Technical Field
[0001] The present invention relates to the technical field of slope drainage engineering,
and in particular, to a grouting structure filled with soluble crystals and a construction
method thereof.
Background
[0002] Rainfall infiltration is one of the important factors to change the mechanical parameters
of the slope and induce landslides. Timely and effective drainage of the slope is
an effective way to solve this problem. The existing drainage measures for slope mainly
include surface drainage ditch, blind ditch, collecting well, horizontal drainage
borehole, underground drainage hole, negative pressure drainage, etc.
[0003] The existing negative pressure drainage technology for slope mainly divides the slope
boreholes into a water-permeable borehole section and a grouting seal borehole section,
with a water-stop ring made of water-expanding rubber in between. As described in
the Chinese Patent, publication No.
CN107246019A,
SIDE SLOPE UNDERGROUND WATER DRILLING SELF-STARTING NEGATIVE PRESSURE DRAINAGE SYSTEM
AND METHOD, wherein a declination borehole grout into the grouting seal borehole section, and
the reserved water-permeable borehole section is isolated from the outside atmosphere.
The water inlet of the drain pipe is arranged in the permeable pipe, and the water
outlet of such pipe extends out of the ground through the water-stop ring made of
water-expanding rubber for drainage. Before the drainage process occurs, the pressure
in the borehole will gradually increase with the infiltration of groundwater, leading
to the natural outflow of the groundwater from the water outlet. When the drainage
process takes place, because the drainage capacity of the drain pipe is greater than
the flow rate of groundwater in the slope infiltrating into the cavity of the water-permeable
borehole section and the air pressure in the permeable pipe is lower than the atmospheric
pressure (a negative pressure is formed), the water in the soil around the permeable
pipe continues to flow towards it, forcing the groundwater in the slope to flow rapidly
towards the borehole to drain to the surface. At the same time, due to the negative
pressure in the permeable pipe, the water in all directions around the permeable pipe
will flow towards it, so the drainage range will increase, and such increased drainage
range is more conducive to discharging the groundwater in the slope.
[0004] However, in the process of on-site construction, the difficulty of negative pressure
drainage technology is that the water-permeable borehole section needs to maintain
its permeability, and the slurry of the grouting seal borehole section cannot enter
the water-permeable borehole section. If the pressure of grouting is high, the slurry
will often break through the baffle structure such as the water-stop ring made of
water-expanding rubber and enter the water-permeable borehole section, resulting in
the failure of the borehole; if the pressure of grouting is small, the borehole section
cannot be closed and the negative pressure cannot be formed. Accordingly, in order
to solve the above problems, a new grouting technology is required.
Summary
[0005] For overcoming the deficiency of existing negative pressure drainage technology in
controlling the pressure of grouting and the consequent failure in negative pressure
drainage, an object of the present invention is to provide a grouting structure filled
with soluble crystals and a construction method thereof.
[0006] Accordingly, in order to accomplish the above objects, the present invention provides
the following technologies:
A grouting structure filled with soluble crystals, comprising a water-permeable section
and a grouting section, wherein the water-permeable section is located at the lower
part of a declination borehole, and the grouting section is situated at the upper
part of the borehole; a water-stop component is arranged between the water-permeable
section and the grouting section; a permeable pipe is arranged in the water-permeable
section; the top of the permeable pipe is in contact with the water-stop component;
a cavity is formed in the permeable pipe; the permeable pipe is filled with solid
soluble crystals; the groundwater penetrates into the cavity through the permeable
pipe; the water inlet of the drain pipe is arranged in the water-permeable section,
and the water inlet of the drain pipe inserts into the permeable pipe after passing
through the water-stop component; the water outlet of the drain pipe is located at
the lower part of the slope; the elevation of the water inlet of the drain pipe is
higher than that of the water outlet of the drain pipe, and the lift of the drain
pipe is less than the height of the water column corresponding to the atmospheric
pressure; the space between the drain pipe and the wall of the borehole of the grouting
section is used for grouting.
[0007] The permeable pipe is a pipe with permeable holes on its pipe wall.
[0008] The lift of the drain pipe being smaller than the height of the water column corresponding
to atmospheric pressure means the height difference between the water inlet of the
drain pipe and the borehole orifice is smaller than the height of the water column
corresponding to the local atmospheric pressure in order to perform negative pressure
drainage.
