Foundation of the structure and installation method of the structure

The foundation design with integrated electrodes addresses installation challenges by using electroosmosis to reduce mechanical stress and noise, achieving efficient and cost-effective offshore installation.

JP7796105B2Active Publication Date: 2026-01-08ORSTED WIND POWER AS
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Patent Information

Application Number
JP2023507251
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-10
Filing Date
2021-08-09
Publication Date
2026-01-08
Estimated Expiration
2041-08-09

AI Technical Summary

Technical Problem

The installation of structural foundations, particularly in offshore environments, faces challenges such as high mechanical requirements, noise pollution, and high installation costs due to the need for noise mitigation measures and the use of high voltages in electro-osmotic systems, which are unsafe and costly.

Method used

A foundation design incorporating electrodes flush with or raised from the sides, insulated by a strip, allowing for electroosmosis without separate seabed electrodes, using lower voltages and reducing installation resistance through controlled electroosmotic effects.

Benefits of technology

Facilitates easier and quieter installation with reduced mechanical stress, lower costs, and enhanced soil stability, while maintaining safety and effectiveness in various soil conditions.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The foundation (1) of the structure (7) includes a body (8) having a side surface (11) and a distal end (10) for insertion into the soil (2). At least a region of the side surface (11) forms a first electrode. One or more second electrodes (9) are provided on the body (8) and are either flush with or raised from the side surface (11). Each second electrode (9) extends laterally around the side surface (11) and is electrically insulated therefrom by an insulating strip (12) provided between the respective second electrode and the side surface. During installation, a voltage can be applied across the electrodes to induce an electro-osmotic effect, thereby reducing installation resistance.
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Description

[Technical Field]

[0001] The present invention relates to foundations for structures and methods and systems for installing structures. In particular, the present invention relates to structural foundations that can be inserted into soil to support structures such as buildings, walls, sheet pile walls, offshore structures, and wind turbines: piles, tubular piles, closed-end piles, monopiles, bucket foundations, suction bucket foundations, suction pile foundations, suction caisson foundations, suction anchor sheet piles, spud cans, shallow or gravity base foundations, and other types of temporary and permanent shallow or deep foundations. The foundations of the present invention are often associated with marine, deep-sea, and coastal locations, and are best suited for low-permeability soils, typically with a high clay or silt content. [Background technology]

[0002] Structural foundations are often installed by using a pile hammer to move the foundation into the ground, applying a series of axial impacts to move the foundation into the soil. As it is moved, soil is displaced by the foundation piles, thereby compacting the surrounding soil and increasing axial friction along the body of the foundation. This increases the axial load-bearing capacity of the foundation. However, while moving the foundation through the soil, the shear forces are very high, which creates several problems. First, the high impact forces required for pile movement impose significant mechanical requirements on the foundation itself to avoid failure during installation. Furthermore, the noise generated by the impacts can be extremely high. In the case of offshore installations, this poses a particularly significant environmental hazard to offshore life.

[0003] In this regard, the installation of foundations for offshore structures can cause harmful physical and operational impacts on marine life. In recent years, significant efforts have been made to mitigate the noise generated during such installations. For example, air bubble curtains and pile-in-pile systems are often required to reduce the noise levels emitted from the piling site. However, the use of such noise mitigation measures adds significant costs to the installation of offshore structures. Furthermore, this is a particular problem for large foundations, where current noise mitigation options may be inadequate for large dimensions.

[0004] To address this issue, research has been conducted into using electroosmosis to reduce the resistance of piles to movement in marine installations by drawing soil water toward the foundation body, which acts as a cathode. Pore water pressure builds up at the interface between the foundation body and the surrounding soil, reducing effective stress and thereby reducing friction between the soil particles and the foundation surface. This has a lubricating effect by reducing the shear resistance required to move the foundation downward into the ground. This allows installation to be achieved with less impact / hammer energy, or by using only ballast without the need for hammers. This can facilitate faster installation and reduced noise disturbance.

[0005] U.S. Pat. No. 4,157,287 discloses one such pile drive system using electro-osmosis. In U.S. Pat. No. 4,157,287, a conductive tubular pile is provided with an electrically insulating coating on its exterior side, leaving its interior side exposed to form a cathode. One or more anodes are then placed on the seabed adjacent to the pile, and a direct current is applied to move water through the soil, down the outside of the pile, toward the cathode at the bottom open end. However, this arrangement presents several problems. First, the U.S. Pat. No. 4,157,287 system requires the installation of anodes on the seabed adjacent to the pile, which significantly increases installation setup time and costs. Second, to generate sufficient electric field strength to achieve the electro-osmotic effect, very high voltages are required due to the long distance between the electrodes, which is itself dangerous. Third, the high voltages require the integrity of the electrical insulation throughout the exterior of the pile to avoid short circuits. This makes the manufacture of such piles for use in this system more expensive and less tolerant of defects. In fact, this means the technology is too risky to rely on commercially; if the coating fails during installation, bubble curtains and larger hammers are still required as a contingency. Thus, potential cost savings are negated.

