This disclosure relates to mats for use in portable porous construction systems, the systems utilizing the mats, methods for assembly and use, and tools useful for assembling and disassembling the systems.
Industries that work in remote locations such as oil, gas, mining, construction, and others can have site access issues requiring improvements such as the construction of roads or work platforms to provide access to and around the site.
Traditional road and platform construction materials and methods may not be cost effective or environmentally friendly. Alternatives, such as surface mats, are sometimes used. Traditional mat systems, such as mats made from timber or wood, have limitations in that they are expensive, heavy to transport, have a high environmental cost in trees harvested to make the mats, and deteriorate rapidly in use. Polymer and fiber glass mats are large in size and are costly to buy or rent and then transport.
Still other prior art mat systems can be labor intensive to install and assemble, and likewise can be difficult to disassemble if the mat systems become packed with soil.
What is needed is a mat system that can be easily disassembled and removed from the site and which is cost effective, easy to transport, and environmentally friendly.
In one aspect, a mat for use in a portable porous construction mat system is provided. The mat includes a porous unit having an outer perimeter and a matrix of intersecting walls defining a plurality of cells within the perimeter. The porous unit has a mounting side and a user side. The mat includes a plurality of first and second tabs projecting from a remainder of the porous unit along the perimeter. Each of the first tabs is recessed from the user side and even with the mounting side. Each of the second tabs is recessed from the mounting side and even with the user side. Each of the first and second tabs includes an aperture therein constructed and arranged to allow releasable fastening thereto.
In another aspect, a portable porous construction mat system is provided. The system includes a first porous unit having an outer perimeter and a matrix of intersecting walls defining a plurality of cells within the perimeter and having a mounting side and a user side. A plurality of first and second tabs project from a remainder of the first porous unit along the perimeter. Each of the first tabs is recessed from the user side and even with the mounting side. Each of the second tabs is recessed from the mounting side and even with the user side. Each of the first and second tabs includes an aperture therein constructed and arranged to allow releasable fastening thereto. The system includes a second porous unit laterally adjacent to and against the first porous unit. The second porous unit has an outer perimeter and a matrix of intersecting walls defining a plurality of cells within the perimeter and having a mounting side and a user side. A plurality of first and second tabs project from a remainder of the second porous unit along the perimeter. Each of the second porous unit first tabs is recessed from the user side and even with the mounting side. Each of the second porous unit second tabs is recessed from the mounting side and even with the user side. Each of the second porous unit first and second tabs includes an aperture therein constructed and arranged to allow releasable fastening thereto. One of the second porous unit first tabs is oriented under one of the first porous unit second tabs to define a first connection. One of the second porous unit second tabs is oriented over one of the first porous unit first tabs to define a second connection. The first connection includes a fastener arrangement held within the apertures of the respective first and second tabs of the first connection. The second connection includes a fastener arrangement held within the apertures of the respective first and second tabs of the second connection.
In another aspect, a method of providing a construction mat system is provided. The method includes providing a first porous unit having an outer perimeter and a matrix of intersecting walls defining a plurality of cells within the perimeter and having a mounting side and a user side. A plurality of first and second tabs project from a remainder of the first porous unit along the perimeter. Each of the first tabs is recessed from the user side and even with the mounting side. Each of the second tabs is recessed from the mounting side and even with the user side. Each of the first and second tabs includes an aperture therein constructed and arranged to allow releasable fastening thereto. The method includes providing a second porous unit having an outer perimeter and a matrix of intersecting walls defining a plurality of cells within the perimeter and having a mounting side and a user side. A plurality of first and second tabs project from a remainder of the second porous unit along the perimeter. Each of the second porous unit first tabs is recessed from the user side and even with the mounting side. Each of the second porous unit second tabs is recessed from the mounting side and even with the user side. Each of the second porous unit first and second tabs includes an aperture therein constructed and arranged to allow releasable fastening thereto. The method includes orienting the second porous unit laterally adjacent to and against the first porous unit and so that one of the second porous unit first tabs is oriented under one of the first porous unit second tabs to define a first connection. One of the second porous unit second tabs is oriented over one of the first porous unit first tabs to define a second connection. The method includes putting a fastener arrangement within the apertures of the respective first and second tabs of the first connection. The method includes putting a fastener arrangement within the apertures of the respective first and second tabs of the second connection.
