Cleaning Tool Box and Cleaning Method Applicable to Rock Thin Sections and Zircon Palladium

By designing a cleaning tool box suitable for rock sheets and zircon palladium, and using a drawer-type structure, the first and second-layer boxes are used to achieve integrated cleaning and drying of rock sheets and zircon palladium, solving the problems of low cleaning efficiency and secondary pollution in the existing technology, and improving the cleaning effect and simplicity of operation.

CN115127894BActive Publication Date: 2025-07-22CHINA PETROLEUM & CHEMICAL CORP +1
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Patent Information

Application Number
CN202110334209.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-03-29
Publication Date
2025-07-22
Estimated Expiration
2041-03-29

AI Technical Summary

Technical Problem

In the prior art, the cleaning process of rock flakes and zircon targets is prone to secondary pollution, damage and cumbersome operation, and the cleaning efficiency is low, so it cannot meet the cleaning needs of rock flakes and zircon targets at the same time.

Method used

A cleaning tool box suitable for rock sheets and zircon palladium is designed, including a first and second layer box that can be detachably connected, the first layer box is used for drying, the second layer box is used for cleaning, and a built-in slot group and a tray assembly. Combined with the traditional cleaning method, the integrated cleaning and drying of samples is achieved through a drawer structure.

Benefits of technology

It improves cleaning efficiency, avoids secondary pollution and damage of samples, simplifies the operation process, and achieves efficient cleaning of rock flakes and zircon palladium.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of experimental sample cleaning, and particularly relates to a cleaning tool box and a cleaning method applicable to rock thin sections and zircon palladium. A cleaning tool box applicable to rock thin sections and zircon palladium according to the present invention includes: a first-layer box and a second-layer box detachably connected to each other. Both the first-layer box and the second-layer box are configured as drawer-type structures having an outer shell and an inner box. Among them, a card slot group for placing samples to be cleaned is provided in the inner box of the first-layer box, and the first-layer box is used for air-drying the samples to be cleaned; a card tray assembly for carrying the samples to be cleaned is provided in the inner box of the second-layer box, and the second-layer box is used for cleaning the samples to be cleaned. In the present invention, the traditional cleaning method is combined with a sample box to form a drawer-type cleaning tool box, which is simple to operate and convenient to use. Through the cleaning tool box of the present invention, the whole process of cleaning and air-drying the samples to be cleaned can be completed integrally, avoiding problems such as secondary contamination of the samples and contamination of the interior of the sample box.
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Description

Technical Field

[0001] The present invention relates to the technical field of experimental sample cleaning, and particularly to a cleaning tool box and a cleaning method applicable to rock thin sections and zircon palladium targets. Background Art

[0002] Rock thin sections and zircon targets are common research tools in the field of geological research. For example, studies such as the microscopic feature observation of ore phases, the determination of main and trace elements in situ in minerals, and zircon cathodoluminescence all require the use of thin sections or targets.

[0003] However, during the repeated use of rock thin sections and zircon targets, it is inevitable to cause surface contamination of the rock thin sections and zircon targets. When dirt adheres to the surface, if not treated, it will surely cause inaccurate research data and increased experimental errors. Therefore, during the use of rock thin sections and zircon targets, the surface cleaning of rock thin sections and zircon targets is also an essential step. At present, for the cleaning of rock thin sections and zircon targets, most convenient and effective methods mainly include deionized water cleaning, cleaner cleaning, wiping with a special cleaning brush, wiping with a wiping paper, ultrasonic decontamination, etc. When using these conventional methods to clean rock thin sections / zircon targets, rock thin sections and zircon targets are often picked up with tweezers or directly pinched by hand, and then directly put back into the sample box after cleaning. In this way, due to the simplicity of technical means, it is inevitable to cause problems such as secondary contamination of rock thin sections / zircon targets, dropping or confusing rock thin sections / zircon targets, cumbersome operation, and contamination of the inside of the sample box.

[0004] In the prior art, the patent document CN106925564A discloses a method for quickly unloading and cleaning rock thin sections for inclusion microthermometry. The method in this invention can improve work efficiency and the cleanliness of rock thin sections after cleaning, and avoid direct contact between the human body and organic solvents. It involves organic solvent cleaning and ultrasonic cleaning, and mainly includes steps such as tool and equipment preparation, heating and unloading, ultrasonic cleaning, drying and sorting. Although this invention involves multiple aspects such as unloading, cleaning, and drying, it is only limited to the cleaning of rock thin sections and does not involve the cleaning of zircon targets, and the cleanable objects are single. Moreover, during its cleaning process, it involves multiple cyclic operations of taking and placing rock thin sections, bagging, etc., which are likely to cause secondary contamination of rock thin sections and damage to rock thin sections.