[0006] Faced with these problems, the applicant's own developments in this field led to the invention disclosed in WO2018 / 115176. In this case, the anode was provided as a strip fixed to the body of the foundation, with a recess or protrusion used as a spacer to create a gap between the anode surface and the soil when the foundation was installed. In use, the body acted as the cathode, and both electrodes were effectively incorporated into the foundation itself, thereby avoiding the need to provide and install a separate counter electrode on the seabed. At the same time, the soil around the anode dehydrated, but the spacer acted to prevent adhesion with the dehydrated soil.

[0007] While the concept taught in WO2018 / 115176 has proven effective, its commercial adoption has presented several practical challenges. First, spacing structures have proven difficult to implement. Some embodiments have proposed seating the anode in a recess to provide a gap with the soil, but machining a recess deep enough into the monopole body to create the necessary spacing is relatively expensive. Other embodiments include the use of drive shoes as spacing protrusions attached to the main side of the monopile body. However, such protrusions are susceptible to damage, and under many soil conditions, they have proven ineffective in maintaining the soil sufficiently separated from the anode.

[0008] Therefore, the present invention seeks to address the above-mentioned problems of the prior art. Summary of the Invention

[0009] According to a first aspect of the present invention, there is provided a foundation for a structure comprising: a body having sides and a distal end for insertion into soil, at least a region of the sides forming a first electrode; and one or more second electrodes provided on the body and either flush with or raised from the sides, each second electrode extending laterally around the sides and electrically insulated therefrom by an insulating strip provided between the respective second electrode and the side.

[0010] In this way, the present invention provides an arrangement in which the base assembly itself contains both the first and second electrodes, thereby avoiding the need to provide and install a separate counter electrode on the seabed. At the same time, because the second electrode provides a circumferential band that is flush with or raised from the side, a relatively large electrode surface area can be provided with no or very minimal modification to the base body. This is in contrast to previous solutions that required deep recesses to be machined into the body or that used smaller vertical electrodes sheltered behind drive shoe protrusions. As such, embodiments of the present invention can be implemented in a straightforward and cost-effective manner.

[0011] During use, a potential difference is established between different regions of the soil surrounding the foundation itself, inducing electroosmosis and thus pumping water through the soil. At the same time, because a potential difference can be established between different regions of the foundation, the distance between the electrodes is relatively short, thereby allowing for the use of lower voltages while still generating a sufficiently strong electric field to induce electroosmotic flow. During foundation installation, with the second electrode as the anode and the body as the cathode, water in the surrounding soil is drawn to the body, softening the soil and forming a lubricating film on its sides. This allows the foundation to be moved more easily. While adhesion of dehydrated soil around the second electrode counteracts this, the net benefit is a significant overall reduction in installation resistance. Furthermore, multiple electrodes can be provided, distributed axially along the body, to establish the electroosmotic effect over an extended area of ​​the body.

[0012] In embodiments, the one or more second electrodes include a plurality of second electrodes provided as bands across the body. As such, each second electrode may be formed from a continuous sheet of metal that is then wrapped around all, part, or the periphery of the body to conform to the side. This may simplify manufacturing.

[0013] In embodiments, each insulating strip is provided as a band across the body. This may simplify manufacturing, as each insulating strip may be formed from a narrow section of insulating material, such as an extruded polymer or fiber-reinforced plastic sheet, and then glued to the side. Alternatively, the insulating strip may be formed, for example, by painting an insulating paint directly onto the side of the body. In such a case, the insulating paint may provide an adhesive for securing the second electrode.

[0014] In embodiments, each insulating strip is wider than its respective second electrode. In this manner, the exposed areas of the insulating strip above and below the second electrode provide an insulating buffer at the interface between the electrodes, thereby helping to regulate the electric field between the electrodes. That is, the width of the insulator is designed to limit the current density. For example, this helps to maintain safe temperature levels that might otherwise soften the adhesive.

[0015] In embodiments, the body is electrically conductive to function as the first electrode. In this manner, the bulk material of the base body may form the common first electrode. For example, the body may be grounded at 0V to minimize safety issues for entities that come into contact with the body.

[0016] In embodiments, the insulating strips are provided on the sides of the body and each second electrode is provided on its respective insulating strip. In this manner, the insulating strips can be applied directly to the body, with the second electrodes mounted on insulating material.

