A method for quantifying and evaluating ore - finding information in exploration boreholes

By constructing exploration engineering databases and grading methods, the problems of inaccurate mineralization grading and terrain influence in the existing technology are solved, and the quantitative and two-dimensional expression of mineralization characteristics are realized, supporting the industrial applications of exploration and mining.

CN120070789BActive Publication Date: 2025-07-25CHENGDU UNIVERSITY OF TECHNOLOGY +1
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Patent Information

Application Number
CN202510151436.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-11
Publication Date
2025-07-25
Estimated Expiration
2045-02-11

AI Technical Summary

Technical Problem

The prior art is difficult to accurately characterize the mineralization grading situation of ore deposits and the overall situation of ore bodies, and cannot express mineralization characteristics and change trends on two-dimensional planes. It is difficult to compare the degree of mineralization of drilling due to terrain.

Method used

By constructing a exploration engineering database, drilling coordinate points projection are carried out, mineralization segment levels are divided, and the rice 100-segment ratio and the rice 100-segment thickness formula are used for classification, the rice 100-segment ratio plane distribution map is drawn, and the point control area is constructed to achieve the quantification and comparison of mineralization characteristics.

Benefits of technology

It realizes the comprehensive and objective expression of mineralization characteristics and geological overall situation on a two-dimensional plane, which is convenient for understanding and communication, provides instructions for ore-rich parts, and supports exploration and mining plan design.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a method for quantifying and evaluating the ore-seeing information of exploration boreholes, which relates to the technical field of geological exploration. The method includes the following steps: (1) collecting exploration engineering data and constructing a borehole database; (2) projecting borehole coordinate points onto a map; (3) constructing a grading database for base sampling grade segments; (4) determining the grading division indexes of meters per hundred segments / thickness ratio; (5) comparing the mineralization of boreholes; (6) constructing point control areas; (7) drawing plane distribution maps of meters per hundred segments / thickness ratio at each level. The present invention can comprehensively and objectively reflect the mineralization characteristics and the overall geological situation; avoid the drawback of the one-sided description of mineralization intensity in existing work; accurately express the mineralization situation of exploration engineering objectively and comprehensively, which is easy to understand and convenient for communication, and has wide applicability and standardization; combine the objectively described geological information of the ore deposit and the evaluation of the engineering control degree, facilitating industrial applications such as exploration and mining.
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Description

Technical Field

[0001] The present invention provides a method for quantifying and evaluating ore - seeing information in exploration boreholes, which relates to the technical field of geological exploration. Background Art

[0002] The formation of ore deposits is usually affected by the combined action of many ore - controlling factors, so their occurrences show a high degree of complexity. How to objectively express complex ore - deposit geological information and accurately extract mineralization characteristics to guide the exploration, development and comprehensive utilization of mineral resources is an important content that the geological community and the industrial community have long been concerned about.

[0003] Patent CN114814982B provides a method for predicting favorable ore - forming positions of uranium deposits in granite bodies. After interpreting remote - sensing image data of the exploration area, information such as geophysical structure and geological structure is obtained, and a three - dimensional geological model of the working area is constructed based on this. After identifying the granite body and its boundary buffer zone in the three - dimensional geological model, the rock - body contact zone is delineated, and finally the ore - forming positions are predicted. This technology has the following disadvantages:

[0004] (1) This scheme can locate and depth - predict the favorable ore - forming positions of uranium deposits in granite bodies in three - dimensional space, but there are inevitably errors and it is not precise enough;

[0005] (2) It is impossible to measure the mineralization degree of the ore body;

[0006] (3) It is impossible to analyze the spatial characteristics of the mineralization intensity of a certain drilling project.

[0007] Although significant progress has been made in the three - dimensional modeling technology of ore deposits, two - dimensional maps are still the most intuitive way to present the appearance of ore deposits and are also the main guiding tools used on the front line of exploration and development work. Compared with exploring ore - deposit geological information from aspects such as remote sensing, petrology, structural geometry, geophysics and chemistry and evaluating the ore - seeing situation of projects, the drilling exploration information is the most direct, comprehensive and objective means in geological exploration work.

