engagement studs 60 and the locking apertures 78 may be exchanged for other fixing options such as frictional fixing of the mounting plate 58 and the mating plate 76 relative to one another or through the use of complementary, radially extending grooves which, when the mounting plate 58 and the mating plate 76 are brought into face-to-face engagement, nest within one another to prevent relative movement therebetween. The number and spacing of the locking apertures 78 will determine the angular resolution of movement between the mounting plate 58 and the mating plate 76 during adjustment of the articulated pre-skimmer mount 48, as will be further described below.
In an exemplary embodiment, disposed at the second end 70 of the intermediate arm 66 is a pre-skimmer mount assembly 86. The pre-skimmer mount assembly 86 includes a mounting bracket 88, having a mounting face 90 configured for attachment to pre-skimmer 32. The mounting bracket 88 may be attached to the pre-skimmer 32 by welding or through the use of suitable fasteners, such as bolts (not shown), which extend through the mounting face 90 and into an associated mounting point 92 of the pre-skimmer 32. Mounting bracket 88 may also include a mounting arm 94 extending from the mounting bracket face 90 to terminate in a second cylindrical sleeve 96. The second cylindrical sleeve 96 includes an inner cylindrical opening 98 for sliding engagement on a second cylindrical mounting shaft 100 that extends outwardly from the second end 70 of the intermediate arm 66. Mounted inboard of the second cylindrical sleeve 96 is a second mating plate 102 having a plurality of circumferentially spaced locking apertures 104. The second mating plate 102 is configured to engage in face-to-face relationship with a second axial positioning plate 106 having spaced engagement studs 108 extending axially outwardly therefrom. The spaced engagement studs 108 and the locking apertures 104 are located in the same radial positions relative to the axis 110 of the second cylindrical mounting shaft 100. As a result, when the second mating plate 102 and second axial positioning plate 106 are brought into face-to-face contact the spaced engagement studs 108 engage the locking apertures 104 to prevent movement of the mounting arm 94 and associated mounting bracket 88 relative to the axis 110 of the second cylindrical mounting shaft 100. A locking groove (not shown), similar to locking groove 64 extends circumferentially about the second cylindrical mounting shaft 100. A locking pin receiver 112 is configured to slidingly receive a locking pin 114 therein. When the locking pin 114 is disposed in the locking pin receiver 112 it engages the locking groove in the second cylindrical mounting shaft 100 to prevent axial movement of the second cylindrical sleeve 96 relative to the second cylindrical mounting shaft. It is contemplated that the spaced engagement studs 108 and the locking apertures 104 may, of course be positioned in either of the second axial mounting plate 106 and the second mating plate 102 without departing from the scope of the present invention. In addition, the use of the spaced engagement studs 108 and the locking apertures 104 may be exchanged for other fixing options such as frictional fixing of the second mounting plate 106 and the second mating plate 102 relative to one another or through the use of complementary, radially extending grooves which, when the second mounting plate 106 and the second mating plate 102 are brought into face-to-face engagement, nest within one another to prevent relative movement therebetween. The number and spacing of the locking apertures 104 will determine the angular resolution of movement between the second mounting plate 106 and the second mating plate 102 during adjustment of the articulated pre-skimmer mount 48, as will be further described below.
Referring now to
Adjustment of the pre-skimmer 32 in the about the x and the z axes allows the unit to be oriented in a vertical position relative to the ground 46 (i.e. the x and the z axes) to thereby assure the efficient operation of the unit with respect to the removal of large and heavy components 42 of the particulates and cuttings 40 extracted from the bore hole 24. The use of the axial positioning plates 58 and 106 with the corresponding mating plates 76 and 102, which are held in position by quick release locking pins 84 and 114, allow for the rapid adjustment of the pre-skimmer alignment relative to the vertical axis y, when the drill feed unit 20 is operated at and angle α or γ from the vertical axis y, thereby improving the efficiency of the drilling operation.
While the invention has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed, but that the invention will include all embodiments falling within the scope thereof.
This patent application claims priority to U.S. Provisional Patent Application Ser. No. 61/304,949 filed Feb. 16, 2010 which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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61304949 | Feb 2010 | US |