[0017] In an embodiment, the second electrode defines the outer boundary of the foundation in the lateral plane. In this way, the second electrode can be fixed to the exterior surface of a standard foundation without requiring additional customization of the foundation body.

[0018] In embodiments, the foundation further includes wedge elements provided at the interfaces between the insulating strips and their respective second electrodes, each wedge element tapering radially outward from the insulating strip to the respective second electrode, in this manner, the exposed edges of the second electrodes can be protected to prevent peeling of the second electrode fixture during the foundation installation process.

[0019] In an embodiment, the body includes an insertion region terminating at a distal end for insertion into the soil, and the plurality of second electrodes are axially distributed along the insertion region.

[0020] In embodiments, one or more of the multiple second electrodes can be connected to a power supply independently of one or more other second electrodes. Thus, the second electrodes can be selectively activated to limit their operation until each second electrode is below the soil surface. In some embodiments, the multiple second electrodes are configured to have different electrical potentials during use. For example, if electrodes are provided on both the inside and outside of a hollow foundation, the electrode potentials can be adjusted to provide different levels of lubrication between the surfaces. For example, the interior and exterior of the bucket foundation can be controlled to address the issue of plug lift. Plug lift occurs when the suction force during the suction-assisted grounding phase is sufficiently high and a clay layer overlying a sand layer is lifted inside the bucket. To address this, lubrication on the outside of the bucket can be maximized by using a higher electrical potential to reduce the required suction pressure. At the same time, lubrication on the inside of the bucket can be set at a lower level, or vice versa, to ensure sufficient friction between the plug and the inside of the bucket foundation to prevent the plug from sliding upward.

[0021] In an embodiment, each insulating strip includes a resistively tapered region extending axially on either side of its respective second electrode to adjust the spatial distribution of the electric field strength between the first and second electrodes.

[0022] In embodiments, the foundation further includes a plurality of fluid ports for supplying fluid to the surface of one or more of the plurality of second electrodes. In this manner, when the second electrode functions as an anode during installation, fluid can be supplied to the second electrode to maintain electrolyte conductivity, allowing water to be pumped away from the electrode and into the soil. When the second electrode functions as a cathode during stabilization, fluid can be drawn away from the second electrode site and pumped elsewhere through a drain. This avoids excessive softening in the soil surrounding the second electrode. The fluid ports are preferably connected to a fluid piping system to provide fluid communication between the fluid ports and the fluid pump. The fluid piping system preferably extends to the proximal end of the foundation. The fluid piping system preferably includes an electrical isolation hole to prevent short circuits. After installation, the fluid ports and piping system can be sealed with grout or resin to prevent water from being drawn to this area during cyclic loading of the foundation. Additionally, in embodiments, a second fluid port and second piping system may also be provided to allow for fluid circulation, which may be used to circulate electrolytes to optimize the electroosmotic effect or electrochemical soil cementation.

[0023] In some embodiments, the body is tubular. For example, the foundation may be a monopile, with an elongated tubular body exceeding 10 or 20 meters in length. In other embodiments, the foundation may be a bucket foundation with a circular base, with a diameter of 4 to 16 meters and a vertical length of 2 to 30 meters, preferably 7 to 12 meters in diameter and 2 to 9 meters in penetration depth. In some embodiments, the body has a hollow cavity, which may include an interior side surface.

[0024] According to a further aspect of the present invention, there is provided a wind turbine including a generator assembly for generating electricity from wind and a foundation according to the above for supporting the generator assembly. The foundation thus provides a base for the wind turbine, and a nacelle and rotor of the wind turbine generator assembly may be supported on the foundation. The wind turbine may be installed, for example, at sea.

[0025] According to a further aspect of the present invention, there is provided a method for installing a foundation according to any one of the above descriptions, the method including: connecting one or more of the plurality of second electrodes to a positive terminal of a power source so that the second electrode functions as an anode; connecting the first electrode to a negative terminal of the power source so that the first electrode functions as a cathode; inserting a distal end of the body into the soil and applying a potential difference across the first electrode and at least one of the second electrodes to generate an electro-osmotic effect to attract water in the soil to the first electrode, thereby facilitating insertion of the body into the soil. In this way, the foundation can be more easily moved into the soil.