[0008] Existing methods interpret the ore - seeing situation of projects by establishing a drilling database and using the horizontal projection of the project. For example, CN114329301A provides a method for batch - calculating the horizontal projection of the ore - seeing cut - through points of uranium - ore drill holes. After establishing a drilling database and calling the drilling inclination records and ore - seeing parameters, the coordinates of the ore - seeing cut - through points of the drill holes are calculated, and finally they are projected and output according to the coordinate points. This technology has the following disadvantages:

[0009] (1) Due to the limitation that the projection points of exploration projects on the plane are discretely distributed, this technology can only show two situations of ore - seeing and non - ore - seeing in engineering drill holes, and cannot accurately depict the specific ore - seeing situation of each drill hole, such as how the mineralization is classified, whether the mineralization is uniform, and what the apparent thickness of the ore body is, etc.

[0010] (2) Each drilling project is an isolated entity. Through horizontal projection, only the distribution of drill holes can be reflected, and they cannot be connected. It is impossible to express the overall situation of the ore body and the degree of mineralization, let alone meet the work requirements of geological workers. How to utilize this discrete exploration engineering information to accurately and objectively depict the characteristics of the ore deposit on a specific plane and express the mineralization information has become an urgent problem to be solved currently.

[0011] CN114266179B provides a method and device for processing and analyzing deposit drilling information based on finite elements, which mentions the idea of deposit grade division. It processes deposit drilling information based on mineralization classification and can achieve information visualization. This technology has the following disadvantages: This method is not sufficient to support the comparison of the change trends of mineralization characteristics between drill holes with different footage, and lacks a systematic grade division method to depict the planar characteristics of ore body mineralization. Summary of the Invention

[0012] The development purpose of the present invention is to establish a method for expressing the spatial mineralization characteristics of natural mineralized sections based on exploration engineering to evaluate the ore - seeing situation of the project. The results of this method can objectively depict the mineralization effect reflected by the geological exploration information of the discrete - sampled ore deposit. In the exploration stage of mineral resources, the resulting maps can indicate the metallogenic potential and exploration direction of the ore deposit; while in the exploration stage of the ore deposit, the resulting maps can provide ideas for the design of mining plans.

[0013] Through this solution, the following problems are intended to be solved:

[0014] (1) Construct a systematic mineralization classification scheme, which can not only solve the problem of only one - sidedly expounding the mineralization intensity in existing work, but also avoid the drawback of the ratio of elemental mineralization grade to mineralization apparent thickness being too absolute;

[0015] (2) Affected by the terrain, the opening positions of drill holes are different. According to the exploration situation, the drill hole footage is different, resulting in different elevation ranges of the underground space exposed by each drill hole. Therefore, it is difficult to compare. The meter - percentage classification technology involved in this solution helps drill hole projects with different footage to be expressed and compared on a two - dimensional plane, and can show the mineralization characteristics and change trends;

[0016] (3) The technology of this solution is convenient for indicating the activity center of mineralization in the ore - body enrichment part, providing research ideas for geological scholars and workers.

[0017] The specific technical solution is as follows:

[0018] A method for quantifying and evaluating ore - seeing information of exploration drill holes, comprising the following steps:

[0019] (1) Collection of exploration engineering data and construction of a drill hole database:

[0020] Collect exploration projects such as boreholes within the working area, and organize the geospatial information of the projects, including the opening location and total footage (depth); comprehensively organize the geological information obtained from exploration projects, including the observation / sampling location, lithology, mineralization grade, and analyzed sample data, to form a borehole database for exploration projects (DBS: Database - space). The borehole database for exploration projects includes project geospatial information, construction parameter information, and geological information. The basic structure of the project borehole database DBS is as follows:

[0021]

[0022] Among them, X n , Y n , Dept n are respectively the X - axis coordinate, Y - axis coordinate, and total footage of project n; Dep n1 is the footage where the observation / sampling point n1 is located, and Cu n1 etc. are geological information such as copper grade, and so on for points n1, n2 to nm.

