Apparatus and method for controlling flashing in rock drilling

The air mist flushing control system addresses dust and clogging issues by dynamically adjusting liquid content in air mist based on penetration rate and rock conditions, ensuring efficient and clean drilling operations.

JP7804696B2Active Publication Date: 2026-01-22SANDVIK MINING & CONSTR OY

Patent Information

Application Number
JP2023566564
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-04-29
Filing Date
2022-04-21
Publication Date
2026-01-22
Estimated Expiration
2042-04-21

AI Technical Summary

Technical Problem

Existing rock drilling technologies face issues with dust and larger cuttings formation during drilling, leading to clogging and inefficiencies due to inadequate control of flushing fluid composition and supply, particularly in varying rock conditions.

Method used

A control system for air mist flushing that adjusts the liquid content in the air mist based on real-time penetration rate and rock properties, using sensors and control units to maintain a consistent moisture level in the cuttings, preventing clogging and dust while optimizing energy use.

Benefits of technology

The system effectively manages moisture levels in cuttings to prevent clogging and dust, enhancing drilling efficiency, reducing energy consumption, and maintaining a clean work environment, suitable for both manned and unmanned operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

Apparatus, method and computer program product for controlling flushing in rock drilling and rock drilling rigs. The apparatus includes a control unit (CU) and a computer program (22) for controlling the supply of a liquid component (LC) in an air mist flushing system in response to a detected seepage rate (15) of the drilling performed. An operator (22) can set a desired moisture target value (16) for the cuttings (19) removed from the drill hole (12) and the control system automatically adjusts the flushing system to control the supply of the liquid component.
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Description

[Technical Field]

[0001] The present invention relates to a device for controlling air mist flushing of a drilling unit in rock drilling. The air mist comprises pressurized air and one or more liquid components. The air mist is used to flush the drilled hole.

[0002] The invention further relates to a rock drilling rig and a method and computer program product for controlling an air mist flushing system.

[0003] The field of the invention is more particularly defined in the preambles of the independent claims.

[0004] In mines and other work sites, different types of rock drilling rigs are used to drill holes into the rock surface. The rock drilling rig is equipped with one or more booms, and the rock drill is located at the distal end of the boom. During drilling, dust and larger cuttings are formed and need to be removed from the drill hole. Therefore, the rock drill is equipped with a flushing device to supply a flushing fluid to the inside of the drill hole through the drilling tool. The flushing medium can be air, water, or mist. There are different solutions for controlling the flushing process and the supply of the flushing fluid. However, known solutions exhibit several drawbacks. Summary of the Invention

[0005] It is an object of the present invention to provide a new and improved apparatus, method and computer program product for controlling air mist flushing, and further to provide a new and improved rock drilling rig utilizing the disclosed solution.

[0006] The device according to the invention is characterized by the characterizing features of the first independent device claim.

[0007] The rock drilling rig according to the invention is characterized by the characterizing features of the second independent equipment claim.

[0008] The method according to the invention is characterized by the characterizing features of the independent method claim.

[0009] A computer program product according to the invention is characterized by the characterizing features of the third independent device claim.

[0010] The concept of the disclosed solution is that the device includes one or more control units for controlling the supply of pressurized air and an air mist containing one or more liquid components. The control units are provided with data on the infiltration rate of the excavation. The control units are then responsive to the input data on the infiltration rate to generate control signals for controlling the supply of the one or more liquid components of the air mist. The control units may also be provided with input parameters that influence the flushing control that is performed.

[0011] In other words, the water content of the supplied air mist is adjusted in relation to data on the penetration rate, which is the advance of the drill bit into the rock over a period of time. Typically, the penetration rate is expressed in m / min.

[0012] The objective of the disclosed solution is to influence the properties of the cuttings removed by flushing from the drill hole, primarily by adjusting the liquid content in the air mist. Furthermore, the objective is to keep the moisture level of the removed cuttings relatively constant, despite possible variations in infiltration rate during the drilling of a single drill hole. The system can then react to, for example, fluctuating rock properties and other external variables.