[0026] According to a further aspect of the present invention, there is provided a method for stopping the installation process of the above-mentioned foundation, the method including: connecting a second electrode to the negative terminal of a power source so that the second electrode functions as a cathode; connecting a first electrode to the positive terminal of a power source so that the first electrode functions as an anode; and applying a potential difference across the first and second electrodes to generate an electro-osmotic effect and repel water in the soil from the first electrode. In this regard, when the foundation is installed using ballast, the installation speed is primarily governed by the provided downforce. At the same time, the faster the installation speed, the greater the resistance, and vice versa. As a result, there is often too much ballast on the foundation, which can make it difficult to completely stop the installation process as soon as the target penetration depth is achieved. For example, ballast is often applied to the foundation using a number of ballast units capable of lifting, for example, 1,000 tons. Therefore, once the target installation depth is achieved, it can be difficult to quickly remove enough units to reduce the downforce to a level low enough to completely stop the foundation penetration. That is, even if some ballast units are removed, the foundation continues to penetrate, albeit at a significantly reduced rate. Thus, the stopping method quickly stops the lubrication effect by reversing polarity. Previously, the anode electrode was partially lubricated, but the area ratio favors increasing the installation resistance. Furthermore, under some soil conditions, the soil burned onto the second electrode during installation may not allow lubrication in this area when the polarity is reversed.

[0027] According to a further aspect of the present invention, there is provided a method for stabilizing the above-described foundation, comprising: connecting a second electrode to the negative terminal of a power source so that the second electrode functions as a cathode; connecting a first electrode to the positive terminal of a power source so that the first electrode functions as an anode; and applying a potential difference across the first and second electrodes to generate an electro-osmotic effect, repelling water in the soil from the first electrode. In this manner, the soil surrounding the body of the foundation can be consolidated to enhance the shear resistance between the body of the foundation and the soil, thereby stabilizing the foundation. In fact, not only is the strength of the interface between the soil and the foundation restored to its normal level, but the effect of additional soil consolidation can even improve the interface strength beyond this. Furthermore, this effect can also extend beyond the immediate vicinity of the foundation. Furthermore, the stabilization process can also help to at least partially neutralize any acidity that may have been generated in the soil during the installation process. That is, with the second electrode acting as a cathode, OH - H ions remaining from the deposition process + It is produced in the pore water within the surrounding soil, which can neutralize the

[0028] According to a further aspect of the present invention, a method for adjusting a foundation inserted into soil is provided, the method comprising: connecting a second electrode to the positive terminal of a power source so that the second electrode functions as the anode; connecting a first electrode to the negative terminal of the power source so that the first electrode functions as the cathode; applying a potential difference across the first and second electrodes to generate an electro-osmotic effect, attracting water in the soil to the first electrode; and moving the body into the soil. In this way, the foundation can be more easily adjusted, for example, to allow the foundation to retract from the soil. This method can also be used to adjust the position of a foundation, for example, to reset a foundation that has shifted due to extreme loads. This may be particularly relevant to bucket foundations by re-leveling the bucket to reduce friction and straighten the structure. In strong clay-type soils, traditional methods of re-leveling bucket foundations can be very difficult because the water pressure required to remove the bucket risk cracking the soil below. In many cases, this means that a tilted bucket foundation cannot be salvaged, and the bucket must be cut at the mudline to remove it. Thus, embodiments of the present invention provide a single bucket lift that is corrected after the structure tilts beyond acceptable limits. [Brief explanation of the drawings]

[0029] Exemplary embodiments of the present invention will now be described with reference to the accompanying drawings. [Figure 1] FIG. 1 shows a schematic cross-sectional view of a foundation during installation according to a first embodiment of the invention. [Figure 2] FIG. 2 shows an enlarged view of the insertion area of ​​the foundation body shown in FIG. [Figure 3] FIG. 3 shows a cross section through the second electrode according to the first embodiment. [Figure 4] FIG. 4 shows an isometric cross section through the second electrode shown in FIG. [Figure 5] 5A-5C show schematic diagrams of an offshore wind turbine installed using foundations, systems, and methods according to embodiments of the present invention. [Figure 6] FIG. 6 shows a schematic diagram of a foundation according to a first embodiment of the invention, with electric field lines shown. [Figure 7] FIG. 7 shows a cross section through the second electrode according to the second embodiment. [Figure 8] FIG. 8 shows an isometric cross section through the second electrode shown in FIG. [Figure 9] FIG. 9 shows a cross section through the second electrode according to the third embodiment. [Figure 10] FIG. 10 shows an isometric cross section through the second electrode shown in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0030] FIG. 1 shows a schematic cross-sectional view of a foundation during installation according to a first embodiment of the present invention. In this embodiment, the foundation 1 is a monopile for an offshore wind turbine 7. The foundation 1 includes a hollow tubular body 8 having a proximal end for supporting the wind turbine 7 above a water level 3 and a distal end 10 inserted into soil 2. The body 8 is electrically conductive, allowing its outer side 11 to function as a first electrode. In this embodiment, the body 8 is formed of a metal to provide electrical conductivity throughout the material, although other configurations are possible. For example, other materials may be used and / or the conductive region may be formed by applying a conductive coating to an exposed surface. A first terminal 4 is provided at the proximal end of the body 8 for electrically connecting the terminal 4 to a power source (not shown).