[0023] (2) Projection mapping of borehole coordinate points:

[0024] Project the borehole coordinate points of the exploration ore deposit onto a plane, conduct spatial analysis on each borehole point one by one with a radius of 200 meters, and draw two - dimensional maps. This projection plane is called the project projection plane. After traversing all exploration projects, finally form a connected and closed polygon, that is, the projection map of the borehole center points.

[0025] (3) Construction of the basic analysis whole - sample grade - segment classification database:

[0026] Based on the basic - score whole - sample mineralization classification results, taking exploration projects as basic units, merge the basic analysis whole - samples into a natural mineralization segment according to the principles of the same mineralization grade and spatial adjacency, including the A - grade mineralization segment, B - grade mineralization segment, and C - grade mineralization segment of single - level ore segments, and the X + - grade mineralization segment, A + - grade mineralization segment, B + - grade mineralization segment of the upper - containing grade ore segments. In addition, it also includes the W - grade intercalated rock segment. Based on the exploration industrial standards of the main exploited ore type, copper ore, merge them into natural mineralization segments of different grades, and divide different segment - thickness grade classes according to the apparent thickness conditions of each grade of ore segments.

[0027] Finally, form the basic analysis whole - sample grade - segment classification database (DBH: Database - hiberarchy), and its basic element structure of the database is as follows:

[0028] DBH = {X k , Y k , Dept k , Hk , α k , β k …}

[0029] Among them, X k , Y k is the spatial coordinate of drilling point k, Dept k is the total footage, H k is the drilling stage classification result, α k , β k etc. are the corresponding geological information.

[0030] (4) Determination of the index for grading and dividing the meter section / thickness ratio:

[0031] In the basic analysis of the full sample level segment classification database, the segment thickness class and the length of the mine are counted based on the segment level, and the segment frequency and segment cumulative thickness are obtained. According to the formulas of meter-per-hundred segment rate and meter-per-hundred thickness rate, the meter-per-hundred segment rate and meter-per-hundred thickness rate corresponding to different levels of each drill hole are obtained. Finally, according to the classification standards of meter-per-hundred segment rate and meter-per-hundred thickness rate, the two are classified and divided, so as to investigate the complexity of mineralization of each exploration project, comprehensively compare the different situations of the natural mineralization sections of each exploration project, and obtain the plane distribution characteristics of mineralization.

[0032] (5) Drilling mineralization comparison;

[0033] (6) Construction of point control areas;

[0034] A borehole element is a unit in space that is centered on the drilling point of the exploration project and has a radius of r, and is composed of a closed curve / broken line. On a two-dimensional map, a borehole element is represented as a two-dimensional block centered on the engineering drilling point. The point control area is formed by the intersection and expansion of each borehole element. The basic steps for constructing a point control area are as follows:

[0035] (6.1) Based on the drilling point, the initial point control area / drilling element is expanded outward with a radius of half the exploration project spacing (r = 200m), forming a perfect circular area with the engineering drilling point as the center.

[0036] (6.2) Perform spatial analysis on all initial point control areas within a certain level of exploration engineering spacing (2r). If the distance between two points (d-distance) is less than the exploration engineering spacing of this level (d < 2r), then there must be two intersection points based on the connecting line between the two points.

[0037] (6.3) Search for a distance of r outward from the engineering drilling point, and the search direction must completely cover 360°. If there is another intersection line generated by the connection line referring to this engineering drilling point in this direction, then use this intersection line as the boundary of the point control area. If there are multiple qualified intersection lines, use the intersection line closest to the engineering drilling point as the boundary of the point control area. If there is no qualified intersection line, use the connection line as the boundary of the point control area. The area enclosed by each boundary is the scope of the point control area.