[0005] The patent document CN104833562A discloses a method for quickly manufacturing rock cast thin sections. This invention mainly focuses on the manufacturing of rock cast thin sections, while cleaning and drying are only its subsidiary items rather than the main items. Moreover, its cleaning method is mainly traditional water rinsing, which has disadvantages such as poor cleaning effect and troublesome operation.

[0006] Patent document CN207810036U discloses a new type of multi-layer drawer-type storage box for rock thin sections, which can only store rock thin sections and cannot store zircon targets, and it does not involve the cleaning of rock thin sections / zircon targets.

[0007] The cleaning of rock thin sections mentioned in the literature "Fabrication of Rock Thin Sections at Well Logging Sites" (Popular Science and Technology, No. 3, 2006) mainly includes the process of repeatedly cleaning with clear water during the fabrication of thin sections to remove various oil contaminations and impurities. This literature mainly focuses on the discussion of the fabrication of rock thin sections rather than the cleaning and drying of rock thin sections. Moreover, the cleaning is not clearly regulated, which may cause problems such as secondary contamination, and its process and method need to be improved. Summary of the Invention

[0008] The present invention provides a cleaning tool box and a cleaning method applicable to rock thin sections and zircon palladium, which are used to solve at least one of the above technical problems.

[0009] One aspect of the present invention provides a cleaning tool box applicable to rock thin sections and zircon palladium, including: a first-layer box and a second-layer box detachably connected to each other. Both the first-layer box and the second-layer box are configured as drawer-type structures with an outer shell and an inner box.

[0010] Wherein, a card slot group for placing samples to be cleaned is arranged in the inner box of the first-layer box, and the first-layer box is used for drying the samples to be cleaned.

[0011] A card holder assembly for carrying the samples to be cleaned is arranged in the inner box of the second-layer box, and the second-layer box is used for cleaning the samples to be cleaned.

[0012] In one embodiment, the samples to be cleaned include: rock thin sections and / or zircon palladium;

[0013] The card holder assembly includes: a suspended bracket, a first card holder for carrying the rock thin section and / or a second card holder for carrying the zircon palladium;

[0014] Wherein, the first card holder and / or the second card holder is arranged on the suspended bracket, and there is a gap between the bottom of the first card holder and / or the bottom of the second card holder and the bottom of the inner box of the second-layer box.

[0015] In one embodiment, the first card holder includes: a cross beam, an elastic member and two clamping strips.

[0016] Wherein, the cross beam is configured as a hollow structure, the two clamping strips are movably arranged at intervals on the cross beam, the elastic member is arranged inside the cross beam and its two ends are respectively connected to the corresponding clamping strips, and the space between the two clamping strips is used for arranging the rock thin section.

[0017] In one embodiment, anti-slip grooves are provided on the inner walls of both of the two clamping strips.

[0018] In one embodiment, the second cartridge is configured as a cylindrical frame structure.

[0019] In one embodiment, at least one side wall of the outer shell of the first layer box is provided with first ventilation holes, and at least one side wall of the inner box of the first layer box is provided with second ventilation holes corresponding to the first ventilation holes.

[0020] In one embodiment, the card slot group includes: at least one row of first card slots for storing rock thin sections and / or at least one row of second card slots for storing zirconium palladium;

[0021] A water guide groove is further provided inside the first layer box along the four peripheral edges, and all of the first card slots and / or all of the second card slots are communicated with the water guide groove.

[0022] In one embodiment, the first layer box and the second layer box are connected by a mortise and tenon structure.

[0023] Wherein, the bottom surface of the outer shell of the first layer box is provided with a first mortise groove, the first mortise groove extends along the width direction or the length direction of the first layer box, the top surface of the outer shell of the second layer box is provided with a first tenon, the extension direction of the first tenon is the same as that of the first mortise groove, and the first tenon is connected in the first mortise groove.

[0024] In one embodiment, it further includes:

[0025] A third layer box for storing cleaning supplies for cleaning rock thin sections and zirconium palladium;

[0026] Wherein, the third layer box is configured as a drawer-type structure having an outer shell and an inner box, and the third layer box is connected to the first layer box or the second layer box by a mortise and tenon structure.

