US3398071A - Method for making wall structure impervious to moisture - Google Patents

Method for making wall structure impervious to moisture Download PDF

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US3398071A
US3398071A US353990A US35399064A US3398071A US 3398071 A US3398071 A US 3398071A US 353990 A US353990 A US 353990A US 35399064 A US35399064 A US 35399064A US 3398071 A US3398071 A US 3398071A
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electrolyte
wall structure
wall
water
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Samuel M Bagno
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    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/62Insulation or other protection; Elements or use of specified material therefor
    • E04B1/70Drying or keeping dry, e.g. by air vents
    • E04B1/7007Drying or keeping dry, e.g. by air vents by using electricity, e.g. electro-osmosis
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23FNON-MECHANICAL REMOVAL OF METALLIC MATERIAL FROM SURFACE; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL; MULTI-STEP PROCESSES FOR SURFACE TREATMENT OF METALLIC MATERIAL INVOLVING AT LEAST ONE PROCESS PROVIDED FOR IN CLASS C23 AND AT LEAST ONE PROCESS COVERED BY SUBCLASS C21D OR C22F OR CLASS C25
    • C23F13/00Inhibiting corrosion of metals by anodic or cathodic protection
    • C23F13/02Inhibiting corrosion of metals by anodic or cathodic protection cathodic; Selection of conditions, parameters or procedures for cathodic protection, e.g. of electrical conditions
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23FNON-MECHANICAL REMOVAL OF METALLIC MATERIAL FROM SURFACE; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL; MULTI-STEP PROCESSES FOR SURFACE TREATMENT OF METALLIC MATERIAL INVOLVING AT LEAST ONE PROCESS PROVIDED FOR IN CLASS C23 AND AT LEAST ONE PROCESS COVERED BY SUBCLASS C21D OR C22F OR CLASS C25
    • C23F13/00Inhibiting corrosion of metals by anodic or cathodic protection
    • C23F13/02Inhibiting corrosion of metals by anodic or cathodic protection cathodic; Selection of conditions, parameters or procedures for cathodic protection, e.g. of electrical conditions
    • C23F13/04Controlling or regulating desired parameters
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23FNON-MECHANICAL REMOVAL OF METALLIC MATERIAL FROM SURFACE; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL; MULTI-STEP PROCESSES FOR SURFACE TREATMENT OF METALLIC MATERIAL INVOLVING AT LEAST ONE PROCESS PROVIDED FOR IN CLASS C23 AND AT LEAST ONE PROCESS COVERED BY SUBCLASS C21D OR C22F OR CLASS C25
    • C23F13/00Inhibiting corrosion of metals by anodic or cathodic protection
    • C23F13/02Inhibiting corrosion of metals by anodic or cathodic protection cathodic; Selection of conditions, parameters or procedures for cathodic protection, e.g. of electrical conditions
    • C23F13/06Constructional parts, or assemblies of cathodic-protection apparatus

Definitions

  • the present invention relates to buildings and structures, and more particularly to a method and apparatus for making wall structure beneath the ground impervious to moisture.
  • Buildings such as dwellings which are equipped with a heating plant usually are constructed by making an excavation in the ground and lining the excavation with a foundation wall which provides a cellar at least partially below the level of the ground.
  • Such foundation walls are inherently porous at certain points by reason of the construction materials utilized or are porous in the sense that they contain or develop cracks and crevices, whereby after a heavy or prolonged rainfall the ground surrounding the foundation wall becomes exceedingly wet and water seeps through the wall to flood the cellar.
  • an object of the present invention is to provide a method and apparatus for making walls beneath the ground impervious to moisture.
  • Another object is to provide such a method which is simple, practical and highly effective.
  • a further object is to provide such apparatus which is simple and economical in construction.
  • the foregoing objects are generally accomplished by placing beneath the ground adjacent the exterior or one side of the wall or like structure a first water soluble electrolyte containing a metallic radical or ion; placing adjacent the interior or the other side of the wall or like structure a second water soluble electrolyte of the kind containing a radical or ion which combines with the metallic radical or ion of the first mentioned electrolyte to produce a substantially water insoluble precipitate, wetting the first and second electrolytes and the wall or like structure at both sides thereof within the area where a leak has been detected, electrically connecting the electrolytes by means of electrodes to the positive and negative terminals of a DC power source in a sense whereby an ion of each electrolyte will migrate towards the other to produce a substantially water insoluble precipitate which renders the wall or like structure impervious to moisture at the leaky area.
  • FIG. 1 is a schematic view illustrating in cross-section a portion of a cellar wall and floor and the apparatus for carrying out the method in accordance with the present invention.
  • FIG. 2 is a longitudinal sectional view of an electrode for storing an electrolyte and adapted to be inserted into ground as shown in FIG. 1.
  • FIG. 3 is a perspective view of an electrode for storing an electrolyte and adapted to be placed on the cellar floor as shown in FIG. 1.
  • FIG. 4 is an enlarged fragmentary sectional view taken along the line 4-4 on FIG. 3.
  • FIG. 5 is a sectional view of another electrode.
