Self-drainage anchor cable system for slope protection and construction method thereof
10550537 ยท 2020-02-04
Assignee
Inventors
- Hongyue Sun (Zhejiang, CN)
- Yunhe Fan (Zhejiang, CN)
- Yuequan Shang (Zhejiang, CN)
- Lei Wang (Zhejiang, CN)
- Haodi Xu (Zhejiang, CN)
Cpc classification
E02D3/10
FIXED CONSTRUCTIONS
Y02A10/23
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A self-drainage anchor cable system is provided, wherein a drainage section (15) is arranged above the internal anchoring section (14) of an anchor cable; a first end of the steel strand (2) extends into a bottom of the borehole (1); the isolation pipe (3) is sleeved on the steel strand (2) in the drainage section (15), and the permeable pipe (4) is sleeved on the isolation pipe (3); a length of the isolation pipe (3) is larger than a length of the permeable pipe (4), and there is a space (5) between the isolation pipe (3) and the permeable pipe (4); the water stop rings made of water-expanding rubber (6) are provided at both ends of the isolation pipe (3), and end portions of the permeable pipe (4) are in contact with the water-expending rubber water stop rings (6) A construction method for the self-drainage anchor cable system is also provided.
Claims
1. A self-drainage anchor cable system for slope protection, comprising: a borehole, a steel strand, an isolation pipe, a permeable pipe, water-expanding rubber water stop rings, a drain pipe, a protection pipe, cement mortar and external anchor head, wherein the borehole is drilled on a slope; a depth of the borehole ensures an internal anchoring section is below a potential sliding surface; a drainage section is arranged above the internal anchoring section of the self-drainage anchor cable system; a first end of the steel strand extends into a bottom of the borehole, and a second end of the steel strand is connected to the external anchor head; the isolation pipe is sleeved on the steel strand in the drainage section, and the permeable pipe is sleeved on the isolation pipe; a length of the isolation pipe is larger than a length of the permeable pipe, and there is a space between the isolation pipe and the permeable pipe; the water-expanding rubber water stop rings are provided at both ends of the isolation pipe, and end portions of the permeable pipe are in contact with the water-expending rubber water stop rings; drain pipe fixing holes are drilled on the water-expanding rubber water stop rings; a water inlet of the drain pipe passes through the drain pipe fixing holes of the water-expanding rubber water stop rings and extends into the space between the permeable pipe and the isolation pipe, so as to reach a bottom of the drainage section for draining; a water outlet of the drain pipe is placed below the potential sliding surface and below the bottom of the borehole; a section of the drain pipe, which is buried in the slope, is covered with the protective pipe; the borehole is filled with the cement mortar except for the space outside the isolation pipe at the drainage section.
2. The self-drainage anchor cable system, as recited in claim 1, wherein the drain pipe is formed by at least one PA (polyamide) pipe with a diameter of 4 mm; the protection pipe and the isolation pipe are PC (polycarbonate) pipes.
3. The self-drainage anchor cable system, as recited in claim 1, wherein the permeable pipe is a corrugated pipe which is externally covered with filter cloth and internally supported by HDPE (high-density polyethylene).
4. The self-drainage anchor cable system, as recited in claim 1, wherein a length of the drainage section is 5-10 mm according to permeability and water yield property of rock and soil of the slope, wherein a lower limit is selected for good permeability and poor water yield property, and an upper limited is selected for poor permeability and good water yield property.
5. The self-drainage anchor cable system, as recited in claim 1, wherein a diameter of the borehole is larger than 110 mm.