[0009] The present invention provides a grouting structure filled with soluble crystals,
wherein the permeable pipe is filled with the solid soluble crystals to support the
water-stop component to a certain extent during grouting, contributing to the prevention
of the slurry from entering the water-permeable section, and the water-stop component
from being squeezed to cause a large displacement; at the same time, grouting pressure
will be increased to reduce the porosity of the grouting section and a better sealing
can be achieved to ensure the negative pressure effect of the water-permeable section.
The soluble crystals can dissolve, thereby changing the osmotic pressure of the surrounding
soil, leading to the water flow from the surrounding soil to the permeable section
and finally forcing the groundwater in the slope to be discharged to the surface;
the cavity in the permeable pipe can facilitate the infiltration of groundwater after
the soluble crystals dissolve. The present structure is beneficial to increase the
pressure of grouting, reduce cracks in the grouting section, and improve the sealing
effect, thus enhancing the negative pressure effect of the water-permeable section,
effectively supporting the water-stop component during grouting, preventing the slurry
from entering the water-permeable section and the consequent interference in the formation
of a negative pressure environment, avoiding blockage of the permeable pipe, and preventing
large displacement of the water-stop component by squeezing. It is conducive to ensuring
continuous drainage of the deep portion of the slope, and is of great significance
in solving the problem of drainage treatment of large-scale landslide.
[0010] Preferably, the soluble crystals comprise at least one of solid salt, solid sugar,
solid alum and solid ice.
[0011] Different soluble crystals have different dissolution rates, and can be selected
and matched according to actual needs. Among them, solid salt and solid alum, after
dissolving, will form a certain residue in the water-permeable section and the drain
pipe, contributing to the inhibition of growth of plants in the drain pipe and the
water-permeable section, the effective avoidance of blockage, and the guarantee of
effectiveness and continuity of the entire drainage system.
[0012] Preferably, the slurry of the grouting section is cement mortar or cement-sodium
silicate slurry.
[0013] Preferably, the water-stop component includes a water-stop strip made of water-expanding
rubber, a water-stop belt or sandbags.
[0014] Preferably, the bottom of the permeable pipe is provided with a pipe boot.
[0015] It is conducive to avoiding blockage at the bottom of the permeable pipe due to accumulation
of sand and gravel and the consequent impact on drainage.
[0016] A construction method for a grouting structure filled with soluble crystals, using
any of the above-mentioned grouting structures filled with soluble crystals, comprising
the following steps:
- a. drilling a declination borehole according to the geological survey, and making
the water-permeable section of the borehole below the groundwater level line of the
slope;
- b. arranging a permeable pipe in the water-permeable section, and then inserting a
drain pipe into the permeable pipe;
- c. filling the permeable pipe with solid soluble crystals, and then installing a water-stop
component to block the water-permeable section;
- d. injecting slurry into the borehole to form a grouting section, and the completing
the construction of the grouting structure.
[0017] Adopting a construction method of a grouting structure filled with soluble crystals
recites in the present invention, wherein the permeable pipe is filled with solid
soluble crystals to support the water-stop component, does not increase additional
difficulty and cost, effectively improving the pressure of grouting in the grouting
process, contributing to the improvement of grouting efficiency and avoidance of the
damage to the water-stop component, and effectively ensuring the grouting effect,
thereby guaranteeing the effective formation of a negative pressure environment for
efficient operation of the drainage system and continuous drainage.
[0018] Preferably, after step d, the following steps are also included:
e. injecting water into the permeable pipe from the water outlet of the drain pipe;
f. drawing the solution out from the water outlet of the drain pipe and testing it
after the soluble crystals are dissolved; stopping suction and completing the construction
of the grouting structure when the concentration ρ of the soluble crystals in the
solution meets the requirements.
[0019] It is beneficial to dissolve the soluble crystals at a rapid pace so as to perform
drainage as soon as possible.
[0020] Preferably, in the step f, stop pumping when the concentration ρ of the soluble crystals
is less than or equal to 1/2 ρ
0, wherein ρ
0 stands for the initial concentration of the soluble crystals.
[0021] Preferably, in the step e, inject water above 40° C.