[0027] On the other hand, the present invention provides a cleaning method applicable to rock thin sections and zirconium palladium. The cleaning tool box described above is used to clean rock thin sections and zirconium palladium, and includes the following steps:

[0028] S1: Pull out the inner box of the second layer box, clamp the contaminated rock thin sections and / or zirconium palladium, and place the rock thin sections and / or zirconium palladium on the corresponding cartridges in the second layer box one by one according to a predetermined rule;

[0029] S2: After placing, apply a cleaning agent on the contaminated surfaces of the rock thin sections and / or zirconium palladium, and use a cleaning brush or a wiping paper and cooperate with deionized water for cleaning to remove large particle contaminants;

[0030] S3: Remove the outer shell of the second-layer box, then push the inner box of the second-layer box containing the rock thin section and / or zirconium palladium into the outer shell of the second-layer box, and then place the second-layer box into an ultrasonic decontamination instrument to perform ultrasonic decontamination on the rock thin section and / or zirconium palladium to remove smaller and more difficult-to-remove dirt;

[0031] S4: After decontamination, pull out the inner box of the second-layer box and the inner box of the first-layer box respectively, take out the rock thin section and / or zirconium palladium from the inner box of the second-layer box, and place them into the corresponding card slots in the inner box of the first-layer box according to a predetermined rule;

[0032] S5: After placement, push the inner box of the first-layer box into the outer shell of the first-layer box to allow the rock thin section and / or zirconium palladium in the first-layer box to air dry naturally, or place the first-layer box into a heating device to heat-dry the rock thin section and / or zirconium palladium;

[0033] S6: After drying, take out the rock thin section and / or zirconium palladium from the inner box of the first-layer box for standby;

[0034] S7: After cleaning and drying all the utensils in the cleaning tool box, return them to their original positions. Compared with the prior art, the advantages of the present invention are as follows:

[0035] (1) In the present invention, a traditional cleaning method is combined with a sample box to form a drawer-type cleaning tool box. Each layer of it consists of a protective outer shell and an inner box that can be pulled out from the outer shell. The inner and outer parts cooperate in a drawer type, with simple operation and convenient use. The first-layer box and the second-layer box can be disassembled and used separately or connected as a whole, saving the use space.

[0036] (2) Among them, the second-layer box is used for cleaning the samples to be cleaned. A card holder assembly is arranged inside it to carry the samples to be cleaned, and multiple samples to be cleaned can be cleaned simultaneously, greatly improving the cleaning efficiency; the first-layer box is provided with a card slot group for drying the cleaned samples. Through the cleaning tool box of the present invention, the whole process of cleaning the samples to be cleaned from cleaning to drying can be completed integrally, avoiding problems such as secondary contamination of the samples and contamination of the interior of the sample box. BRIEF DESCRIPTION OF THE DRAWINGS

[0037] The present invention will be described in more detail below based on embodiments and with reference to the drawings.

[0038] Figure 1 is a schematic structural view of a cleaning tool box according to an embodiment of the present invention Figure 1 ;

[0039] Figure 2 is a schematic structural view of a cleaning tool box according to an embodiment of the present invention Figure 2 ;

[0040] Figure 3 is a schematic structure diagram of a cleaning tool box in an embodiment of the present invention Figure 3 ;

[0041] Figure 4 is an internal schematic diagram of the first layer box in an embodiment of the present invention;

[0042] Figure 5 is an internal schematic diagram of the second layer box in an embodiment of the present invention;

[0043] Figure 6 is an internal schematic diagram of the third layer box in an embodiment of the present invention;

[0044] Figure 7 is a schematic diagram of the first cato and the second cato in an embodiment of the present invention;

[0045] Figure 8 is a schematic diagram of the elastic movable structure of the first cato in an embodiment of the present invention.

[0046] Reference numerals:

[0047] 1 - first layer box; 2 - second layer box; 3 - third layer box; 4 - handle; 5 - first tenon; 6 - second tenon;

[0048] 11 - first ventilation hole; 12 - first card slot; 13 - second card slot; 14 - water guide groove; 15 - card position communication groove;

[0049] 21 - first cato; 22 - second cato; 23 - suspended bracket;

[0050] 211 - cross beam; 212 - card position strip; 213 - elastic member; 214 - anti - slip groove;

[0051] 31 - wiping paper; 32 - cleaning agent; 33 - cleaning brush; 34 - special forceps;

[0052] 341 - special friction piece. Detailed implementation manners

[0053] The present invention will be further described below in conjunction with the accompanying drawings.

