Activated carbon block negative oxygen ion release amount measuring equipment

By designing an activated carbon block negative oxygen ion release measurement device with a sealed box and multiple negative oxygen ion detectors, the problems of inaccurate measurement of activated carbon block release and complicated operation are solved, and simple and convenient accurate measurement and transparent observation are achieved.

CN223435972UActive Publication Date: 2025-10-14ZHONGKANG SONGYANG ENERGY (BEIJING) CO LTD
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Patent Information

Application Number
CN202422486893.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-10-14
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

The existing technology lacks a device that can accurately measure the amount of negative oxygen ions released by activated carbon blocks, and the operation is complicated and inconvenient.

Method used

An activated carbon block negative oxygen ion release measurement device is designed, which includes a sealed box, a negative oxygen ion detector and an optional carrier frame. The detector detects the difference in negative oxygen ion values ​​before and after the activated carbon block is released in the sealed box. Combined with the transparent structure and the design of multiple detector positions, the accuracy and convenience of the measurement are ensured.

Benefits of technology

The accurate measurement of the negative oxygen ion release of the activated carbon block is achieved. The operation is simple and convenient. The transparent structure allows real-time observation of the test results. Multiple detectors improve the accuracy of the measurement.

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Abstract

The utility model discloses an activated carbon block negative oxygen ion release amount measuring device which comprises a sealing box which is of a transparent box body structure, and a taking and placing opening is formed in the outer side face of the sealing box in a penetrating mode; the sealing door is rotationally installed on the outer side face of the sealing box and located on one side of the pick-and-place opening, the sealing door is screwed into the pick-and-place opening to seal the pick-and-place opening, and the sealing door is screwed out of the pick-and-place opening to open the pick-and-place opening; and the negative oxygen ion detector is arranged in the sealing box to detect the numerical value of negative oxygen ions in the sealing box. According to the scheme of the utility model, the negative oxygen ion detector detects the negative oxygen ion value in the sealing box when no activated carbon block is placed as the base number value; in the preset time, the negative oxygen ion value in the sealing box containing the activated carbon block is detected through the negative oxygen ion detector to serve as the real-time value, the release amount of the negative oxygen ions of the activated carbon block in the preset time is obtained by subtracting the base number value from the real-time value, measurement is accurate, and operation is easy and convenient.
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Description

Technical Field

[0001] The utility model relates to the technical field of activated carbon measurement, in particular to an activated carbon block negative oxygen ion release measurement device. Background Art

[0002] Combining nanotechnology with activated carbon can create activated carbon products that release negative ions. The movement of hot molecules in the air through the porous structure of the activated carbon accelerates the release of negative charges from the nanomaterials within the activated carbon. These negative charges then combine with oxygen molecules, ionizing them and continuously inducing the production of negative oxygen ions. To understand the effectiveness of this activated carbon product in releasing negative oxygen ions, it is necessary to measure the amount of negative oxygen ion released. Utility Model Content

[0003] The utility model provides an activated carbon block negative oxygen ion release measurement device, which uses a negative oxygen ion detector to detect the negative oxygen ion value inside a sealed box when no activated carbon block is placed as a base value; at a preset time, the negative oxygen ion detector uses the negative oxygen ion value inside a sealed box with an activated carbon block placed as a real-time value, and the real-time value is subtracted from the base value to obtain the negative oxygen ion release amount of the activated carbon block within the preset time. The measurement is accurate and the operation is simple and convenient.

[0004] In order to solve the above technical problems, the technical solutions of the present utility model are as follows:

[0005] The utility model provides an activated carbon block negative oxygen ion release measurement device, comprising:

[0006] A sealed box, the sealed box being a transparent box structure, with a take-in and put-out opening being provided through the outer side of the sealed box;

[0007] Rotating a sealing door installed on the outer side of the sealing box, the sealing door is located on one side of the access opening, the sealing door is rotated into the access opening to seal the access opening, and the sealing door is rotated out of the access opening to open the access opening;

[0008] A negative oxygen ion detector is placed inside the sealed box to detect the negative oxygen ion value inside the sealed box.

[0009] Optionally, the activated carbon block negative oxygen ion release measurement device further includes:

[0010] A support frame is provided inside the sealed box for placing activated carbon blocks, and the support frame is a hollow structure.

[0011] Optionally, the carrier includes:

[0012] A carrier net for placing activated carbon blocks;

[0013] Supporting columns connected between the carrier network and the inner bottom surface of the sealed box.

[0014] Optionally, the negative oxygen ion detector is provided with a plurality of negative oxygen ion detectors, and the plurality of negative oxygen ion detectors are distributed at different positions inside the sealed box.

