CN203824912U - Ammonium salt concentration measuring device based on laser-Raman spectrum technology - Google Patents

Ammonium salt concentration measuring device based on laser-Raman spectrum technology Download PDF

Info

Publication number
CN203824912U
CN203824912U CN201420124251.6U CN201420124251U CN203824912U CN 203824912 U CN203824912 U CN 203824912U CN 201420124251 U CN201420124251 U CN 201420124251U CN 203824912 U CN203824912 U CN 203824912U
Authority
CN
China
Prior art keywords
laser
ammonium salt
optical fiber
salt concentration
probe
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
CN201420124251.6U
Other languages
Chinese (zh)
Inventor
蔡廷栋
王贵师
顾智杰
王宏明
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Suzhou Lehman Optical Technology Co., Ltd.
Original Assignee
SUZHOU JIUWANG NEW MATERIAL RESEARCH AND DEVELOPMENT Co Ltd
Suzhou Jiuwang Environmental Protection Science & Technology Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by SUZHOU JIUWANG NEW MATERIAL RESEARCH AND DEVELOPMENT Co Ltd, Suzhou Jiuwang Environmental Protection Science & Technology Co Ltd filed Critical SUZHOU JIUWANG NEW MATERIAL RESEARCH AND DEVELOPMENT Co Ltd
Priority to CN201420124251.6U priority Critical patent/CN203824912U/en
Application granted granted Critical
Publication of CN203824912U publication Critical patent/CN203824912U/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Landscapes

  • Investigating, Analyzing Materials By Fluorescence Or Luminescence (AREA)

Abstract

The utility model discloses an ammonium salt concentration measuring device based on a laser-Raman spectrum technology. The measuring device comprises a laser, an optical fiber I, a Roman probe, a clamp, an optical fiber II, a spectrograph and a computer, wherein the laser is connected to the Roman probe through the optical fiber I; the clamp is provided with an open hole and is internally provided with a sample pool and a reflecting mirror; the head of the Roman probe is connected to one end of the sample pool in an airtight manner through the open hole; the other end of the sample pool is connected to the reflecting mirror in an airtight manner; the sample pool is used for containing an amminium salt solution to be measured; the Roman probe is connected to one end of the spectrograph through the optical fiber II; the other end of the spectrograph is connected to the computer. The measuring device disclosed by the utility model can be used for accurately and rapidly measuring the type and concentration of an aluminum salt.