  • FIG. 1 of the drawing there is shown a portion of the cellar of a building having a side wall W extending partially beneath the ground G and having a fioor F, and apparatus for sealing a leak in the wall W which comprises an electrode 10 for electrically connecting a first water soluble electrolyte E-1 to the positive terminal P of a DC. power source such as a rectifier connected to an volt A.C. source, from the secondary of a transformer, and an electrode 11 for electrically connecting a second water soluble electrolyte E2 to the negative terminal N of the DC power source.
  • a DC. power source such as a rectifier connected to an volt A.C. source
  • the first water soluble electrolyte is a compound composed of a metallic radical or electro-positive ion selected from the group consisting of alkaline earth metals, light metals and heavy metals; and the radical or electro-negative ion of an active inorganic acid.
  • Such metals include, but are-not limited to, aluminum, barium, cadmium, calcium, cobalt, copper, iron, lead, magnesium, manganese, nickel, strontium, tin, and zinc.
  • the active inorganic acids include, but are not limited to, acetic, chloric, nitric and sulfuric acid. These acids form salts of the metals just mentioned which are readily soluble in cold water.
  • Such water soluble salts include aluminum acetate, chloride, nitrate and sulphate; barium acetate, chloride and nitrate; cadmium acetate, chloride and sulphate; calcium acetate, chloride and nitrate; cobalt acetate, chloride, nitrate and sulphate; copper acetate (i-c), chloride, nitrate and sulphate; iron acetate (ous), chloride, nitrate and sulphate (ous); lead acetate and nitrate; magnesium acetate, chloride, nitrate and sulphate; manganese acetate, chloride, nitrate and sulphate; nickel acetate, chloride, nitrate and sulphate; tin chloride (ous) and sulphate; strontium acetate, chloride and nitrate; and zinc acetate, chloride, nitrate and sulphate.
  • the second Water soluble electrolyte is a compound composed of an electropositive alkali metal radical or ion such as sodium and potassium, and the radical or electro-negative ion of an inactive acid, including, but not limited to, phosphoric (ortho), and silicic acid which acids combine with the aforementioned metal radicals to form substantially water insoluble salts.
  • water soluble soaps such as the alkali metal soaps of mono-basic fatty acids having between 15 and 20 carbons may be utilized to combine the acidic radical thereof with an alkaline earth metal, light metal or heavy metal radical to produce substantially water insoluble soaps.
  • water soluble soaps are used in conjunction with an alkali metal salt of an active acid to ionize the soap.
  • a hole H is formed in the ground close to the exterior of the Wall W where a leak has been detected, an amount of the first electrolyte 13-1 is placed in the hole H, the electrode is placed into the hole H in electrical contact with the electrolyte E1, an amount of the second electrolyte E-Z is placed on the cellar floor F near the interior of the wall W and opposite the hole H, the electrode 11 is placed over and in electrical contact with the electrolyte E2, the electrolytes are wetted with the seepage water, and the electrodes are electrically connected to the terminals of the DC. source as previously described with reference to FIG.
  • the electrodes 10 and 11 may be rods, tubes or plates, the electrodes preferably are constructed to store the dry electrolytes as shown in FIGS. 2 to 4.
  • an electrode 10 which comprises a tube 15 having perforations 16 and having a pointed lower end 17 to facilitate driving the tube into the ground like a stake, a measured quantity of dry electrolyte E-l in the tube, a liner 18 of suitable paper or fabric, for example fiber glass cloth, at the inner wall of the tube to retain the electrolyte within the tube while dry and to control the rate of flow thereof when wet and being dissolved into the ground, and a removable cap 19 for closing the upper end of the tube.
  • an electrode 11 which comprises a shallow, rectangular box-like structure of metallic wire mesh 20, a measured quantity of dry electrolyte E-2 in the box, a liner or bag 21 of similar construction and for the same purpose as the liner 18 which is placed in the box, and a removable rnetal cover 22 for the top of the box.
  • the exact amount of electrolyte can be packed and stored therein which is required to provide one treatment at a prescribed current and voltage for a predetermined duration of time. This enables the method in accordance with the present invention to be practiced by people of ordinary skill, whereby the cost of labor is greatly reduced. After the electrodes have been used, they can be refilled for further use so long as they still are in usable condition.
  • the apparatus comprised an electrode 10 formed of an iron pipe three feet long having an inner diameter of two inches and having twenty perforations one eighth inch in diameter, and filled with three pounds of calcium chloride; and an electrode 11 in the form of a six-inch by six-inch by twenty-four-inch box having sixteen mesh Wire sides and a similar cover, and filled with two pounds of sodium ortho-phosphate and one-half pound of sodium stearate, the entire apparatus enclosed in a fiber glass bag; a rectified power supply having an volt DC. output with its positive terminal P connected -to the electrode 10 and its negative terminal N connected to the electrode 11; and an ammeter M connected in series between negative terminal N and the electrode 11.
  • the cellar wall W was constructed of concrete about eight inches thick and had leaked badly during and after a one-half inch rainfall on the outside ground about four feet above the cellar floor F to cause the floor to be flooded with water.
  • the cellar floor F was constructed of concrete covered with plastic tile. This floor also leaked. It had a slight slope toward the wall W. It did not drain off and had to be bailed to remove the water from the cellar floor.