[0054] As Figures 1-8As shown in the figure, one aspect of the present invention provides a cleaning tool box applicable to rock thin sections and zircon palladium, which includes: a first layer box 1 and a second layer box 2 detachably connected to each other. Both the first layer box 1 and the second layer box 2 are configured as a drawer-type structure with an outer shell and an inner box. Among them, a card slot group for placing samples to be cleaned is provided in the inner box of the first layer box 1, and the first layer box 1 is used for air-drying the samples to be cleaned; a card holder assembly for carrying the samples to be cleaned is provided in the inner box of the second layer box 2, and the second layer box 2 is used for cleaning the samples to be cleaned.

[0055] In the present invention, the traditional cleaning method is combined with a sample box to form a drawer-type cleaning tool box. Each layer of it consists of a protective outer shell and an inner box that can be pulled out from the outer shell. The inner and outer parts cooperate in a drawer type, with simple operation and convenient use. The first layer box 1 and the second layer box 2 can be used separately after disassembly or connected as a whole to save the use space.

[0056] Among them, the second layer box 2 is used for cleaning the samples to be cleaned. A card holder assembly is provided inside it to carry the samples to be cleaned, and multiple samples to be cleaned can be cleaned simultaneously, greatly improving the cleaning efficiency; the first layer box 1 is provided with a card slot group for air-drying the cleaned samples. Through the cleaning tool box of the present invention, the whole process of cleaning and air-drying the samples to be cleaned can be completed integrally, avoiding problems such as secondary pollution of the samples and pollution of the inside of the sample box.

[0057] It should be noted that the samples to be cleaned in the present invention are rock thin sections and / or zircon palladium.

[0058] Example 1

[0059] In this embodiment, the second layer box 2 is the cleaning layer of the cleaning tool box. Among them, both the inner box and the outer shell of the second layer box 2 are made of wear-resistant and heat-resistant plastic. The inner box of the second layer box 2 is a box-shaped cuboid with an open top, and its size can be 20*14*10 cm.

[0060] Among them, the card holder assembly includes: a suspended bracket 23, a first card holder 21 for carrying rock thin sections and / or a second card holder 22 for carrying zircon palladium. Among them, the first card holder 21 and / or the second card holder 22 are both arranged on the suspended bracket 23, and there is a gap between the bottom of the first card holder 21 and / or the bottom of the second card holder 22 and the bottom of the inner box of the second layer box 2.

[0061] In other words, the first card holder 21 and the second card holder 22 for carrying rock thin sections and zircon palladium are suspended by the suspended bracket 23, which is beneficial to the fall of pollutants after cleaning to avoid secondary pollution.

[0062] Specifically, as shown in the figure, the suspension bracket 23 includes a net-shaped part formed by multiple mounting rods intersecting each other to form a rectangle and multiple support rods for supporting the net-shaped part. The four sides of the net-shaped part are respectively connected to the four side walls of the inner box of the corresponding second box body. The support rods and the four side walls of the inner box of the second box body serve as the support connection points of the net-shaped part, thus forming a suspension condition. The first holder 21 and the second holder 22 are mounted on the net-shaped part to be suspended. Preferably, the suspension bracket 23 is made of a metal material (such as stainless steel).

[0063] Example 2

[0064] This embodiment describes the differences from the above embodiments, and the same parts will not be elaborated again.

[0065] In this embodiment, the first holder 21 includes: a cross beam 211, an elastic member 213, and two clamping strips 212. Among them, the cross beam 211 is configured as a hollow structure. The two clamping strips 212 are movably arranged at intervals on the cross beam 211. The elastic member 213 is arranged inside the cross beam 211 and its two ends are respectively connected to the corresponding clamping strips 212. The space between the two clamping strips 212 is used to place the rock thin slice.

[0066] In other words, the first holder 21 is configured as an elastic movable structure so that it can adapt to rock thin slices of different sizes. Among them, both the cross beam 211 and the clamping strips 212 can be made of plastic.

[0067] Preferably, anti-slip grooves 214 are provided on the inner walls of the two clamping strips 212 to increase the stability of the rock thin slice carried by them. Specifically, as Figure 7 shown in the figure, multiple anti-slip grooves 214 are provided at the places where the clamping strips 212 contact the rock thin slice and are arranged parallel to the horizontal direction. The width of the anti-slip grooves 214 can be set to about 0.2 cm.

[0068] In this embodiment, as Figure 7 shown in the figure, the second holder 22 is configured as a cylindrical frame structure. Among them, the second holder 22 adopts a hollow design to facilitate the cleaning of zirconium palladium.

[0069] Example 3

[0070] This embodiment describes the differences from the above embodiments, and the same parts will not be elaborated again.

[0071] In this embodiment, the first layer box 1 is the drying layer of the cleaning tool box.