[0015] Optionally, the inner wall of the taking and placing opening is provided with a sealing gasket, and the side surface of the sealing door is in close contact with the sealing gasket when the sealing door is rotated into the inside of the taking and placing opening.

[0016] Optionally, the surface of the sealing door is provided with a handle.

[0017] Optionally, the sealed box comprises:

[0018] A box frame formed by butt joint and bonding of four side plates, and the taking and placing opening is arranged on the surface of any side plate.

[0019] A top plate bonded and connected with the upper surface of the box frame.

[0020] A bottom plate bonded and connected with the bottom surface of the box frame.

[0021] The side plate, the top plate and the bottom plate are all transparent plates.

[0022] Optionally, the sealed box further comprises:

[0023] An angle iron, two perpendicular parts of the angle iron are connected with two adjacent side plates respectively.

[0024] Optionally, the four edges of the bottom surface of the top plate are all chamfered structures, and the chamfered structure of the bottom surface of the top plate and the adjacent side plate form a first filling cavity for filling sealant.

[0025] The four edges of the surface of the bottom plate are all chamfered structures, and the chamfered structure of the surface of the bottom plate and the adjacent side plate form a second filling cavity for filling sealant.

[0026] Optionally, the vertical edge of the side plate is a chamfered structure, and the chamfered structure of the side plate and the adjacent side plate form a third filling cavity for filling sealant.

[0027] The above-mentioned scheme of the utility model at least has the following beneficial effects:

[0028] The above scheme of the utility model discloses, through the negative oxygen ion detector, the negative oxygen ion value in the sealed box when not placing the activated carbon block is as the base value, at the preset time, through the negative oxygen ion detector, the negative oxygen ion value in the sealed box with the activated carbon block is as the real-time value, the release amount of the negative oxygen ion of the activated carbon block in the preset time is obtained by subtracting the base value from the real-time value, accurate measurement, and simple and convenient operation. BRIEF DESCRIPTION OF DRAWINGS

[0029] Figure 1 It is the three-dimensional structure schematic view of the activated carbon block negative oxygen ion release amount measuring equipment provided by the embodiment of the utility model;

[0030] Figure 2 It is the front view of the activated carbon block negative oxygen ion release amount measuring equipment provided by the embodiment of the utility model;

[0031] Figure 3 It is the A part enlarged schematic view of Figure 2 ;

[0032] Figure 4 It is the B part enlarged schematic view of Figure 2 ;

[0033] Figure 5 It is the top view of the activated carbon block negative oxygen ion release amount measuring equipment provided by the embodiment of the utility model;

[0034] Figure 6 It is the C part enlarged schematic view of Figure 5 .

[0035] The signs are explained as follows:

[0036] 1, sealed box;11, take and put mouth;12, top plate;13, side plate;14, bottom plate;15, first filling cavity;16, second filling cavity;17, third filling cavity;2, sealed door;21, handle;3, angle iron;4, support column;5, bearing net;6, negative oxygen ion detector. DETAILED DESCRIPTION

[0037] Exemplary embodiments of the present disclosure will be described below in greater detail with reference to the accompanying drawings. Although exemplary embodiments of the present disclosure are shown in the drawings, it is understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments set forth herein. Rather, these embodiments are provided so that the present disclosure can be more thoroughly understood and the scope of the present disclosure can be accurately conveyed to those skilled in the art.

[0038] As Figures 1-6 shown, the utility model provides a kind of activated carbon block negative oxygen ion release amount measuring equipment, comprising:

[0039] The sealed box 1 is a transparent box structure, and a take-in and put-out opening 11 is provided on the outer side of the sealed box 1;

[0040] The sealing door 2 installed on the outer side of the sealing box 1 is rotated. The sealing door 2 is located on one side of the access opening 11. The sealing door 2 is screwed into the access opening 11 to seal the access opening 11. The sealing door 2 is screwed out of the access opening 11 to open the access opening 11.

[0041] The negative oxygen ion detector 6 is placed inside the sealed box 1 to detect the negative oxygen ion value inside the sealed box 1.

[0042] In this embodiment, when measuring, the negative oxygen ion detector 6 is placed inside the sealed box 1, the sealed door 2 is closed, and the negative oxygen ion value inside the sealed box 1 when no activated carbon block is placed is detected by the negative oxygen ion detector 6 as the base value; the sealed door 2 is opened, the activated carbon block is placed inside the sealed box 1, the sealed door 2 is closed, and at a preset time, the negative oxygen ion value inside the sealed box 1 with the activated carbon block placed is detected by the negative oxygen ion detector 6 as the real-time value; the real-time value is subtracted from the base value to obtain the release amount of the negative oxygen ions of the activated carbon block within the preset time; the release amount of the negative oxygen ions of the activated carbon block can be accurately measured, and the measurement operation is simple and convenient;

[0043] The sealed box 1 is a transparent box structure, and the detection results of the negative oxygen ion detector 6 can be observed without opening the sealed door 2;

[0044] In this embodiment, the internal volume of the sealed box 1 is 1 m3; the preset time may be 1 hour.