In another aspect, a kit is provided. The kit includes a first porous unit, a second porous unit, and a plurality of fastener arrangements. The first porous unit has an outer perimeter and a matrix of intersecting walls defining a plurality of cells within the perimeter and having a mounting side and a user side. A plurality of first and second tabs project from a remainder of the first porous unit along the perimeter. Each of the first tabs is recessed from the user side and even with the mounting side. Each of the second tabs is recessed from the mounting side and even with the user side. Each of the first and second tabs includes an aperture therein constructed and arranged to allow releasable fastening thereto. The second porous unit has an outer perimeter and a matrix of intersecting walls defining a plurality of cells within the perimeter and having a mounting side and a user side. A plurality of first and second tabs project from a remainder of the second porous unit along the perimeter. Each of the second porous unit first tabs is recessed from the user side and even with the mounting side. Each of the second porous unit second tabs is recessed from the mounting side and even with the user side. Each of the second porous unit first and second tabs includes an aperture therein constructed and arranged to allow releasable fastening thereto. The second porous unit is constructed and arranged to be positioned laterally adjacent to and against the first porous unit and so that one of the second porous unit first tabs can be oriented under one of the first porous unit second tabs to define a first connection. One of the second porous unit second tabs can be oriented over one of the first porous unit first tabs to define a second connection. The plurality of fastener arrangements are sized and shaped to fit within the apertures of the respective first and second tabs of the first connection and within the apertures of the respective first and second tabs of the second connection.
A variety of examples of desirable product features or methods are set forth in part in the description that follows, and in part will be apparent from the description, or may be learned by practicing various aspects of the disclosure. The aspects of the disclosure may relate to individual features as well as combinations of features. It is to be understood that both the forgoing general description and the following detailed description are explanatory only, and are not restrictive of the claimed invention.
A. Example Mat System
In
The mat 24 is a porous unit 25, in that it has ample through holes to allow for drainage throughout the mat 24. The mat 24 has an outer perimeter 32 and a matrix of intersecting walls 34 defining a plurality of cells 36 within the perimeter 32. In the preferred arrangement shown, each of the cells 36 includes a drainage aperture arrangement 38 therein. Typically, this drainage aperture arrangement 38 is in the form of a through hole 40.
The mat 24, in the embodiment illustrated, includes a double wall structure 42 (see
Each of the mats 24 has a mounting side 44 and an opposite user side 46. The mounting side 44 is the side that is in contact with the ground surface 30 (
Each of the cells 36 defined by the walls 34 includes the drainage aperture 38, which is depicted as a rectangular hole 40. The holes 40 are defined by an axial surface 48, including a user side axial surface 49 (
Each of the mats 24, in typical example embodiments, will have at least 20 cells 36, typically 30-50 cells 36, and in the example shown, 40 cells 36. Preferably, the mat 24 comprises a molded non-metal material. Usable materials include a molded thermoplastic. Each of the mats 24 has a weight of not greater than 20 lbs., typically 9-15. Each mat 24 will have a crush strength of at least 100 PSI and flexural modulus of 100,000 to 200,000 PSI. The open area of the user side 46 is typically 75-95%. The open area of the mounting side 44 is typically 25-35%.
In accordance with principles of this disclosure, the mat 24 includes a plurality of first and second tabs 56, 58. The first and second tabs 56, 58 each project from a remainder of the porous unit of the mat 24 and along the perimeter 32. The first tab 56 and second tab 58 are useful in connecting more than one mat 24 together to form grid 22.
Each of the first tabs 56 is recessed from the user side 46 and even with the mounting side 50. The first tab 56 includes an aperture 60 constructed and arranged to allow releasable fastening thereto, to be described further below.
Each of the second tabs 58 is recessed from the mounting side 44 and even with the user side 46. Each of the second tabs 58 includes an aperture 62 constructed and arranged allow releasable fastening thereto, to be described further below.
From a review of
In the illustrated embodiment, at least one of the first tabs 56 and at least one of the second tabs 58 is along the perimeter 32 of each of the sides 66, 67 of the second pair. In other embodiments, there can be more than one of the first tabs 56 and more than one of the second tabs 58 along the sides 66, 67.
Many different embodiments can be made. In the example shown, the first and second tabs 56, 58 alternate sequentially along each of the first pair of sides 64, 65 and along each of the second pair of sides 66, 67.
In this example, the porous unit 25 has a two-fold axis of symmetry about a central longitudinal axis 70 (
In reference now to
In the particular example embodiment shown in the drawings, each of the apertures 60 of the first tabs 56 is a fastener-receiving aperture 60. The aperture 60, the illustrated embodiment, includes a pair of opposing generally semi-circular surfaces 74, 75 (see
In each of the tabs 56, 58, adjacent to the fastener-receiving apertures 60, 62, there can be drainage apertures 76 to help further facilitate drainage of the porous unit 25.