[0013] The advantage of the disclosed solution is that, when the amount of liquid content in the air mist and other flushing parameters are properly adjusted, clogging and other problems with drill cuttings can be avoided. If the moisture concentration is too high, clogging can occur. On the other hand, if the moisture level is too low, dust can cause serious problems. In this solution, moisture-based flushing not only prevents clogging and dusting problems, but also saves energy and flushing medium, ensuring full drilling efficiency and keeping the work site and drilling rig clean.

[0014] Furthermore, the disclosed operator-free flushing control is well suited for unmanned drilling processes and remotely controlled drilling.

[0015] According to one embodiment, the penetration rate can be determined in a general manner by different detection means. One or more sensors or detection devices can detect the movement of the rock drill on the feed beam of the rock drilling unit. Alternatively, the operation of the feed device can be detected, for example to determine the flow rate of the working fluid fed to the feed cylinder of the drilling unit, and the penetration rate can be determined based on the detected flow.

[0016] According to one embodiment, the supply of liquid components is automatically adjusted when the infiltration rate changes due to external factors such as changes in rock quality, which can indirectly indicate rock quality, thereby indirectly controlling the water content depending on the rock properties.

[0017] According to one embodiment, the disclosed solution can also detect drilling parameters selected by an operator and control the supply of liquid components based on them. The operator can, for example, reduce the drilling penetration rate by reducing the impact pressure of the impact device, thereby attempting to improve the straightness of the drill hole when drilling demanding rock. The system can monitor the input drilling parameters and perform the necessary controls for flushing.

[0018] According to one embodiment, the liquid component may be water, an aqueous solution or any suitable liquid mixture.

[0019] According to one embodiment, the control unit is configured to inspect each drill hole separately and to perform the disclosed corrective measures as the case may be for each drill hole, in other words, the control unit is configured to inspect each drill hole progressively as drilling progresses and to perform the disclosed corrective measures accordingly.

[0020] According to one embodiment, the control unit may be provided with an input target value for the moisture content of cuttings removed from the wellbore being drilled. The control unit may also determine an actual value for the moisture content of the cuttings, then compare the input target value with the actual value, and adjust the supply of the liquid component based on the comparison.

[0021] According to one embodiment, the control unit is configured to communicate with at least one user interface by means of which an operator can input desired target values ​​into the control unit.

[0022] According to one embodiment, the user interface may include a visual or graphic display element for inputting the target value, which may be intuitive and may improve user convenience.

[0023] According to one embodiment, the input target and actual values ​​are relative values.

[0024] According to one embodiment, the input target and actual values ​​are percentage values, so the value under investigation is a percentage of moisture.

[0025] According to one embodiment, the control unit is configured to calculate the removal rate of cuttings removed per period during drilling in response to input data on the diameter of the drill bit, data on the density of the drilled rock material, and the penetration rate, and to calculate the required liquid component supply rate in response to the input target value of water content and the calculated data on the removal rate of cuttings. In other words, the control unit is configured to determine the actual value of the water content by a calculation process, and there is no need to provide the control unit with detected data of the actual water content. Thus, in this embodiment, an indirect control principle is implemented.

[0026] According to one embodiment, the calculated removal rate of flushed cuttings per period during drilling can be referred to as the volumetric infiltration rate, since it indicates the volumetric amount of solid rock removed per period. The supply of pressurized air and liquid components needs to be adjusted according to the detected volumetric infiltration rate so that the desired water content value can be reached.

[0027] According to one embodiment, the control unit is provided with input data relating to the density of the rock material to be excavated, or alternatively the control unit is provided with detection data during the excavation process, and is configured to determine the density of the rock material in response to the detection data. The control unit may be provided with a suitable algorithm for performing the density calculation or determination.

[0028] According to one embodiment, the control unit is provided with detection data relating to the actual moisture content of the drill cuttings removed from the drill hole, whereby feedback control is provided, and the control unit is configured to control the supply of the liquid component in response to the input feedback data. In this embodiment, there are one or more sensors or detection devices configured to detect the moisture content of the cuttings. The sensor may, for example, be located in association with the dust collection system.

[0029] According to one embodiment, the disclosed solution includes flushing parameters input into a control unit, the input control parameters including a data set relating to an acceptable moisture value for the moisture content of the cuttings. The acceptable moisture value can be determined through actual testing and measurement. Furthermore, the data set may be customized for, for example, different drilling situations, rock types, and drilling tools.

