(19)
(11) EP 2 920 401 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
26.09.2018 Bulletin 2018/39

(21) Application number: 13812204.9

(22) Date of filing: 22.10.2013
(51) International Patent Classification (IPC): 
E21B 7/14(2006.01)
E21B 33/138(2006.01)
E21B 43/10(2006.01)
(86) International application number:
PCT/SK2013/050008
(87) International publication number:
WO 2014/065764 (01.05.2014 Gazette 2014/18)

(54)

PROCESS OF FORMATION OF CASING BY ADDITIVE MANNER IN BOREHOLES AND DEVICE FOR ITS PERFORMING

VERFAHREN ZUR FORMUNG EINES GEHÄUSES DURCH ADDITIVE IN BOHRLÖCHERN UND VORRICHTUNG ZUR DURCHFÜHRUNG DIESES VERFAHRENS

PROCÉDÉ DE FORMATION D'ENVELOPPE DE MANIÈRE ADDITIVE DANS DES TROUS DE FORAGE ET DISPOSITIF POUR SA RÉALISATION


(84) Designated Contracting States:
AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

(30) Priority: 24.10.2012 SK 500482012

(43) Date of publication of application:
23.09.2015 Bulletin 2015/39

(73) Proprietor: GA Drilling, a. s.
917 01 Trnava (SK)

(72) Inventors:
  • KOCIS, Ivan
    841 04 Bratislava (SK)
  • KRISTOFIC, Tomás
    841 07 Bratislava (SK)
  • LONGAUER, Jaroslav
    832 02 Bratislava (SK)

(74) Representative: Litváková, Edita 
Pluhová 78
831 03 Bratislava
831 03 Bratislava (SK)


(56) References cited: : 
US-A- 3 907 044
US-A1- 2010 224 408
US-A- 5 735 355
US-B2- 6 851 488
   
       
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description

    Technical field



    [0001] The invention relates to a process of formation of a casing by additive manner, especially in contactless thermal drilling of boreholes in geological formations and a system for its performing.

    Background Art



    [0002] For strength and resistance of borehole walls, the high-quality casing is essential condition for technological use of the borehole during its excavation as well as its durability.

    [0003] The issue of parallel formation of the casing and drilling process has proceeded through several stages of development. Experiments have been made to solve the issue of narrowing the borehole profile as well as the casing (tapering) by solutions such as expansion of the embedded casing profiles and also by methods of passive insertion of casing during the drilling. Among the first conceptions of casing drilling was the patent US 3661218. The patent protects a method of casing drilling, but maintains the deficiencies of the rotating drill string of conventional mechanical drilling columns, namely decrescent cross-section. Solutions which can be considered useful and were designed and put into practical use are the principles of drilling with the casing. Analysis of this technology is described in detail in R. Tessari Atall: "Drilling with casing promises major benefits" in Oil & GasJournalVol 97, No. 20 1999 and the article of authors Okeke et al. "Current Trends and Future Development in Casing Drilling". In patent literature the casing drilling, as an example among others, is the object of a patent of company Tesco US6705413. The company Halliburton has a patent for drilling with a casing for directional drilling in the patent US6877570. Both mentioned patents have the main common deficiency that the rotating casing may be threatened by collapse of unstable rock from outside and thus by the complete discontinuation of the drilling process. The second common deficiency is that the rotating casing is uncementable during the whole drilling process or it is cementable in parts and the narrowing casing must also be used for the next section.

    [0004] Utilization of thermal, especially plasma, technologies in formation of a casing is the closest issue to the present invention. These solutions can be divided into two categories. The first includes solutions based on the so-called penetrators i.e. devices, a tip of which heated to the temperature above the melting point of the rock is depressed into the rock, in which it forms a melting vitrified layer and removes the excess material. The second category includes solutions based on plasma thermal flux /torch/, which melts the rock at the bottom and on the walls of the borehole at its exit from the bottom of the borehole.

    [0005] The example of the first group of solutions is the patent US3693731 "Method and apparatus for tunnelling by melting" by D. Armstrong E. et al., which describes a conical penetrator, which depresses the melt into the pores of the surrounding rock and thus it forms a partially vitrified casing. A large amount of energy is required to achieve acceptable efficiency of the process and speed of penetration.

    [0006] The line of direct action of heat flux of plasma flow to rock completes the solution of the patent US 8235140 by Wideman T.W. et al. using the mode of so-called spallation, which is energetically preferable. It forms a disturbed layer which may be impregnated and thus it can form a temporary casing. However, the casing formed in this way shows insufficient strength. The patent US 6591920 by Foppe W. uses a molten metal supplied from the surface and heated to a temperature high above the melting point as drilling thermal medium. It depresses the melt into cracks in the rock and thereby forms a casing. But the whole process is considerably technologically difficult. The patent US6851488 by Samith Batarseh describes the formation of a casing by heat radiation flux of laser radiation, which forms a rock melt. It uses compressed air to hold the melt on the wall, and the entire borehole is filled with air as well.

    [0007] The present invention eliminates the deficiencies of the above mentioned patents in forming of a casing and in the field of efficiency, material and temporal parameters and in particular functionality of casing being formed such as forming of pipe in the casing, sandwich and composite structure of the casing and thereby it surpasses them.

    [0008] The above-mentioned US patent 6,851,488 of Samith Batarseh: "Laser liner creation apparatus and method", discloses the process (method) and apparatus of creation of the borehole liner by melting the surrounding rock and the cooling and perforating the rock by fluid flow through nozzles. This is the basic difference to the present invention which is based on additive layering of the processed material of the rock and additives to create homogenous layer with the composite composition, and with controllable properties and high strength given by additives.

    [0009] The patent 6,851,488 belongs to the "penetrator" category which has substantial drawbacks:
    1. a) the resulting structure is influenced by non-homogenous rock, by existing fracks etc., gives no guarantee of quality of the created liner with low strength parameters,
    2. b) the melted rock under the gravitation influence is flowing down and deformed until the cooling fluid flow is applied,
    3. c) it does not solve the vital problem of the transporting simultaneously with the liner creation, and
    4. d) the penetrator concept is generally failed on wrong assumption that the excessive melted rock is pushed into the surrounding rocks fracks. This is the lethal drawback in the referenced patent US 6,851,488.


    [0010] The present invention solves these problems in principal way and has the liner composition under full control by additive process as it is solving the transport of melted/evaporated material to the surface.

    [0011] The patents US 3,907,044 and US 5,735,355 are of penetrator melting category and are not relevant to the additive layering concept of this invention.

    Disclosure of Invention



    [0012] The mentioned deficiencies are to the great extent eliminated by the process of formation of the casing by additive manner especially in thermal drilling of boreholes in geological formations and devices for its performing according to the present invention. The nature of the present invention consists in that the casing is formed by layering material from vaporized rocks by condensation and solidification on borehole walls. In formation of the casing, the material of the vaporized rock and thermal energy inserted into it are used so that by a heat treatment a mixture of vaporized rock vapours passes through phase transformations, namely to a liquid phase and a partially solid phase, and mechanical treatments and transport of the rock material from a source of generation of hot gas mixtures, namely mixtures of vaporized rock vapours and vaporized coolant vapours to an area of formation of the casing by directing and application of the treated rock material in the area of the casing formation to the borehole wall or to the underlying layers of the casing being formed. The layered casing is formed by cooling the rock material, wherein the casing layers formation is continuous.

    [0013] In thermal drilling, the main advantage over conventional drilling technologies is the possibility to form the casing directly from disintegrated material. The object of the present invention is formation of the casing by additive process from melted and vaporized rock material applied in the layers to the borehole walls, by which the casing of required characteristics such as tensile strength, compressive strength, compliance, permeability, porosity, thermal insulation properties and others.

    [0014] Rocks material meltdown and vaporization occur especially in thermal drilling of boreholes, where from them and from coolant transported to the place of drilling are generated the hot gas mixtures consisting of vaporized rock vapours and coolant, where cooling gases are formed by its vaporization, wherein by taking over the carrying function, also carrier gases are subsequently used for formation of the casing by additive manner in the process of formation of the casing according to the present invention.

    [0015] The heat treatment is a cooling, in which the generated hot gas mixtures are cooled by coolant. A phase transition of a rock vapours occurs by their cooling and by condensation liquid particles of rock and by solidification solid particles of rock are formed in the flowing mixture of rock material and cooling gases.