The mats 24 can be arranged relative to each other and connected together to form the grid 22. In preferred embodiments, the mats 24 are connected together in a staggered pattern in the form of a running bond pattern 80 (
To form the mat system 20, and in reference now to
The first connection 86 will include a fastener arrangement 87 (
Still in reference to
In the example shown in
Again, still in reference to
In the embodiment illustrated in
In mat systems 20, the pattern shown in
The first and second tabs 56, 58 of each of the first porous unit 82, second porous unit 84, third porous unit 92, fourth porous unit 106, and fifth porous unit 108, alternate sequentially with each other. That is, in the example embodiment illustrated, each of the porous units 82, 84, 92, 106, 108 has first tabs 56 alternating sequentially with second tabs 58. There are no first tabs 56 together, without being separated by a second tab 58; similarly, there are no second tabs 58 together without being separated by a first tab 56.
B. Example Fastener Arrangements and Related Components
As mentioned above, the first connection 96, second connection 88, third connection 94, fourth connection 96, fifth connection 100, and sixth connection 102 include fastener arrangement 87 (
In the example embodiment, the nut 78 is a split nut 114 (
As can be seen in
In reference to
The first half 116 of the split nut 114 has a first side 122, second side 123, and an arched extension 124 therebetween. The first side 122 includes a projection 126 extending therefrom. The projection 126 is spaced from both a top rim 127 and bottom rim 128. The second side 123 includes a recess 130, spaced from both the top rim 127 and bottom rim 128.
The arched extension 124 includes inner surface 118, as mentioned previously, which is threaded 120. An exterior surface 132 of the arched extension 124 includes a projecting rail 134. The rail 134, in the embodiment shown, is centered between the first side 122 and second side 123.
The second half 117 of the split nut 114 is constructed to mate with the first half 116 and result in nut 78 that has a threaded socket 136 (
Referring now to
The exterior surface 148 of the arched extension 140 includes rail 150 extending there from.
As can be seen in
The nut 78 fits within the apertures 60 of the first tabs 56. As mentioned above, the aperture 60 in the first tab 56 includes opposite guide slots 152, 153 (
In some preferred arrangements, the nut 78 is of a color that will be visually distinct from the color of the porous unit 25. For example, the nut 78 can be yellow, while the porous unit 25 is black. This visually distinct color will help the user installing the mat system 20 to not miss any connections that need to be made between the various porous units 25.
The bolt 112 is also part of the fastener arrangement 87. One example usable bolt 112 is illustrated in
In examples shown, the bolt 112 includes a shaft 156, a flange 158, and a head 160. The shaft 156 is threaded with threads 157 that engages with the threaded socket 136 formed by the nut 78.
The flange 158 has a diameter that is wider than the diameter of the shaft 156 and narrower than an outermost dimension of the head 160. The flange 158 acts as a washer 162. The washer 162 has an upper axial surface 164 and a lower axial surface 165 on an opposite side as the upper axial surface 164. As can be seen in
In the embodiments shown, the bolt 112 includes a socket 168. The socket 168 is defined by a head wall 170, having an outer polygon surface 172 and an inner polygon surface 174. The inner polygon surface 174 lines the socket 168. The socket 168 is adapted to receive a torqueing tool 176 (
The head wall 170 can have many different shapes. In the illustrated embodiment, the outer polygon surface 172 is a hexagon shape. In the example shown, the inner polygon surface 174 is a hexagon shape.
Still in reference to
The bolts 112 can be of a different color from the color of the porous units 25. Preferably, the bolts 112 will be of a color contrasting to the color of the porous units 25. For example, the bolts 112 can be yellow, while the porous units 25 are black. This helps the user identify all of the connection points more easily.
In some embodiments, at least some of the bolts 112 can include a location device 188 (
In some embodiments, there can be a ground stake 190 (
In some arrangements, there may also be above ground delineators 192 (
The bolts 112 may also have fluorescence or reflectivity additives in the molded material, when making, to result in increasing the visibility of the bolts 112. For example, bolts 112 that are put along an edge of grid 22 to mark the edge of a road, or the edge of a perimeter, can be bolts 112 that have the fluorescence or reflectivity additives. The delineators 192 can also include lights, such solar powered lights, for delineation purposes.
The tool 176 of
In references to
As can be seen in
In
The driver tool 206 can be used by the worker to tighten the bolts 112 within the nuts 78, and without having to crouch, bend over, or work on one's knees. That is, the worker can tighten the bolts 112 in the nuts 78 in a standing position by using the driver tool 206. As such, it should be understood that the handle extension 208 will have a height sufficient to accommodate a standing position of an adult human. The handle extension 208 could also be adjustable in length.
In some embodiments, the bolt 112 can include a tactile feature to sense a “near home” position of the bolt 112 when torqued into position. One example is shown in
C. Example Anchoring Systems and Components
The system 20 can be used with ground anchors 224 (
In
The washer 230, when operably installed in use, will be inside of cell 36, surrounded by the cell walls 34.