  • the apparatus was arranged by driving the electrode 10 (FIG. 2) into the wet ground G about three feet below the ground, the cap 19 was removed; about four quarts of water Were poured into the tube and on the ground adjacent thereto; and the electrode 11 (FIGS. 3 and 4) was placed on the cellar floor in a puddle of water about one inch deep.
  • the rectifier was then energized by the AC. supply whereupon the ammeter indicated that 300 milliamperes of current were being drawn. This caused the aforementioned radicals or ions to migrate by electrolytic action to produce the barrier B.
  • the apparatus was then disconnected and dismantled, and it was found that practically all of the electrolytes had been dissolved and/ or decomposed.
  • the protective barrier with the material used was composed of calcium and iron phosphate having a solubility of less than 0.002 gram in cc. of cold water; and calcium stearate having a solubility of about 0.004 gram in 100 cc. of cold water.
  • cold water is used herein in the sense that the temperature of the water does not exceed about 20 C.
  • This electrode comprises a porous unglazed porcelain cup 25 containing dry sodium carbonate, 2. cover 26 for the cup, and an iron rod 27 mounted on the cover 26 and immersed in the sodium carbonate.
  • the porous porcelain cup in turn is immersed halfway into the sodium stearate and sodium phosphate powder and the whole electrode system was enclosed in a fiber glass bag 28.
  • the electrolyte E-1 at the outside of the wall is a basic compound containing a negative hydroxyl radical (OH), and an alkali metal or alkaline earth metal positive ion or an ammonia radical including but not limited to barium, calcium, lithium, potassium, sodium, strontium, ammonium NH and
  • OH negative hydroxyl radical
  • an alkali metal or alkaline earth metal positive ion or an ammonia radical including but not limited to barium, calcium, lithium, potassium, sodium, strontium, ammonium NH and
  • all of these hydroxides can be utilized; however, from a practical view point hydroxides which are beneficial to the soil are preferred, for example, calcium hydroxide (slaked lime) and hydroxides of nitrogen containing radicals.
  • the electrolyte E2 at the inside of the wall is a water soluble salt containing a metallic ion which reacts with a hydroxyl radical to form water insoluble hydroxides.
  • metallic ions include but are not limited to aluminum, cadmium, copper, iron, lead, magnesium, manganese, nickel and zinc. Soluble salts of such metals are already set forth in the description of the first embodiment of the present invention.
  • the outside electrode is connected to the negative terminal of the power source and the inside electrode 11 is connected to the positive terminal of the power source.
  • the soil at the outside in the vicinity of the electrode 10 is made basic with ammonia water and a water soluble iron salt is dissolved in the water at the inside of the wall.
  • the electric current will draw the negative hydroxyl ion from the outside of the wall into the wall and will draw the positive iron ion from the inside of the wall into the wall, whereby these ions will meet at the points where water seeps through the wall and will combine to form a precipitate of iron hydroxide at and/or within the wall to seal the leak.
  • the ions in the water carry the electric current, whereby the current must follow the path of the water seepage.
  • this is a constricted path of leaks L that follows the imperfections in the wall structure through which the water seeps. Because of this constricted path a small quantity of precipitate, usually less than one pound, provides a satisfactory seal for a leaky zone of considerable area.
  • water soluble compounds While in most instances compounds which dissolve readily in water are preferred, slightly water soluble compounds, such as lime, capable of being wetted by water to become ionized and serve as electrolytes also can be utilized and thus are deemed to come within the scope of the present invention.
  • water soluble compounds as used herein includes all compounds which function as an electrolyte and in the presence of an electrical current from a D.C. source produce migrating ions. The selection of any particular compounds therefore is not critical, except for practical considerations.
  • the present invention provides a method and apparatus for sealing leaky underground walls or the like in a simple, practical, reliable and economical manner without the requirement of skilled technicians or high labor costs.
  • the method of making wall structure beneath the ground impervious to moisture comprises placing beneath the ground adjacent one side of the wall structure a first electrolyte containing a metallic ion, placing adjacent the other side of the wall structure a second electrolyte containing an ion of the kind which combines with the metallic ion of the first mentioned electrolyte to produce a substantially water insoluble precipitate, wetting the first and second electrolytes and the wall structure, electrically connecting the electrolytes to the positive and negative terminals respectively of a DC. power source in a sense whereby an ion of each electrolyte of like sign as its terminal will migrate towards the other electrolyte to produce a substantially water insoluble precipitate within said structure which renders the wall structure impervious to moisture.
  • the method of making wall structure beneath the ground impervious to moisture comprises placing beneath the ground adjacent the exterior of the wall structure a first water soluble electrolyte containing a metallic radical selected from the group consisting of alkaline earth metals, light metals and heavy metals and containing an acidic radical, placing adjacent the interior of the wall structure a second water soluble electrolyte containing an alkali metal radical and the radical of an acid of the kind which combines with the metallic radical of the first electrolyte to produce a substantially water insoluble precipitate, wetting the first and second electrolytes and the wall structure, electrically connecting the first electrolyte to the positive terminal of a DC).