[0031] As described in further detail below, a plurality of second electrodes 9 are formed on the insertion region of the body toward its lower distal end. The second electrodes 9 are formed as circumferential bands extending around the exterior side 11 and individually switchably connected by wiring (not shown) to the second terminal array 5 at the proximal end of the body 8. In this manner, each of the second electrodes 9 can be activated as part of an electroosmotic circuit.

[0032] FIG. 2 shows an enlarged view of the insertion region of the body 8. As shown, the second electrodes 9 extend laterally across the exterior side 11 of the body 8 as multiple circumferential bands. The second electrodes 9 are secured to transverse insulating strips 12 of insulating material provided on the side 11 of the body to electrically insulate the second electrodes 9 from the body 8. As shown, the insulating strips 11 are wider than the bands of the second electrodes 9 so that the insulating material extends vertically on either side of the upper and lower boundaries of the second electrodes 9. During use, the second electrodes 9 are selectively activated to electrically connect to a power source via terminals in the second terminal array 5, thereby establishing a potential difference between each activated second electrode 9 and the body 8, which functions as a first electrode. In this regard, the generated electric field decreases as the axial distance from the activated second electrode increases. Thus, if two identical adjacent second electrodes 9 are activated with the same voltage, a voltage gradient will form between the two, with the lowest field strength around the midpoint between the electrodes, depending on the homogeneity of the soil. Therefore, the distance between the second electrodes 9, as well as the width of the insulating strip 12, may be configured to optimize the voltage gradient to achieve sufficient field strength along the length of the insertion region and limit current density spikes that would otherwise result in excessive heating of the soil.

[0033] 3 and 4 show cross-sectional and isometric cross-sectional views through the second electrode 9. In this embodiment, the insulating strip 12 is provided as a glass-reinforced plastic sheet applied as a transverse band around the side surface 11 of the body 8 using an epoxy adhesive. The glass-reinforced plastic sheet is preferably 1-2 mm thick, and in this embodiment is 1.3 mm thick. In other embodiments, an insulating paint may be applied to the side surface 11 to form the insulating strip.

[0034] Two wedge-shaped formations 14 of epoxy adhesive are provided at the upper and lower boundaries of the insulating strip 12, providing a tapered joint between the surfaces and thereby reducing the risk of delamination during use. The second electrode 9 is provided as an aluminum sheet that is adhered to the insulating strip 12 and fits around the side surface 11 of the body. Thus, the second electrode 9 protrudes from the side surface. Two further wedge-shaped formations 13 of epoxy adhesive are provided at the upper and lower boundaries of the second electrode 9, providing a tapered joint between the surface of the insulating layer 12 and the second electrode 9 to reduce the risk of delamination. In this embodiment, the second electrode 9 is 200 mm wide from its bottom to its upper boundary, while the insulating strip 12 is 500 mm wide from its bottom to its upper boundary. Thus, the insulating strip 12 extends axially both above and below the second electrode 12, forming two insulating bands between the side surface 11 and the second electrode 9. Thus, when a potential difference is applied across the electrodes, the exposed areas of insulating material act as buffers to direct the electric field and limit the current density.

[0035] 5A-5C show schematic diagrams of the foundation of FIGS. 1-2 being installed. As shown in FIG. 5A, the body 8 of the foundation 1 is placed by a crane 15 on the installation vessel 16, with its distal end 10 slightly submerged in the soil 2. As described in further detail below, once the first and second electrodes 9 are covered with soil, a DC power supply on the installation vessel 16 can be used to apply a potential difference across the first and second terminals 4 and 5 to establish an electro-osmotic effect. The body 8 can then penetrate deeper into the soil 2 as the shear resistance between the soil and the lateral surface of the body 8 decreases. Penetration can be facilitated under the weight of the foundation itself or by applying additional ballast or pile-driven hammer impacts. Advantageously, in contemplated embodiments of the present invention, installation resistance can be reduced sufficiently that installation can be accomplished without the need for hammer impacts.