[0022] To sum up, compared with the existing art, the beneficial effects of the present
invention are:
1. The present structure is beneficial to increase the pressure of grouting, reduce
cracks in the grouting section, and improve the sealing effect, thus enhancing the
negative pressure effect of the water-permeable section, effectively supporting the
water-stop component during grouting, preventing the slurry from entering the water-permeable
section and the consequent interference in the formation of a negative pressure environment,
avoiding blockage of the permeable pipe, and preventing large displacement of the
water-stop component by squeezing. It is conducive to ensuring continuous drainage
of the deep portion of the slope, and is of great significance in solving the problem
of drainage treatment of large-scale landslide.
2. Adopting a construction method of a grouting structure filled with soluble crystals
recites in the present invention, wherein the permeable pipe is filled with solid
soluble crystals to support the water-stop component, does not increase additional
difficulty and cost, effectively improving the pressure of grouting in the grouting
process, contributing to the improvement of grouting efficiency and avoidance of the
damage to the water-stop component, and effectively ensuring the grouting effect,
thereby guaranteeing the effective formation of a negative pressure environment for
efficient operation of the drainage system and continuous drainage.
Brief Description of Drawings
[0023]
FIG. 1 is a structure view of a grouting structure filled with soluble crystals of
the present invention;
FIG. 2 is a view of drainage of a grouting structure filled with soluble crystals
of the present invention.
[0024] Element Reference: 1-permeable pipe, 21-water-permeable section, 22-grouting section,
23-water-stop component, 24-slurry, 3-soluble crystals, 4-drain pipe, 5-groundwater
level line.
Description of Embodiments
[0025] The present invention will be further described in detail below with reference to
the accompanying drawings and specific embodiments. However, it shall not be construed
that the scope of the above-mentioned subject matter of the present invention is limited
to the following embodiments, as all technologies realized based on the content of
the present invention belong to the scope of the present invention.
Embodiment 1
[0026] Referring to FIG. 1, a grouting structure filled with soluble crystals of the present
invention, comprising a water-permeable section 21 and a grouting section 22, wherein
the water-permeable section 21 is located at the lower part of a declination borehole,
and the grouting section 22 is situated at the upper part of the borehole; a water-stop
component 23 is arranged between the water-permeable section 21 and the grouting section
22; a permeable pipe 1 is arranged in the water-permeable section 21; the top of the
permeable pipe 1 contacts the water-stop component 23; a cavity is formed in the permeable
pipe 1; the permeable pipe 1 is filled with solid soluble crystals 3; the groundwater
penetrates into the cavity through the permeable pipe 1; the water inlet of the drain
pipe 4 is arranged in the water-permeable section 21, and the water inlet of the drain
pipe 4 inserts into the permeable pipe 1 after passing through the water-stop component
23; the water outlet of the drain pipe 4 is located at the lower part of the slope;
the elevation of the water inlet of the drain pipe 4 is higher than that of the water
outlet of the drain pipe 4, the lift of the drain pipe 4 is less than the height of
the water column corresponding to the atmospheric pressure; the space between the
drain pipe 4 and the wall of the borehole of the grouting section 22 is used for grouting.
[0027] Specifically, the diameter of the borehole should be larger than 90mm, and the permeable
pipe 1 can be a corrugated pipe, externally covered with filter cloth and internally
supported by HDPE, preventing large particles such as coarse sand and gravel from
entering; a pipe boot is set at the bottom of the permeable pipe 1; the pipe boot
can be a HDPE pipe with a sealed bottom and an open top, and is sleeved on the bottom
of the permeable pipe 1 (not shown in the FIG); the drain pipe 4 can be a PA pipe
with a diameter of 4-8mm; the drain pipe 4 has good air tightness; the drainage capacity
of the drain pipe 4 is greater than the flow rate of groundwater in slope infiltrating
into the water-permeable section 21, facilitating natural drainage when the water
head height of the cavity in the permeable pipe 1 is greater than the orifice elevation
of the borehole as a result of elevated groundwater level, discharging groundwater
of the slope in real time, and keeping the groundwater below the safe water level;
the slurry 24 of the grouting section 22 is cement mortar or cement-sodium silicate
slurry, cutting off the water-gas connection between the ground surface and the cavity
of the water-permeable borehole section; the water-stop component 23 includes a water-stop
ring made of water-expanding rubber, a water-stop belt or sandbags; after the water-stop
component 23 is closed, the gap between the drain pipe 4 and the wall of the borehole
of the grouting section 22 is closed by grouting.