    [0016] The generated hot gas mixtures of vaporized rock vapours and cooling gases are divided by mechanical treatment into at least two main streams. At least one stream is a stream of cold materials and at least one stream is a stream of hot materials.

    [0017] Since not the entire material from melted and vaporized rocks is necessary for formation of the casing, it is necessary to separate the excess part of this material together with the cooling gases from the part, which will be used for formation of the casing. Therefore at least from one of these main streams other sidestreams are further continually diverging, by which excess mixtures of rock materials and cooling gases are led away to the waste. The part of the rock material from which the casing will be formed remains in the streams of cold and hot materials.

    [0018] At least one stream of hot materials and at least one stream of cold materials are formed by heat treatments which is a multistage cooling of rock materials by controlled heat transformation, wherein at least two main streams are cooled to different temperature so that the stream of cold rock materials is cooled to the temperature at which gas rock material is transformed into the solid phase and solidifying rock particles are formed, which solidify before their application as the casing layer, and the stream of hot rock materials is cooled above the temperature of the rock melting, which allows them to be mixed with cold materials and thus to form the continuous casing layer, in which layers during the heat exchange between particles occur temperature decrease of entire layer, phase transformation and thus formation of continuous casing layer. Temperature of particles in the stream of cold materials and in the stream of hot materials is different before application of the casing layer.

    [0019] Waste gases, which are excess parts of cooling gases, are led away to the waste from main streams of materials by further mechanical treatments, namely by separation, and thus the streams of solidifying rock particles formed by cooling the mixtures of hot rock vapours and cooling gases, which are at the same time the carrier gases, are concentrated.

    [0020] Discharge of waste cooling gases is necessary also because the coolant is continuously added as cooling and as protective and separating layer between all contact areas of the device and the mixture of hot flowing gases. Since during the process of drilling and also for the process of the casing formation it is constantly necessary to supply coolant, it is also constantly necessary to separate excess parts of cooling gases from main streams of materials and to discharge them into the waste. The concentration of mixtures of main streams, which already contain solidifying parts formed by cooling the hot rock vapours mixtures in the stream of cooling gases, is accomplished by discharge of the excess parts of cooling gases.

    [0021] Cooling gases are formed by vaporization of supplied coolant and cooling gases also take over the carrying function, since they simultaneously carry rock particles, which solidify in the system, and therefore they are also carrier gases. Removed heat and temperature decrease of the resulting mixture is performed by phase transformation of the coolant, mixing the parts of the mixture and expansion of the mixtures of vaporized rock and cooling gases.

    [0022] After dividing and separating the mixtures of excess rocks material and cooling gases, the streams of the mixtures of rock material and cooling gases are divided into smaller streams by mechanical treatment, namely by division into n number of channels, for the purpose of their additional treatment.

    [0023] The step of separation of the excess parts of cooling gases is followed by further mechanical treatment, namely increasing the speed of cold and hot rock particles before mixing them, which is performed to accelerate and direct them.

    [0024] The coolant also provides thermal protection to the device so, that the coolant is continuously added as a cooling and also protective and separating layer between all contact areas of the device and the mixture of hot flowing gases.

    [0025] Mixing of cold particles and hot particles occurs by connecting the stream of cold materials with the stream of hot materials, and the mixture of rocks material is formed, which is at first applied to the borehole wall and subsequently additional layers are applied on the underlying layers of the moulded casing.

    [0026] The formed casing layer solidifies especially during further heat treatment, which is self-cooling, wherein internal heat transfer occurs in the applied layer, namely by heat exchange between applied hot and cold particles of the rock material in the casing layer.

    [0027] In the area of casing formation, a moulding device is embedded, by sliding of which an aperture is formed in the solidifying casing, which forms pipe channels in the layered casing along the borehole. A medium supply such as a coolant pipeline, an electricity conductor, a signal conductor and others, is conveyed to the slid moulding device.

    [0028] Mixing of cold and hot rock particles is performed by action of opposing centrifugal forces, which empty into a common area in a channel of formation of casing layers leading into the area of application of casing layers.

    [0029] Cooling of the formed casing must be controlled, wherein the formed casing layers are tempered and cooled. Hot waste gases, alternatively cooled by addition of cooling gases, are preferably used for controlled cooling of the casing.

    [0030] Cooling and condensation of discharged waste rock material provide cooling of cooling gases and excess rock material to the temperature in the range of 100-250 °C.

    [0031] By sliding of one or several moulding devices in the solidifying casing, an aperture is formed, which shapes the pipe channel in the layered casing along the borehole, where a medium supply, in particular a coolant pipeline, an electricity conductor, a signal conductor and others, is conveyed to the slid moulding device. Connected medium supplies, which are led by the formed aperture from the surface of the borehole, are also slid by sliding of the moulding device.

    [0032] In order to improve the properties of the casing, it is advantageous to add specialized additives to the flowing mixture, which comprise:
    1. a. an increased supply of coolant for control the cooling of the mixture of rock vapours and cooling gases in order to form expansion joints in the casing using controlled cooling of applied material; and/or
    2. b. reinforcement elements in order to improve the mechanical properties of the casing; and/or
    3. c. a foaming additive in order to adjust thermal-insulating and mechanical properties of the walls of the casing.


    [0033] Addition of particular additives is preferably performed before mechanical treatment of increasing the speed of cold and hot parts, and especially before mixing them in the process of acceleration of particles, namely by addition of additives to various sub-groups of n number of channels and thus materials are formed, which after application form one or more coaxial structures with the same or different characteristics, and thereby a sandwich and composite structure is formed in the casing.

    [0034] The resulting casing consists of several layers, wherein some of the layers may contain also additives and properties are adjusted not only reciprocally among individual casing layers, but also along the axis of the formed casing, with regard to the added additive, thereby they form sandwich and composite aggregations and thus adjust properties of the entire casing.

    [0035] A device for performing the process of formation of the casing by additive manner, especially in thermal drilling of the boreholes in geological formations according to present invention comprises the following technological parts:
    • a hot rock vapours mixture formation block;
    • mechanical treatments modules;
    • heat treatments modules;
    • transport modules;
    • directing and application modules.


    [0036] A hot rock vapours mixture formation and cooling gases block is a high-temperature energy flow, which produces the vaporized rock forming hot rock vapours mixed with cooling gases entering into the casing formation.

    [0037] The mechanical treatments block includes:
    • a mechanical division and separation block;
    • a separation and concentration block;
    • particles division and acceleration blocks;
    • a system for mixing the particles;
    • an output streams separator.


    [0038] The heat treatments block includes:
    • a cooling system;
    • a controlled cooling block.


    [0039] The hot gases mixture cooling system is a group of channels, in which the hot mixture is cooled by the coolant in order to change the phase by cooling. By cooling, both liquid and solid particles of rock are formed in the flowing mixture. The group of channels of the cooling system is also designed for protection of walls of active and exposed parts of the device.

    [0040] The directing and application block includes a casing layers formation channel. This channel is a mixing slot, where solid and liquid particles of the flowing mixture are applied on the wall by kinetic energy and then they are deposited as the casing layers. After application, the hot particles in the layer are cooled autonomously, without the need for external cooling, with heat interchange between the hot and cold deposited fractions. And the casing layers formation channel is designed for discharge of cooling gases and excess particles of rock into the waste as well.

    [0041] The mechanical division and separation block consists of a system of branching channels and separators separating volumes of the mixture of rock materials and cooling gases into the other blocks, as necessary.

    [0042] Additional functions mechanisms may be controlled dispensers for adding the additive and these dispensers may be:
    1. a. a dispenser of coolant for cooling the hot and cold material for separation/disruption of the formed casing by the expansion joint, and/or
    2. b. dispensers of reinforcing concrete elements for improving the mechanical properties, and/or
    3. c. dispensers of foaming additives for improving and treatment of thermal-insulation and mechanical properties of the casing walls.


    [0043] Device comprises also a system of channels for additives dosage control into sub-groups of n number of channels in particles division and acceleration module, where it generates several treated streams of materials. These streams of materials form coaxial sandwich and composite structures of the casing not only along the layers which are layered in the casing, but also in radial direction relative to the axis of the borehole.