[0030] According to one embodiment, the control unit is configured to prevent control situations where the delivery of the liquid component results in a flashing situation of the air mist outside of the allowed moisture value defined by the input data set.

[0031] According to one embodiment, the acceptable flushing parameters or data sets are represented by a predetermined flushing map. For example, there may be different flushing parameters and flushing maps based on actual studies performed for different rock properties and drilling tools.

[0032] According to one embodiment, the control unit can automatically select such control parameters from a data set of acceptable moisture values ​​that minimize the supply of liquid components. In other words, this embodiment utilizes the lowest possible moisture content, while still taking care not to generate large amounts of dust outside the drill hole during the drilling process. The advantage of this principle is that a higher infiltration rate can typically be achieved when the liquid component supply rate is low. A higher infiltration rate means more efficient drilling and savings in time and money. Furthermore, the liquid component tanks on board the rock drill can be smaller.

[0033] According to one embodiment, the control unit is configured to control at least one control element for controlling the supply of the liquid component.

[0034] According to one embodiment, the control unit is configured to control at least one liquid component supply valve.

[0035] According to one embodiment, the control unit is configured to control at least one pump for controlling the supply of the liquid components, which pump can then function as the control element mentioned above.

[0036] According to one embodiment, the control unit can further control the supply of airflow according to the detected infiltration rate. The advantage of airflow control is that it can prevent dust overflow and dispersion. Furthermore, if the size of the air can be adjusted according to the actual flushing needs, significant energy savings can be achieved.

[0037] According to one embodiment, the control unit is configured to control an on-board compressor of the flushing system.

[0038] According to one embodiment, the control unit is configured to control the flow of air supplied from a compressed air line at a mine or work site.

[0039] According to one embodiment, the disclosed solution relates to a rock drilling rig, the rock drilling rig comprising: a mobile carrier, at least one drilling boom movably mounted relative to the carrier, at least one drilling unit mounted to the at least one drilling boom and including a supply beam, a rock drill mounted to the supply beam, a drilling tool attachable to the rock drill, an air mist flushing system for supplying pressurized air and at least one liquid component into a drilled hole, and an apparatus for controlling the air mist flushing system, the apparatus according to any one of the features and embodiments disclosed herein.

[0040] According to one embodiment, a rock drilling rig is provided with an on-board air mist flushing system, which then includes a compressor for generating pressurized air, and further includes a tank and a pump for supplying a liquid component, and the system further includes at least one liquid component supply channel provided with at least one supply valve for regulating the flow of the supplied liquid component.

[0041] According to one embodiment, the rock drilling rig is provided with connections to a mine or work site water line, or a mine or work site compressed air line, or both.

[0042] According to one embodiment, one or more external flushing medium sources, such as external reservoirs and systems, can also be implemented in the disclosed solution. The supply system may be mobile.

[0043] According to one embodiment, the drilling unit comprises at least one detection device for detecting the penetration rate during drilling.

[0044] According to one embodiment, the rock drilling rig is provided with at least one detection device for detecting the moisture content of cuttings removed from the drilled hole during drilling.

[0045] According to one embodiment, the disclosed solution relates to a method for controlling flushing in rock drilling, the method comprising: using air mist flushing, wherein the flushing fluid comprises pressurized air and at least one liquid component; controlling the supply of air mist to the flushing system by at least one control unit during drilling; detecting a penetration rate of the drilling; and controlling the supply of the at least one liquid component of the air mist in response to the detected penetration rate and parameters input to the control unit.

[0046] According to one embodiment, the method further includes maintaining a constant or substantially constant moisture content of the flushed cuttings for each inspected drill hole despite varying infiltration rates during drilling of the drill hole.

[0047] According to one embodiment, the method further comprises providing the control unit with a selectable target moisture value for the moisture content of cuttings flushed from the wellbore during drilling.

[0048] According to one embodiment, the method further includes calculating in the control unit a volume of removed and flushed solids of cuttings for each period of time in response to data related to the diameter of the drilling tool and the detected penetration rate; providing a target value to the control unit defining a relative amount between the liquid component of the air mist and the calculated volume of solids of cuttings; and controlling the supply of the liquid component in response to the target value.