[0072] Among them, at least one side wall of the outer shell of the first-layer box 1 is provided with a first ventilation hole 11, and at least one side wall of the inner box of the first-layer box 1 is provided with a second ventilation hole corresponding to the first ventilation hole 11, so as to facilitate the rapid evaporation of the moisture on the surface of the rock thin section and zirconium palladium, and improve the drying effect. Specifically, a plurality of circular ventilation holes are provided on three closed side surfaces of the outer shell of the first-layer box 1, and the diameter of the ventilation holes is 0.5 cm.

[0073] The card slot group in the inner box of the first-layer box 1 includes: at least one row of first card slots 12 for storing rock thin sections and at least one row of second card slots 13 for storing zirconium palladium.

[0074] Among them, both the inner box and the outer shell of the first-layer box 1 are made of wear-resistant and heat-resistant plastics.

[0075] As Figure 4 shown, the inner box of the first-layer box 1 is a cuboid with five sides closed and the top open, and its size is 20*14*10 cm. 32 first card slots 12 (two rows) and 16 second card slots 13 (two rows) are provided in the inner box of the first-layer box 1. The size of the first card slot 12 is 6*0.5*3 cm; the size of the second card slot 13 is 2.5*1*2.5 cm. Plastic plates with a thickness of 0.2 cm are used as card slot partitions between adjacent first card slots 12 and between adjacent second card slots 13.

[0076] Preferably, a water guide groove 14 is further provided along the four peripheral edges inside the first-layer box 1, and all the first card slots 12 and all the second card slots 13 are communicated with the water guide groove 14. By setting the water guide groove 14 to drain the moisture in the card slots and increase the drying effect. Specifically, the first card slot 12 and the second card slot 13 can be communicated with the water guide groove 14 through the clamping position communication groove 15 at their ends (both ends).

[0077] Specifically, the width of the water guide groove 14 is 0.5 cm, and the width of the clamping position communication groove 15 is 0.2 cm.

[0078] Example 4

[0079] The differences between this embodiment and the above-mentioned embodiments are described, and the same parts will not be elaborated.

[0080] In this embodiment, the cleaning tool box further includes: a third-layer box 3, which is used to store cleaning supplies for cleaning rock thin sections and zirconium palladium. Among them, the third-layer box 3 is constructed as a drawer-type structure with an outer shell and an inner box, and the third-layer box 3 is connected to the first-layer box 1 or the second-layer box 2 through a mortise and tenon structure.

[0081] The above-mentioned cleaning supplies include a dedicated wiping paper 31, a cleaning agent 32, a cleaning brush 33, a dedicated tweezer 34, etc. It should be noted that the wiping paper 31, the cleaning agent 32, and the cleaning brush 33 are all conventional experimental materials, while the dedicated tweezer 34 is provided with a special friction plate 341 at its clamping part in order to effectively clamp smooth glass-made rock thin slices or zircon targets.

[0082] In this embodiment, the third-layer box 3 serves as a storage layer, and four spaces can be set in its inner box to store the above-mentioned cleaning supplies respectively.

[0083] Among them, both the outer shell and the inner box of the third-layer box 3 are made of wear-resistant and heat-resistant plastic. Its inner box is a cuboid that is closed on five sides and open at the top, with dimensions of 20*14*10 cm and a wall thickness of 0.2 cm; three partitions (which can be plastic plates with a thickness of 0.2 cm) are provided in the inner box of the third-layer box 3 to form four spaces, and the size of each space is 20*3.3*10 cm.

[0084] Example 5

[0085] The differences between this embodiment and the above-mentioned embodiment are described, and the same parts will not be elaborated.

[0086] As Figure 5 shown, in this embodiment, the cleaning tool box includes: a first-layer box 1, a second-layer box 2, and a third-layer box 3. Among them, the first-layer box 1, the second-layer box 2, and the third-layer box 3 are connected in sequence through a mortise and tenon structure.

[0087] Specifically, a first mortise groove is provided on the bottom surface of the outer shell of the first-layer box 1, and the first mortise groove extends along the width direction or the length direction of the first-layer box 1. A first tenon 5 is provided on the top surface of the outer shell of the second-layer box 2, and the extending direction of the first tenon 5 is the same as that of the first mortise groove, and the first tenon 5 is connected in the first mortise groove.

[0088] Preferably, a first connecting plate is provided on the bottom surface of the outer shell of the first-layer box 1, and the first mortise groove is provided on the first connecting plate.

[0089] Similarly, a second mortise groove is provided on the bottom of the outer shell of the second-layer box 2, and the second mortise groove extends along the width direction or the length direction of the second-layer box 2. A second tenon 6 is provided on the top surface of the outer shell of the third-layer box 3, and the extending direction of the second tenon 6 is the same as that of the second mortise groove, and the second tenon 6 is connected in the second mortise groove.