    [0044] The separation and concentration of the mixtures of rock particles and gases block is a group of separators, by which division, separation and discharge of the cooling gases is performed in the guide channels, where the cooling gases are separated and the mixtures of rock particles and gases are concentrated to the desired concentrations.

    [0045] The particles acceleration blocks are accelerating centrifugal devices increasing the kinetic energy of particles.

    [0046] The system for mixing the particles of hot and cold streams from directing and accelerating part is a flow mixer of flowing cold and hot materials into the casing formation channel, wherein the particles are in the step of directing and acceleration directed and applied in the casing layer in the casing formation channel.

    [0047] Device also preferably comprises a block of sliding forms of pipelines in the casing, which is a system of forming members, which are designed for formation of the pipe channel in the layered part of the casing along the borehole.

    [0048] The output streams separator is a separator at the outlet of the casing formation channel, which separates excess materials discharged out of the casing formation channel and parts of the hot gases for tempering the casing by controlled cooling.

    [0049] The controlled casing cooling block is a tempering and cooling system at an interface of the casing and the device.

    [0050] The device also comprises a waste outlet, by which the collecting and cooling device discharges all excess rocks and cooling gases materials, which are cooled to the temperature below the temperature of the device resistance.

    [0051] The system for mixing the particles consists of two systems of centrifugal channels, which are orientated against each other, wherein they may together form an obtuse angle, and they lead into the common area in the casing layers formation channel.

    [0052] The hot mixture formation block may preferably have an annular shape of cross-section similar to the casing being formed; thereby it allows performing standard mechanical drilling or core drilling in the central area of the annular casing formation.

    [0053] The present invention has the following advantages when compared to the prior art:
    The used technology uses the disintegrated rock material itself and the energy inputted in them in eroding to form the casing. Due to the casing formed according to this invention, the borehole is stabilized and protected against invasive action of materials from geological action of surroundings. By formation of the composite and laminated casing, the mechanical properties of the borehole are structurally improved. The casing of the walls is corrosion resistant and from this point of view it has longer lifetime. The logistical procedures of conventional technology are eliminated, thus reducing time demands and financial burdens of the deep boreholes formation.

    Description of drawings



    [0054] 

    Fig. no. 1 shows a technological scheme of casing formation.

    Fig. no. 2 shows a scheme of the mechanisms of casing formation by additive method.

    Fig. no. 3 shows a cross section of the borehole as the base for forming annular casing and pipes for distribution of media and supply of energy.

    Fig. no. 4 shows a flow of cold and hot materials and their mixing in the casing layers formation channel.

    Fig. no. 5 shows conical pipe formation.

    Fig. no. 6 shows a layered formation of the casing by different functional parts in the radial direction.


    Example of the Embodiment



    [0055] The formation of the casing from the disintegrated rock according to this invention is given by the sequence of treatment processes and coating of the rock vapour materials in the casing layers, by their autonomous cooling, when the casing is formed on the walls of the borehole. This occurs in the for casing formation, which provides the formation of the casing especially in the thermal drilling of the boreholes in geological formations according to the invention, in which one preferred embodiment is described in the following steps.

    [0056] The hot mixture of the vaporized rocks vapours and vaporized coolants vapours, which in certain phase of the technological process become carrier gases, with the temperature higher than the boiling point of each of the rocks fractions, enters the input part of the device for casing formation by an additive manner, i.e. the hot mixture formation block 1. In the block 2 of the mechanical distribution, this mixture of vaporized rocks vapours and vaporized coolant vapours is divided into two main streams. These two main streams are cooled to different temperatures in the selective and controlled cooling block 3. One stream is cooled so that the main and essential part of the flow is condensed and subsequently solidified particles. This stream, containing 60-90 weight %relative to the weight of the vaporized material flow of the entering mixture of vaporized rock vapours and vaporized coolant vapours, is a stream of cold material. From the stream of cold material, the excess mixtures of vaporized rocks vapours and vaporized coolant vapours are discharged into the waste channel of the waste part of the device 12 in an amount of 50-70 weight % relative to the weight of flow of vaporized material, which does not participate in the formation of the casing 13, prior to its further treatment. In the second flow of the mixture of vaporized rocks vapours and vaporized coolant vapours containing 10-40 weight % relative to the weight of flow of vaporized material of the entering, these mixtures are cooled so that the main and essential part of the flow are gaseous and liquid fractions, thereby the nature of the flow of hot material is given.

    [0057] All parts of the device, which come into contact with streams of flowing gases and high temperature vapours, are necessarily protected from their thermal effects. Protection is carried out by the surface cooling of functional bodies of the device, namely by continuous addition of the coolant. Except for the mentioned protective function, the coolant also performs a technological function, wherein the controlled cooling of the mixture of gases and vapours is controlled by its amount, namely by blending it in the mixture of gases and vapours; thereby the final mixture reaches the required temperature at which it has the desired functional properties. Heat transfer between coolant being mixed and rock vapours uses the latent heat by phase transition of the coolant and the heat consumed by the expansion of the mixture of the vaporized rock and cooling gases for cooling the final mixture. Addition of the coolant is controlled and realized by the selective and controlled cooling block

    [0058] By adding further coolant to the mixture of vaporized rocks vapours and vaporized coolant vapours, the total volume of flowing mixtures is increasing and thereby their temperature is decreasing and required fractions for further processing are being formed. The flowing mixture consists of technological fractions, i.e. of the rock material in a gas and/or liquid and/or solid phase, and of refrigerants. Excess cooling gases, which fulfil also the function of the carrier gases, are separated in the separation block 5 and discharged into the waste channel 12. The concentrated stream of gases and solidifying particles of rock continues to the area, where additives of reinforcing elements and/or foaming reagent in the line of cold materials are added or the hot concentrated mixture is cooled in order to form expansion joints by controlled cooling in the lines of cold materials and hot materials. Injection of additives is provided by mechanisms 4 of additional functions.

    [0059] In both streams, namely in the stream of cold materials and in the stream of hot materials in particles distribution and acceleration block 6 streams of mixtures are divided into three groups of channels, and in the first group are 6 pairs of channels, in the second group are 6 pairs of channels, and in the third group are 12 pairs of channels. These groups of channels are arranged so that they cover the whole surface of the casing width. The pairs of channels refer to two channels directed against each other. One channel is for cold material and the other channel is for hot material. Into the groups of channels, various additives are added, and thereby different mixtures of materials are formed and these flow in the appropriate groups of channels. In the first group, the material is treated so that the additives of reinforcement elements are added. The material modified in this way is further divided into 6 pairs of channels. In the second group, the material is not modified by adding additives. The material modified in this way is further divided into 6 pairs of channels. In the third group, the material is modified so that the foaming additives are added. The material modified in this way is further divided into 12 pairs of channels. Streams of mixtures of vaporized rocks vapours and vaporized coolant vapours are then accelerated to increase their kinetic energy. Increasing the speed of the particles is performed for the purpose of acceleration and direction, especially in the direction of the normal to the layers of the casing by inputting the kinetic energy into the cold particles and hot particles in the accelerating sections before entering the moulding channel 9 of the casing formation. Outlets of the channels of cold materials and hot materials of the streams are situated alternately in the mixing particles system 7, wherein the mixing of hot and cold material occurs by the outflow from each of these channels, wherein solid and liquid fractions are applied perpendicularly to the wall of the casing (Fig. 3). Different properties of materials flowing from different groups of channels allow to apply mixtures with different concentrations of cold particles, hot particles and additives, and thereby the applied layer (Fig. 6) forms the sandwich and composite arrangement with advantageous properties of the casing not only by modification of the properties of the applied layers over time, but also by applying different materials from the groups of channels in the direction of the axis of the applied casing.

    [0060] Particles flowing against each other are mixed by the effect of the centrifugal forces and applied to the wall or subsequently to the underlying casing layer 13, wherein they solidify by self-cooling during heat transfer in the applied layer between deposited hot, liquid and cold particles of the intermingled streams of cold materials and hot materials in the casing layer 14. Cooling gases and residues of non-applied rock particles are lead away along the casing being formed into the wasted part 12 of the device. The casing is temperated by controlled cooling of the waste mixtures using the hot vapours, which allows inside tensions in the formed casing to relax and to temper the casing by the separated vapours and gases of the discharged and excess material in the separator 10 of output streams, which are not involved in the formation of the casing and is lead away into the waste part of the device.