As an alternative to (or along with) the ground anchor 224 of
If there is shifting in the ground 31, or due to a variety of other conditions, it may be that the ground anchor 224 will no longer be tight and positioned to hold the mat 24 in place. In some situations in the prior art, the user would need to apply another, new ground anchor into an adjacent cell. In accordance with principals of this disclosure, however, the user can repair the ground anchor 224 that has become loose.
For example, in this embodiment, to repair the ground anchor 224 that has become loose, the user would pull the cable 228 tight, and move the washer 230 to be against the user side axial surface 49 within the cell 36. The cable stop 232 would then be slid over the cable 228 until it was tight against the washer 230. It should be appreciated that, in this condition, the cable stop 232 is within the walls 34 of the cell 36.
The cable stop 232 will then be slid over the cable 228 until it is tight against the washer 230. It should be appreciated that, in this condition, the cable stop 232 is within the walls 34 of the cell 36.
The cable stop 232 will then need to be tightened or crimped around the cable 228 to hold it tight to the cable 228. Normal crimpers are designed to work perpendicular or 90° to the cable.
In reference now to
The jaws 236, 237 are mounted at an angle to the tool 238. As mentioned, in typical prior art crimpers, the crimper is designed to work perpendicular to the cable. In this embodiment, the crimp jaws 236, 237 are mounted at an angle 242 of 10-20°, typically about 15°, to the tool 238 (see
In
The crimp jaws 236, 237 each include a groove 244 for receiving the tool jaws 246 (
The crimper 234 includes first and second guide screws 248, 249 (
The cable stop 232 can include an open side slot 252 (
A kit for constructing mat system 20 can be provided utilizing the materials as described herein. One such kit includes at least first and second porous units 25 and a plurality of fastener arrangements 87.
In one example, the fastener arrangements 87 in the kit include a plurality of split nuts 114 and a plurality of threaded bolts 112.
The kit can include tool 176 to apply a torque force between the bolts 112 and the split nuts 114.
The kits may also include at least one ground anchor 224. The ground anchor will include foot 226, cable 228, washer 230 and cable stop 232.
The kit can also include at least one crimper 234 to apply force to the cable stop 232 and the cable 228 at an angle of about 10-20° relative to the cable 228.
A method of providing a construction mat system 20 can be implemented utilizing the materials and principals as described herein. In the method, a first porous unit, such as first porous unit 82 is provided. A second porous unit, such as second porous 84 is provided and oriented laterally adjacent to and against the first porous unit 82 and so that one of the second porous unit 84 first tabs 56 is oriented under one of the first porous unit 82 second tabs 58 to define first connection 86. One of the second porous unit 84 second tabs 58 is oriented over one of the first porous unit 82 first tabs 56 to define second connection 88. The method includes putting fastener arrangement 87 within the fastener-receiving apertures 60, 62 of the respective first and second tabs 56, 58 of the first connection 86. The method includes putting fastener arrangement 87 within fastener receiving apertures 60, 62 of the respective first and second tabs 56, 58 of the second connection 88.
The step of putting fastener arrangement 87 within the fastener-receiving apertures 60, 62 of the first connection 86 includes putting split nut 114 into the fastener-receiving aperture 60 of the first tab 56 of the first connection 86 and putting threaded bolt 112 into the fastener-receiving aperture 62 of the second tab 58 of the first connection 86. The bolt can include socket 168, outer polygon surface 172 and inner polygon surface 174 lining the socket 168. The method can include using tool 176 to grasp both the outer polygon surface 172 and inner polygon surface 174 to apply a torque force between the bolt 112 and the split nut 114.
The method can include using bolts 112 having a plurality of projections 216 extending from the flange 158, and wherein the second tabs 58 have flange-receiving surface 166 adjacent to the fastener-receiving apertures 62 of the second tabs 58, so that the flange-receiving surface 166 defines tactile inducing surface 218. The step of using tool 176 can include engaging the projections 216 on the flange 158 against the tactile-inducing surface 218 of the flange receiving surface 166.
The method may further include inserting ground anchor 224 through one of the cells 36 of the first and second porous units 82, 84. The ground anchor can include foot 226 embedded into the ground 31; cable 228 attached to the foot 226 and extending from foot 226 through the cell 36; washer 230 against the user side inner axial surface 49 of the walls 34 defining the cell 36; and cable stop 232 secured to the cable 228 and oriented against the washer 230.
The method can further include crimping the cable stop 232 around the cable 228. This may be done by inserting crimper 234 into the cell 36, grasping the cable stop 232 with the crimper 234, and then tightening the cable stop 232 around the cable 228 using the crimper 234.
The step of using the crimper 234 can include holding the crimper 234 at an angle of about 10-20°, typically about 15°, relative to the cable 228.
The above represents principles of this disclosure. Many embodiments can be made using these principles.