Apparatus for prestressing concrete floor of inclined shaft wall
10612241 ยท 2020-04-07
Assignee
Inventors
- Yansen Wang (Jiangsu, CN)
- Chenxiang Meng (Jiangsu, CN)
- Weihao Yang (Jiangsu, CN)
- Ran Yang (Jiangsu, CN)
Cpc classification
E04C5/08
FIXED CONSTRUCTIONS
E21D11/107
FIXED CONSTRUCTIONS
E04C5/122
FIXED CONSTRUCTIONS
E04B5/32
FIXED CONSTRUCTIONS
International classification
E04C5/08
FIXED CONSTRUCTIONS
E21D11/10
FIXED CONSTRUCTIONS
Abstract
An apparatus for prestressing a concrete floor of an inclined shaft wall includes two end bearing components, a corrugated pipe, a tension bearing rod piece and two anchor heads. The tension bearing rod piece is composed of a left tension bearing rod, a right tension bearing rod, and a loading mechanism. The left tension bearing rod and the right tension bearing rod, are connected integratedly by the loading mechanism, and the tension bearing rod piece passes through the corrugated pipe. The two end bearing components are respectively arranged at the left and right ends of the tension bearing rod piece in a sleeving manner. The two anchor heads respectively lock the left and right end bearing components. Before pouring of the floor of the shaft wall, the loading apparatus is pre-buried. After the strength of floor concrete increases to certain extent, a transverse prepressing stress is applied to the floor concrete through the loading mechanism. Finally, an internal space of the loading apparatus is blocked by grouting, so as to integrate the tension bearing component, the loading apparatus and the like with the floor concrete.
Claims
1. An apparatus for prestressing a concrete floor of an inclined shaft wall, comprising: two end bearing components; a corrugated pipe; a tension bearing rod piece; two anchor heads; and a loading box; wherein the tension bearing rod piece is composed of a left tension bearing rod, a right tension bearing rod, and a loading mechanism; wherein the left tension bearing rod and the right tension bearing rod are connected integratedly by the loading mechanism; wherein the tension bearing rod piece passes through the corrugated pipe, with two ends exposed by a set length; wherein the two end bearing components are respectively arranged at a left end and a right end of the tension bearing rod piece in a sleeving manner; wherein the two anchor heads respectively lock the left and right end bearing components; wherein the loading box is closed with a cover; wherein the corrugated pipe is divided into two sections which are arranged on two sides of the loading box and in communication with the loading box; wherein the loading mechanism is located in the loading box; wherein a grouting hole is provided on the loading box; and wherein an exhaust hole is provided on an outer end part of the corrugated pipe.
2. An apparatus for prestressing a concrete floor of an inclined shaft wall, comprising: two end bearing components; a corrugated pipe; a tension bearing rod piece; and two anchor heads; wherein the tension bearing rod piece is composed of a left tension bearing rod, a right tension bearing rod, and a loading mechanism; wherein the left tension bearing rod and the right tension bearing rod are connected integratedly by the loading mechanism; wherein the tension bearing rod piece passes through the corrugated pipe, with two ends exposed by a set length; wherein the two end bearing components are respectively arranged at a left end and a right end of the tension bearing rod piece in a sleeving manner; wherein the two anchor heads respectively lock the left and right end bearing components; wherein the loading mechanism is an internal threaded sleeve; wherein an internal thread of the internal threaded sleeve is divided into a left part and a right part; wherein thread directions of the left and right parts are opposite; wherein end parts of the left tension bearing rod and the right tension bearing rod are respectively provided with male threads matched with the left and right parts of the internal thread of the internal threaded sleeve; and wherein the end parts of the left tension bearing rod and the right tension bearing rod are respectively screwed into the left and right parts of the internal thread of the internal threaded sleeve.