    [0061] In the waste part of the device 12, all fractions of residual/surplus material are cooled, wherein they are mixed to the final temperature of the carrier hot and cooling gases and residual rock material, most preferably in the range of 100-250°C, less preferably in the range of 200-450°C.

    [0062] In the formed peripheral casing layer (Fig. 4), the pipelines are formed by the moulding tool. By sliding the moulding tool in one such a pipeline, the aperture (Fig. 5) is being formed in the solidified casing in the direction of the casing formation, which forms the pipe channel along the borehole. To the body of the shifted moulding tool 16 of the piping formation block 8, the supply 15 of a medium, such as water, conductor of electricity, signal cables and others, is connected.

    [0063] The sequence of preparation and formation of the casing is shown schematically in the Figure 1.

    List of Reference Signs:



    [0064] 
    1. 1. A hot mixture formation block
    2. 2. A mechanical division block
    3. 3. A selective and controlled cooling block
    4. 4. Additional functions mechanisms
    5. 5. A separation block
    6. 6. Distribution and acceleration of particles blocks
    7. 7. A system for mixing particles
    8. 8. A pipeline forming block
    9. 9. A casing formation channel
    10. 10. An output streams separator
    11. 11. A casing controlled cooling block
    12. 12. A waste part of a device
    13. 13. A layered casing
    14. 14. An applied layer of a casing
    15. 15. Media supplies
    16. 16. A moulding tool
    17. 17. A borehole drilled by conventional or other technology
    18. 18. A rock



    Claims

    1. A process of formation of a casing in boreholes in additive manner, specifically in thermal drilling in geological formations, wherein

    - a vaporized rock and thermal energy inserted into the vaporized rock are used so that by a heat treatment a mixture of rock vapours passes through phase transformations, specifically to a liquid phase and a partially solid phase,

    - the heat treatment is a cooling in which the generated hot gas mixtures are cooled by coolant, by their cooling a phase transition occurs and by condensation liquid particles of rock are formed and by solidification solid particles of rock are formed in flowing mixture of rock material and cooling gases,

    - the generated hot gas mixtures are divided by fluid-mechanical treatment into at least two main streams, at least one stream is a stream of cold materials and at least one stream is a stream of hot materials, and at least from one of these streams other sidestreams are further diverging by which excess mixtures of rock materials and cooling gases are led away to the waste, wherein a part of the rock material from which the casing will be formed remains in the stream of cold and hot materials,

    - at least one stream of hot materials and at least one stream of cold materials are formed by heat treatment which is a multistage cooling of rock materials by controlled heat transformation, wherein at least two main streams are cooled to different temperature so that the stream of cold rock materials is cooled to the temperature at which gas rock material is transformed into the solid phase and solidifying rock particles are formed, which solidify before their application as the casing layer, and a stream of hot rock materials is cooled to the temperature which is above the temperature of melting and which allows them to be mixed with cold materials, thereby the formed mixture is cooled to the temperature below the solidification point and thus it forms a firm continuous casing layer,

    - transport of the rock material from a source of generation of hot gas mixtures, specifically mixtures of rock vapours and coolantvapours, to an area of formation of the casing by directing and application of the treated rock material to the borehole wall or to the underlying layers of the casing being formed, in the area of the casing formation, and by cooling the rock material, the layered casing (13) is formed, wherein the casing layers formation is continuous,

    - by further fluid-mechanical treatment, specifically by mixing of cold rock particles and hot rock particles, a mixture of rock material is formed, which is applied to the borehole wall, wherein it forms the first casing layer, and then it is applied to the underlying layers of the moulded casing and forms additional layers.


     
    2. The process of formation of the casing according to claim 1 characterized in that, waste gases, which are excess parts of cooling gases, are led away to the waste from main streams of materials by further fluid-mechanical treatment, specifically by separation, and thus the streams of solidifying rock particles formed by cooling the mixtures of hot rock vapours and cooling gases, which are at the same time the carrier gases, are concentrated.
     
    3. The process of formation of the casing according to any of claims 1 and 2 characterized in that one of the heat treatment methods is a cooling by expansion of mixtures of vaporized rock and cooling gases.
     
    4. The process of formation of the casing according to any of claims 1 to 3 characterized in that the step of separation of the excess parts of cooling gases is followed by further fluid-mechanical treatment, specifically by increasing of speed of cold and hot rock particles before mixing them, which is performed to accelerate and direct them.
     
    5. The process of formation of the casing according to any of claims 1 to 4 characterized in that the coolant also provides thermal protection to the device so that the coolant is continuously added as a cooling, protective and separating layer between all contact areas of the device and the mixture of hot flowing gases.
     
    6. The process of formation of the casing according to any of claims 1 to 5 characterized in that the formed casing layer solidifies during further heat treatment, which is self-cooling, wherein internal heat transfer occurs in the applied layer, specifically by heat exchange between applied hot and cold particles of the rock material in the casing layer.
     
    7. The process of formation of the casing according to any of claims 1 to 6 characterized in that in the area of casing formation a moulding device (16) is embedded, by sliding of which an aperture is formed in the solidifying casing, the aperture forms pipe channels in the layered casing (13) along the borehole, where a medium supply, such as a coolant pipeline, an electricity conductor, a signal conductor and others, is conveyed to the slid moulding device (16).
     
    8. The process of formation of the casing according to any of claims 1 to 7 characterized in that mixing of cold and hot rock particles is performed by action of opposing centrifugal streams of mixtures, which empty into a common area in a channel of formation of casing layers leading into the area of application of casing layers.
     
    9. The process of formation of the casing according to any of claims 1 to 8 characterized in that cooling of the casing is controlled by further heat treatment, in which hot waste gases are used, which are controlled by mixing with the coolant so that they temper and/or cool the formed casing.
     
    10. The process of formation of the casing according to any of claims 1 to 9 characterized in that cooling and condensation of discharged waste rock material provide cooling of cooling gases and excess rock material to the temperature in the range of 100-250 °C.
     
    11. The process of formation of the casing according to any of claims 7 to 10 characterized in that by sliding the moulding device, also connected media supplies are slid to the formed apertures, in particular of media such as coolant pipelines, conductors of electricity, signal conductors, and others, which are led by a generated aperture at the surface of the borehole.
     
    12. The process of formation of the casing according to any of claims 1 to 11 characterized in that specialized additives are added to the flowing mixture of rock material and cooling gases, which comprise:

    a. an increased supply of coolant for control the cooling of the mixture of rock vapours and cooling gases in order to form expansion joints in the casing using controlled cooling of applied material; and/or

    b. reinforcement elements in order to improve the mechanical properties of the casing; and/or

    c. a foaming additive in order to adjust thermal-insulating and mechanical properties of the walls of the casing,

    wherein addition of particular additives is performed before fluid-mechanical treatment of increasing the speed of cold and hot parts.
     
    13. The process of formation of the casing according to any of claims 1 to 12, characterized in that by different treatment of streams by addition of additives into the groups of channels, different materials are formed, which are further divided and after application they form one or more coaxial structures with the same or different characteristics, and thereby a sandwich and composite structure is formed in the casing.
     