[0038] (6.4) According to the basic analysis of the whole sample level section classification database, assign the meter - hundred - segment / thickness rate data corresponding to this engineering drilling point to the entire point control area.

[0039] (6.5) Color the point control area according to the meter - hundred - segment / thickness rate data of different levels.

[0040] (7) Draw the plane distribution maps of the meter - hundred - segment / thickness rate of each level;

[0041] After the construction of the point control area is completed, make the distribution maps of the meter - hundred - segment / thickness rate of different mineralization levels, including the plane distribution map of the single - level meter - hundred - segment rate, the plane distribution map of the upper - containing - level meter - hundred - segment rate, the plane distribution map of the single - level meter - hundred - thickness rate, and the plane distribution map of the upper - containing - level meter - hundred - thickness rate.

[0042] The present invention is a method system based on exploration engineering to quantify the ore - seeing situation of the project and reflect the spatial variation characteristics of natural mineralized sections. Compared with the existing schemes, this scheme can (1) avoid the defect that it is difficult to compare due to the uneven footage of each project affected by terrain, divide each project into independent and interrelated units on the two - dimensional plane, and can comprehensively and objectively reflect the mineralization characteristics and the overall geological situation; (2) establish a systematic mineralization classification scheme to avoid the drawback of too one - sided description of mineralization intensity in existing work; (3) use two - dimensional maps as the direct carrier, can objectively and comprehensively express the mineralization situation of exploration engineering accurately, is easy to understand and convenient for communication, and has wide applicability and standardization; (4) The enriched part of the ore body indicates the activity center of mineralization, combines the objectively described geological information of the ore deposit and the evaluation of engineering control degree, and facilitates industrial applications such as exploration and mining. Brief Description of the Drawings

[0043] Figure 1 is the flow chart of the present invention;

[0044] Figure 2 is the schematic diagram of the x - level mineralized section of a certain borehole in the embodiment;

[0045] Figure 3 is the engineering spatial analysis and borehole point B in the embodiment + schematic diagram of the construction of the upper - containing - level section distribution;

[0046] Figure 4 is Borehole No. 1 in the embodiment+ Variation diagram of the percentage of hundred segments of premium rice and the percentage of hundred thickness of rice;

[0047] Figure 5 For borehole No. 2B of the embodiment + Variation diagram of the percentage of hundred segments of premium rice and the percentage of hundred thickness of rice;

[0048] Figure 6 For borehole No. 3B of the embodiment + Variation diagram of the percentage of hundred segments of premium rice and the percentage of hundred thickness of rice;

[0049] Figure 7 For borehole No. 4B of the embodiment + Variation diagram of the percentage of hundred segments of premium rice and the percentage of hundred thickness of rice;

[0050] Figure 8 For boreholes No. 1 and 4B of the embodiment + Comparison diagram of grades;

[0051] Figure 9 For boreholes No. 2 and 3B of the embodiment + Comparison diagram of grades. Specific implementation manners

[0052] The specific technical solutions of the present invention will be described in combination with the embodiments.

[0053] A method for quantifying and evaluating the ore-seeing information of exploration boreholes, as Figure 1 shown, includes the following steps:

[0054] (1) Collection of exploration engineering data and construction of borehole database:

[0055] Fully collect exploration engineering such as boreholes within the working area, and sort out the geospatial information of the engineering, including but not limited to the opening position, total footage (depth), etc. Comprehensively sort out the geological information obtained from the exploration engineering, including but not limited to the observation / sampling position, lithology, mineralization grade, analysis sample data, etc., to form an exploration engineering borehole database (DBS: Database - space). The exploration engineering borehole database includes engineering geospatial information, construction parameter information, and geological information. Taking a certain ore section of a copper metal deposit in a certain place in China as an example, comprehensively sort out the exploration engineering data of the deposit, collect the exploration data of 324 boreholes, and construct an engineering borehole database DBS based on this. Its basic structure is as follows:

[0056]

[0057] Among them, X n , Y n , Dept n are respectively the X - axis coordinate, Y - axis coordinate, and total footage of engineering n; Dep n1 is the footage where the observation / sampling point n1 is located, Cun1 such as copper grade are geological information, and so on from points n1, n2 to nm.

