Detection method and system for total nitrogen and total phosphorus

A detection method and detection system technology, applied in the preparation of test samples, color/spectral characteristic measurement, etc., can solve the problems of accelerating the corrosion rate of quartz glass and reducing detection efficiency, so as to speed up detection time, improve detection efficiency, and avoid The effect of corrosion

Active Publication Date: 2014-08-13
LIHE TECH (HUNAN) CO LTD
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

The digestion process of total nitrogen takes about 30 minutes, and the digestion process of total phosphorus also takes about 30 minutes. Therefore, to detect the content of total nitrogen and total phosphorus in water samples, two independent digestion processes will take about a...

Method used

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  • Detection method and system for total nitrogen and total phosphorus
  • Detection method and system for total nitrogen and total phosphorus

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Embodiment 1

[0038] see figure 1 , figure 1 It is a flowchart of a detection method for total nitrogen and total phosphorus disclosed in the embodiment of this application.

[0039] Such as figure 1 As shown, the detection method includes:

[0040] Step 101: heating the water sample added with potassium persulfate to 70-110°C in an alkaline and closed environment for digestion for 1-10 minutes;

[0041] Specifically, under airtight conditions, the alkaline environment is more conducive to the reaction of potassium persulfate. Potassium persulfate reacts with nitrogen-containing substances in the water sample and converts it into nitrate nitrogen, and reacts with phosphorus-containing substances in the water sample to convert it into orthophosphate. This application chooses to carry out preliminary digestion in an alkaline environment of 70-110°C, which is lower than the temperature used in existing methods, so that the alkaline environment will cause less corrosion to the test vessel. ...

Embodiment 2

[0065] Considering the diversity of water sample selection, different water samples have different turbidity. The turbidity will further affect the accuracy of the measurement results. We further add the following steps:

[0066] Read the turbidity value of the water sample, and perform turbidity compensation for the content of total nitrogen and total phosphorus according to the preset corresponding relationship.

[0067] Specifically, after the light is projected on the water sample, the turbidity curve of the water sample can be drawn by reading the turbidity value of several special wavelengths, and then refer to the pre-statistical turbidity value and the influence value of total nitrogen and total phosphorus content The corresponding relationship between the turbidity compensation for the determined total nitrogen and total phosphorus content.

Embodiment 3

[0069] In addition, it should be noted that since the total nitrogen substance contains free ammonia nitrogen, the high-concentration ammonia nitrogen solution volatilizes in the form of ammonia gas in an alkaline environment, resulting in a relatively small test concentration of total nitrogen. Therefore, this application adopts a closed environment, adding conditioning solution to the completely digested water sample, and re-dissolving the basic nitrogen-containing gas in the reaction device in water, so as to more accurately test the result of total nitrogen.

[0070] In addition, in addition to the detection of total nitrogen and total phosphorus, the detection method of the present application can also detect other parameters by adjusting reagents, such as some conventional parameters such as total iron, total manganese, and total nickel.

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Abstract

The invention discloses a detection method and system for total nitrogen and total phosphorus. The detection method comprises the following steps: heating a water sample to which potassium persulfate is added in an alkaline and closed environment, and performing digestion for 1-10 minutes after heating to 70-110 DEG C; and then changing the pH value of the water sample for realizing an acid environment, and continuing to perform digestion on the water sample at 125-250 DEG C for 1-10 minutes, thereby obtaining the water sample in complete digestion, wherein the corrosion to a testing vessel by a high-temperature alkaline environment is prevented, and the high temperature of 125-250 DEG C accelerates the digestion process of the water sample; then determining the total nitrogen content by utilizing an existing ultraviolet spectrophotometry; and adding an ammonium molybdate reagent to the water sample after complete digestion, and determining the content of the total phosphorus in the water sample by utilizing the ammonium molybdate spectrophotometry. Therefore, the total nitrogen and the total phosphorus can be detected sequentially after digestion of the sample without secondary water sample digestion; the detection time is shortened further; the detection efficiency is improved.

Description

technical field [0001] The present application relates to the technical field of water sample detection, and more specifically, to a detection method and system for total nitrogen and total phosphorus. Background technique [0002] Total nitrogen includes inorganic nitrogen such as nitrate, nitrite and ammonium salt and organic nitrogen such as protein, amino acid, ribonucleic acid, enzyme and organic amine. Total nitrogen content is one of the important indicators to measure water quality. It is often used to indicate the degree of water pollution by nutrients and is one of the main items of environmental water testing. Total phosphorus includes elemental phosphorus, orthophosphate, condensed sulfate, pyrophosphate, metaphosphate and phosphate with organic groups. Its main sources are domestic sewage, chemical fertilizers, organophosphorus pesticides, and phosphate builders used in modern detergents. Excessive phosphorus will cause the water body to be polluted and smelly...

Claims

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Application Information

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IPC IPC(8): G01N21/33G01N21/31G01N1/44
Inventor 陈阳段剑洁庹丹丹
Owner LIHE TECH (HUNAN) CO LTD
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