    14. A device for performing the process of formation of the casing by additive manner, specifically in thermal drilling of boreholes in geological formations according to any of claims 1 to 13, the apparatus comprising the following technological parts:

    - a hot rock vapours mixture formation module (1),

    - fluid-mechanical treatment modules,

    - heat treatment modules,

    - transport modules,

    - directing and application modules;

    wherein:

    - the hot rock vapours mixture formation module is a hot rock vapours and cooling gases mixture formation module (1), which is a high-temperature energy flow generator, which produces the vaporized rock, forming hot rock vapours mixed with cooling gases entering into the casing formation;

    - the fluid-mechanical treatment modules include:

    • a fluid-mechanical division and separation block (2) which consists of a system of branching channels and separators separating volumes of the mixture of rock materials and cooling gases, as necessary, into the following blocks;

    • a separation and concentration block (5) which is a group of separators, by which division, separation and discharge of the cooling gases is performed in the channels, where the cooling gases are separated and the mixtures of rock particles and gases are concentrated to the desired concentrations,

    • particles division and acceleration modules (6) which are accelerating centrifugal devices increasing the kinetic energy of particles,

    • a system (7) for mixing the particles which consists of two systems of centrifugal channels, which are orientated against each other and lead into the common area in the casing layers formation channel (9),

    • an output streams separator (10) which is a separator at the outlet of the casing formation channel (9), which separates excess materials discharged out of the casing formation channel (9) and parts of the hot gases for tempering the casing by controlled cooling;

    - the heat treatment module includes:

    • a cooling system (3), which is a group of channels, in which the hot mixture is cooled by the coolant in order to change the phase by cooling, wherein by cooling both liquid and solid particles of rock are formed in the flowing mixture and it is designed also for protection of walls of active and exposed parts of the device,

    • a controlled cooling block (11) which is a tempering and cooling system at a interface of the casing and the device;

    - the directing and application modules include a casing layers formation channel (9), which is a mixing slot, where solid and liquid particles of the flowing mixture are applied on the wall by kinetic energy and then they are deposited in the casing layers and after application the hot particles in the layer are cooled autonomously, without the need for external cooling, with heat interchange between the hot and cold deposited layers, wherein the casing layers formation channel (9) is also designed for discharge of cooling gases and excess particles of rock into the waste.


     
    15. The device for performing the process of formation of the casing according to claim 14 characterized in that it further contains additional functions mechanisms (4), by which dispensers for adding the additives are controlled and these dispensers may be at least:

    • a dispenser of coolant for cooling the hot and cold material for separation/disruption of the formed casing by the expansion joint and/or

    • dispensers of reinforcing elements for improving the mechanical properties and/or

    • dispensers of foaming additives for improving and treatment of thermal-insulation and mechanical properties of the casing walls.


     
    16. The device for performing the process of formation of the casing according to any of claims 14 and 15 characterized in that it further comprises groups of channels for additives dosage control in particles division and acceleration module (6), where it generates differently treated streams of materials, which form coaxial sandwich and composite structures of the casing, not only along the layers which are layered in the casing, but also in radial direction relative to the axis of the borehole.
     
    17. The device for performing the process of formation of the casing according to any of claims 14 to 16 characterized in that the system (7) for mixing the particles of hot and cold streams from directing and accelerating part is a streams mixer of flowing hot and cold materials into the casing formation channel (9), wherein the particles are in the step of directing and acceleration directed and applied in the casing layer in the casing formation channel (9).
     
    18. The device for performing the process of formation of the casing according to any of claims 14 to 17 characterized in that it further comprises a block (8) of sliding forms of pipelines in the casing, which is a system of forming members, which are designed for formation of the pipe channel in the layered part of the casing along the borehole.
     
    19. The device for performing the process of formation of the casing according to any of claims 14 to 18 characterized in that it further comprises a waste outlet (12), by which the collecting and cooling device discharges all excess rocks and cooling gases materials, which are cooled to the temperature below the temperature of the device resistance.
     
    20. The device for performing the process of formation of the casing according to any of claims 14 to 19 characterized in that the hot mixture formation module (1) has an annular shape of cross-section similar to the casing being formed and thereby it allows to perform standard mechanical drilling or core drilling in the central area of the annular casing formation.
     
    21. The casing formed by the process of formation of a casing in boreholes in additive manner according to any of claims 1 to 13.
     
    22. The casing formed by the device for performing the process of formation of the casing according to any of claims 14 to 20.
     


    Ansprüche

    1. Verfahren zur Verrohrungsgestaltung in Bohrlöchern nach additiver Methode, nämlich beim thermischen Bohren in geologischen Formationen, wobei

    - verdampftes Gestein und darin eingesetzte thermische Energie so genutzt werden, dass eine Mischung verdampfter Gesteinsdämpfen Phasenumwandlungen durchgeht, nämlich zur Flüssigphase und zur teilfesten Phase,

    - Wärmebehandlung eine Kühlung ist, bei der erzeugte heiße Gasmischungen durch ein Kühlmedium gekühlt werden, durch deren Abkühlung es zur Zustandsänderung kommt und durch Kondensation flüssige und durch Erstarrung feste Gesteinspartikel in strömender Mischung von Gesteinsmaterial und Kühlgasen entstehen,

    - die erzeugten heißen Gasmischungen durch hydro-mechanische Behandlungen in mindestens zwei Hauptströme geteilt werden, davon mindestens ein Strom der Strom kalter Materialien und mindestens ein Strom der Strom heißer Materialien ist und mindestens von einem dieser Ströme sich weitere Nebenströme abtrennen, durch die überschüssige Mischungen von Gesteinsmaterialien und Kühlgasen in den Abfall abgeleitet werden, wobei ein Teil der Gesteinsmaterialien, aus denen die Verrohrung gestaltet wird, im Strom kalter und heißer Materialien bleibt,

    - mindestens ein Strom heißer Materialien und mindestens ein Strom kalter Materialien durch Wärmebehandlungen entstehen, nämlich durch mehrstufige Abkühlung der Gesteinsmaterialien mittels gesteuerter Wärmeumwandlung, wobei mindestens zwei Hauptströme auf unterschiedliche Temperatur abgekühlt werden, und zwar so, dass der Strom kalter Gesteinsmaterialien auf eine Temperatur abgekühlt wird, bei der das Gasgesteinsmaterial in Festphase übergeht und erstarrende Gesteinspartikel entstehen, die vor deren Auftragung als Verrohrungsschicht erstarren, und der Strom heißer Gesteinsmaterialien auf eine Temperatur abgekühlt wird, die über der Schmelztemperatur liegt und deren Vermischung mit kalten Materialien ermöglicht, wodurch die entstandene Mischung unter die Erstarrungstemperatur abgekühlt wird und dadurch starre durchgehende Verrohrungsschicht bildet,

    - durch Transport des Gesteinsmaterials von Erzeugungsquelle heißer Gasmischungen, nämlich Mischungen von Gesteins- und Kühlmediumsdämpfen, bis zur Verrohrungsgestaltungsstelle, durch Regulierung und Auftragung des behandelten Gesteinsmaterials in der Verrohrungsgestaltungsstelle an eine Bohrlochwand oder auf letzte Schichten der zu gestaltenden Verrohrung, und durch Abkühlung des Gesteinsmaterials geschichtete Verrohrung (13) gestaltet wird, wobei die Gestaltung der Verrohrungsschichten kontinuierlich verläuft;

    - durch weitere hydro-mechanische Behandlung, nämlich durch Vermischung von kalten Gesteinspartikeln und heißen Gesteinspartikeln, eine Gesteinsmaterialmischung entsteht, die an die Bohrlochwand aufgetragen wird, wobei sie die erste Verrohrungsschicht bildet und anschließend auf letzte Schichten der zu gestaltenden Verrohrung aufgetragen wird und weitere Verrohrungsschichten bildet.


     
    2. Verfahren zur Verrohrungsgestaltung nach Anspruch 1 dadurch gekennzeichnet, dass aus den Hauptmaterialströmen durch weitere hydro-mechanische Behandlungen, nämlich durch Separation, Abgase, nämlich überschüssige Kühlgasenteile, in den Abfall abgeleitet werden, wodurch die Ströme der erstarrenden Gesteinspartikel verdichtet werden, die durch Abkühlung der Mischungen von heißen Gesteinsdämpfen und Kühlgasen, die zugleich auch Trägergase sind, entstanden sind.
     
    3. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 2, dadurch gekennzeichnet, dass eine der Wärmebehandlungsmethoden die Kühlung mittels Expansion der Mischungen von verdampftem Gestein und Kühlgasen ist.
     
    4. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 3, dadurch gekennzeichnet, dass nach dem Schritt der Separation von überschussigen Kühlgasenteilen weitere hydro-mechanische Behandlung folgt, nämlich Geschwindigkeitserhöhung der kalten und heißen Gesteinspartikel vor deren Vermischung, die zur Beschleunigung und Regulierung durchgeführt wird.
     
    5. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 4, dadurch gekennzeichnet, dass das Kühlmedium auch für den Wärmeschutz der Vorrichtung sorgt, indem das Kühlmedium als Kühl- und zugleich als Schutz- und Separationsschicht zwischen allen Vorrichtungskontaktflächen und der Mischung von strömenden, heißen Gasen kontinuierlich zugegeben wird.
     