[0058] (2) Projection mapping of drilling coordinate points:

[0059] Project the 324 drilling coordinate points of the explored deposit onto a plane, conduct spatial analysis on each drilling point one by one with a radius of 200 meters, and draw two-dimensional maps. This projection plane is called the engineering projection plane. After traversing all exploration projects, finally form a connected and closed polygon, that is, the projection map of the drilling center points.

[0060] (3) Construction of the basic analysis whole-sample grade-section classification database:

[0061] Based on the basic classification results of whole-sample mineralization, taking exploration projects as basic units, merge the basic analysis whole-samples into a natural mineralization section according to the principles of the same mineralization grade and spatial adjacency. As shown in Figure 1 , it includes grade A mineralization sections, grade B mineralization sections, and grade C mineralization sections of single-level ore sections, and grade X + grade mineralization sections, grade A + grade mineralization sections, grade B + grade mineralization sections of the upper-bearing grade ore sections. In addition, it also includes grade W intercalated rock sections. Based on the exploration industrial standards of the main exploited ore type, copper ore, merge them into natural mineralization sections of different grades, as shown in Table 1. According to the apparent thickness of each grade of ore sections, divide different section thickness grade classes (taking the minimum mining thickness Hm = 4m of the copper ore type in the explored deposit as an example, as shown in Table 2 and Figure 3 .

[0062] Finally, form the basic analysis whole-sample grade-section classification database (DBH: Database-hiberarchy), and its basic element structure of the database is as follows:

[0063] DBH = {X k , Y k , Dept k , H k , α k β k ...}

[0064] Among them, X k , Y k are the spatial coordinates of drilling point k, Dept k is the total footage, H k is the classification result of the drilling section, and α k , β k etc. are the corresponding geological information.

[0065] Table 1

[0066]

[0067] Table 2

[0068]

[0069] (4) Determination of the classification criteria for the rate of meters per hundred segments / thickness:

[0070] In the full-sample grade classification database for basic analysis, taking the section level as the benchmark, the section thickness grade classes and the mine length are respectively statistically analyzed to obtain the section frequency and the cumulative section thickness. According to the formulas for the rate of meters per hundred segments and the rate of meters per hundred thickness, the rate of meters per hundred segments and the rate of meters per hundred thickness corresponding to different section levels of each borehole are obtained. Finally, according to the classification criteria for the rate of meters per hundred segments and the rate of meters per hundred thickness, as shown in Table 3 and Table 4, the two are classified and divided, so as to investigate the mineralization complexity of each exploration project, comprehensively compare the different situations of the natural mineralization sections of each exploration project, and obtain the planar distribution characteristics of mineralization.

[0071] Table 3

[0072]

[0073]

[0074] Table 4

[0075]

[0076] (5) Comparison of borehole mineralization:

[0077] From the sample borehole data, it can be obtained that:

[0078] The changing trends of the rate of meters per hundred segments and the rate of meters per hundred thickness of Borehole 1 in the upper, middle, and lower sections are shown in the figure, as Figure 4 . The rate of meters per hundred segments and the rate of meters per hundred thickness respectively show a downward and an upward trend in the borehole, indicating that the mineralization in the upper part of the ore section is more dispersed and the degree of mineralization is not as good as that in the lower part. Therefore, Borehole 1 still has the potential for further exploration.