[0090] Preferably, a connecting plate is provided on the bottom surface of the outer shell of the second-layer box 2, and the second mortise groove is provided on the second connecting plate.

[0091] Among them, the outer shells of the first-layer box 1, the second-layer box 2, and the third-layer box 3 are all made of wear-resistant and heat-resistant plastic. In this way, the first tenon 5 and the second tenon 6 are also made of plastic.

[0092] In this embodiment, drawing on the traditional Chinese mortise and tenon connection process, plastic mortises and tenons are used to connect the outer shells of each layer of the box, so that the outer shells of each layer can be freely disassembled or combined, indirectly enabling the first-layer box 1, the second-layer box 2, and the third-layer box 3 to be used separately or in combination.

[0093] Example 6

[0094] In the present invention, the cleaning tool box includes: a first-layer box 1, a second-layer box 2, and a third-layer box 3 arranged in sequence from top to bottom. Among them, the first-layer box 1, the second-layer box 2, and the third-layer box 3 are all constructed as drawer-type structures, and each layer is equipped with an outer shell for protection. The inner box can be pulled out from the outer shell, and the inner and outer parts cooperate to form a drawer type. The inner box of each layer is a box-shaped cuboid with an open top, with an outer size of 20.5 * 14.5 * 11.5 cm and an inner size of 20.1 * 14.1 * 10.1 cm; at the same time, the outer shells of the three layers are all box-shaped cuboids with an open side, and the thickness of their three side walls and the top wall is 0.2 cm, and the thickness of the bottom wall is 1 cm. For easy operation, there is a gap of about 0.05 cm between each contact surface of the outer shell and the inner box. A handle 4 is provided on the pulling-out side of the inner box, specifically a circular plastic handle 4 with a diameter of 2 cm. The outer shells of the three layers can be disassembled separately or connected into a whole cube structure through plastic mortises and tenons. In this way, the cleaning tool box as a whole is in a cube structure, with a total box size of 20.5 * 14.5 * 34.5 cm and a wall thickness of 0.2 cm. The inner boxes and outer shells of its three layers are all made of wear-resistant and heat-resistant plastic materials, having the advantages of convenient use, complete functions, energy conservation, and environmental protection.

[0095] The first-layer box 1 is a drying layer, and its interior is equipped with a first card slot 12 for fixing rock slices dedicated to drying and a second card slot 13 for fixing zircon targets, etc. The second-layer box 2 is a cleaning layer, and its interior is equipped with a first card holder 21 for fixing rock slices dedicated to cleaning and a second card holder 22 for fixing zircon targets, etc. The third-layer box 3 is a storage layer, and its interior is equipped with special cleaning supplies for rock slices and zircon targets, such as special tweezers 34, cleaning brushes 33, cleaning agents 32, and wiping papers 31.

[0096] On the other hand, the present invention provides a cleaning method applicable to rock slices and zircon palladium. Using the cleaning tool box of the above-mentioned rights to clean rock slices and zircon palladium, it includes the following steps:

[0097] S1: Pull out the inner box of the second-layer box 2, pick up the contaminated rock slices and / or zircon palladium, and place the rock slices and / or zircon palladium on the corresponding card holders in the second-layer box 2 one by one according to a predetermined rule;

[0098] S2: After placement, apply the cleaning agent 32 to the contaminated surface of the rock thin section and / or zirconium palladium, and use a cleaning brush 33 or a wiping paper 31 and cooperate with deionized water for cleaning to remove large particle contaminants;

[0099] S3: Remove the outer shell of the second layer box 2, then push the inner box of the second layer box 2 carrying the rock thin section and / or zirconium palladium into the outer shell of the second layer box 2, and then place the second layer box 2 into an ultrasonic decontamination instrument to perform ultrasonic decontamination on the rock thin section and / or zirconium palladium to remove smaller and more difficult-to-remove dirt;

[0100] S4: After decontamination, pull out the inner box of the second layer box 2 and the inner box of the first layer box 1 respectively, take out the rock thin section and / or zirconium palladium from the inner box of the second layer box 2, and place it into the corresponding card slot in the first layer box 1 according to a predetermined rule;

[0101] S5: After placement, push the inner box of the first layer box 1 into the outer shell of the first layer box 1 to allow the rock thin section and / or zirconium palladium in the first layer box 1 to air dry naturally, or place the first layer box 1 into a heating device to heat and dry the rock thin section and / or zirconium palladium;

[0102] S6: After drying, take out the rock thin section and / or zirconium palladium from the inner box of the first layer box 1 for standby;

[0103] S7: After cleaning and drying all the utensils in the cleaning tool box, return them to their original positions.