    6. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 5, dadurch gekennzeichnet, dass die gestaltete Verrohrungsschicht bei weiterer Wärmebehandlung, nämlich bei Selbstkühlung, erstarrt, wobei es in der aufgetragenen Schicht zur internen Wärmeübertragung kommt, und zwar durch einen Wärmeaustausch zwischen den aufgetragenen heißen und kalten Gesteinsmaterialpartikeln in der Verrohrungsschicht.
     
    7. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 6, dadurch gekennzeichnet, dass in der Verrohrungsgestaltungsstelle ein Formwerkzeug (16) platziert ist, durch dessen Gleiten in erstarrender Verrohrung eine Öffnung in der Verrohrung entsteht, die Rohrkanäle in der geschichteten Verrohrung (13) entlang des Bohrlochs bildet, wo an das geglittene Formwerkzeug (16) eine Mediumszufuhr, wie Rohrleitung des Kühlmediums, Stromleiter, Signalleiter usw., angeschlossen wird.
     
    8. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 7, dadurch gekennzeichnet, dass die Vermischung von kalten und heißen Gesteinspartikeln durch die Wirkung gegenläufiger Zentrifugalmischungsströme erfolgt, die in einen gemeinsamen Bereich in einem in Verrohrungsschichtenauftragungsraum mündenden Verrohrungsschichtengestaltungskanal münden.
     
    9. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 8, dadurch gekennzeichnet, dass weitere Wärmebehandlung eine regulierte Verrohrungskühlung ist, bei der heiße Abgase eingesetzt werden, die durch das Mischen mit dem Kühlmedium so reguliert werden, dass sie die gestaltete Verrohrung temperieren und/oder abkühlen.
     
    10. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 9, dadurch gekennzeichnet, dass die Kühlung und Kondensation des abgeleiteten Gesteinsabfallmaterials für die Abkühlung der Kühlgase und des überschussigen Gesteinsmaterials auf eine Temperatur im Bereich von 100 bis 250°C sorgt.
     
    11. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 7 und 10, dadurch gekennzeichnet, dass durch das Gleiten des Formwerkzeugs auch die angeschlossenen Medienzufuhren in den entstandenen Öffnungen geglitten werden, insbesondere Medien wie Rohrleitungen der Kühlmedien, Stromleiter, Signalleiter und andere, die durch die entstehende Öffnung an die Bohrlochoberfläche geleitet werden.
     
    12. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 11, dadurch gekennzeichnet, dass in die strömende Mischung von Gesteinsmaterial und Kühlgasen spezialisierte Additive zugegeben werden, darunter:

    a. erhöhte Kühlmediumszufuhr zur Kühlungsregulierung der Mischung von Gesteinsdämpfen und Kühlgasen, um mittels regulierter Kühlung des aufgetragenen Materials Dehnungsverbindungen in der Verrohrung zu bilden, und/oder

    b. Verstärkungselemente, um mechanische Eigenschaften der Verrohrung zu verbessern, und/oder

    c. schaumbildendes Additiv, um Wärmedämmfähigkeiten und mechanische Fähigkeiten der Verrohrungswände zu regulieren,

    wobei die Zugabe einzelner Additive vor der hydro-mechanischen Behandlung der Geschwindigkeitserhöhung der kalten und heißen Gesteinspartikel erfolgt.
     
    13. Verfahren zur Verrohrungsgestaltung nach einem der Ansprüche 1 und 12, dadurch gekennzeichnet, dass durch die unterschiedliche Behandlung der Ströme durch Additivzugabe in die Kanälegruppen unterschiedliche Materialien gebildet werden, die weiter geteilt werden und nach der Auftragung eine oder mehrere koaxiale Strukturen mir gleichen oder unterschiedlichen Eigenschaften bilden, wodurch in der Verrohrung eine Sandwich- und Kompositstruktur entsteht.
     
    14. Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach additiver Methode, nämlich beim thermischen Bohren der Bohrlöcher in geologischen Formationen, nach einem der Ansprüche 1 bis 13, wobei die Vorrichtung folgende technologische Teile umfasst:

    - Modul der Bildung heißer Gesteinsdämpfemischung (1),

    - Module der mechanischen Behandlungen,

    - Wärmebehandlungsmodule,

    - Transportmodule,

    - Regulierungs- und Auftragungsmodule;

    wobei:

    - Modul der Bildung heißer Gesteinsdämpfemischung ein Modul (1) der Bildung heißer Mischung von Gesteinsdämpfen und Kühlgasen ist, was ein Hochtemperaturenergieflussgenerator ist, der verdampftes Gestein erzeugt, bildend dabei heiße Gesteinsdämpfe gemischt mit den in der Verrohrungsgestaltung zugefügten Kühlgasen,

    - Module der hydro-mechanischen Behandlungen umfassen:

    • Block (2) der hydro-mechanischen Trennung und Separation, der aus einem System von Stichkanälen und Separatoren besteht, die die Mischungsmassen von Gesteinsmaterialien und Kühlgasen nach Bedarf in folgende Blöcke trennen;

    • Block (5) der Separation und Verdichtung, der eine Separatorengruppe ist, wodurch Trennung, Separation und Ableitung der Kühlgase in den Kanälen erfolgt, wo Kühlgase getrennt und Mischungen von Gesteinspartikeln und Gäsen auf gewünschte Konzentrationen verdichtet werden,

    • Blöcke (6) zur Partikeltrennung und -beschleunigung, die kinetische Partikelenergie erhöhende Beschleunigungszentrifugalvorrichtungen sind,

    • System (7) der Partikelversmischung, das aus zwei Stichkanälensystemen besteht, die gegeneinander orientiert sind und in den gemeinsamen Bereich im Kanal (9) der Verrohrungsschichtengestaltung münden,

    • Separator (10) der Ausgangsströme ist ein Separator am Ausgang des Kanals (9) der Verrohrungsgestaltung, der die außerhalb des Kanals (9) der Verrohrungsgestaltung abgeleiteten überschüssigen Materialien und Teile der heißen Gase zum Verrohrungstemperieren durch regulierte Kühlung abtrennt

    - Wärmebehandlungsmodul umfasst:

    • System (3) der Kühlung, das eine Kanälengruppierung ist, worin die heiße Mischung durch Kühlmedium gekühlt wird, um den Zustand durch Abkühlung zu ändern, wobei durch Abkühlung sowohl flüssige als auch feste Gesteinsteile in der strömenden Mischung entstehen und das auch zum Schutz der Wände der aktiven und exponierten Vorrichtungsteile bestimmt ist,

    • Block (11) der regulierten Abkühlung, der ein Temper- und Abkühlsystem an der Schnittstelle der Verrohrung und der Vorrichtung ist,

    - Regulierungs- und Auftragungsmodule umfassen den Kanal (9) der Verrohrungsschichtengestaltung, der eine Mischfuge ist, wo mit kinetischer Energie die festen und flüssigen Teile der strömenden Mischung an die Wand aufgetragen und anschließend in den Verrohrungsschichten geschichtet und nach Auftragung die heiße Partikel in der Schicht autonom abgekühlt werden, ohne das es einer externen Kühlung bedarf, beim gegenseitigen Wärmeaustausch zwischen den heißen und kalten geschichteten Schichten, wobei der Kanal (9) der Verrohrungsschichtengestaltung auch zur Ableitung von Kühlgasen und überschüssigen Gesteinspartikeln in den Abfall vorgesehen ist.


     
    15. Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach Anspruch 14, dadurch gekennzeichnet, dass die weiter Mechanismen (4) der Zusatzfunktionen umfasst, durch die Dosierer für Additivzugabe gesteuert werden und bei diesen Dosierern kann es sich mindestens um die Folgenden handeln:

    • Dosierer des Kühlmediums zur Abkühlung des heißen und kalten Materials für Trennung/Abbrechung der gebstalteten Verrohrung durch Dehnungsverbindung, und/oder

    • Dosierer der Verstärkungselemente zur Verbesserung der mechanischen Eigenschaften, und/oder

    • Dosierer der schaumbildenden Additive zur Verbesserung und Behandlung der Wärmedämmfähigkeiten und der mechanischen Fähigkeiten der Verrohrungswände.