6. A construction method for a self-drainage anchor cable system, comprising steps of: (1) through slope engineering geological condition investigation, analyzing a location of a potential sliding surface, a depth of a groundwater level of a slope and a groundwater level line to be controlled; and drilling a borehole at the slope, wherein a bottom of the borehole is below the potential sliding surface and the groundwater level line; (2) determining a diameter and a quantity of steal strands according to an anchoring force required by the anchor cable system; (3) modifying a length of a permeable pipe to equal a length of a drainage section, and modifying a length of an isolation pipe to be larger than the length of the drainage section; sleeving both ends of the isolation pipe with water-expanding rubber water stop rings, and sleeving the isolation pipe with the permeable pipe, wherein end portions of the permeable pipe are in contact with the water-expending rubber water stop rings; (4) manufacturing an anchor cable body, and installing the isolation pipe together with the permeable pipe and the water-expanding rubber water stop rings into the drainage section above an internal anchoring section; (5) sleeving the drain pipe with a protection pipe, in such a manner that the drain pipe passes through drain pipe fixing holes of the water-expanding rubber water stop rings and extends into a space between the permeable pipe and the isolation pipe, and a water inlet of the drain pipe is at a bottom of the drainage section; (6) after the water-expanding rubber water stop rings are fully expanded with water, filling the borehole with cement mortar, and performing anchor cable tensioning and locking pre-stress; and (7) when a water head height of the water inlet of the drain pipe is greater than an elevation of the borehole, discharging groundwater by the drain pipe under a water head difference, which starts a siphon drainage process and generates a negative pressure in the space of the drainage section, in such a manner that the groundwater in the slope accelerates into the drainage section; after draining the groundwater of the slope, in-taking air through the water inlet of the drain pipe, in such a manner that suction and discharge of the drain pipe disappears, and an entire drainage process ends; wherein with cycles of rainfall infiltration, the drainage process circulates.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3) Element reference: borehole 1, steel strand 2, isolation pipe 3, permeable pipe 4, space 5, water stop ring made of water-expanding rubber 6, drain pipe 7, protection pipe 8, cement mortar 9, external anchor head 10, potential sliding surface 11, underwater level line 12, slope 13, internal anchoring section 14, drainage section 15.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(4) The present invention will be further illustrated below with embodiments. It is to be understood that the embodiments are merely illustrative of the present invention and are not intended to limit the scope of the present invention. In addition, it is to be understood that various modifications and changes may be made to the present invention, which are also within the claimed scope of the present invention.
Embodiment 1
(5) Referring to
(6) The drain pipe 7 is formed by at least one PA (polyamide) pipe with an inner diameter of 4 mm.
(7) The protection pipe 8 and the isolation pipe 3 are PC (polycarbonate) pipes.
(8) The permeable pipe 4 is a corrugated pipe which is externally covered with filter cloth and internally supported by HDPE (high-density polyethylene).
(9) A length of the drainage section 15 is 5-10 m according to permeability and water-richness of rock and soil of the slope, wherein a lower limit is selected for good permeability and poor water-richness, and an upper limited is selected for poor permeability and good water-richness.
(10) After installation of the entire system, the anchor cable provides an anchoring force to increase an anti-sliding force of the slope. The groundwater infiltrates into the space between the permeable pipe and the isolation pipe through the drainage section of the anchor cable, causing the water pressure in the space to rise. When a groundwater level in the slope rises and a water head height of the water inlet of the drain pipe is greater than an elevation of the borehole, the groundwater in the space naturally flows out from the drain pipe, so as to naturally start siphoning for draining groundwater from the slope, and limit the rise of the groundwater level of the slope.
(11) A construction method for the self-drainage anchor cable system, comprising steps of:
(12) (1) through slope engineering geological condition investigation, analyzing a location of a potential sliding surface 11, a depth of a groundwater level of a slope 13 and a groundwater level line 12 to be controlled; and drilling a borehole 1 at an appropriate position of the slope 13 to enter a location below the potential sliding surface 11 and the groundwater level line 12;
(13) (2) determining a diameter and a quantity of steel strands 2 according to an anchoring force required by an anchor cable;
(14) (3) modifying a length of a permeable pipe 4 to equal a length of a drainage section 15, and modifying a length of an isolation pipe 3 to be 0.5 m larger than the length of the drainage section 15; sleeving both ends of the isolation pipe 3 with water stop rings made of water-expanding rubber 6, and sleeving the isolation pipe 3 with the permeable pipe 4, wherein end portions of the permeable pipe 4 are in contact with the water-expending rubber water stop rings 6;
(15) (4) manufacturing an anchor cable body, and installing the isolation pipe 3 together with the permeable pipe 4 and the water stop rings made of water-expanding rubber 6 into the drainage section 15 above an internal anchoring section 14;
(16) (5) sleeving the drain pipe 7 with a protection pipe 8, in such a manner that the drain pipe 7 passes through holes of the water stop rings made of water-expanding rubber 6 and extends into a space 5 between the permeable pipe 4 and the isolation pipe 3, and a water inlet of the drain pipe 7 is at a bottom of the drainage section 15;
(17) (6) after the water stop rings made of water-expanding rubber 6 are fully expanded with water, filling the borehole 1 with cement mortar 9, and performing anchor cable tensioning and locking pre-stress; and
(18) (7) when a water head height of the water inlet of the drain pipe is greater than an elevation of the borehole, discharging groundwater by the drain pipe under a water head difference, wherein the drainage process takes place, and the groundwater level of the slope decreases, so as to start starts a siphon drainage process and generates a negative pressure in the space of the drainage section, in such a manner that the groundwater in the slope accelerates into the drainage section; after draining the groundwater of the slope, in-taking air through the water inlet of the drain pipe, in such a manner that suction and discharge of the drain pipe disappears, and an entire drainage process ends; wherein with cycles of rainfall infiltration, the drainage process circulates.