[0104] Among them, the above heating device can be an oven.

[0105] In the present invention, the contaminated rock thin section and zirconium target sample are cleaned in the second layer box 2 (cleaning layer), and the cleaning method mainly includes using a cleaning brush 33 to remove large particle contaminants, and using the ultrasonic decontamination method to remove tiny dirt such as oil stains, dust, and sweat stains that are not easy to remove. After that, use a special tweezer 34 to pick up the cleaned rock thin section and zirconium target, place them into the first layer box 1 (drying layer), air dry them, and reserve them for use after drying to complete the cleaning task.

[0106] It should be noted that the predetermined rule in step S1 is: when placing, it should be noted to follow the principles of slow and steady placement, with the mineral surface facing up, placing one by one from left to right and from top to bottom. The predetermined rule in step S1 is: when placing, it should be noted to follow the principles of slow placement, with the edge surface of the rock thin section (zirconium target) facing up, placing one by one from left to right and from top to bottom.

[0107] Example 7

[0108] The following specifically describes the cleaning of the rock thin section and zirconium palladium using the cleaning tool box of the present invention. It includes the following steps:

[0109] First step, pull out the inner box of the third-layer box 3 through the handle 4, and take out the wiping paper 31, cleaning agent 32, cleaning brush, and special tweezers 34 configured inside it.

[0110] Second step, pull out the inner box of the second-layer box 2 through the handle 4, and use the special tweezers 34 to pick up the contaminated rock thin section (zircon target) and place it on the first caddy 21 (second caddy 22) in the inner box of the second-layer box 2 respectively. When placing, attention should be paid to following the principles of slow and steady placement, with the mineral surface facing up, placing one by one from left to right and from top to bottom.

[0111] When the rock thin section (zircon target) is placed, enter the cleaning process.

[0112] Third step, apply the cleaning agent 32 on the contaminated surface of the rock thin section (zircon target), and use the cleaning brush 33 or wiping paper 31 and cooperate with deionized water for cleaning to remove large particle pollutants such as dust.

[0113] Fourth step, first remove the outer shell of the empty second-layer box 2 along the direction of the mortise and tenon extension; push the inner box of the second-layer box 2 carrying the rock thin section (zircon target) into its outer shell. Put the entire second-layer box 2 into an ultrasonic decontamination instrument to perform ultrasonic decontamination on the rock thin section (zircon target) to remove smaller and more difficult-to-remove stains such as sweat stains and oil stains.

[0114] When the decontamination is completed, enter the drying process.

[0115] Fifth step, pull out the inner box of the second-layer box 2 through the handle 4, pull out the inner box of the first-layer box 1 through the handle 4, and use the special tweezers 34 to take out the cleaned rock thin section (zircon target) from the inner box of the second-layer box 2 and put it into the first card slot 12 (second card slot 13) of the first-layer box 1. When placing, attention should be paid to following the principles of slow placement, with the edge surface of the rock thin section (zircon target) facing up, placing one by one from left to right and from top to bottom.

[0116] Sixth step, when the rock thin section (zircon target) is placed, push the inner box of the first-layer box 1 carrying the rock thin section (zircon target) into its outer shell, so that the rock thin section (zircon target) inside it dries naturally, or put the entire thing into an oven for heating and drying.

[0117] Seventh step, when the rock thin section (zircon target) is dried, use the special tweezers 34 to take out the rock thin section (zircon target) from the first-layer box 1 for standby.

[0118] Eighth step, clean and dry all the utensils in the cleaning tool box, put them back in place, and the experiment is completed.

[0119] In the description of the present invention, it should be understood that the terms "first", "second", and "third" are used for descriptive purposes only and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first", "second", and "third" may explicitly or implicitly include one or more of such features.

[0120] In addition, the orientation or positional relationship indicated by terms such as "upper", "lower", "top", "bottom", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the indicated device or element must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be construed as a limitation to the present invention.

[0121] Although the present invention has been described with reference to the preferred embodiments, various improvements can be made to it and components therein can be replaced with equivalents without departing from the scope of the present invention. In particular, as long as there is no structural conflict, the technical features mentioned in each embodiment can be combined in any way. The present invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.

