Brief Description of the Drawing
FIG. 1 is a diagrammatic vertical section through a building footing, a pile, a sleeve, a region, of unstable soil and a region of stable soil.
FIG. 2 is a diagrammatic and partially cross-sectioned view of a self-propelled mole drawing a first steel tube of larger diameter than the exterior diameter of the mole.
FIG. 3 is a diagrammatic and partially cross-sectioned views of a self-propelled mole forming a footing in situ by laterally displacing un-set concrete.
Description of Preferred Embodiment
FIG. 1 shows a vertical section through a reinforced concrete footing 10, for a building, supported on a row of piles, one of which is shown at 11. The piles pass through a layer 12 of clay or other expansive unstable subsoil liable to heave, and pass into a layer 13 of rock or other firm stable soil or substratum. The piles 11 may be formed before the footing 10, or preferably the footing is formed first and the pile subsequently. The latter may be accomplished by setting expanded metal sleeves at the desired pile head locations and tying them into the reinforcing members laid for the footing 10. The concrete is then poured around the sleeves to form the footing 10, the concrete extruding itself slightly through the expanded metal to give a roughened hole. When the concrete has gained strength the piles are formed in situ working down through the sleeves. The roughened interior of the sleeve holes binds the piles to the footing 10. In either order, the footings are formed on top of clayboard 14 to absorb any heave in subsoil layer 12.
Each pile 11 is formed by the following steps illustrated in FIGS. 2 and 3:
(1) Forming a hole by allowing an elongate self-propelled soil displacing mole 19 to descend through the subsoil layers 12,13. A suitable mole is described in British Pat. No. 1,392,868 and U.S. Pat. Nos. 3,865,200; 3,891,036; and 3,970,157; and is commercially available under the Trade Mark GRUNDOMAT from the Patentee.
(2) The mole 19 draws down with itself a steel tube 15 of significantly larger internal diameter than the external diameter of the mole, whereby to line the hole. In one form the front end of the tube may be releasably attached to the mole. In another form the mole has a draw cable 22 attached to its rear end. The cable is threaded through the tube and secured to a cable clamp releasably attached to the rear end of the tube. The draw cable 22 and an air line 20 to the mole (which is pneumatically operated) are threaded through a length of pipe of internal diameter slightly larger than the outside diameter of the mole. A cable clamp is secured to the rear end of the pipe and the draw cable clamped thereto at a point such that, with a taunt cable, about one-half the length or rather less of the rearward portion of the mole is received within the pipe. The mole is then introduced to the location where a pile hole is required and operated to descend through the subsoil, thus also drawing the pipe down the hole.
At a suitable depth the cable clamp is released and the mole withdrawn by hauling it up through the bore of the tubular member, preferably by means of the same draw cable. The tubular member remains in the hole thereby preventing any inward collapse of the walls of the hole which may tend to occur in certain subsoil conditions, for example peaty or clay subsoils. An alternate method of drawing down a tubular member was previously described in my British Application GB No. 2 048 999A, and is illustrated in FIG. 2. The mole carries a tapered hole expander member 29 (schematically exaggerated in FIG. 2) preferably at its tail end. The arrangement is such that the mole carries the expander forward during formation of the hole, but the mole can be withdrawn backwardly through the expander, leaving the expander in the hole. This may be accomplished by mutually abutting flanges shown schematically at 30 or by a suitable form of connection detachable by operation of a remote control drag cable. The expander 29 has an internally threaded rear section 31 for connection to a tubular member 15.
The internal diameter of the expander and of the tubular member 15 is larger than the external diameter of the body of the mole. The rear end of the tubular member 32 may be internally threaded to permit successive similar tubular members to be joined end to end as the moled hole deepens. A plurality of the tubular members are threaded onto the air line 22 and control cable 22 of the mole before work commences. The successive tubular members are connected as the end of the preceding tubular member descends to adjacent the top surface of the slab, thereby permitting practice of the method of this invention in a site with limited headroom. When the hole is of sufficient depth the mole is withdrawn up within the bore of the expander 29.
(3) After the mole is withdrawn up through the bore of the tube, a second tube 16, e.g. of PVC or cardboard, is slidingly received down within the first tube 15.
(4) The hole within the interior of tubular member 16 is filled with concrete, 11.
(5) The mole 19 is allowed to descend within the filled hole before the concrete sets to produce an integral pile footing 17. The mole 19 is re-introduced, before the concrete 11 sets, and allowed again to work its way down the hole as shown in FIG. 3. This action displaces the concrete to produce a bulbous pile footing 17 and also displaces concrete 11 into the walls of the hole which in turn further laterally consolidates the subsoil around the hole to enhance the skin friction effect. This step also produces a slightly irregular outline for pile footing 17 due to the natural inhomogeneity of the subsoil further to enhance the skin friction effect.
(6) The mole is withdrawn.
(7) The hole is refilled with additional concrete 11, as illustrated in FIG. 1, and the concrete allowed to set to form an in situ cased pile with an integral footing, whereby to isolate the pile from frictional engagement with the subsoil 12 to mitigate any problem that may be caused by heave in the subsoil layer 12.
Any movement of soil 12 is isolated from the pile 11 and pile footing 17 by means of tubular member 15. As the unstable soil moves, tubular member 15 slides up and down along the exterior of tubular member 16. Both swelling upheaval and subsistence are isolated from the building footing 10. Thus a developer may build on clay which may swell, or backfill which may subside.