  • the method of making wall structure beneath the ground impervious to moisture comprises placing beneath the ground adjacent the exterior of the wall structure a first water soluble electrolyte containing a positive ion selected from the group consisting of alkali metals, ammonia, and alkaline earth metals and containing a negative hydroxyl radical, placing adjacent the interior of the wall structure a second water soluble electrolyte containing a metallic positive ion which combines with a hydroxyl radical to produce a substantially water insoluble precipitate, wetting the first and second elec- 7 trolytes and the wall structure, electrically connecting the first electrolyte to the negative terminal of a DC.

Description

METHOD FOR MAKING WALL STRUCTURE IMPERVIOUS TO MOISTURE Filed March 23, 1964 INVENTOR. SAMUEL/v1. BAGNO OR NE Y United States Patent 3,398,071 METHOD FOR MAKING WALL STRUCTURE IMPERVIOUS T0 MOISTURE Samuel M. Bagno, 18 Columbus Ave., Belleville, NJ. 07109 Filed Mar. 23, 1964, Ser. No. 353,990 Claims. (Cl. 204-130) The present invention relates to buildings and structures, and more particularly to a method and apparatus for making wall structure beneath the ground impervious to moisture.
Buildings such as dwellings which are equipped with a heating plant usually are constructed by making an excavation in the ground and lining the excavation with a foundation wall which provides a cellar at least partially below the level of the ground. Such foundation walls are inherently porous at certain points by reason of the construction materials utilized or are porous in the sense that they contain or develop cracks and crevices, whereby after a heavy or prolonged rainfall the ground surrounding the foundation wall becomes exceedingly wet and water seeps through the wall to flood the cellar.
The flooding of cellars is very undesirable, even if the water can be drained to the sewer immediately, because it leaves the cellar moist and wet, and considerable time and effort are required to properly dry out the cellar so as to prevent mold, mildew, worm and insect propagation, and other unwanted effects.
Accordingly, an object of the present invention is to provide a method and apparatus for making walls beneath the ground impervious to moisture.
Another object is to provide such a method which is simple, practical and highly effective.
A further object is to provide such apparatus which is simple and economical in construction.
Other and further objects of the invention will be obvious upon an understanding of the illustrative embodiment about to be described, or will be indicated in the appended claims, and various advantages not referred to herein will occur to one skilled in the art upon employment of the invention in practice.
In accordance with the present invention, the foregoing objects are generally accomplished by placing beneath the ground adjacent the exterior or one side of the wall or like structure a first water soluble electrolyte containing a metallic radical or ion; placing adjacent the interior or the other side of the wall or like structure a second water soluble electrolyte of the kind containing a radical or ion which combines with the metallic radical or ion of the first mentioned electrolyte to produce a substantially water insoluble precipitate, wetting the first and second electrolytes and the wall or like structure at both sides thereof within the area where a leak has been detected, electrically connecting the electrolytes by means of electrodes to the positive and negative terminals of a DC power source in a sense whereby an ion of each electrolyte will migrate towards the other to produce a substantially water insoluble precipitate which renders the wall or like structure impervious to moisture at the leaky area.
In the drawing:
FIG. 1 is a schematic view illustrating in cross-section a portion of a cellar wall and floor and the apparatus for carrying out the method in accordance with the present invention.
FIG. 2 is a longitudinal sectional view of an electrode for storing an electrolyte and adapted to be inserted into ground as shown in FIG. 1.
FIG. 3 is a perspective view of an electrode for storing an electrolyte and adapted to be placed on the cellar floor as shown in FIG. 1.
3,398,071 Patented Aug. 20, 1968 FIG. 4 is an enlarged fragmentary sectional view taken along the line 4-4 on FIG. 3.
FIG. 5 is a sectional view of another electrode.
Referring now to FIG. 1 of the drawing in detail, there is shown a portion of the cellar of a building having a side wall W extending partially beneath the ground G and having a fioor F, and apparatus for sealing a leak in the wall W which comprises an electrode 10 for electrically connecting a first water soluble electrolyte E-1 to the positive terminal P of a DC. power source such as a rectifier connected to an volt A.C. source, from the secondary of a transformer, and an electrode 11 for electrically connecting a second water soluble electrolyte E2 to the negative terminal N of the DC power source.
In one embodiment of the present invention, the first water soluble electrolyte is a compound composed of a metallic radical or electro-positive ion selected from the group consisting of alkaline earth metals, light metals and heavy metals; and the radical or electro-negative ion of an active inorganic acid.
Such metals include, but are-not limited to, aluminum, barium, cadmium, calcium, cobalt, copper, iron, lead, magnesium, manganese, nickel, strontium, tin, and zinc.
The active inorganic acids include, but are not limited to, acetic, chloric, nitric and sulfuric acid. These acids form salts of the metals just mentioned which are readily soluble in cold water.
Such water soluble salts include aluminum acetate, chloride, nitrate and sulphate; barium acetate, chloride and nitrate; cadmium acetate, chloride and sulphate; calcium acetate, chloride and nitrate; cobalt acetate, chloride, nitrate and sulphate; copper acetate (i-c), chloride, nitrate and sulphate; iron acetate (ous), chloride, nitrate and sulphate (ous); lead acetate and nitrate; magnesium acetate, chloride, nitrate and sulphate; manganese acetate, chloride, nitrate and sulphate; nickel acetate, chloride, nitrate and sulphate; tin chloride (ous) and sulphate; strontium acetate, chloride and nitrate; and zinc acetate, chloride, nitrate and sulphate.