[0049] According to one embodiment, the method further includes providing a predetermined data set to the control unit defining an acceptable moisture content of the cuttings, and providing assistance to an operator on a user interface for selecting acceptable parameters for air mist flushing to be used in drilling.

[0050] According to one embodiment, the disclosed solution relates to a computer program product for controlling the supply of air mist for flushing in rock drilling, the computer program product comprising program code means configured to perform the steps and procedures disclosed in claims 8 to 11 when the computer program product is executed on a computer or data processing device.

[0051] The above disclosed embodiments can be combined to form suitable solutions having the above characteristics required.

[0052] Some embodiments are explained in more detail in the accompanying drawings. [Brief explanation of the drawings]

[0053] [Figure 1] 1 is a schematic side view of a rock drilling rig for surface drilling, provided with a drilling unit and a system for flushing cuttings; FIG. [Figure 2] FIG. 1 is a schematic diagram illustrating some of the features related to the parameters in the disclosed flushing control. [Figure 3] FIG. 1 is a schematic diagram of an apparatus for controlling air mist flushing. [Figure 4] FIG. 1 is a schematic diagram of some control parameters utilized in the apparatus of the present disclosure. [Figure 5] FIG. 1 is a schematic diagram illustrating the disclosed control principle. [Figure 6] FIG. 1 is a schematic diagram showing possible liquid components of an air mist. [Figure 7] 10 is a schematic graph showing a flushing map.

[0054] For clarity, the figures show some embodiments of the disclosed solution in a simplified manner. In the drawings, like reference numerals indicate like elements. DETAILED DESCRIPTION OF THE INVENTION

[0055] FIG. 1 shows a rock drilling rig 1 intended for surface drilling. The rock drilling rig 1 includes a mobile carrier 2 and at least one drilling boom 3 connected to the carrier 2. The distal end of the drilling boom 3 includes a drilling unit 4 having a feed beam 5 and a rock drill 6 supported thereon. A drilling tool 7 is connectable to the rock drill 6. The rock drill 6 may include a shank adapter at its front end for connecting the tool 7. The rock drill 6 may include an impact device 8 and a rotation device 9. The rock drill 6 can be moved on the feed beam 5 by a feed device 10. The distal end of the drilling tool 7 includes a drill bit 11. Cuttings are flushed from the bottom of the drill hole 12 during drilling by conveying a flushing flow through the rock drill 6 and the drilling tool 7 to the bottom of the drill hole 12. The drilling tool 7 may include a tubular extension rod or tube, the interior of which provides a flow path for the flushing medium. As the flushing medium flows through the drill bit 11, cuttings can be displaced from the wellbore.

[0056] In the disclosed solution, air mist flushing is implemented. Accordingly, the carrier 2 may include a compressor C for supplying pressurized air and a liquid component source L for supplying one or more liquid components to generate the desired flow and composition for the air mist. Alternatively, or in addition, a supply unit 13 may be present for connecting the carrier 2 to one or more external sources of compressed air and liquid components. For clarity, tubes, hoses, and other flow paths for conveying the flushing medium to the drilling unit 4 are not shown in FIG. 1 . The air mist flushing system and its devices and control elements may be controlled by one or more control units CU. The control units CU may be provided with data regarding the infiltration rate and moisture content of the cuttings. Accordingly, the infiltration rate may be detected by one or more sensors S1, and one or more moisture sensors S2 may be associated with the cuttings removal system 14.

[0057] 2 discloses that a penetration rate 15 and a moisture target value 16 are input to the control unit to control the supply of the liquid component. The system can compare the detected actual value 17 of the moisture content of the cuttings with the moisture target value 16 when generating the control signal. Alternatively, the system can calculate a removal rate 18 of the cuttings removed for each period during drilling and compare the calculated data with the moisture target value 16. The removal rate can be calculated according to data regarding the diameter of the drill bit, data regarding the density of the drilled rock material, and the detected penetration rate. The diameter D of the drill bit 11 is shown in FIG. 3.