[0036] As shown in Figure 5B, once the distal end 5 of the foundation reaches the required depth, the shear resistance between the soil 2 and the main body 8 can be restored by turning off the power supply. This stops the electro-osmotic effect and stabilizes the foundation by reducing its lubrication. However, this stabilization can take time because clay has very low permeability, so excess pore pressure next to the foundation can take time to dissipate into the soil. Therefore, stabilization can be further enhanced by temporarily reversing the polarity of the power supply so that the main body 8 acts as the anode and the second electrode 9 acts as the cathode. This reverses the electric field to drive pore water away from the side 11 of the main body 8, thereby strengthening the bond strength at the interface between the main body 8 and the soil 2. As shown in Figure 5C, a wind turbine 7 can then be installed on the foundation 1. Naturally, this stabilizing effect can also be used to relieve excess pore pressure that may have built up in the axial or around the monopile foundation during cyclic loading. Stabilization maintenance can alternatively be performed using one or more remote anodes.

[0037] 6 shows a schematic diagram of a section of the foundation 1 during the installation process. Thus, electric field lines 24 are shown between the second electrode 9 and the side surface 11.

[0038] As described above, during the installation process, the body 8 is lifted into place by a crane 15, and ballast 17 may be applied to its proximal end to facilitate penetration into the soil 2. As the distal end of the body 8 is depressed, the second electrodes 9 are sequentially activated to become anodes as they sink into the soil 2. To this end, a potential difference is applied by a DC power supply unit 19 provided on the installation vessel and powered by an AC generator 20. Sequential activation of the second electrodes 9 helps avoid drawing excessive current through the seawater during the initial stages of installation, when the electrodes 9 are still above the soil 2. Thus, the second electrodes 9 remain uncharged until safely below the soil line, after which they can be connected to the DC power supply unit 19 to generate an electro-osmotic effect in that region.

[0039] Specifically, the DC power supply unit 19 is used to ground the body 8 through the first power cable 23 so that it has a 0V potential and can thereby function as a cathode. Because the body 8 itself is at zero potential, there is no safety risk from contact with other bodies during installation. At the same time, a positive voltage, preferably between +40V and +400V, and most preferably less than +200V, is applied to each activated second electrode 9 through the second power cable 22. At voltages less than +80V, the voltage is advantageously below dangerous levels. Furthermore, as a result of selective activation of the second electrodes 9, the electrified area of ​​the foundation is isolated from the installed area of ​​the body, which is buried under the soil 2. The application of a potential difference between each activated second electrode 9 and the body 8 generates an electric field 24 through the soil between them.

[0040] An irrigation pump 18 may also be provided on the mounting vessel to supply fluid through fluid channel 21 to a port provided in or near second electrode 9. This fluid may be, for example, seawater, and its delivery may help reduce surface friction and soil adhesion on second electrode 9.

[0041] The effect of the electric field, shown in Figure 6, is that an electro-osmotic effect is induced by the electric field 24 in the soil around the foundation. Specifically, within the soil, negatively charged soil particles are surrounded by pore water fluid within double layers and / or unbound water areas between the particles. Application of the electric field 24 causes some of this pore water to migrate toward the negatively charged cathode provided by the side 11 of the body 8. This has the effect of increasing soil moisture in the soil adjacent to the side 11, thereby lubricating the interface between the body 8 and the soil 2.

[0042] At the same time, as mentioned above, the positively charged anode provided by the second electrode 9 acts to repel pore water therefrom. As a result, the soil moisture in the surrounding soil decreases, and dehydrated regions adhere to the surface of the second electrode 9 and eventually burn onto it. However, it has been unexpectedly discovered that while this increased soil adhesion increases the axial resistance to installation of the body 8, it is more than compensated for by the overall reduced interfacial resistance across the bulk of the side surface 11. That is, while soil may adhere to the second electrode 9, applicant's testing indicates that lubrication across the remainder of the insertion area of ​​the foundation body results in a significant net reduction in installation resistance. For example, adhesion is limited to a horizontal annulus of soil surrounding each second electrode 9.

[0043] Advantageously, the second electrode does not need to be spaced from the soil and may be on or raised above the main side surface 11 of the foundation body 8, eliminating the need to customize the foundation to provide a recess or space protrusion. This not only improves reliability but may also reduce foundation costs. For example, a conventional monopile can be easily modified by using adhesive to fasten the insulating strip 12 and second electrode 9 to its surface 11.

[0044] It will be appreciated that alternative configurations may be used for the second electrode 9, performing these functions in substantially the same manner as described above in connection with the first embodiment. For example, FIGS. 7 and 8 show cross-sectional and isometric cross-sectional views through a second electrode according to a second embodiment of the present invention. In this case, the insulating strip 12 is applied as a 1.5 mm layer of insulating paint, and the second electrode 9 is seated within a recess provided within the side surface. In this manner, the second electrode 9 is positioned substantially flush with the main side surface 11 of the foundation body 8. This provision of a shallow recess, which may be only 3-5 mm deep, may act to protect the second electrode 9 from delamination from the body 8 without requiring a deeper recess that would otherwise be required to create a gap with the adjacent soil.