In theory, all these salts and others can be utilized; however, from a practical viewpoint the salts which are the least costly, readily available, non-corrosive, non-toxic or free from other undesirable effects are preferred.
In this embodiment of the invention, the second Water soluble electrolyte is a compound composed of an electropositive alkali metal radical or ion such as sodium and potassium, and the radical or electro-negative ion of an inactive acid, including, but not limited to, phosphoric (ortho), and silicic acid which acids combine with the aforementioned metal radicals to form substantially water insoluble salts.
In addition to the compounds just mentioned, water soluble soaps such as the alkali metal soaps of mono-basic fatty acids having between 15 and 20 carbons may be utilized to combine the acidic radical thereof with an alkaline earth metal, light metal or heavy metal radical to produce substantially water insoluble soaps. Preferably, such water soluble soaps are used in conjunction with an alkali metal salt of an active acid to ionize the soap.
Also, it has been discovered that chemicals and/or these soaps, by the proper concentrations of ions inside and outside, can cause the acidic radicals or negative ions of the second electrolyte which produces water insoluble compounds to migrate more rapidly toward the first electrolyte than the metallic radicals or positive ions migrating from the first or positive ions to the second electrolyte, whereby the water insoluble compounds are formed closer to the exterior of the wall than the interior of the Wall so that water or moisture cannot enter or deeply penetrate the wall. Thus, once the Wall has been treated to seal the same, the interior of the wall can dry and remains dry to overcome the undesirable effects of moisture in the cellar.
In practicing the method in accordance with this embodiment of the present invention, a hole H is formed in the ground close to the exterior of the Wall W where a leak has been detected, an amount of the first electrolyte 13-1 is placed in the hole H, the electrode is placed into the hole H in electrical contact with the electrolyte E1, an amount of the second electrolyte E-Z is placed on the cellar floor F near the interior of the wall W and opposite the hole H, the electrode 11 is placed over and in electrical contact with the electrolyte E2, the electrolytes are wetted with the seepage water, and the electrodes are electrically connected to the terminals of the DC. source as previously described with reference to FIG. 1, whereby migration of radicals or ions producing the substantially water insoluble compound commences and the barrier B of such a compound is produced to seal the area where a leak has been detected and is to be sealed, or where the seepage water wets the inside electrode and initiates the electro-chemical action. As the metal of which the electrode 10 is formed, for example iron, is attacked and dissolved by an acidic environment of active acid radicals or ions established thereat, the radicals of such metals or ions migrate with the metallic radicals or ions of the electrolyte E-l and also combine with the acidic or basic radicals or ions of the electrolyte E-2 to produce an additional substantially water insoluble compound which supplements the barrier B to increase its effectiveness.
It has been found that direct current of between about six and about 250 volts and between about five and about 500 milliamperes (measured by a meter M) will produce the water impervious barrier on the surfaces and/ or in the wall W in between about one and about three weeks. The duration of time of the treatment will be shorter with the higher voltage impressed and higher current flow between the electrodes 10 and 11.
While the electrodes 10 and 11 may be rods, tubes or plates, the electrodes preferably are constructed to store the dry electrolytes as shown in FIGS. 2 to 4.
Referring now to FIG. 2, an electrode 10 is shown which comprises a tube 15 having perforations 16 and having a pointed lower end 17 to facilitate driving the tube into the ground like a stake, a measured quantity of dry electrolyte E-l in the tube, a liner 18 of suitable paper or fabric, for example fiber glass cloth, at the inner wall of the tube to retain the electrolyte within the tube while dry and to control the rate of flow thereof when wet and being dissolved into the ground, and a removable cap 19 for closing the upper end of the tube.
Referring now to FIGS. 3 and 4, an electrode 11 is shown which comprises a shallow, rectangular box-like structure of metallic wire mesh 20, a measured quantity of dry electrolyte E-2 in the box, a liner or bag 21 of similar construction and for the same purpose as the liner 18 which is placed in the box, and a removable rnetal cover 22 for the top of the box.
By constructing the electrodes 10 and 11 in the foregoing manner, the exact amount of electrolyte can be packed and stored therein which is required to provide one treatment at a prescribed current and voltage for a predetermined duration of time. This enables the method in accordance with the present invention to be practiced by people of ordinary skill, whereby the cost of labor is greatly reduced. After the electrodes have been used, they can be refilled for further use so long as they still are in usable condition.
Preliminary experiments were performed by placing a flower pot having a small hole in the bottom thereof in a pail, surrounding the side and bottom of the pot with soil in the pail containing an amount of the electrolyte B-l, placing an amount of the electrolyte E-2 in the pot, wetting the soil with an excess of water of about one inch on the top thereof, pouring water into the pot to provide a puddle about one inch deep, inserting an electrode 10 into the soil, placing an electrode 11 in the puddle, electrically connecting the electrode 10 at the positive terminal of a 40 volt D.C. source, and electrically connecting the electrode 11 to the negative terminal of the DC. source.
After about one week the hole in the post was sealed with a substantially water insoluble mass or wall which retained water in the pot without any sign of leakage through the mass. These experiments were performed with a number of the aforementioned E-l and 13-2 electrolyte combinations and all of these sealed the pot of the hole effectively.