[0079] The changing trends of the rate of meters per hundred segments and the rate of meters per hundred thickness of Borehole 2 in the upper, middle, and lower sections are shown in the figure, as Figure 5 . The rate of meters per hundred segments and the rate of meters per hundred thickness respectively show a trend of first decreasing and then increasing and first increasing and then decreasing in the borehole, indicating that the mineralization in the lower part of the borehole is more dispersed and the degree of mineralization is not as good as that in the upper part. Therefore, it is not very meaningful to continue the exploration downward in Borehole 2.

[0080] The changing trends of the rate of meters per hundred segments and the rate of meters per hundred thickness of Borehole 3 in the upper, middle, and lower sections are shown in the figure, as Figure 6。The percentage of Mibai and the thickness rate of Mibai show an upward trend and a trend of first decreasing and then increasing respectively in the drill hole, indicating that the middle and lower parts of the ore section are more fragmented and the mineralization is dispersed. The mineralization degree in the upper part is better than that in the lower part. However, due to the upward trend of the thickness rate of Mibai in the lower part, it shows that there is still potential for further exploration in Drill Hole 3.

[0081] The changing trends of the percentage of Mibai and the thickness rate of Mibai in the upper, middle, and lower sections of Drill Hole 4 are shown in the figure, as Figure 7 。Both the percentage of Mibai and the thickness rate of Mibai show an upward trend in the drill hole, indicating that there is no mineralization in the upper part of the ore section. Although the mineralization in the lower part is dispersed, the mineralization degree is better. Therefore, there is still potential for further exploration in Drill Hole 4.

[0082] Table 5

[0083]

[0084] Table 6

[0085]

[0086] For the two drill holes numbered 1 and 4, as Figure 8 , the cumulative thickness of the B + -grade mineralized section in Drill Hole 1 is 250.13 meters, and the cumulative thickness of the B + -grade mineralized section in Drill Hole 4 is 251.67 meters. The thicknesses of the B + -grade mineralized sections of the two are approximately equal; the footage of Drill Hole 1 is 501.26 meters, and the footage of Drill Hole 4 is 1193.01 meters. Obviously, the footage of Drill Hole 1 is much smaller than that of Drill Hole 4; from the formula of the thickness rate of Mibai , the thickness rate of Mibai in Drill Hole 1 is 49.9 meters per 100 meters, and the thickness rate of Mibai in Drill Hole 4 is 21.1 meters per 100 meters. Obviously, the thickness rate of Mibai in Drill Hole 1 is greater than that in Drill Hole 4. Therefore, compared with Drill Hole 4, the mineralization in Drill Hole 1 is better. It can be obtained that when the thickness of the mineralized section in the drill hole project is the same, the thickness rate of Mibai decreases with the increase of the footage, and the mineralization intensity also decreases accordingly.

[0087] For the two drill holes numbered 2 and 3, as Figure 9 , the cumulative thickness of the B + -grade mineralized section in Drill Hole 2 is 1008.11 meters, and the cumulative thickness of the B + -grade mineralized section in Drill Hole 3 is 1010.41 meters. The thicknesses of the B + -grade mineralized sections of the two are approximately equal; the footage of Drill Hole 2 is 1241.14 meters, and the footage of Drill Hole 3 is 1238.11 meters. The engineering footages of the two can be regarded as approximately equal; the thickness rate of Mibai in Drill Hole 2 is 81.2 meters per 100 meters, and the thickness rate of Mibai in Drill Hole 3 The B of the two boreholes is 81.6 m / 100 m. + The thickness ratio of each grade is also approximately the same. + The frequency of the mineralized section is 15 sections, and the B + The frequency of the mineralized section is 51, and the B + The frequency of the mineralized section is less than that of the B in No. 3 drilling hole. + The frequency of the mineralization section is given by the formula of meter-per-hundred section rate. The meter-per-hundred-section rate of borehole No. 2 is obtained. The rate of 100-meter sections in borehole No. 3 is 1.2 sections / 100 meters. The value is 4.1 sections / 100 meters. Obviously, the B + The grade per meter is less than that of No. 3 borehole B + Therefore, compared with No. 3 borehole, No. 2 borehole has better mineralization. It can be concluded that when the thickness of the mineralized section and the footage of the drilling project are the same, the per-hundred-meter thickness ratio is also the same. At this time, the per-hundred-meter ratio increases with the increase of the mineralized section frequency, and the mineralization degree of the drilling project is inversely proportional to it. The higher the per-hundred-meter ratio, the more dispersed the engineering mineralization, and the lower the mineralization degree.