[0028] The soluble crystals 3 comprise at least one of solid salt, solid sugar, solid alum
and solid ice. The space between the permeable pipe 1 and the drain pipe 4 is filled
with the soluble crystals 3, providing effective support for the water-stop component
23 during grouting. After that, groundwater will flow into or additional water will
be added into the permeable pipe 1 over time, dissolving the soluble crystals 3 and
then freeing the cavity in the permeable pipe 1 for drainage. Different soluble crystals
3 have different dissolution rates and can be selected according to actual needs.
The present structure is beneficial to increase the pressure of grouting, reduce cracks
in the grouting section, and improve the sealing effect, thus enhancing the negative
pressure effect of the water-permeable section, effectively supporting the water-stop
component during grouting, preventing the slurry from entering the water-permeable
section and the consequent interference in the formation of a negative pressure environment,
avoiding blockage of the permeable pipe, and preventing large displacement of the
water-stop component by squeezing; besides, solid salt and solid alum, after dissolving,
will form a certain residue in the water-permeable section 21 and the drain pipe 4,
contributing to the inhibition of growth of plants in the drain pipe 4 and the water-permeable
section 21, the effective avoidance of blockage, and the guarantee of availability
and continuity of the entire drainage system. solid salt and solid alum, after dissolving,
will form a certain residue in the water-permeable section 21 and the drain pipe 4,
contributing to the inhibition of growth of plants in the drain pipe 4 and the water-permeable
section 21, the effective avoidance of blockage, and the guarantee of effectiveness
and continuity of the entire drainage system.
Embodiment 2
[0029] The construction method of a grouting structure filled with soluble crystals according
to the present invention adopts a grouting structure filled with soluble crystals
as described in Embodiment 1, and includes the following steps:
- a. drilling a declination borehole according to the geological survey, and making
the water-permeable section 21 of the borehole below the groundwater level line 5
of the slope, that is, the position of the water-permeable section 21 is set according
to the water level of the groundwater level line 5; the height difference between
the bottom of the borehole and the orifice of the borehole is less than the height
of the water column corresponding to the local atmospheric pressure, ensuring that
the lift of the drain pipe 4 meets the requirements;
- b. arranging a permeable pipe 1 in the water-permeable section 21, and then inserting
a drain pipe 4 into the permeable pipe 1 with the port of the drain pipe 4 extending
into the bottom of the permeable pipe 1;
- c. filling the permeable pipe 1 with solid soluble crystals 3 until it is full, and
then installing a water-stop component 23 to block the water-permeable section 21;
- d. injecting slurry 24 into the borehole to form the grouting section 22 by the backward
method can increase the pressure of grouting during grouting; the slurry 24 flowing
into the surrounding soil to further ensure the sealing of the grouting section 22.
- e. injecting water, such as water above 40° C, into the permeable pipe 1 from the
water outlet of the drain pipe 4;
- f. drawing the solution out from the water outlet of the drain pipe 4 and testing
it after the soluble crystals 3 are dissolved; stopping suction and completing the
construction of the grouting structure when the concentration ρ of the soluble crystals
3 in the solution meets the requirements.
[0030] In step f, the solubility of the soluble crystals 3 can be roughly obtained according
to the amount of water injected and the amount of the soluble crystals 3. The prediction
of reaching the predetermined solubility according to time is acceptable, and complete
dissolution is not a must. The cavity in the permeable pipe 1 can be vacated more
quickly with water injection, as such, the groundwater in the surrounding soil can
penetrate into the permeable pipe 1.
[0031] In step f, the pumping is stopped when it is detected that the concentration ρ of
the soluble crystals 3 is less than or equal to 1/2 ρ
0, wherein ρ
0 is the initial concentration of the soluble crystals 3 and can be can be roughly
obtained according to the volume of the water-permeable section, the amount of water
injected and the mass of the soluble crystals 3, or by referring to the concentration
of the liquid extracted for the first time after a certain period of time. The aforementioned
concentration requirements are mainly used to roughly grasp the dissolution of the
soluble crystals 3.
[0032] Water injection is optional, that is, not to perform steps e and f, but to utilize
the penetration of groundwater into the permeable section 21 to dissolve the soluble
crystals 3. During the dissolution process, the osmotic pressure increases, the attraction
to groundwater elevates, and then the infiltration of groundwater into the permeable
pipe 1 is accelerated; at the same time, the solution will diffuse freely and the
groundwater can still effectively dissolve the soluble crystals 3 when the groundwater
needs to be drained.