[0045] 9 and 10 show cross-sectional and isometric cross-sectional views through a second electrode according to a third embodiment of the present invention. In this embodiment, the second electrode 26 is formed from a machined piece of aluminum containing an inwardly facing cavity 27 and multiple slits extending to its outer surface. A cover 25 is fitted over the outer surface of the second electrode 26 and comprises non-woven aramid fiber covered with a non-woven Kevlar (aramid fiber) top sheet. In this embodiment, the second electrode 26 is adhered to a layer of insulating paint forming an insulating strip 12 applied to the main side 11. In other embodiments, the electrode can alternatively be seated in a recess. In use, fluid may be supplied to the cavity 27 using an irrigation pump 18, which is then drawn through the slots. The cover 25 acts to repel fluid, thereby dispersing and releasing it onto the exposed surface. In this manner, the Kevlar top acts to prevent dirt from baking onto the second electrode 26. At the same time, the fluid delivery serves to rehydrate the soil adjacent each second electrode 26, thereby maintaining an electrolyte fluid connection between the anode and cathode. In some embodiments, additives may further be introduced into the fluid pumped from irrigation pump 18, for example, to increase its electrical conductivity or provide chemical stability. In other embodiments, the fluid port may be used to complete the installation by supplying grout or similar material to seal the piping system and displace any remaining water trapped in cavity 27.

[0046] In this regard, the delivery of fluid at the second electrode 26 can be used to neutralize or dilute acidity generated at the anode. That is, in addition to the electroosmotic effect, the electrolyte leads to chemical oxidation and reduction reactions at the anode and cathode, respectively. The range of possible reactions depends on which ionic species are available or present, and therefore the introduction of tailored conditioning agents can serve to enhance or suppress certain reactions. As an example, in pure water with an inert electrode, H2 gas and OH - Negative ions are generated at the cathode and O2 gas and H +Positive ions are generated at the anode. As a result of the electric field, the positive and negative ions migrate toward the cathode and anode, respectively. H + Due to the high mobility of cations, the associated acid front generally sweeps a larger volume of soil than would be swept by hydroxide anions. This acidity in the soil can have several undesirable effects, including reducing biological activity, reducing the soil's electroosmotic permeability, and accelerating corrosion of the foundation itself. To counter these effects, chemical conditioning fluids can be pumped through ports to hydrate the positively charged H + The conditioning fluid can neutralize or dilute ions. Additionally, the conditioning fluid can be selected to modify the surface chemistry of clay particles or precipitate cement within pores. Such changes can increase the strength and stiffness of the soil. For example, during the normal polarity phase, lime or calcium chloride solution may be introduced through a port as a modifier; during reverse polarity, such conditioners can contain sodium silicate, which can precipitate in the cementation reaction.

[0047] The arrangements shown in Figures 9 and 10 can be used without active irrigation. In this regard, during installation, the foundation is first lowered through water before penetrating the soil. This step serves to partially fill the cavity 27 of the second electrode 26 with seawater. At the same time, any air remaining in the cavity 27 is compressed. Thus, as seawater is drawn from the cavity 27 during electro-osmosis, the compressed air expands again, thereby preventing a vacuum from immediately forming within the cavity 27.

[0048] As will be appreciated, the inventive arrangements disclosed herein allow for easier movement of foundations into the soil without significantly increasing the setup time required at the foundation location. This reduces costs, provides a more stable foundation, and allows for reduced installation noise in pile foundations, which is particularly important for marine applications. At the same time, embodiments of the present invention can be easily implemented without requiring substantial modifications to existing foundation designs.

[0049] It will be understood that the above-described embodiments illustrate applications of the present invention for illustrative purposes only, and in practice the present invention may be applied in many different configurations, and the detailed embodiments will be straightforward for those skilled in the art to implement.

[0050] For example, in the above exemplary embodiment, the foundation was a hollow body such as a monopile, but the present invention can be applied to other foundations such as bucket foundations, shaft and sheet piles, spudcans, and gravity-based foundations.

[0051] As well as wind turbines, the invention may be used in other structures such as offshore platforms, sheet walls or dolphin piles.

[0052] Additionally, while in the above exemplary embodiments the system has been described using a power source located on the installation vessel, it will be appreciated that other arrangements are possible. For example, a battery or generator located on the foundation or structure itself could be used as the power source.

[0053] Furthermore, while the present invention has been described with reference to marine locations, it should be understood that the present invention may be used in other locations where the soil has a sufficiently high moisture content for electro-osmosis. This may include, for example, fine-grained cohesive clay deposits, low-permeability problem soils, expansive soils, dispersive soils, highly compressible clays, marine clays, delicate clays, quick clays, saline / sodic soils, and soft peat. Such soft clay soils are often associated with rib soils, as well as estuary, river, and lake locations.

