This invention is related to a mine roof support and, more particularly, to a yieldable mine roof support formed from a pipe that receives cementitious material.
Cribbing is frequently used to provide support in underground mine openings. One type of cribbing is formed using a standard corrugated culvert pipe that is filled with a cementitious material that is allowed to cure such that the pipe becomes a load-bearing structure. The culvert pipe is typically formed from 16 gauge galvanized steel sheet that is helically wound and joined along a continuous seam. When the corrugated pipe support is placed under a load, however, the corrugated pipe will eventually begin to separate along the continuous seam as the load and deformation of the pipe increases. The separation of the continuous seam typically results in a loss of confinement, thereby reducing the load-carrying capacity of the support.
In accordance with an aspect of the invention, a mine roof support includes a rigid, generally circular body having a first end and a second end, an outer surface, and an inner surface defining an interior space. The mine roof support also includes a support member extending circumferentially around the body and engaging an outer surface of the body.
In accordance with another aspect of the invention, a mine roof support includes a rigid body having a first end and a second end and defining an interior space, a cementitious material positioned within the interior space of the body and a plurality of support members extending circumferentially around the body and engaging an outer surface of the body.
In accordance with another aspect of the invention, a method includes providing a mine roof support comprising a rigid body having a first end and a second end, a cementitious material positioned within an interior space defined by the body, and a support member extending circumferentially around the body and engaging an outer surface of the body. The method also includes selecting a load capacity and elongation value of the support member to provide controlled yieldable confinement of the mine roof support during loading of the mine roof support.
The present invention will now be described with reference to the accompanying figures. For purposes of the description hereinafter, the terms “upper”, “lower”, “right”, “left”, “vertical”, “horizontal”, “top”, “bottom”, and derivatives thereof shall relate to the invention as it is oriented in the drawing figures. However, it is to be understood that the invention may assume various alternative variations and step sequences, except where expressly specified to the contrary. It is to be understood that the specific apparatus illustrated in the attached figures and described in the following specification is simply an exemplary embodiment of the present invention. Hence, specific dimensions and other physical characteristics related to the embodiments disclosed herein are not to be considered as limiting.
Referring to
The mine support 10 further includes a support member 26 that extends circumferentially around the body 12 and is configure to contact or engage the outer surface 22 of the body 12. As shown in
The support member 26 may be formed from a polyester fabric strap that is positioned around and in contact with or engaged with the outer surface 22 of the body 12. The polyester fabric strap may have, for example, a 4,000 lbf peak load and have generally high elongation properties, such as, for example, 14% elongation at 4,000 lbf load.
The support member 26 may also be formed from a metal material, such as, for example, a steel strap, such as in the form of a steel pallet strap, having, for example, a 3,000 lbf peak load and generally low elongation properties. In one aspect, a steel pallet strap having 3% elongation at 12,000 lbf load.
Accordingly, the support member 26 may be formed from a strap of material having, in one example, a first end 27 and a second end 29, with the first end 27 secured to the strap or the second end 29 via any suitable fastening element 31. The support member 26 may also be provided as a single piece of material extending from the first end 14 to the second end 16 of the body 12. In one aspect, the support members 26 may have a width W of 2-5 inches. Other suitable support members 26 may also be utilized having various dimensions, configurations, and physical properties.
Referring again to
Under loading and vertical displacement of the mine support 10, the support member 26 is placed under load and increases the confinement of the cementitious material 36, thereby increasing peak load and residual loads. In particular, the support member 26 substantially minimizes the degree to which the body 12 separates along its continuous seam and increases confinement by minimizing the amount of fractured cementitious material 36 from leaving the body 12. Thus, the mine roof support 10 has improved peak load and residual loading compared to conventional mine roof supports. Further, specific load capacity and elongation values of the support member 26 may be selected to optimize the performance of the mine support 10. As the mine support 10 undergoes deformation, the body 12 will start to separate along its continuous seam which is contained by the support member 26. The elongation value of the support member 26 will affect the degree to which the cementitious material 36 and body 12 will deform outward and the degree to which the seam of the body 12 will separate. Accordingly, the support member 26 along with the body 12 provides for controlled yieldable confinement, which may be optimized by selecting the load capacity and elongation values of the support member 26 alone or in combination with the load capacity and/or elongation value (or other physical properties) of the body 12. The circumference of the body 12 may expand upon loading in addition to elongation of the support members 26.
Referring to
In one aspect of the invention, the mine support 10 provides sequential confinement thereof. The body 12 may bulge or otherwise yield followed by yielding of the support members 26, or support members 26 may yield first followed by yielding of the body 12. It has been found that the mine support 10 can exhibit at least 25% reduction in height upon loading without failure.
The mine support 110 further includes a plurality of support members 126 that extend circumferentially around the body 112 and configured to contact or engage the outer surface 122 of the body 112. As shown in
The mine support 210 further includes a continuous support member 226 that extends circumferentially around the body 212 and configured to contact or engage the outer surface 222 of the body 212. As shown in
While several aspects of the invention were described in the foregoing detailed description, those skilled in the art may make modifications and alterations to these aspects without departing from the scope and spirit of the invention. Accordingly, the foregoing description is intended to be illustrative rather than restrictive.
This application claims the benefit of U.S. Provisional Application No. 61/659,758, filed Jun. 14, 2012, the entire content of which is hereby incorporated by reference.
Number | Date | Country | |
---|---|---|---|
61659758 | Jun 2012 | US |