[0033] When the soluble crystal 3 is solid ice it can be effectively melt since the soil
has a temperature and there is no need to inject water; after the ice melts, the cavity
in the permeable pipe 1 is vacated and there is no need to test the concentration.
[0034] As shown in FIG. 2, after the construction is completed, since the groundwater level
line 5 in the slope is higher than the highest point of the drain pipe 4 (that is
where the orifice of the borehole is located), the water head height of the water
inlet of the drain pipe 4 is higher than that of the orifice of the borehole, discharging
groundwater in the water-permeable section 21 by the drain pipe 4 under a water head
difference, and triggering a drainage process. When the groundwater level drops below
the highest point of the drain pipe 4, a siphon drainage process is started and negative
pressure is generated in the water-permeable section 21. As such, the groundwater
in the slope accelerates into the cavity, and after the groundwater in the cavity
and the soil above the water-permeable section 21 in the slope is drained, an entire
drainage process ends; wherein with cycles of rainfall infiltration, the drainage
process circulates, effectively realizing continuous drainage of a deep portion of
the slope, solving a problem of drainage treatment of large landslide, and ensuring
the stability of the slope with low maintenance cost.
1. A grouting structure filled with soluble crystals, comprising: a water-permeable section
(21) and a grouting section (22), wherein the water-permeable section (21) is located
at the lower part of a declination borehole, and the grouting section (22) is situated
at the upper part of the borehole; a water-stop component (23) is arranged between
the water-permeable section (21) and the grouting section (22) ; a permeable pipe
(1) is arranged in the water-permeable section (21) ; the top of the permeable pipe
(1) is in contact with the water-stop component (23); a cavity is formed in the permeable
pipe (1); the permeable pipe (1) is filled with solid soluble crystals (3) ; the groundwater
penetrates into the cavity through the permeable pipe (1) ; the water inlet of the
drain pipe (4) is arranged in the water-permeable section (21), and the water inlet
of the drain pipe (4) inserts into the permeable pipe (1) after passing through the
water-stop component (23); the water outlet of the drain pipe (4) is located at the
lower part of the slope; the elevation of the water inlet of the drain pipe (4) is
higher than that of the water outlet of the drain pipe (4), and the lift of the drain
pipe (4) is less than the height of the water column corresponding to the atmospheric
pressure; the space between the drain pipe (4) and the wall of the borehole of the
grouting section (22) is used for grouting.
2. The grouting structure, as recited in claim 1, wherein the soluble crystals (3) comprise
at least one of solid salt, solid sugar, solid alum and solid ice.
3. The grouting structure, as recited in claim 1, wherein the slurry (24) of the grouting
section (22) is cement mortar or cement-sodium silicate slurry.
4. The grouting structure, as recited in any one of claims 1-3, wherein the water-stop
component (23) includes a water-stop strip made of water-expanding rubber, a water-stop
belt or sandbags.
5. The grouting structure, as recited in any one of claims 1-3, wherein the bottom of
the permeable pipe (1) is provided with a pipe boot.
6. A construction method for a grouting structure filled with soluble crystals, wherein
any grouting structure filled soluble crystals is applied in accordance with claims
1-5, comprises the following steps:
a. drilling a declination borehole according to the geological survey, and making
the water-permeable section (21) of the borehole below the groundwater level line
(5) of the slope;
b. arranging a permeable pipe (1) in the water-permeable section (21), and then inserting
a drain pipe (4) into the permeable pipe (1);
c. filling the permeable pipe (1) with solid soluble crystals (3), and then installing
a water-stop component (23) to block the water-permeable section (21) ;
d. injecting slurry (24) into the borehole to form a grouting section (22), and then
completing the construction of the grouting structure.
7. The construction method, as recited in claim 6, wherein the following steps are included
after step d:
e. injecting water into the permeable pipe (1) from the water outlet of the drain
pipe (4);
f. drawing the solution out from the water outlet of the drain pipe (4) and testing
it after the soluble crystals (3) are dissolved; stopping suction and completing the
construction of the grouting structure when the concentration ρ of the soluble crystals
(3) in the solution meets the requirements.
8. The construction method, as recited in claim 7, wherein the pumping is stopped when
the concentration ρ of the soluble crystals (3) is less than or equal to 1/2 ρ 0 in the step f, wherein ρ 0 stands for the initial concentration of the soluble crystals.
9. The construction method, as recited in claim 7, wherein water above 40°C is injected
in the step e.