As a specific example of practicing the present invention, the apparatus comprised an electrode 10 formed of an iron pipe three feet long having an inner diameter of two inches and having twenty perforations one eighth inch in diameter, and filled with three pounds of calcium chloride; and an electrode 11 in the form of a six-inch by six-inch by twenty-four-inch box having sixteen mesh Wire sides and a similar cover, and filled with two pounds of sodium ortho-phosphate and one-half pound of sodium stearate, the entire apparatus enclosed in a fiber glass bag; a rectified power supply having an volt DC. output with its positive terminal P connected -to the electrode 10 and its negative terminal N connected to the electrode 11; and an ammeter M connected in series between negative terminal N and the electrode 11.
The cellar wall W was constructed of concrete about eight inches thick and had leaked badly during and after a one-half inch rainfall on the outside ground about four feet above the cellar floor F to cause the floor to be flooded with water. The cellar floor F was constructed of concrete covered with plastic tile. This floor also leaked. It had a slight slope toward the wall W. It did not drain off and had to be bailed to remove the water from the cellar floor.
The apparatus was arranged by driving the electrode 10 (FIG. 2) into the wet ground G about three feet below the ground, the cap 19 was removed; about four quarts of water Were poured into the tube and on the ground adjacent thereto; and the electrode 11 (FIGS. 3 and 4) was placed on the cellar floor in a puddle of water about one inch deep.
The rectifier was then energized by the AC. supply whereupon the ammeter indicated that 300 milliamperes of current were being drawn. This caused the aforementioned radicals or ions to migrate by electrolytic action to produce the barrier B.
The process was continued for three weeks, while maintaining the electrolytes moist by the addition of water to the electrolytes of the electrodes 10 and 11. At the end of this period, the puddle had dried and/or was electrolytically decomposed.
The apparatus was then disconnected and dismantled, and it was found that practically all of the electrolytes had been dissolved and/ or decomposed.
This experimental treatment was performed in private on the applicants premises about two years ago, and the treated area of the wall never leaked again even during and after exceedingly heavy or prolonged rainfalls, wherefore it is apparent that a protective barrier which is impervious to moisture has been formed at the exterior of the wall or within the wall capable of preventing water from leaking into the cellar.
It is believed that the protective barrier with the material used was composed of calcium and iron phosphate having a solubility of less than 0.002 gram in cc. of cold water; and calcium stearate having a solubility of about 0.004 gram in 100 cc. of cold water. The term cold water is used herein in the sense that the temperature of the water does not exceed about 20 C.
During this test it was found that a large portion of the sodium stearate seemed to precipitate at the negative electrode by the hydrogen developed there by the electrolysis. This tended to clog the electrode reducing its elfective area and wasting a large portion of the stearate ions. In order to overcome these disadvantages, a sodium carbonate negative electrode 24 such as shown in FIG. 5 was devised.
This electrode comprises a porous unglazed porcelain cup 25 containing dry sodium carbonate, 2. cover 26 for the cup, and an iron rod 27 mounted on the cover 26 and immersed in the sodium carbonate. The porous porcelain cup in turn is immersed halfway into the sodium stearate and sodium phosphate powder and the whole electrode system was enclosed in a fiber glass bag 28.
Rain water seepage would wet the electrode system and cause the flow of current. The sodium carbonate within the porous cup was dissociated by the current. The sodium ion deposited at the negative electrode decomposed to a water molecule forming sodium hydroxide and evolving hydrogen. The carbonate ion drifted through the wetted porous wall of the porcelain cup 25 where it gave up some of its charge to the stearate and phosphate ions causing them to move toward the positive electrode 10. Its sodium ions drifted through the cup in the other direction to the negative electrode rod 27 whereby the hydrogen evolved did not precipitate any of the stearate ions.
In another embodiment of the present invention, the electrolyte E-1 at the outside of the wall is a basic compound containing a negative hydroxyl radical (OH), and an alkali metal or alkaline earth metal positive ion or an ammonia radical including but not limited to barium, calcium, lithium, potassium, sodium, strontium, ammonium NH and In theory, all of these hydroxides can be utilized; however, from a practical view point hydroxides which are beneficial to the soil are preferred, for example, calcium hydroxide (slaked lime) and hydroxides of nitrogen containing radicals.
In this embodiment of the present invention, the electrolyte E2 at the inside of the wall is a water soluble salt containing a metallic ion which reacts with a hydroxyl radical to form water insoluble hydroxides. Such metallic ions include but are not limited to aluminum, cadmium, copper, iron, lead, magnesium, manganese, nickel and zinc. Soluble salts of such metals are already set forth in the description of the first embodiment of the present invention.
In the system just described the outside electrode is connected to the negative terminal of the power source and the inside electrode 11 is connected to the positive terminal of the power source. For example, the soil at the outside in the vicinity of the electrode 10 is made basic with ammonia water and a water soluble iron salt is dissolved in the water at the inside of the wall. The electric current will draw the negative hydroxyl ion from the outside of the wall into the wall and will draw the positive iron ion from the inside of the wall into the wall, whereby these ions will meet at the points where water seeps through the wall and will combine to form a precipitate of iron hydroxide at and/or within the wall to seal the leak.