[0058] FIG. 3 illustrates features of the disclosed cuttings moisture control system, whose objective is to maintain a relatively constant moisture level in the removed cuttings 19 despite possible variations in infiltration rate 15 during the drilling of a single drill hole 12. The disclosed automatic flushing process and system can be advantageously implemented in an automated drilling process. An operator 20 can input control parameters into the control unit CU via a user interface UI. The user interface UI can include one or more graphic elements 21 to assist in providing the parameters. For example, there may be a graphic element showing a selected moisture content target value. The target value can be shown to the operator visually and numerically, such as a percentage value. The graphic element 21 can show a tolerance range within which the desired value can be selected, so that the operator 20 is assisted or forced to make a rational choice in an intuitive manner. Flushing can be controlled indirectly because the operator first selects the desired moisture percentage in the cuttings, then the system calculates the amount of rock material removed during drilling, and finally the system calculates the amount of water or other liquid component needed to achieve the set moisture percentage. Operation is easy for the operator, as only the target value needs to be entered. The system takes care of the rest of the control and adjusts the flushing to possible external fluctuations.

[0059] The control unit CU is provided with one or more computer program products 22 or control algorithms that can be executed in a processor of the control unit CU. The control unit CU is configured to generate control signals CS, which contain the necessary input control parameters and sensed data, for one or more control elements 23 that control the supply of at least the liquid component LC and possibly also the supply of pressurized air PA. The control elements 23 can be, for example, pumps or valves.

[0060] FIG. 4 discloses some control parameters of the drilling and flushing process. The flushing parameters have already been disclosed above in this document. The drilling parameters may be feed parameters (speed, force), impact parameters (energy, frequency), and rotation parameters (speed, torque). When controlling flushing, the drilling parameters are also taken into consideration. Furthermore, the drilling tool used may affect the flushing process control.

[0061] FIG. 5 shows a combined presentation of the moisture target level 24 [%], infiltration rate 15 [m / min], detected flow of the liquid component 25 [l / min], and calculated moisture content of the drilled cuttings 26 [%]. The calculated moisture content 26 is calculated based on data regarding the detected flow of the liquid component 25 and the detected infiltration rate 15. Arrow 27 indicates a decrease in infiltration rate 15 due to factors external to drilling control. The excavated rock may be changed, for example, to a harder rock. If the infiltration rate decreases, the calculated moisture content 26 increases, which causes the flushing control system to decrease the flow of the liquid component, as can be seen by examining curve 25. A new equilibrium is then found. If the infiltration rate increases, as indicated by arrow 28, a decrease in the moisture content curve 26 occurs, which causes the system to increase the supply flow of the liquid component, as can be seen by examining curve 25. Again, a new equilibrium is found. Thus, the flushing system takes the change in infiltration rate 15 into account and attempts to move curve 26 closer to the set target level 24.

[0062] FIG. 6 discloses that the liquid component may have several alternative forms.

[0063] Figure 7 shows an example of a flushing map 29. The purpose of the flushing map 29 is to indicate acceptable flushing parameter values. Parameters within the dust-generating region D should be avoided because too little liquid in the air mist can cause dust. Using too much liquid can lead to clogging. Therefore, operating parameters within the prohibited clogging region C1 must be avoided. There is also a second clogging region C2, within which clogging is possible, and this region should also be avoided if possible. Therefore, operating parameters that result in a situation between regions D and C1, marked with arrow 30, should be favored in flushing control to achieve improved, problem-free air mist flushing. Customized flushing maps may exist for different drilling tools and rock types.

[0064] The disclosed area can be defined as a data set in the control unit. Furthermore, the flushing map and the flushing parameters used can be displayed on the display of the rock drilling rig for the operator. In this way, valuable feedback can be provided to the operator.

[0065] The drawings and the associated description are intended only to illustrate the concept of the invention, in details which may vary within the scope of the claims.