     
    16. Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach einem der Ansprüche 14 und 15, dadurch gekennzeichnet, dass die weiter Kanälengruppierungen zur Regulierung der Additivdosierung im Modul (6) zur Partikeltrennung und - beschleunigung umfasst, wo sie unterschiedlich behandelte Materialströme bildet, die koaxiale Sandwich- und Kompositstrukturen der Verrohrung bilden, nicht nur entlang der in der Verrohrung geschichteten Schichten, sondern auch in radialer Richtung in Bezug auf die Bohrlochachse.
     
    17. Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach einem der Ansprüche 14 bis 16, dadurch gekennzeichnet, dass das System (7) der Partikelvermischung der heißen und kalten Ströme aus dem Leitungs- und Beschleunigungsteil ein Mischer der in den Kanal (9) der Verrohrungsgestaltung strömenden kalten und heißen Materialströmen ist, wobei die Partikel in dem Leitungs- und Beschleunigungsteil reguliert und in der Verrohrungsschicht im Kanal (9) der Verrohrungsgestaltung aufgetragen werden.
     
    18. Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach einem der Ansprüche 14 bis 17, dadurch gekennzeichnet, dass das die weiter einen Block (8) der Gleitverrohrungsrohrformen umfasst, der ein System der Formierungsglieder ist, die zur Bildung eines Rohrkanals im geschichteten Teil der Verrohrung entlang des Bohrlochs bestimmt sind.
     
    19. Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach einem der Ansprüche 14 bis 18, dadurch gekennzeichnet, dass das die weiter eine Ableitung (12) des Abfalls umfasst, wodurch die Sammel- und Kühlvorrichtung alle überschüssige Gesteins- und Kühlgasematerialien ableitet, die auf eine unter der Vorrichtungsbeständigkeitstemperatur liegende Temperatur abgekühlt werden
     
    20. Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach einem der Ansprüche 14 bis 19, dadurch gekennzeichnet, dass das Modul (1) der Bildung der heißen Mischung über ein ringförmiges, der gestaltenden Verrohrung ähnliches Profil verfügt, womit der Block im Zentralbereich der ringförmigen Verrohrungsgestaltung ermöglicht, übliches mechanisches Bohren oder Kernbohren durchzuführen.
     
    21. Verrohrung gestaltet durch das Verrohrungsgestaltungsverfahren in Bohrlöchern nach additiver Methode nach einem der Ansprüche 1 bis 13.
     
    22. Verrohrung gestaltet mit der Vorrichtung zur Durchführung des Verrohrungsgestaltungsverfahrens nach einem der Ansprüche 14 bis 20.
     


    Revendications

    1. Procédé de formation d'un tubage dans des trous de forage de manière additive, en particulier dans des forages thermiques de formations géologiques, où

    - une roche vaporisée et l'énergie thermique insérée sont utilisées de sorte que, par un traitement thermique, un mélange de vapeurs de roche vaporisée passe par des transformations de phase, en particulier par une phase liquide et une phase partiellement solide,

    - le traitement thermique est un refroidissement, dans lequel les mélanges de gaz chauds générés sont refroidis par un liquide de refroidissement, ainsi une transition de phase se produit, et par condensation et solidification, des particules liquides de roche et des particules solides de roche se forment dans un mélange fluide de matériau rocheux et de gaz de refroidissement,

    - les mélanges de gaz chauds générés sont divisés par traitement mécanique des fluides en au moins deux flux principaux, dont au moins un flux est un flux de matériaux froids, et au moins un flux est un flux de matériaux chauds, et à partir au moins d'un de ces flux, d'autres flux secondaires sont séparés, par lesquels les mélanges excédentaires de matériaux rocheux et de gaz de refroidissement sont évacués vers les déchets, dans lesquels une partie du matériau rocheux, à partir duquel le tubage sera formé, reste dans le flux de matériaux froids et chauds,

    - au moins un flux de matériaux chauds et au moins un flux de matériaux froids sont formés par traitements thermiques, ce traitement est un refroidissement à plusieurs étapes de matériaux rocheux par transformation thermique contrôlée, dans lequel au moins deux flux principaux sont refroidis à des températures différentes de sorte que le flux de matériaux rocheux froids est refroidi à la température à laquelle le matériau rocheux gazeux est transformé en phase solide et forment ainsi des particules de roche solidifiantes, qui se solidifient avant leur application en tant que couche de tubage, et un flux de matériaux de roche chaude est refroidi à la température qui est supérieure à la température de fusion et permettant ainsi de les mélanger avec des matériaux froids, de sorte que le mélange formé est refroidi à une température inférieure au point de solidification et forme de cette maniere une couche de tubage continue et ferme,

    - le transport du matériau rocheux à partir d'une source de génération de mélanges de gaz chauds, en particulier de mélanges de vapeurs de roches et de vapeurs de réfrigérant vers une zone de formation du tubage en dirigeant et en appliquant le matériau rocheux traité sur la paroi du trou de forage ou sur les couches sous-jacentes du tubage en cours de formation, dans la zone de la formation du tubage (13) et par refroidissement du matériau rocheux, le tubage á couches est formé, où la formation des couches du tubage étant continue,

    - par un traitement mécanique des fluides supplémentaire, en particulier par mélange de particules de roche froide et de particules de roche chaude, un mélange de matériau rocheux est formé, qui est appliqué sur la paroi du trou de forage, dans lequel il forme la première couche du tubage, puis il est appliqué sur les couches sous-jacentes du tubage moulé et forme ainsi des couches supplémentaires.


     
    2. Le procédé de formation du tubage selon la revindication 1, caractérisé en ce que les gaz résiduaires, qui sont des parties excédentaires de gaz de refroidissement, sont évacués vers les déchets des flux principaux de matériaux par d'autres traitements mécanique des fluides, en particulier par séparation, et ainsi les flux de particules de roche solidifiantes formées par refroidissement des mélanges de vapeurs de roche chaude et de gaz réfrigérants, qui sont également les gaz vecteurs, sont concentrés.
     
    3. Le procédé de formation du tubage selon l'une des revindications 1 et 2, caractérisé en ce que l'un des procédés de traitement thermique est un refroidissement par expansion de mélanges de roches vaporisées et de gaz de refroidissement.
     
    4. Le procédé de formation du tubage selon l'une des revindications 1 à 3, caractérisé en ce que l'étape de séparation des parties excédentaires de gaz de refroidissement est suivie d'un autre traitement mécanique des fluides, en particulier en augmentant la vitesse des particules de roche froide et chaude avant leur mélange pour les accélérer et les diriger.
     
    5. Le procédé de formation du tubage selon l'une des revindications 1 à 4, caractérisé en ce que le réfrigérant assure également une protection thermique au dispositif, de sorte que le réfrigérant est ajouté en continu comme couche de refroidissement, de protection et de séparation entre toutes les zones de contact du dispositif et le mélange de gaz s'écoulant à chaud.
     
    6. Le procédé de formation du tubage selon l'une des revindications 1 à 5, caractérisé en ce que la couche du tubage formée se solidifie pendant un autre traitement thermique, qui est auto-refroidissant, dans lequel le transfert de chaleur interne se produit dans la couche appliquée, en particulier par échange de chaleur entre les particules chaudes et froides appliquées du matériau rocheux dans la couche du tubage.
     
    7. Le procédé de formation du tubage selon l'une revindications 1 à 6, caractérisé en ce que dans la zone de formation du tubage un dispositif (16) de moulage est intégrée, par coulissement duquel une ouverture est formée dans le tubage solidifiant, l'ouverture forme des canaux de tuyaux dans le tubage (13) en couches le long du trou de forage, où une alimentation de médium, telle qu'une conduite de refroidisseur, un conducteur électrique, un conducteur de signal et autres, est acheminée vers le dispositif (16) de moulage coulissant.
     
    8. Le procédé de formation du tubage selon l'une des revindications 1 à 7, caractérisé en ce que le mélange de particules de roche froide et chaude est effectué par l'action de fluxes centrifuges de mélanges opposés, qui se vident dans une zone commune dans un canal de formation de couches de tubage menant dans la zone d'application des couches de tubage.
     
    9. Le procédé de formation tdu tubage selon l'une des revindications 1 à 8, caractérisé en ce que le refroidissement du tubage est commandé par un autre traitement thermique, dans lequel les gaz résiduaires chauds sont utilisés et sont contrôlés par mélange avec le réfrigérant de manière à ce qu'ils tempèrent et/ou refroidissent le tubage formée.
     