3. An apparatus for prestressing a concrete floor of an inclined shaft wall, comprising: two end bearing components; a corrugated pipe; a tension bearing rod piece; and two anchor heads; wherein the tension bearing rod piece is composed of a left tension bearing rod, a right tension bearing rod, and a loading mechanism; wherein the left tension bearing rod and the right tension bearing rod are connected integratedly by the loading mechanism; wherein the tension bearing rod piece passes through the corrugated pipe, with two ends exposed by a set length; wherein the two end bearing components are respectively arranged at a left end and a right end of the tension bearing rod piece in a sleeving manner; wherein the two anchor heads respectively lock the left and right end bearing component; wherein the loading mechanism is composed of a U-shaped connection piece, a baffle plate, and two nuts; wherein a back side of a curved section of the U-shaped connection piece is connected to the left tension bearing rod; wherein the baffle plate is fixed at an end part of the right tension bearing rod; wherein two through holes in total are provided on the baffle plate; wherein two legs of the U-shaped connection piece are sleeved into the two through holes respectively; wherein the two legs of the U-shaped connection piece are provided with male threads; and wherein the two nuts are respectively screwed onto the two legs of the U-shaped connection piece.
4. The apparatus for prestressing the concrete floor of the inclined shaft wall according to claim 1, wherein: the loading mechanism is composed of a work anchor, a tool anchor, and two jacks; the left tension bearing rod is a first left tension beating rod and the tension bearing rod piece is further composed of a second left tension bearing rod, wherein end parts of the first left tension bearing rod and the second left tension bearing rod are symmetrically fixed on two sides of the work anchor; other ends of the first and second left tension bearing rods are connected to a first one of the anchor heads in one of the following two ways: the two left tension bearing rods pass through a same hole in the first one of the anchor heads and then are fixed, or the two left tension bearing rods respectively pass through two holes in the first one of the anchor heads and then are fixed; a middle part of the work anchor is provided with a conical hole; a head part of the right tension bearing rod passes through the conical hole of the middle part of the work anchor, then passes through a preset conical hole in the tool anchor, and the right tension bearing rod is selflocked onto the work anchor and the tool anchor by clamps; and the two jacks are located symmetrically between the work anchor and the tool anchor.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
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DETAILED DESCRIPTION
(16) In embodiments of the present invention, a prestressed floor structure of an inclined shaft wall, as shown in
(17) The concrete 3 wrapped around is concrete required for general shaft wall pouring.
(18) The steel framework 2 is a metal framework, such as steel bar or profile steel, bound before shaft wall concrete pouring.
(19) The apparatus 1 for prestressing the concrete floor of the inclined shaft wall of an embodiment of the present invention includes two end bearing components 4, a corrugated pipe 5, a tension bearing rod piece 6 and two anchor heads 7. The tension bearing rod piece 6 is composed of a left tension bearing rod, a right tension bearing rod and a loading mechanism. The left tension bearing rod and the right tension bearing rod are connected integratedly via the loading mechanism, and the tension bearing rod piece passes through the corrugated pipe, with two ends exposed by a set length. The two end bearing components 4 are respectively arranged at the left and right ends of the tension bearing rod piece in a sleeving manner. The two anchor heads 7 respectively lock the left and right end bearing components. The prestressing apparatus further includes a loading box 8. The loading box is closed with a cover. A top surface box cover of the loading box may be opened and provided with a grouting hole 17 which can be connected to a grouting pipe 10 to perform grouting blocking after prestress application is completed. The corrugated pipe 5 is divided into two sections which are arranged on two sides of the loading box and in communication with the loading box. The loading mechanism is located in the loading box. Exhaust holes 11 are provided on the end parts of the left and right ends of the corrugated pipe, and are used for exhausting gas during grouting in the corrugated pipe.
(20) The apparatus 1 for prestressing the concrete floor of the inclined shaft wall of an embodiment of the present invention is flexibly arranged along a direction perpendicular to an axial direction of an inclined shaft wellbore, or may be arranged in an equal or unequal spacing manner along the axial direction of the inclined shaft wellbore. After installation, the concrete floor is poured. After concrete is solidified, the loading box cover is opened, and a prestress is loaded to the floor through the loading mechanism according to set parameter values. The loading box cover is closed, and the grouting pipe 10 is connected to grout concrete into a threaded pipe.
(21) The loading mechanism of the loading apparatus 1 in an embodiment of the present invention may select (but not limited to) the following several forms. Detailed descriptions are made specifically in combination with the drawings.