In both embodiments of the present invention, the ions in the water carry the electric current, whereby the current must follow the path of the water seepage. Generally, this is a constricted path of leaks L that follows the imperfections in the wall structure through which the water seeps. Because of this constricted path a small quantity of precipitate, usually less than one pound, provides a satisfactory seal for a leaky zone of considerable area.
While in most instances compounds which dissolve readily in water are preferred, slightly water soluble compounds, such as lime, capable of being wetted by water to become ionized and serve as electrolytes also can be utilized and thus are deemed to come within the scope of the present invention. Thus the term water soluble compounds as used herein includes all compounds which function as an electrolyte and in the presence of an electrical current from a D.C. source produce migrating ions. The selection of any particular compounds therefore is not critical, except for practical considerations.
From the foregoing description, it will be seen that the present invention provides a method and apparatus for sealing leaky underground walls or the like in a simple, practical, reliable and economical manner without the requirement of skilled technicians or high labor costs.
As various changes may be made in the form, construction and arrangement of the parts herein, without departing from the spirit and scope of the invention and without sacrificing any of its advantages, it is to be understood that all matter herein is to be interpreted as illustrative and not in any limiting sense.
I claim:
1. The method of making wall structure beneath the ground impervious to moisture, which method comprises placing beneath the ground adjacent one side of the wall structure a first electrolyte containing a metallic ion, placing adjacent the other side of the wall structure a second electrolyte containing an ion of the kind which combines with the metallic ion of the first mentioned electrolyte to produce a substantially water insoluble precipitate, wetting the first and second electrolytes and the wall structure, electrically connecting the electrolytes to the positive and negative terminals respectively of a DC. power source in a sense whereby an ion of each electrolyte of like sign as its terminal will migrate towards the other electrolyte to produce a substantially water insoluble precipitate within said structure which renders the wall structure impervious to moisture.
2. The method of making wall structure beneath the ground impervious to moisture, which method comprises placing beneath the ground adjacent the exterior of the wall structure a first water soluble electrolyte containing a metallic radical selected from the group consisting of alkaline earth metals, light metals and heavy metals and containing an acidic radical, placing adjacent the interior of the wall structure a second water soluble electrolyte containing an alkali metal radical and the radical of an acid of the kind which combines with the metallic radical of the first electrolyte to produce a substantially water insoluble precipitate, wetting the first and second electrolytes and the wall structure, electrically connecting the first electrolyte to the positive terminal of a DC). power source, and electrically connecting the second electrolyte to the negative terminal of the power source, whereby the acidic radical of the second electrolyte will migrate towards the first electrolyte and the metallic radical of the first electrolyte will migrate towards the second electrolyte to produce a barrier of a substantially water insoluble precipitate which renders the wall structure impervious to moisture.
3. The method according to claim 2, wherein the second electrolyte contains a water soluble soap, whereby the acidic radical of the second electrolyte will migrate through the wall structure to cause a water repellant precipitate to be produced within the wall structure and the precipitate includes a metallic soap.
4. The method according to claim 3 wherein the second electrolyte is ionized by an alkali metal salt of an active acid.
5. The method of making wall structure beneath the ground impervious to moisture, which method comprises placing beneath the ground adjacent the exterior of the wall structure a first water soluble electrolyte containing a positive ion selected from the group consisting of alkali metals, ammonia, and alkaline earth metals and containing a negative hydroxyl radical, placing adjacent the interior of the wall structure a second water soluble electrolyte containing a metallic positive ion which combines with a hydroxyl radical to produce a substantially water insoluble precipitate, wetting the first and second elec- 7 trolytes and the wall structure, electrically connecting the first electrolyte to the negative terminal of a DC. power source and electrically connecting the second electrolyte to the positive terminal of the power source, whereby the negative ion of the first electrolyte will migrate towards the second electrolyte and the positive ion of the second electrolyte will migrate towards the first electrolyte to produce a barrier of a substantially water insoluble precipitate which renders the wall structure impervious to moisture.
References Cited UNITED STATES PATENTS JOHN H. MACK, Primary Examiner.
10 H. H. FLOURNOY, Assistant Examiner.

Claims (1)

1. THE METHOD OF MAKING WALL STRUCTURE BENEATH THE GROUND IMPERVIOUS TO MOISTURE, WHICH METHOD COMPRISES PLACING BENEATH THE GROUND ADJACENT ONE SIDE OF THE WALL STRUCTURE A FIRST ELECTROLYTE CONTAINING A METALLIC ION, PLACING ADJACENT THE OTHER SIDE OF HE WALL STRUCTURE A SECOND ELECTROLYTE CONTAINIGN AN ION OF THE KIND WHICH COMBINES WITH THE METALLIC ION OF THE FIRST MENTIONED ELECTROLYTE TO PRODUCE A SUBSTANTIALLY WATER INSOLUBLE PRECIPITATE, WETTING THE FIRST AND SECOND ELECTROLYTES AND THE WALL STRUCTURE, ELECTRICALLY CONNECTNG THE ELECTROLYTES TO THE POSITIVE AND NEGATIVE TERMINALS RESPECTIVELY OF A D.C. POWER SOURCE IN A SENSE WHEREBY AN ION OF EAC ELECTROLYTE OF LIKE SIGN AS ITS TERMINAL WILL MIGRATE TOWARDS THE OTHER ELECTROLYTE TO PRODUCE A SUBSTNATIALLY WATER INSOLUBEL PRECIPITATE WITHIN SAID STRUCTURE WHICH RENDERS THE WALL STRUCTURE IMPERVIOUS TO MOISTURE.