[0088] (6) Construction of point control areas;

[0089] A borehole element is a unit in space that is centered on the drilling point of the exploration project and has a radius of r, and is composed of a closed curve / broken line. On a two-dimensional map, a borehole element is represented as a two-dimensional block centered on the engineering drilling point. The point control area is formed by the intersection and expansion of each borehole element. The basic steps for constructing a point control area are as follows:

[0090] ① Based on the drilling point, expand outward with a radius of half the exploration project spacing (r = 200m) to form an initial point control area / drilling element, that is, a perfect circle area centered on the engineering drilling point.

[0091] ② Perform spatial analysis on all initial point control areas within a certain level of exploration engineering spacing (2r). If the distance between two points (d-distance) is less than the exploration engineering spacing of this level (d < 2r), then there must be two intersection points based on the connecting line between the two points.

[0092] ③ Search the distance r from the engineering drilling point outward, and the search direction must fully cover 360°. If there is another intersection line generated by the connecting line of the engineering drilling point in this direction, the intersection line is used as the boundary of the point control area. If there are multiple intersection lines that meet the conditions, the intersection line closest to the engineering drilling point is used as the boundary of the point control area. If there is no intersection line that meets the conditions, the connecting line is used as the boundary of the point control area. The area enclosed by each boundary is the scope of the point control area.

[0093] ④ According to the basic analysis of the full sample segment classification database, the meter-per-hundred-section / thickness rate data corresponding to the drilling point of the project is assigned to the entire point control area.

[0094] ⑤Color the point control area according to the data of the rice hundred-section / thickness rate at different levels.

[0095] (7) Draw the plane distribution maps of the rice hundred-section / thickness rate at each level;

[0096] After the construction of the point control area is completed, draw the distribution maps of the rice hundred-section / thickness rate at different mineralization levels, including the plane distribution map of the single-level rice hundred-section rate, the plane distribution map of the upper-capacity-level rice hundred-section rate, the plane distribution map of the single-level rice hundred-thickness rate, and the plane distribution map of the upper-capacity-level rice hundred-thickness rate.