[0045] like Figure 2 and Figure 5 As shown, in an optional embodiment of the present invention, the activated carbon block negative oxygen ion release measurement device further includes:

[0046] A support frame is provided inside the sealed box 1 for placing activated carbon blocks, and the support frame has a hollow structure.

[0047] In this embodiment, a hollow-structured support frame is used to place the activated carbon block, which enables the bottom surface of the activated carbon block to fully contact the air inside the sealed box 1, ensuring that the nanomaterials in the activated carbon block release negative charges, thereby inducing negative oxygen ions, which helps to improve the measurement accuracy of the release amount of negative oxygen ions of the activated carbon block.

[0048] like Figure 2 and Figure 5 As shown, in an optional embodiment of the present invention, the carrier includes:

[0049] A carrier net 5 for placing activated carbon blocks;

[0050] The support column 4 is connected between the carrier net 5 and the inner bottom surface of the sealing box 1.

[0051] In this embodiment, the supporting net 5 is supported by the supporting column 4, and the activated carbon block is placed on the surface of the supporting net 5. The bottom surface of the activated carbon block can be fully in contact with the air inside the sealed box 1 through the mesh structure of the supporting net 5, ensuring that the nanomaterials in the activated carbon block release negative charges, thereby inducing negative oxygen ions, which helps to improve the measurement accuracy of the release amount of negative oxygen ions of the activated carbon block.

[0052] like Figure 5 As shown, in an optional embodiment of the present invention, a plurality of negative oxygen ion detectors 6 are provided and distributed at different positions inside the sealed box 1 .

[0053] In this embodiment, by setting up multiple negative oxygen ion detectors 6, and the multiple negative oxygen ion detectors 6 are distributed at different positions inside the sealed box 1, when measuring, the average of the measurement data of the multiple negative oxygen ion detectors 6 is taken as the measurement result, which helps to improve the measurement accuracy of the release amount of negative oxygen ions of the activated carbon block.

[0054] In an optional embodiment of the present invention, a sealing gasket is provided on the inner wall of the access opening 11 , and when the sealing door 2 is screwed into the access opening 11 , the side surface of the sealing door 2 is in close contact with the sealing gasket.

[0055] In this embodiment, a sealing gasket is provided on the inner wall of the access port 11. When the sealing door 2 is screwed into the access port 11, the side of the sealing door 2 is in close contact with the sealing gasket, which can improve the sealing performance of the sealing door 2 to the access port 11, thereby ensuring the sealing of the sealing box 1 and ensuring the measurement accuracy of the release amount of negative oxygen ions of the activated carbon block.

[0056] like Figure 1 As shown, in an optional embodiment of the present invention, a handle 21 is provided on the surface of the sealing door 2 .

[0057] In this embodiment, the handle 21 is provided to facilitate opening and closing of the sealed door 2 .

[0058] like Figure 2 As shown, in an optional embodiment of the present invention, the sealed box 1 includes:

[0059] The box frame is a frame structure formed by four side panels 13 connected and bonded together, and the access opening 11 is set on the surface of any side panel 13;

[0060] Top plate 12, top plate 12 is bonded to the upper surface of the box frame;

[0061] Bottom plate 14, bottom plate 14 is bonded to the bottom surface of the box frame;

[0062] The side panels 13 , the top panel 12 and the bottom panel 14 are all transparent panels.

[0063] In this embodiment, a sealed box 1 is formed by bonding the side panels 13, the top panel 12 and the bottom panel 14 to ensure the sealing of the sealed box 1; the side panels 13, the top panel 12 and the bottom panel 14 are all transparent panels, making the sealed box 1 a transparent structure, and the detection results of the negative oxygen ion detector 6 can be observed without opening the sealed door 2.

[0064] like Figure 1 As shown, in an optional embodiment of the present invention, the sealed box 1 further includes:

[0065] Angle iron 3, two perpendicular parts of the angle iron 3 are connected to two adjacent side plates 13 respectively.

[0066] In this embodiment, by connecting the angle iron 3 between two adjacent side plates 13, the connection stability between the side plates 13 can be improved, thereby ensuring the overall strength of the sealed box 1;

[0067] In this embodiment, the angle iron 3 and the side plate 13 may be connected by bonding or by screws.

[0068] like Figures 2 to 4 As shown, in an optional embodiment of the present invention, the four edges of the bottom surface of the top plate 12 are all chamfered structures, and a first filling cavity 15 for filling with sealant is formed between the chamfered structure of the bottom surface of the top plate 12 and the adjacent side plate 13;

[0069] The four edges of the surface of the bottom plate 14 are all chamfered structures, and a second filling cavity 16 for filling with sealant is formed between the chamfered structure of the surface of the bottom plate 14 and the adjacent side plate 13 .

[0070] In this embodiment, by filling the first filling cavity 15 formed between the top plate 12 and the side plate 13 with sealant, the sealing between the top plate 12 and the side plate 13 can be further improved, thereby ensuring the sealing of the sealed box 1;

[0071] By filling the second filling cavity 16 formed between the bottom plate 14 and the side plate 13 with sealant, the sealing between the bottom plate 14 and the side plate 13 can be further improved, thereby ensuring the sealing of the sealed box 1 .

[0072] like Figure 5 and Figure 6 As shown, in an optional embodiment of the present invention, the vertical edges of the side panels 13 are chamfered, and a third filling cavity 17 for filling sealant is formed between the chamfered structure of the side panels 13 and the adjacent side panels 13 .

[0073] In the embodiment, the sealing glue is filled in the third filling cavity 17 formed between the two adjacent side plates 13, so that the sealing performance between the side plates 13 is further improved, and the sealing performance of the sealed box 1 is ensured.

[0074] The above is the preferred embodiment of the present application, it should be pointed out that, for those skilled in the art, without departing from the principles described in the present application, can make a number of improvements and refinements, these improvements and refinements should also be considered as the protection scope of the present application.

Claims

1. An activated carbon block negative oxygen ion release measurement device, characterized by: include: A sealed box (1), wherein the sealed box (1) is a transparent box structure, and a take-in and put-out opening (11) is provided through the outer side surface of the sealed box (1); A sealing door (2) is rotatably mounted on the outer side of the sealing box (1), the sealing door (2) being located on one side of the access opening (11), the sealing door (2) being screwed into the access opening (11) to seal the access opening (11), and the sealing door (2) being screwed out of the access opening (11) to open the access opening (11); A negative oxygen ion detector (6) is placed inside the sealed box (1) to detect the negative oxygen ion value inside the sealed box (1).

2. The activated carbon block negative oxygen ion release measurement device according to claim 1, characterized in that: Also includes: A support frame is provided inside the sealed box (1) and is used for placing activated carbon blocks, and the support frame is a hollow structure.

3. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 2, characterized in that: The carrier frame comprises: A carrier net (5) for placing activated carbon blocks; A support column (4) is connected between the bearing net (5) and the inner bottom surface of the sealing box (1).

4. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 1, characterized in that: A plurality of negative oxygen ion detectors (6) are provided and distributed at different positions inside the sealed box (1).

5. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 1, characterized in that: A sealing gasket is provided on the inner wall of the access opening (11); when the sealing door (2) is screwed into the access opening (11), the side surface of the sealing door (2) is in close contact with the sealing gasket.

6. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 1, characterized in that: A handle (21) is provided on the surface of the sealing door (2).

7. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 1, characterized in that: The sealed box (1) comprises: The box frame is a frame structure formed by butting and bonding four side panels (13), and the access opening (11) is provided on the surface of any side panel (13); A top plate (12), the top plate (12) being adhesively connected to the upper surface of the box frame; A bottom plate (14), the bottom plate (14) being adhesively connected to the bottom surface of the box frame; The side panels (13), the top panel (12) and the bottom panel (14) are all transparent panels.

8. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 7, characterized in that: The sealed box (1) further comprises: An angle iron (3), wherein two perpendicular portions of the angle iron (3) are respectively connected to two adjacent side plates (13).

9. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 7, characterized in that: The four edges of the bottom surface of the top plate (12) are all chamfered structures, and a first filling cavity (15) for filling sealant is formed between the chamfered structure of the bottom surface of the top plate (12) and the adjacent side plate (13); The four edges of the surface of the bottom plate (14) are all chamfered structures, and a second filling cavity (16) for filling sealant is formed between the chamfered structure of the surface of the bottom plate (14) and the adjacent side plate (13).

10. The device for measuring the release of negative oxygen ions from activated carbon blocks according to claim 7, characterized in that: The vertical edges of the side panels (13) are chamfered, and a third filling cavity (17) for filling sealant is formed between the chamfered structure of the side panels (13) and the adjacent side panels (13).