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Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4440605A (en) * 1981-02-13 1984-04-03 The Marine Resources Company Repair of reinforced concrete structures by mineral accretion
US4950374A (en) * 1989-02-14 1990-08-21 Southwest Research Institute Electrophoretic leak sealing system
US5252266A (en) * 1992-07-02 1993-10-12 Brabston William N Control of the hardening of binders and cements
US11072901B2 (en) * 2016-12-24 2021-07-27 Ørsted Wind Power A/S Foundation for a structure
US20230061824A1 (en) * 2021-08-26 2023-03-02 Marathon Petroleum Company Lp Assemblies and methods for monitoring cathodic protection of structures
US11752472B2 (en) 2019-12-30 2023-09-12 Marathon Petroleum Company Lp Methods and systems for spillback control of in-line mixing of hydrocarbon liquids
US11754225B2 (en) 2021-03-16 2023-09-12 Marathon Petroleum Company Lp Systems and methods for transporting fuel and carbon dioxide in a dual fluid vessel
US11774990B2 (en) 2019-12-30 2023-10-03 Marathon Petroleum Company Lp Methods and systems for inline mixing of hydrocarbon liquids based on density or gravity
US11794153B2 (en) 2019-12-30 2023-10-24 Marathon Petroleum Company Lp Methods and systems for in-line mixing of hydrocarbon liquids
US11808013B1 (en) 2022-05-04 2023-11-07 Marathon Petroleum Company Lp Systems, methods, and controllers to enhance heavy equipment warning
US11815227B2 (en) 2021-03-16 2023-11-14 Marathon Petroleum Company Lp Scalable greenhouse gas capture systems and methods

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Publication number Priority date Publication date Assignee Title
US2099328A (en) * 1934-01-16 1937-11-16 Casagrande Leo Method of hardening soil
US2831804A (en) * 1956-01-30 1958-04-22 Collopy Electro Soil Company Process for the improvement and reclamation of soils
US3070528A (en) * 1961-02-27 1962-12-25 Licencia Talalmanyokat Dehumidification and damp-proofing of structures
US3116355A (en) * 1961-07-26 1963-12-31 Leesona Corp Process of making a microporous matrix

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2099328A (en) * 1934-01-16 1937-11-16 Casagrande Leo Method of hardening soil
US2831804A (en) * 1956-01-30 1958-04-22 Collopy Electro Soil Company Process for the improvement and reclamation of soils
US3070528A (en) * 1961-02-27 1962-12-25 Licencia Talalmanyokat Dehumidification and damp-proofing of structures
US3116355A (en) * 1961-07-26 1963-12-31 Leesona Corp Process of making a microporous matrix

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4440605A (en) * 1981-02-13 1984-04-03 The Marine Resources Company Repair of reinforced concrete structures by mineral accretion
US4950374A (en) * 1989-02-14 1990-08-21 Southwest Research Institute Electrophoretic leak sealing system
US5252266A (en) * 1992-07-02 1993-10-12 Brabston William N Control of the hardening of binders and cements
US11072901B2 (en) * 2016-12-24 2021-07-27 Ørsted Wind Power A/S Foundation for a structure
US11794153B2 (en) 2019-12-30 2023-10-24 Marathon Petroleum Company Lp Methods and systems for in-line mixing of hydrocarbon liquids
US11752472B2 (en) 2019-12-30 2023-09-12 Marathon Petroleum Company Lp Methods and systems for spillback control of in-line mixing of hydrocarbon liquids
US11774990B2 (en) 2019-12-30 2023-10-03 Marathon Petroleum Company Lp Methods and systems for inline mixing of hydrocarbon liquids based on density or gravity
US11754225B2 (en) 2021-03-16 2023-09-12 Marathon Petroleum Company Lp Systems and methods for transporting fuel and carbon dioxide in a dual fluid vessel
US11774042B2 (en) 2021-03-16 2023-10-03 Marathon Petroleum Company Lp Systems and methods for transporting fuel and carbon dioxide in a dual fluid vessel
US11815227B2 (en) 2021-03-16 2023-11-14 Marathon Petroleum Company Lp Scalable greenhouse gas capture systems and methods
US20230061824A1 (en) * 2021-08-26 2023-03-02 Marathon Petroleum Company Lp Assemblies and methods for monitoring cathodic protection of structures
US11807945B2 (en) * 2021-08-26 2023-11-07 Marathon Petroleum Company Lp Assemblies and methods for monitoring cathodic protection of structures
US11808013B1 (en) 2022-05-04 2023-11-07 Marathon Petroleum Company Lp Systems, methods, and controllers to enhance heavy equipment warning
US11965317B2 (en) 2022-05-04 2024-04-23 Marathon Petroleum Company Lp Systems, methods, and controllers to enhance heavy equipment warning

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