    10. Le procédé de formation du tubage selon l'une des revindications 1 à 9, caractérisé en ce que le refroidissement et la condensation des stériles évacués assurent le refroidissement des gaz de refroidissement et de l'excès de matériau rocheux jusqu'à une température comprise entre 100 et 250 °C.
     
    11. Le procédé de formation du tubage selon l'une des revindications 7 à 10, caractérisé en ce que, par coulissement du dispositif de moulage, on fait coulisser également des alimentations raccordées de médium aux ouvertures réalisées, en particulier de médium tels que des conduites de refroidisseur, des conducteurs d'électricité, des conducteurs de signaux et autres, qui sont guidés par une ouverture générée à la surface du trou de forage.
     
    12. Le procédé de formation du tubage selon l'une des revindications 1 à 11, caractérisé en ce que des additifs spécialisés sont ajoutés au mélange en écoulement de matériau rocheux et de gaz de refroidissement, comprend:

    a. un apport accru de réfrigérant pour contrôler le refroidissement du mélange de vapeurs de roche et de gaz de refroidissement, afin de former des joints de dilatation dans le tubage en utilisant le refroidissement contrôlé du matériau appliqué; et/ou

    b. des éléments de renforcement afin d'améliorer les propriétés mécaniques du tubage; et/ou

    c. un additif moussant afin d'ajuster les propriétés d'isolation thermique et mécaniques des parois du tubage,

    dans laquelle l'ajout d'additifs particuliers est effectué avant le traitement mécanique des fluides de l'augmentation de la vitesse des pièces froides et chaudes.
     
    13. Le procédé de formation du tubage selon l'une des revindications 1 à 12, caractérisé en ce que par traitement différent de flux par ajout d'additifs dans les groupes de canaux, différents matériaux sont formés, qui sont en outre divisés et, après application, ils forment une ou plusieurs structures coaxiales ayant les mêmes caractéristiques ou des caractéristiques différentes, et ainsi une structure sandwich et composite est formée dans le tubage.
     
    14. Un dispositif pour effectuer le procédé de formation du tubage par manière additive, en particulier dans le forage thermique des trous de forage dans des formations géologiques selon l'une des revindications 1 à 13, le dispositif comprenant les composants technologiques suivantes:

    - un module (1) de formation de mélanges de vapeurs de roche chaude,

    - des modules de traitements mécaniques,

    - des modules de traitement thermique,

    - des modules de transport,

    - des modules de direction et d'application;

    dans lequel:

    - le module de formation de mélange de vapeurs de roche chaude est un module (1) de formation de mélange de vapeurs de roche chaude et de gaz de refroidissement, qui est un générateur de flux d'énergie à haute température, qui produit la roche vaporisée, formant des vapeurs de roche chaude mélangées à des gaz de refroidissement entrant dans la formation du tubage;

    - les modules de traitement mécanique des fluides comprennent:

    • un bloc (2) de division et de séparation mécanique des fluides qui consiste en un système de canaux de branchement et de séparateurs séparant des volumes de mélange de matériaux rocheux et de gaz de refroidissement, le cas échéant, en blocs suivants;

    • un bloc (5) de séparation et de concentration qui est un groupe de séparateurs, par lequel la division, la séparation et l'évacuation des gaz de refroidissement sont effectuées dans les canaux, où les gaz de refroidissement sont séparés et les mélanges de particules de roche et de gaz sont concentrés aux concentrations souhaitées,

    • des modules (6) de division et d'accélération de particules qui sont dispositifs centrifuges augmentant l'énergie cinétique des particules,

    • un système (7) pour mélanger les particules qui consistent en deux systèmes de canaux centrifuges, qui sont orientés l'un contre l'autre et conduisent dans la zone commune dans un canal (9) de formation des couches du tubage,

    • un séparateur (10) de flux de sortie, qui est un séparateur à la sortie du canal (9) de formation du tubage, sépare les matériaux en excès évacuées hors du canal (9) de formation du tubage et une partie des gaz chauds pour tempérer le tubage par refroidissement contrôlé;

    - le module de traitement thermique comprend:

    • un système (3) de refroidissement qui est un groupe de canaux, dans lequel le mélange chaud est refroidi par le réfrigérant afin de changer la phase par refroidissement, dans lequel, des particules liquides et solides de roche sont formées dans le mélange en écoulement et il est également conçu pour protéger les parois des parties actives et exposées du dispositif,

    • un bloc (11) de refroidissement contrôlé qui est un système de trempe et de refroidissement à l'interface entrele tubage et le dispositif;

    - les modules de direction et d'application comprennent un canal (9) de formation de couches du tubage, qui est une rainure de mélange où des particules solides et liquides du mélange en écoulement sont appliquées sur la paroi par énergie cinétique et ensuite sont déposées dans les couches du tubage et après application, les particules chaudes dans la couche sont refroidies de manière autonome, sans besoin de refroidissement externe, avec échange de chaleur entre les couches chaudes et froides déposées, dans lequel le canal (9) de formation de couches du tubage est également conçu pour évacuer les gaz de refroidissement et les particules de roche en excès dans les déchets.


     
    15. Le dispositif pour effectuer le procédé de formation du tubage selon la revindication 14, caractérisé en ce qu'il contient en outre des mécanismes (4) de fonctions supplémentaires, par lesquels des distributeurs pour addjonction d'additifs sont commandéset ces distributeurs peuvent être au moins:

    • un distributeur de réfrigérant pour refroidir le matériau chaud et le matériau froid pour la séparation/rupture du tubage formée par le joint de dilatation et/ou

    • des distributeurs d'éléments de renforcement pour améliorer les propriétés mécaniques et/ou

    • des distributeurs d'additifs moussants pour l'amélioration et le traitement de l'isolation thermique et des propriétés mécaniques des parois du tubage.


     
    16. Le dispositif pour effectuer le procédé de formation du tubage selon l'une des revindications 14 et 15, caractérisé en ce qu'il comprend en outre un groupe de canaux pour le contrôle du dosage des additifs dans le module (6) de division et d'accélération des particules, où il génère des flux de matériaux traités différemment, forment des structures sandwich coaxiales et composites du tubage, non seulement le long des couches qui sont couchées dans le tubage, mais aussi dans la direction radiale par rapport à l'axe du trou de forage.
     
    17. Le dispositif pour effectuer le procédé de formation du tubage selon l'une des revindications 14 à 16, caractérisé en ce que le système (7) pour mélanger les particules de flux chauds et froids provenant de la partie directrice et accélératrice est un mélangeur de flux de matériaux chaudes et froides s'écoulant dans le canal (9) de formation du tubage, dans lequel les particules sont, pendant l'étape de direction et d'accélération, dirigées et appliquées dans la couche du tubage dans le canal (9) de formation du tubage.
     
    18. Le dispositif pour effectuer le procédé de formation du tubage selon l'une des revindications 14 à 17, caractérisé en ce qu'il comprend en outre un bloc (8) de formes coulissantes de pipelines dans le tubage, qui est un système d'éléments de formation qui sont conçus pour la formation du canal de pipeline dans la partie couchée du tubage le long du trou de forage.
     
    19. Le dispositif pour effectuer le procédé de formation du tubage selon l'une des revindications 14 à 18, caractérisé en ce qu'il comprend en outre une sortie (12) de déchets, par laquelle le dispositif de collecte et de refroidissement évacue tous les excès de roches et de gaz de refroidissement, qui sont refroidis à la température inférieure à la température de la résistance de l'appareil.
     
    20. Le dispositif pour effectuer le procédé de formation du tubage selon l'une des revindications 14 à 19, caractérisé en ce que le module (1) de formation du mélange chaud a une forme annulaire de section transversale similaire à celle du tubage formé et permet ainsi d'effectuer un forage mécanique standard ou un carottage dans la zone centrale de la formation du tubage annulaire.
     
    21. Le tubage formé par le procédé de formation du tubage dans les trous de forage de manière additive selon l'une des revindications 1 à 13.
     
    22. Le tubage formé par le dispositif pour effectuer le procédé de formation du tubage selon l'une des revindications 14 à 20.
     




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