Claims

1. A cleaning tool box applicable to rock thin sections and zircon palladium, characterized in that, Comprising: A first - layer box and a second - layer box detachably connected. Both the first - layer box and the second - layer box are constructed as a drawer - type structure with an outer shell and an inner box. The outer shells and inner boxes of the first - layer box and the second - layer box are made of wear - resistant and heat - resistant plastic materials. Wherein, a card slot group for placing samples to be cleaned is arranged in the inner box of the first - layer box. The first - layer box is used for air - drying the samples to be cleaned. The first - layer box can be placed into a heating device to use the heating device to heat - dry the rock thin sections and zirconium palladium in the first - layer box. A card holder assembly for carrying the samples to be cleaned is arranged in the inner box of the second - layer box. The second - layer box is used for cleaning the samples to be cleaned. The samples to be cleaned include: rock thin sections and / or zirconium palladium. The card holder assembly includes: a suspended bracket, a first card holder for carrying the rock thin sections, and a second card holder for carrying the zirconium palladium. The second card holder is constructed as a cylindrical frame structure and is designed with a hollow - out. Wherein, the first card holder and the second card holder are arranged on the suspended bracket, and there is a gap between the bottom of the first card holder and the bottom of the second card holder and the bottom of the inner box of the second - layer box. The first card holder includes: a cross - beam, an elastic member, and two clamping strips. Wherein, the cross - beam is constructed as a hollow structure. The two clamping strips are movably arranged at intervals on the cross - beam. The elastic member is arranged inside the cross - beam and its two ends are respectively connected to the corresponding clamping strips. The space between the two clamping strips is used for placing rock thin sections. At least one side wall of the outer shell of the first - layer box is provided with a first ventilation hole, and at least one side wall of the inner box of the first - layer box is provided with a second ventilation hole corresponding to the first ventilation hole.

2. The cleaning tool box according to claim 1, wherein, Anti - slip grooves are arranged on the inner walls of the two clamping strips.

3. The cleaning tool box according to claim 1, characterized in that The card slot group includes: at least one row of first card slots for storing rock thin sections and / or at least one row of second card slots for storing zirconium palladium. A water guide groove is also arranged along the four - week edge inside the first - layer box. All the first card slots and / or all the second card slots are communicated with the water guide groove.

4. The cleaning tool box according to claim 1, wherein, The first - layer box and the second - layer box are connected by a mortise - and - tenon structure. Wherein, the bottom surface of the outer shell of the first - layer box is provided with a first mortise groove, which extends along the width direction or the length direction of the first - layer box. The top surface of the outer shell of the second - layer box is provided with a first tenon, which has the same extension direction as the first mortise groove, and the first tenon is connected in the first mortise groove.

5. The cleaning tool box according to claim 1, characterized in that Also comprising: A third - layer box, which is used for storing cleaning supplies for cleaning rock thin sections and zirconium palladium. Wherein, the third - layer box is constructed as a drawer - type structure with an outer shell and an inner box, and the third - layer box is connected to the first - layer box or the second - layer box by a mortise - and - tenon structure.

6. A cleaning method applicable to rock thin sections and zirconium palladium, which uses the cleaning tool box described in any one of the above claims 1-5 to clean the rock thin sections and zirconium palladium, characterized in that, Including the following steps: S1: Pull out the inner box of the second - layer box, pick up the contaminated rock thin sections and / or zirconium palladium, and place the rock thin sections and / or zirconium palladium one by one on the corresponding card holders in the second - layer box according to a predetermined rule. S2: After placement, apply the cleaning agent to the polished rock section and / or the contaminated surface of the zirconium palladium, and use a cleaning brush or wiping paper in combination with deionized water for cleaning to remove large particle contaminants; S3: Remove the outer shell of the second layer box, then push the inner box of the second layer box carrying the polished rock section and / or the zirconium palladium into the outer shell of the second layer box, and then place the second layer box into an ultrasonic decontamination instrument to perform ultrasonic decontamination on the polished rock section and / or the zirconium palladium to remove smaller and more difficult-to-remove dirt; S4: After decontamination, pull out the inner box of the second layer box and the inner box of the first layer box respectively, take out the polished rock section and / or the zirconium palladium from the inner box of the second layer box, and place them into the corresponding card slots in the inner box of the first layer box according to a predetermined rule; S5: After placement, push the inner box of the first layer box into the outer shell of the first layer box to allow the polished rock section and / or the zirconium palladium in the first layer box to air dry naturally, or place the first layer box into a heating device to heat and dry the polished rock section and / or the zirconium palladium; S6: After drying, take out the polished rock section and / or the zirconium palladium from the inner box of the first layer box for standby; S7: After cleaning and drying all the utensils in the cleaning tool box, return them to their original positions.

Citation Information

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