Claims

1. A method for quantifying and evaluating the ore - finding information in exploration boreholes, characterized in that, It includes the following steps: (1) Collection of exploration engineering data and construction of a borehole database: Collect borehole exploration projects within the working area, and organize the geospatial information of the projects, including the opening location and total footage; comprehensively organize the geological information obtained from the exploration projects, including the observation / sampling location, lithology, mineralization grade, and analysis sample data, to form an exploration engineering borehole database DBS; (2) Projection mapping of borehole coordinate points: Project the coordinate points of the boreholes in the explored ore deposit onto a plane, conduct spatial analysis on each borehole point one by one with a radius of 200 meters, and draw two-dimensional maps. This projection plane is called the engineering projection plane. After traversing all exploration projects, a connected and closed polygon, that is, the projection map of the borehole center points, is finally formed; (3) Construction of a basic analysis all-sample stage classification database: Based on the results of base-point whole-sample mineralization classification, taking exploration engineering as the basic unit, the basic analysis whole-samples are grouped into a natural mineralization section according to the principles of the same mineralization grade and spatial adjacency, and merged into a natural mineralization section according to copper content, including the A-grade mineralization section, B-grade mineralization section, and C-grade mineralization section of a single-grade ore section, and the X + -grade mineralization section, A + -grade mineralization section, B + -grade mineralization section. In addition, it also includes the W-grade intercalated rock section; based on the exploration industrial standard of the copper ore, it is grouped into natural mineralization sections of different grades, and different section thickness grade categories are divided according to the apparent thickness of each grade of ore section; Finally, a basic analysis all-sample stage classification database DBH is formed; (4) Determination of the classification and division indicators of the meter-per-hundred-meter section / thickness rate: In the basic analysis all-sample stage classification database, based on the stage level, statistically analyze the section thickness class and ore length respectively to obtain the section frequency and cumulative section thickness; according to the formulas for the meter-per-hundred-meter section rate and the meter-per-hundred-meter thickness rate, obtain the meter-per-hundred-meter section rate and the meter-per-hundred-meter thickness rate corresponding to different stage levels of each borehole. Finally, classify and divide the two according to the classification standards of the meter-per-hundred-meter section rate and the meter-per-hundred-meter thickness rate, so as to investigate the mineralization complexity of each exploration project and obtain the planar distribution characteristics of mineralization; (5) Comparison of borehole mineralization; (6) Construction of a point control area; (7) Drawing of planar distribution maps of the meter-per-hundred-meter section / thickness rate at each level; After the construction of the point control area is completed, draw distribution maps of the meter-per-hundred-meter section / thickness rate at different mineralization levels, including the planar distribution map of the single-level meter-per-hundred-meter section rate, the planar distribution map of the upper tolerance-level meter-per-hundred-meter section rate, the planar distribution map of the single-level meter-per-hundred-meter thickness rate, and the planar distribution map of the upper tolerance-level meter-per-hundred-meter thickness rate.

2. The method for quantifying and evaluating ore discovery information in exploration boreholes according to claim 1, wherein In step (1), the exploration engineering borehole database includes engineering geospatial information, construction parameter information, and geological information; the basic structure of the exploration engineering borehole database DBS is as follows: , Among them, X n , Y n , Dept n are respectively the X-axis coordinate, Y-axis coordinate, and total footage of Project n; Dep n1 is the footage where the observation / sampling point n1 is located, Cu n1 is the geological information of copper grade, and so on from points n1, n2 to nm.

3. A method for quantifying and evaluating the ore - finding information of exploration drill holes according to claim 1, characterized in that, The basic element structure of the basic analysis all-sample stage classification database DBH in step (3) is as follows: , Among them, X k , Y k are the spatial coordinates of the drilling point k, Dept k is the total footage, H k is the drilling stage classification result, α k , β k are the corresponding geological information.

4. A method for quantifying and evaluating the ore - finding information of exploration boreholes according to claim 1, characterized in that, In step (6), a borehole element, that is, in space, it is a unit formed by a closed curve / folded line centered on the borehole point of the exploration project with a radius of r; on the two-dimensional map, the borehole element is shown as a two-dimensional block centered on the borehole point of the project; the point control area is formed by the intersection and expansion of each borehole element; The basic steps for constructing the point control area are as follows: (6.1) Based on the borehole point, expand outward with a radius r of half of the exploration project spacing to form an initial point control area / borehole element, that is, a circular area centered on the borehole point of the project; (6.2) Conduct spatial analysis on all initial point control areas within the spacing of 2r at a certain level of exploration project; if the distance d between two points is less than the spacing of the exploration project at this level, that is, d < 2r, then there must be two intersection points based on the connection line between the two points; Search for a distance of r outward from the engineering drilling point, and the search direction must completely cover 360°; if there is another intersection line generated by the connection line referring to this engineering drilling point in this direction, then use this intersection line as the boundary of the point control area; if there are multiple eligible intersection lines, use the intersection line closest to the engineering drilling point as the boundary of the point control area, and if there are no eligible intersection lines, use the connection line as the boundary of the point control area; the area enclosed by each boundary is the scope of the point control area; According to the basic analysis of the full sample level section grading database, assign the meter-percentage / thickness ratio data corresponding to this engineering drilling point to the entire point control area; Color the point control area according to the meter-percentage / thickness ratio data of different levels.

Citation Information

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