(22) Embodiment 1
(23) As shown in
(24) A specific construction method which applies the apparatus 1 for prestressing the concrete floor of the inclined shaft wall of an embodiment of the present invention includes:
(25) (1) after the inclined shaft wellbore is dug, before the floor of the shaft wall is poured, firstly binding steel bars or profile steel to form a spatial metal framework structure.
(26) (2) in a binding and fixing process of the spatial metal framework, installing and fixing the end bearing components 4, the corrugated pipe 5 and the tension bearing rod piece 6 in sequence according to designed positions, wherein the tension bearing rod piece 6 passes through the corrugated pipe 5 from the inside of the corrugated pipe 5, and is connected to the end bearing components 4 through the anchor heads 7, and exhaust pipes 11 located on the corrugated pipe 5 shall be slightly higher than the top surface of the floor of the shaft wall and closed.
(27) (3) mounting the loading box 8 at a middle position between the two sections of the corrugated pipe 5, wherein the loading mechanism (the internal threaded sleeve 12) is located in the loading box 8, and the surface of the loading box cover shall be flush with the upper surface of the floor of the shaft wall.
(28) (4) mounting a shaft wall floor template (if required), pouring floor concrete, removing the template when the concrete strength increases to certain extent, chiseling the concrete, and opening a top cover of the loading box 8.
(29) (5) applying a tension stress to the tension bearing rod piece 6 by screwing the loading mechanism, namely the internal threaded sleeve 12, and applying a prepressing stress to the floor concrete under the dispersing action of the end bearing components 4.
(30) (6) in order to improve the uniformity of floor prestress application, firstly loading the prestress continuously or at intervals along the axial direction of the well bore (see
(31) (7) after the prestress application to the floor of the shaft wall is completed, opening the exhaust pipes 11, closing the top cover of the loading box 8, connecting the grouting pipe 10 so as to grout and fill internal spaces of the corrugated pipe 5 and the loading box 8 so as to integrate the tension bearing rod piece, the loading apparatus and the like with the floor concrete to avoid rust corrosion to the components and prestress loss.
(32) Embodiment 2
(33) The floor structure of the inclined shaft wall of the present embodiment is basically the same as that of Embodiment 1, and also adopts a flat and straight floor (see
(34) the construction method involved in the present embodiment is basically the same as that in Embodiment 1. A difference is that in Step 5, the tension bearing rod piece is gradually tightened to apply the prestress by screwing the two nuts on the U-shaped connection piece 13 or the nut in the center of the baffle plate, thereby applying a tension stress to the tension bearing rod piece 6 and applying a prepressing stress to the floor concrete under the dispersing action of the end bearing components 4.
(35) Embodiment 3
(36) The floor structure of the inclined shaft wall of the present embodiment is basically the same as that in Embodiment 1, but adopts a flat and straight-top and inverted arch-bottom floor (see
(37) as shown in
(38) as shown in
(39) The jacks 16 are mounted between the tool anchor and the work anchor. The prestress is applied through the jacks. After the prestress application is completed, the tool anchor and the jacks may be removed.
(40) A specific construction method which applies the apparatus 1 for prestressing the concrete floor of the inclined shaft wall of an embodiment of the present invention is as follows:
(41) the construction method involved in the present embodiment is basically the same as that in Embodiment 1. A difference is that in Step 5, through cooperation with one tool anchor 15, the two jacks 16 are placed between the tool anchor 15 and the work anchor 14. The work anchor 14 is pushed forwards through a force applied by the jacks. After the prestress is increased to a predetermined value, the force of the jacks 16 is released, and the work anchor 14 completes self-locking through its clamping sheets 18 to maintain the applied prestress, thereby enabling the tension bearing rod piece 6 to be in a tension state and applying a prepressing stress to the floor concrete under the dispersing action of the end bearing components 4. For selection of jacks in an implementation process, in consideration of a limited space in a metal box, a small-sized jack screw may be used for replacing a conventional hydraulic jack. In consideration of the size of a jacking force, two jack screws are symmetrically provided. After the prestress application is completed, the tool anchor and the jacks may be removed.
(42) In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled.