Portable real-time detection device and method for heavy metals in water
Through the portable water-quality heavy metal real-time detection device, the corresponding dual-purpose driving mechanism and the mobile assembly of the detection tube are used to solve the problems of pollution and damage of the detection tube, and the detection efficiency and accuracy are improved.
Patent Information
- Application Number
- CN202510014501.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-06
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2045-01-06
AI Technical Summary
The existing water quality heavy metal detection device needs to frequently open and close the detection tube during the sampling process, which can easily lead to contamination of the detection tube, affect the detection accuracy, and the stirred water flow may damage the detection bottle.
A portable water-quality heavy metal real-time detection device is designed, using a corresponding dual-purpose driving mechanism for detection tubes and a moving assembly for detection tubes. The magnetic suction limiting ring block and arc-shaped sealing block are formed to avoid contamination, and the detection tubes are driven to rotate and shake through auxiliary gears to improve reaction efficiency.
The sealing and protection of the detection tube during the sampling process is achieved, the impact of pollution is avoided, the detection efficiency and accuracy are improved, and the risk of damage to the detection tube is reduced.
Smart Images

Figure CN119715518B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water quality heavy metal detection, and in particular to a portable water quality heavy metal real-time detection device and a detection method. Background Art
[0002] The real-time heavy metal detection device for water quality can continuously and in real time monitor the heavy metal content in water bodies, and promptly detect changes and abnormalities in water quality. This is of great significance for places with high water quality requirements, such as drinking water sources, aquaculture bases, and industrial water. It can help relevant personnel take timely measures to avoid losses caused by water quality problems. Other substances in water samples, such as organic matter, suspended matter, pH, etc., may interfere with the detection of heavy metals and affect the accuracy of test results. Water quality sampling points are usually dirty, and staff use their hands for a long time to collect samples, which is easy to come into contact with the surrounding environment. Metal particles may be put into the test tube, thus affecting the accuracy of the test.
[0003] In the patent document with the published announcement number CN110987919B, a method for detecting heavy metal ions in water quality is disclosed. In this detection method, sampling is performed at multiple points during the detection. When sampling, water is first taken twice from the shallow layer, middle layer and deep layer respectively, and then the water flow is stirred to mix the water in the shallow layer, middle layer and deep layer. Then water is taken twice from the surface layer and middle layer respectively. Water is taken at multiple points, which makes the detection results more accurate, greatly reduces the detection error caused by environmental factors, and preserves the water samples at the same temperature as the water body at the water sampling point to prevent inaccurate detection results caused by external temperature changes, thereby increasing detection accuracy.
[0004] When the above device is in use, it is necessary to collect water quality samples at multiple points. During this process, the test tube is taken out many times, and the staff needs to use the rubber stopper to frequently open or close the test tube, which may cause the gloves to touch dirt and other objects. These interferences can easily enter the test bottle and affect the actual test results. At the same time, since the water flow needs to be stirred, the staff is usually required to insert the bottle stopper tightly, which can easily cause damage to the test bottle.
[0005] Therefore, this application proposes a portable real-time detection device and method for heavy metals in water. Summary of the Invention
[0006] The purpose of the present invention is to address the problem in the background technology that there is a need to collect water quality samples at multiple points. The staff needs to use rubber stoppers to frequently open or close the detection tube, which may cause the gloves to come into contact with dirt and other objects. These interfering objects can easily enter the detection bottle and affect the actual detection results. Therefore, a portable water quality heavy metal real-time detection device and detection method are proposed.
[0007] In one aspect, the present invention provides a portable real-time heavy metal detection device for water quality, comprising a detection box housing assembly, a corresponding detection tube dual-purpose drive mechanism being mounted in the middle of the detection box housing assembly, and a detection tube moving assembly being mounted on the outer side of the corresponding detection tube dual-purpose drive mechanism;
[0008] The detection box housing assembly includes a detection box protective housing, the inner wall of which is provided with a plurality of sealed protective cavities for installing detection tubes, and the detection box protective housing is located inside the sealed protective cavities and is fixedly connected to a sealed sliding cavity block;
[0009] The corresponding detection tube dual-purpose driving mechanism includes an auxiliary positioning rod fixedly mounted on the bottom of the detection box protective shell;
[0010] The detection tube moving assembly includes a limit block rotatably connected to the outside of the auxiliary positioning rod, the outside of the limit block is fixedly connected to the limit block, the outside of the limit block is slidably connected to an external sliding rod, one side of the external sliding rod is fixedly connected to a first vertical clamping rod, one side of the first vertical clamping rod is hinged with two groups of double-hinged rods, the side of the double-hinged rod away from the external sliding rod is hinged with a second vertical clamping rod, and the extended end of the second vertical clamping rod is slidably connected to the inside of the multilateral sliding cavity block;
[0011] A detection tube corresponding clamping assembly is installed on one side of the detection tube moving assembly, and the detection tube corresponding clamping assembly includes a first arc-shaped sealing block fixedly installed on one side of the second vertical clamping rod, and the first arc-shaped sealing block is fixedly connected to a group of magnetic limit clamping ring blocks on the side away from the second vertical clamping rod. The number of the magnetic limit clamping ring blocks is two groups, and the two groups of magnetic limit clamping ring blocks are arranged in a magnetic splicing state. One side of the other group of magnetic limit clamping ring blocks is fixedly connected to a second arc-shaped sealing block, and the second arc-shaped sealing block and the first arc-shaped sealing block are slidably installed inside the sealing protective cavity, and the second arc-shaped sealing block, the first arc-shaped sealing block, the sealing sliding cavity block, and the detection box protective shell are arranged in a sealed state.
[0012] Optionally, the plurality of sealed protective cavities are arranged in an annular state with respect to the annular inner wall of the protective shell of the detection box, and the number of the sealed protective cavities is consistent with the number of the detection tubes.
[0013] Optionally, the protective shell of the detection box is located inside the sealed protective cavity and is fixedly connected with arc-shaped pressure blocks whose number is the same as the sealed protective cavity, and the arc-shaped pressure blocks are located directly above the detection tube.
[0014] Optionally, the corresponding detection tube dual-purpose driving mechanism also includes a limiting pressure block, a magnetic pressure block is provided inside the auxiliary positioning rod, and the outer side of the limiting pressure block is slidably installed inside the limiting pressure block through the magnetic pressure block.
[0015] Optionally, the detection tube moving assembly also includes a slide positioning block with the same number of slide grooves as the number of slide grooves opened on the multilateral slide cavity block, the slide positioning block is internally slidably connected to a slide cavity block, and a limiting spring is fixedly connected between the slide cavity block and the slide positioning block.
[0016] Optionally, one side of the multilateral sliding cavity block is provided with an auxiliary slide with the same number of slide grooves as the multilateral sliding cavity block, the internal sliding connection of the auxiliary slide is provided with a guide push block, the outer side of the guide push block is hinged with an inclined push rod, the side of the inclined push rod away from the guide push block is hinged to the outer side of the sliding cavity block, and the guide push block is fixedly connected to the second vertical clamping rod.
[0017] Optionally, the bottom of the auxiliary positioning rod is rotatably connected to a main gear, the outer side of the main gear is meshedly connected to an auxiliary gear, and the auxiliary gear is rotatably connected to the inside of the protective shell of the detection box.
[0018] Optionally, a gear cavity adapted to the external slide rod is provided on the top of the main gear, and anti-slip grooves are provided on the inner wall of the gear cavity.
[0019] On the other hand, the present invention provides a method for real-time detection of heavy metals in water quality, which is applied to the above portable real-time detection device for heavy metals in water quality, comprising the following steps:
[0020] S1: First, select a designated location to collect water samples. The staff will pass the test tube through multiple points to take samples. When taking samples, first take water twice from the shallow layer, middle layer, and deep layer respectively;
[0021] S2: Place the test tube between the two sets of magnetic limit clamp blocks, and use a dropper to add the color developer into the test tube. Insert the rubber stopper into the test tube without much force. The corresponding test tube dual-purpose driving mechanism drives the test tube wrapped by the corresponding clamping assembly to move synchronously. The second arc-shaped sealing block, the first arc-shaped sealing block, the sealing sliding cavity block, and the protective shell of the test box wrap the test tube to form a sealed state, and the upper bottle stopper of the test tube and the arc-shaped pressure block form a relative squeezing state, completing the sealing state between the test tube and the bottle stopper;
[0022] S3: The corresponding detection tube dual-purpose drive mechanism drives the corresponding clamping assembly of the detection tube to return to its original position. The auxiliary gear engages with the main gear to drive the main gear, the limit block and the external slide rod to rotate along the auxiliary positioning rod, thereby rotating and shaking the detection tube after the reagent is passed through.
[0023] S4: The corresponding detection tube dual-purpose driving mechanism causes the second arc-shaped sealing block, the first arc-shaped sealing block and the sealing sliding cavity block, and the detection box protective shell to wrap the detection tube to form a sealed state, waiting for the heavy metal ions to react with the color developer to generate a colored compound. Then, a photoelectric colorimeter device is used to measure the absorbance of the solution, and the concentration of the heavy metal ions is calculated according to the standard curve to obtain the corresponding result.
[0024] In summary, this application includes at least one of the following beneficial technical effects:
[0025] 1. According to the steps required by the test tube, the corresponding test tube dual-purpose driving mechanism pushes the second vertical clamping rod to move along the multilateral sliding cavity block. Then, when the test tube is put into the reagent, the second arc-shaped sealing block forms a relatively sealed state with the sealing sliding cavity block and the protective shell of the test box to prevent the storage environment from being contaminated. When the test tube needs to be stored, the first arc-shaped sealing block fits in the gap between the sealing sliding cavity block and forms a sealed condition with the protective shell of the test box, thereby better protecting the test tube and preventing the test tube from being damaged. It also avoids excessive squeezing of the sealing position of the test tube that may cause damage to the test tube, and facilitates the staff to carry the device.
[0026] 2. The upper part of the test tube enters the sealed protective cavity under the clamping of the sealing sliding cavity block, and the bottle plug above the test tube and the arc-shaped pressure block form a relative squeezing state, resulting in a better seal between the bottle plug and the test tube, thereby improving the preservation effect of the test tube and avoiding external influences before testing;
[0027] 3. The auxiliary gear drives the main gear, the limit block and the external slide rod to rotate along the auxiliary positioning rod by meshing with the main gear, and then fully rotates and shakes the test tube after the reagent is introduced, thereby improving the reagent reaction efficiency. In view of the requirement of rapid testing in health services, compared with the traditional method of taking out and shaking the test tubes one by one, it improves the detection efficiency and avoids contamination caused by excessive contact between the test tubes and the outside, which affects the accuracy of the test results. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 This is a schematic structural diagram of a test kit for rapid detection of food microorganisms according to the present invention;
[0029] Figure 2 For the present invention Figure 1 Enlarged view of the middle A area;
[0030] Figure 3 This is a schematic structural diagram of the position-limiting pressing block of the present invention;
[0031] Figure 4 Schematic diagram of the structure of the second arc-shaped sealing block of the present invention;
[0032] Figure 5 For the present invention Figure 4 Enlarged view of the middle B area;
[0033] Figure 6 This is a structural diagram of the auxiliary positioning rod of the present invention;
[0034] Figure 7 This is a structural diagram of the magnetic limiting clamping ring block of the present invention;
[0035] Figure 8 This is a schematic structural diagram of the first arc-shaped sealing block of the present invention.
[0036] Reference numerals: 1. Detection box housing assembly; 101. Detection box protective housing; 102. Sealed sliding cavity block; 103. Sealed protective cavity; 104. Arc-shaped pressure block; 2. Corresponding detection tube dual-purpose driving mechanism; 201. Position-limiting pressure block; 202. Auxiliary positioning rod; 203. Main gear; 204. Auxiliary gear; 205. Gear clamping cavity; 206. Magnetic pressure block; 3. Detection tube moving assembly; 301. Multi-sided sliding cavity block; 302 , double hinged rod; 303, external sliding rod; 304, first vertical clamping rod; 305, auxiliary slide; 306, slide positioning block; 307, inclined push rod; 308, slide cavity clamping block; 309, guide push block; 310, limit spring; 311, second vertical clamping rod; 312, limit block; 4, detection tube corresponding clamping assembly; 401, first arc-shaped sealing block; 402, second arc-shaped sealing block; 403, magnetic limit clamping ring block. DETAILED DESCRIPTION
[0037] The technical solution of the present invention is further described below with reference to the accompanying drawings and specific embodiments.
[0038] like Figure 1-Figure 3 As shown, the portable real-time detection device for heavy metals in water proposed by the present invention includes a detection box housing assembly 1, a corresponding detection tube dual-purpose driving mechanism 2 is installed in the middle of the detection box housing assembly 1, and a detection tube moving assembly 3 is installed on the outer side of the corresponding detection tube dual-purpose driving mechanism 2;
[0039] The detection box housing assembly 1 includes a detection box protective housing 101. The inner wall of the detection box protective housing 101 is provided with multiple sealed protective cavities 103 for installing detection tubes. The detection box protective housing 101 is located inside the sealed protective cavities 103 and is fixedly connected to a sealed sliding cavity block 102. The multiple sealed protective cavities 103 are arranged in an annular state with respect to the annular inner wall of the detection box protective housing 101. The number of sealed protective cavities 103 is the same as the number of detection tubes.
[0040] The detection box protective shell 101 is located inside the sealed protective cavity 103 and is fixedly connected to an arc-shaped pressure block 104 with the same number as the sealed protective cavity 103. The arc-shaped pressure block 104 is located directly above the detection tube. When the second arc-shaped sealing block 402, the first arc-shaped sealing block 401, the sealing sliding cavity block 102, and the detection box protective shell 101 wrap the detection tube to form a sealed state, the upper part of the detection tube enters the sealed protective cavity 103 under the clamping of the sealing sliding cavity block 102, and the bottle stopper above the detection tube forms a relative extrusion state with the arc-shaped pressure block 104, resulting in better sealing between the bottle stopper and the detection tube, thereby improving the preservation effect of the detection tube.
[0041] like Figure 1-Figure 3As shown, the corresponding detection tube dual-purpose driving mechanism 2 includes an auxiliary positioning rod 202 fixedly installed at the bottom of the detection box protective shell 101, and the corresponding detection tube dual-purpose driving mechanism 2 also includes a limiting pressure block 201. A magnetic pressure block 206 is provided inside the auxiliary positioning rod 202. The outer side of the limiting pressure block 201 is slidably installed inside the limiting pressure block 201 through the magnetic pressure block 206. The bottom of the auxiliary positioning rod 202 is rotatably connected to the main gear 203, and the outer side of the main gear 203 is meshed with an auxiliary gear 204. The auxiliary gear 204 is rotatably connected to the detection box. Inside the protective shell 101 of the box, a gear card cavity 205 is provided on the top of the main gear 203 to match the external slide rod 303. The inner wall of the gear card cavity 205 is provided with anti-slip grooves. When the detection tube moving component 3 and the detection tube corresponding clamping component 4 gather the detection tubes in the central position to put in the reagent, the second vertical card rod 311 moves along the slideway of the multilateral sliding cavity block 301 toward the auxiliary positioning rod 202. The second vertical card rod 311 drives the double hinged rod 302 to rotate clockwise along the connection with the second vertical card rod 311, and the double hinged rod 302 rotates clockwise through the first vertical card rod 311. The straight card rod 304 drives the external slide bar 303 to move downward along the limit block 312. At this time, the external slide bar 303 is inserted into the gear card cavity 205. The outer wall of the external slide bar 303 is in contact with the inner wall of the gear card cavity 205. The friction between the external slide bar 303 and the gear card cavity 205 causes the main gear 203 and the external slide bar 303 to move synchronously. It is explained here that the connection between the external slide bar 303 and the gear card cavity 205 can also be a bevel gear meshing connection. As the motor connected to the bottom of the auxiliary gear 204 drives the auxiliary gear 204 The motor is fixedly connected to the protective shell 101 of the detection box, and the auxiliary gear 204 drives the main gear 203, the limit block 312 and the external slide bar 303 to rotate along the auxiliary positioning rod 202 through the engagement with the main gear 203, so as to fully rotate and shake the detection tube after the reagent is introduced, thereby improving the reagent reaction efficiency. In view of the requirement of rapid detection in health services, compared with the traditional method of taking out and shaking the detection tubes one by one, it improves the detection efficiency and avoids contamination caused by excessive contact of the detection tubes with the outside, which affects the accuracy of the detection results.
[0042] like Figure 3-Figure 8As shown, the detection tube moving assembly 3 includes a limit block 312 rotatably connected to the outside of the auxiliary positioning rod 202, the outside of the limit block 312 is fixedly connected to the limit block 312, the outside of the limit block 312 is slidably connected to the external sliding rod 303, one side of the external sliding rod 303 is fixedly connected to the first vertical clamping rod 304, one side of the first vertical clamping rod 304 is hinged with two groups of double hinged rods 302, the side of the double hinged rod 302 away from the external sliding rod 303 is hinged with a second vertical clamping rod 311, the second vertical clamping rod The extended end of 311 is slidably connected to the interior of the multilateral sliding cavity block 301. The detection tube moving assembly 3 also includes a slide positioning block 306 with the same number of slide grooves as the multilateral sliding cavity block 301. The interior of the slide positioning block 306 is slidably connected to a slide cavity block 308. The slide cavity block 308 and the slide positioning block 306 are fixedly connected with a limit spring 310. One side of the multilateral sliding cavity block 301 is provided with an auxiliary slide 305 with the same number of slide grooves as the multilateral sliding cavity block 301. The interior of the auxiliary slide 305 The sliding connection is provided with a guide push block 309, and the outer side of the guide push block 309 is hinged with an inclined push rod 307. The side of the inclined push rod 307 away from the guide push block 309 is hinged on the outer side of the sliding cavity block 308. The guide push block 309 is fixedly connected to the second vertical clamping rod 311. When the staff manually pushes the limiting pressure block 201 along the auxiliary positioning rod 202 into the magnetic pressure block 206, the limiting pressure block 201 and the bottom of the magnetic pressure block 206 are fixed in a magnetic state. The lower part of the limiting pressure block 201 squeezes the inclined push rod 307, and the inclined push rod 307 drives the slide cavity block 308 to move downward along the inner part of the slide positioning block 306 under the limitation of the guide push block 309 and the auxiliary slide 305. At the same time, the inclined push rod 307 deflects along the slide cavity block 308. At this time, the guide push block 309 pushes the second vertical clamping rod 311 along the auxiliary slide 305, and the second vertical clamping rod 311 drives the detection tube corresponding to the clamping assembly 4 to slide stably;
[0043] The first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the first and second clamping blocks 401 are fixed to the sides of the second vertical clamping rod 311, and the second and second clamping blocks 402 are fixed to the sides of the second vertical clamping rod 311, and the second and second clamping blocks 402 are fixed to the sides of the second vertical clamping rod 311, and the second and second clamping blocks 402 are fixed to the sides of the second vertical clamping rod 311, and the second and second clamping blocks 402 are fixed to the sides of the second vertical clamping rod 311, and the second and second clamping blocks 402 are fixed to the sides of the second vertical clamping rod 311, and the second and second clamping blocks When the second clamping rod 311 is pressed against the sealing surface 102, the second clamping rod 311 is pressed against the sealing surface 102, and the second clamping rod 311 is pressed against the sealing surface 102, thereby preventing the sealing surface 101 from being damaged.
[0044] It is explained here that the second arc-shaped sealing block 402 can be pushed manually to separate the two magnetic limiting clamping ring blocks 403, so as to facilitate the replacement of the detection tube.
[0045] The real-time detection method for heavy metals in water includes the following steps:
[0046] S1: First, select a designated location to collect water samples. The staff will pass the test tube through multiple points to take samples. When taking samples, first take water twice from the shallow layer, middle layer, and deep layer respectively;
[0047] S2: Place the test tube between the two sets of magnetic limit clamp blocks 403, and use a dropper to add the color developer into the test tube. Insert the rubber stopper into the test tube without much force. The corresponding test tube dual-purpose driving mechanism 2 drives the test tube wrapped by the corresponding clamping assembly 4 to move synchronously. The second arc-shaped sealing block 402, the first arc-shaped sealing block 401, the sealing sliding cavity block 102, and the test box protective shell 101 wrap the test tube to form a sealed state, and the upper bottle stopper of the test tube and the arc-shaped pressure block 104 form a relative extrusion state, completing the sealing state between the test tube and the bottle stopper;
[0048] S3: The corresponding detection tube dual-purpose drive mechanism 2 drives the detection tube corresponding clamping assembly 4 to return to its original position. The auxiliary gear 204 engages with the main gear 203, driving the main gear 203, the limit block 312, and the external slide rod 303 to rotate along the auxiliary positioning rod 202, thereby rotating and shaking the detection tube after the reagent is passed through.
[0049] S4: The corresponding detection tube dual-purpose driving mechanism 2 is used to again cause the second arc-shaped sealing block 402, the first arc-shaped sealing block 401, the sealing sliding cavity block 102, and the detection box protective shell 101 to wrap the detection tube to form a sealed state, waiting for the heavy metal ions to react with the color developer to generate a colored compound. Then, a photoelectric colorimeter device is used to measure the absorbance of the solution, and the concentration of the heavy metal ions is calculated according to the standard curve to obtain the corresponding result.
[0050] It should be noted that, in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations.
[0051] "Comprising" or any other variation thereof is intended to cover non-exclusive inclusion such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0052] The above specific embodiments are merely several optional embodiments of the present invention. Based on the technical solutions of the present invention and the relevant inspirations of the above embodiments, those skilled in the art may make various alternative improvements and combinations to the above specific embodiments.
Claims
1. A portable real-time detection device for heavy metals in water, comprising a detection box housing assembly (1), characterized in that: A corresponding detection tube dual-purpose driving mechanism (2) is installed in the middle of the detection box housing assembly (1), and a detection tube moving assembly (3) is installed on the outer side of the corresponding detection tube dual-purpose driving mechanism (2); The detection box housing assembly (1) comprises a detection box protective housing (101), the inner wall of the detection box protective housing (101) is provided with a plurality of sealed protective cavities (103) for installing detection tubes, and the detection box protective housing (101) is located inside the sealed protective cavity (103) and is fixedly connected to a sealed sliding cavity block (102); The corresponding detection tube dual-purpose driving mechanism (2) comprises an auxiliary positioning rod (202) fixedly mounted on the bottom of the detection box protective housing (101); The detection tube moving assembly (3) includes a limit block (312) rotatably connected to the outside of the auxiliary positioning rod (202), the outside of the limit block (312) is fixedly connected to the limit block (312), the outside of the limit block (312) is slidably connected to an external sliding rod (303), one side of the external sliding rod (303) is fixedly connected to a first vertical clamping rod (304), one side of the first vertical clamping rod (304) is hinged to two groups of double hinged rods (302), the side of the double hinged rod (302) away from the external sliding rod (303) is hinged to a second vertical clamping rod (311), and the extended end of the second vertical clamping rod (311) is slidably connected to the inside of the multilateral sliding cavity block (301); A detection tube corresponding clamping assembly (4) is installed on one side of the detection tube moving assembly (3), and the detection tube corresponding clamping assembly (4) includes a first arc-shaped sealing block (401) fixedly installed on one side of the second vertical clamping rod (311), and a group of magnetic limit snap ring blocks (403) are fixedly connected to the side of the first arc-shaped sealing block (401) away from the second vertical clamping rod (311), and the number of the magnetic limit snap ring blocks (403) is two groups, and the two groups of magnetic limit snap ring blocks (403) are arranged in a magnetic splicing state, and one side of the other group of magnetic limit snap ring blocks (403) is fixedly connected to a second arc-shaped sealing block (402), and the second arc-shaped sealing block (402) and the first arc-shaped sealing block (401) are slidably installed inside the sealing protection cavity (103); The detection tube moving assembly (3) further includes a slideway positioning block (306) having the same number of slide grooves as that provided on the multi-sided slideway block (301), the slideway positioning block (306) being internally slidably connected to a slideway clamping block (308), and a limit spring (310) being fixedly connected between the slideway clamping block (308) and the slideway positioning block (306); An auxiliary slideway (305) having the same number of slide grooves as the polygonal slideway block (301) is provided on one side of the polygonal slideway block (301), and a guide push block (309) is slidably connected inside the auxiliary slideway (305), and an inclined push rod (307) is hinged on the outer side of the guide push block (309), and a side of the inclined push rod (307) away from the guide push block (309) is hinged on the outer side of the slideway block (308), and the guide push block (309) is fixedly connected to the second vertical clamping rod (311).
2. The portable real-time heavy metal detection device for water quality according to claim 1, characterized in that: The plurality of sealed protective cavities (103) are arranged in an annular state with respect to the annular inner wall of the detection box protective shell (101), the number of the sealed protective cavities (103) is consistent with the number of the detection tubes, and the second arc-shaped sealing block (402), the first arc-shaped sealing block (401), the sealing sliding cavity block (102), and the detection box protective shell (101) are arranged in a sealed state.
3. The portable real-time heavy metal detection device for water quality according to claim 2, characterized in that: The detection box protective shell (101) is located inside the sealed protection cavity (103) and is fixedly connected with arc-shaped pressure blocks (104) whose number is the same as the sealed protection cavity (103). The arc-shaped pressure blocks (104) are located directly above the detection tube.
4. The portable real-time heavy metal detection device for water quality according to claim 3, characterized in that: The corresponding detection tube dual-purpose driving mechanism (2) further comprises a limiting pressure block (201), a magnetic pressure block (206) is provided inside the auxiliary positioning rod (202), and the outer side of the limiting pressure block (201) is slidably mounted inside the limiting pressure block (201) via the magnetic pressure block (206).
5. The portable real-time detection device for heavy metals in water according to claim 4, characterized in that: The bottom of the auxiliary positioning rod (202) is rotatably connected to a main gear (203), the outer side of the main gear (203) is meshedly connected to an auxiliary gear (204), and the auxiliary gear (204) is rotatably connected to the inside of the detection box protective shell (101).
6. The portable real-time heavy metal detection device for water quality according to claim 5, characterized in that: A gear clamping cavity (205) adapted to the external slide bar (303) is provided on the top of the main gear (203), and an anti-slip pattern is provided on the inner wall of the gear clamping cavity (205).
7. A method for real-time detection of heavy metals in water, using the portable real-time detection device for heavy metals in water according to claim 6, characterized in that: The following steps are involved: S1: First, select a designated location to collect water samples. The staff will pass the test tube through multiple points to take samples. When taking samples, first take water twice from the shallow layer, middle layer, and deep layer respectively; S2: The detection tube is placed between the two sets of magnetic limit clamping ring blocks (403), and the color developer is added into the detection tube using a dropper. The rubber stopper is inserted into the detection tube without much force. The corresponding detection tube dual-purpose driving mechanism (2) drives the detection tube and the detection tube corresponding clamping assembly (4) to move synchronously. The second arc-shaped sealing block (402), the first arc-shaped sealing block (401) and the sealing sliding cavity block (102), and the detection box protective shell (101) wrap the detection tube to form a sealed state, and the upper bottle stopper of the detection tube and the arc-shaped pressure block (104) form a relative extrusion state, completing the sealing state between the detection tube and the bottle stopper; S3: The corresponding detection tube dual-purpose driving mechanism (2) drives the detection tube corresponding clamping assembly (4) to return to its original position, and the auxiliary gear (204) drives the main gear (203), the limit block (312) and the external slide rod (303) to rotate along the auxiliary positioning rod (202) through engagement with the main gear (203), thereby rotating and shaking the detection tube after the reagent is passed through; S4: The corresponding detection tube dual-purpose driving mechanism (2) is used to again cause the second arc-shaped sealing block (402), the first arc-shaped sealing block (401), the sealing sliding cavity block (102), and the detection box protective shell (101) to wrap the detection tube to form a sealed state, waiting for the heavy metal ions to react with the color developer to generate a colored compound, and then using a photoelectric colorimeter device to measure the absorbance of the solution, and calculate the concentration of the heavy metal ions according to the standard curve to obtain the corresponding result.
Citation Information
Patent Citations
A method for detecting heavy metal ions in water quality
CN110987919B
Inorganic aluminum salt quality detection device and method
CN118624308A
Sewage detection sampling device
CN118961297A