Claims

1. 1. A device for controlling air mist flushing of a rock drilling unit (4), said air mist comprising pressurized air (PA) and at least one liquid component (LC), The device comprises at least one control unit (CU) for controlling the supply of the air mist; said control unit (CU) is provided with data on the penetration rate (15) of the excavation; said control unit (CU) being configured to generate a control signal (CS) for controlling the supply of said at least one liquid component (LC) of said air mist in response to input data relating to a penetration rate (15) and parameters input to said control unit (CU); the control unit is configured to receive an input target value (16) for moisture content of cuttings (19) removed from a drill hole (12) being drilled; The control unit determining the actual moisture content of the cuttings (19); further configured to adjust the supply of said liquid component (LC) in response to a comparison of said input target value (16) with said actual value; the control unit (CU) is provided with detection data relating to the actual moisture (17) of the cuttings removed from the drill hole (12), thereby providing a feedback control, and the control unit (CU) is configured to control the supply of the liquid component (LC) in response to the input feedback data.

2. The control unit calculating a removal rate of said removed cuttings (19) per period during said drilling in response to input data relating to the diameter (D) of the drill bit (11), data relating to the density of said drilled rock material, and said penetration rate (15); 2. The apparatus of claim 1, configured to calculate a required liquid component feed rate in response to the input target value (16) of moisture content and the calculated data on cuttings removal rate.

3. the flushing parameters input to the control unit (CU) include a data set relating to acceptable moisture values ​​for the moisture content of the cuttings; 2. The device according to claim 1, characterized in that:

4. the control unit (CU) is configured to automatically select such control parameters from the data set relating to acceptable moisture values ​​that minimize the supply of liquid components; 4. The device according to claim 3, characterized in that

5. The control unit (CU) is configured to control at least one liquid composition control element (23), 2. The device according to claim 1, characterized in that:

6. The control unit (CU) is further configured to control the supply of air flow in response to the detected permeation rate (15).

2. The device according to claim 1, characterized in that:

7. A rock drilling rig (1), comprising: a movable carrier (2); at least one excavating boom (3) movably mounted relative to said mobile carrier (2); at least one drilling unit (4) attached to said at least one drilling boom (3) and including a supply beam (5); a rock drill (6) attached to said supply beam (5); and a drilling tool (7) attachable to said rock drill (6); an air mist flushing system for supplying pressurized air (PA) and at least one liquid component (LC) into the drilled hole (12); and a device for controlling the air mist flushing system; The device is a device according to any one of claims 1 to 6. A rock drilling rig (1) characterized in that

8. 1. A method for controlling flashing in rock drilling, comprising: using air mist flushing, wherein the flushing fluid comprises pressurized air (PA) and at least one liquid component (LC); receiving a target moisture value (16) for the moisture content of cuttings (19) flushed from a wellbore (12) during drilling; controlling the supply of said air mist to a flushing system by at least one control unit (CU) during said drilling; Detecting the penetration rate (15) of the excavation; and controlling the supply of said at least one liquid component (LC) of said air mist in response to said detected permeation rate (15) and parameters input to said control unit (CU), determining the actual moisture content of the cuttings (19); adjusting the supply of said liquid component (LC) in response to a comparison of said input target moisture value (16) with said actual value; receiving detection data relating to the actual moisture (17) of the cuttings removed from the drill hole (12), whereby feedback control is provided to the control unit (CU); controlling the supply of the liquid component (LC) in response to the input feedback data; A method characterized by:

9. maintaining a constant moisture content of cuttings (19) flushed from each drill hole (12) inspected despite variations in infiltration rate (15) during the drilling of said drill hole (12); The method of claim 8, characterized by:

10. calculating in said control unit (CU) the volume of solids of said removed and flushed cuttings (19) per period in response to data relating to the diameter (D) of the drilling tool (7, 11) and said detected penetration rate (15); providing the control unit (CU) with a target value (16) defining the relative amount between the liquid component (LC) of the air mist and the calculated volume of the solids of the cuttings (19); controlling the supply of the liquid component (LC) in response to the target value (16); The method of claim 8, characterized by:

11. providing said control unit (CU) with a predetermined data set defining an allowable moisture content of said cuttings (19); providing assistance to an operator (20) on a user interface (UI) for selecting acceptable parameters for the air mist flushing to be used in the drilling; The method of claim 8, characterized by:

12. A computer program product (22) for controlling the supply of air mist flushing in rock drilling, said computer program product (22) comprising program code means configured to perform the steps and procedures disclosed in any one of claims 8 to 11 when said computer program product (22) is run on a computer or data processing device.

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