[0054] It will also be appreciated that the present invention allows for periodic re-consolidation of the soil around the foundation by reactivating the electro-osmotic effect to repel water from the body and drain water collected at the second electrode. Similarly, the present invention may simplify evacuation of the foundation during demolition by reactivating the electro-osmotic effect to form a fluid lubrication film on the body, thereby facilitating its removal from the soil.

[0055] In this regard, in the present invention, two electroosmotic effects are generated in the surrounding soil by applying a DC voltage across different portions of the foundation. First, electroosmosis causes water movement, which acts to weaken or strengthen the soil at closed boundaries, depending on the direction of flow. Therefore, excess soil pore pressure can be generated to lubricate the soil / foundation interface with a water film during installation or removal. Alternatively, negative pore pressure can be used to restore or improve soil structure and interface friction to stabilize the foundation. For example, soft clay or other cohesive soils can be consolidated around the foundation for strength by electrically pumping water out of the soil. The second effect of electroosmosis is to act on the foundation by moving ions within the soil. The ionic effect also allows the penetration of bonding electrolytes to consolidate the foundation in place, which can be particularly useful for granular soils.

[0056] The insulating strip may also include tapered resistive regions extending vertically on either side of the second electrode. The tapered resistive regions may act to control the distribution of electric field strength in the soil generated between the body and the second electrode. That is, when a potential difference is applied across the electrodes, the tapered resistive regions may reduce or mitigate the electric field strength to avoid excessively high electric field strength in the region adjacent to the junction between the insulating strip and the body due to the relatively small distance between the electrodes. In some embodiments, the insulating material forming the insulating strip may be gradually changed as the distance from the second electrode increases, gradually reducing the resistive effect. In this manner, the gradually decreasing resistance may be used to gradually counteract the electric field strength that increases due to proximity, achieving a more uniform electric field extending from the second electrode.

[0057] Finally, although the illustrative examples show embodiments of the present invention having a second electrode on the exterior side, it will be understood that for hollow foundations, the second electrode may be provided on the interior side.

Claims

1. A structural foundation, a body having sides and a distal end for insertion into the soil, the body being electrically conductive to function as a first electrode; at least one second electrode disposed on said body and flush with or raised from said side surface, said at least one second electrode extending laterally to form a circumferential band around said side surface and electrically insulated therefrom by an insulating strip disposed between said at least one second electrode and said side surface; the insulating strip is provided on the side surface of the body, and the at least one second electrode is provided on the insulating strip; the at least one second electrode and the insulating strip form a second electrode region; A foundation of a structure, wherein the at least one second electrode defines an outer boundary of the foundation in a lateral plane intersecting the second electrode area.

2. The base of claim 1 , wherein the at least one second electrode comprises a plurality of second electrodes arranged as bands across the body.

3. 3. A foundation according to claim 1 or 2, wherein the insulating strip is provided as a band across the body.

4. The base according to any one of claims 1 to 3, wherein the insulating strip is wider than the at least one second electrode.

5. 5. The foundation of claim 1, further comprising a wedge element provided at the interface between the insulating strip and the at least one second electrode, the wedge element tapering radially outward from the insulating strip to the at least one second electrode.

6. the body including an insertion region terminating at the distal end for insertion into the soil; The base of claim 2 , wherein the plurality of second electrodes are distributed axially along the insertion region.

7. The base of any preceding claim, further comprising terminals for connecting the first electrode and the at least one second electrode to a power source.

8. The foundation of claim 7 , wherein the at least one second electrode comprises a plurality of second electrodes connectable to the power source independently of one another.

9. 9. The base of claim 1, wherein the insulating strip includes resistively tapered regions extending axially on either side of the at least one second electrode to adjust the spatial distribution of the electric field strength between the first electrode and the at least one second electrode.

10. The base of any preceding claim, further comprising a plurality of fluid ports for supplying fluid to a surface of the at least one second electrode.

11. 1. A wind turbine comprising: a generator assembly for generating electricity from wind; and a foundation according to any one of claims 1 to 10 for supporting the generator assembly.

12. A method for installing a foundation according to any one of claims 1 to 10, comprising: connecting the at least one second electrode to a positive terminal of a power source so that the at least one second electrode functions as an anode; connecting the first electrode to a negative terminal of the power source so that the first electrode functions as a cathode; inserting the distal end of the body into the soil and applying a potential difference across the first electrode and the at least one second electrode to create an electroosmotic effect to attract water in the soil to the first electrode, thereby facilitating insertion of the body into the soil.

Citation Information

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