Description

A kind of measurement mechanism of the ammonium salt concentration based on laser Raman spectroscopy technology
Technical field
The utility model relates to a kind of measurement mechanism of the ammonium salt concentration based on laser Raman spectroscopy technology.
Background technology
China has become maximum in the world iron and steel producing country, along with the quickening of industrialization, urbanization and new countryside construction, can sharply increase the demand of iron and steel, and then pull the increase of coke demand and the development of Coke Industry.In process of coking, the H in coal chemical enterprise coke-oven gas 2s, HCN and products of combustion thereof not only can pollute atmospheric environment, and have a strong impact on the sustainable development of China's coking industry.Therefore, coke-oven gas is carried out to the purified treatment of desulfuration and decyanation imperative.
Main methods has ADA method, tannin extract method, HPF method etc. now, and first two method is all wanted additional alkali source, and processing cost is large, and the liquid waste processing difficulty of generation is large.Wet oxidation process taking ammonia as alkali source that is HPF method are comparatively ripe, and effect is also best, and processing cost is low, is the desulfurizing and decyanating method that current coal chemical enterprise generally adopts.The defect of this technique be in circulation fluid thiocyanic acid by the concentration of the salts such as, ATS (Ammonium thiosulphate), ammonium sulfate along with the lengthening of cycling time can raise, can cause corrosion to equipment, can affect process efficiency if do not discharge, pollute the environment if discharge.
Our province You Hen many enterprises or are developing the correlation technique that can extract the various ammonium salts in coke-oven gas HPF method desulfurization dehydrogenation waste liquid at present, " separation method of multi-ammonium compound salt " utility model patent that for example publication number is CN101012065, can successfully carry out relevant treatment to the waste liquid of HPF method, by waste water is decoloured, the pre-treatments such as filtration, obtain clear liquid evaporation under reduced pressure, concentrated, the cooling multi-ammonium compound salt solid that obtains, under different temperatures, repeatedly dissolve, crystallization, Separation of Solid and Liquid, by the ammonium thiocyanate containing in multi-ammonium compound salt, ATS (Ammonium thiosulphate), three kinds of ammonium salts of ammonium sulfate are separated one by one, its product purity reaches respectively 99%, 95%, 96%, both met national recycling economy and cleaned production, help again enterprise to solve environmental issue, realize resource circulation utilization.A committed step in the method use procedure is the accurate measurement to ammonium thiocyanate, ATS (Ammonium thiosulphate), three kinds of amounts of ammonium salt of ammonium sulfate, what use at present is manual titration's method, this method measuring accuracy is low, length consuming time, and titration end-point can be because of operator's difference to some extent; Although potentiometric titration result is accurate, spent time is more than manual titration, and is not suitable for the titration process of precipitation or floccus generation.So how to realize, accurate, quick, real-time, the dynamic and polycomponent of ammonium salt is measured simultaneously, become a large bottleneck.
Utility model content
The technical problems to be solved in the utility model is to provide a kind of measurement mechanism of the ammonium salt concentration based on laser Raman spectroscopy technology, can measure accurately and rapidly kind and the concentration thereof of ammonium salt.
For solving the problems of the technologies described above, the technical solution of the utility model is:
A measurement mechanism for ammonium salt concentration based on laser Raman spectroscopy technology, comprises laser instrument, optical fiber one, Raman probe, fixture, optical fiber two, spectrometer, computing machine,
Described laser instrument is connected in Raman probe by optical fiber one,
On described fixture, offer perforate, in described fixture, be provided with sample cell, catoptron, the head of described Raman probe connects airtight the one end in sample cell by perforate, and the other end of described sample cell connects airtight in catoptron, described sample cell is for placing ammonium salt solution to be measured
Described Raman probe is connected in one end of spectrometer by optical fiber two, the other end of described spectrometer is connected in computing machine.
Preferably, laser instrument described in the utility model is semiconductor laser or solid state laser.
Preferably, the output light of laser instrument described in the utility model is visible or infrared light.
Preferably, Raman probe described in the utility model has adjustable focal length.
Further, the utility model also comprises USB line, and described spectrometer is connected in computing machine by USB line.
Measurement mechanism principle of work described in the utility model is as follows:
Laser instrument output light is coupled in Raman probe by optical fiber one, acts on the sample in the sample cell in fixture, and reflected light again enters Raman probe after catoptron reflection, sends into spectrometer through optical fiber two; Spectrometer is sent into signal with it after the computing machine of electrical connection, and the data acquisition process program that computing machine is write is carried out analyzing and processing and obtain the raman spectral signal of ammonium salt in waste liquid.
Compared with prior art, the utility model has following beneficial effect:
1, first according to the position of each ammonium salt raman signatures peak-to-peak, it is identified, then carry out noise processed, background removal and eliminate on the basis of the computings such as light intensity impact at the spectral signal on gathered, the normalized peak height of each negative ion intensity and database are compared, realized the quantitative test to various ammonium salt concentration; Ammonium salt solution by preparation variable concentrations also carries out raman spectroscopy measurement to it, finds for different ammonium salt characteristic of correspondence absorption peaks, and finds out in mixed solution between various ions the impact of Raman spectrum each other; Because being subject to light intensity, Raman spectrum affects seriously, change and the impact of particles in solution thing on measurement result in order to eliminate laser intensity in measuring process, by dividing the deformation degree of bleed Raman peaks with the relation between the variation of ammonium salt anion concentration and the concentration of corresponding ammonium salt, utilize the Raman peaks peak height of water to be normalized each ammonium salt negative ion Raman peaks peak height, eliminated light intensity and changed the impact on measuring; Simultaneously on after light intensity normalization, also can eliminate solution colour on measure impact, thereby without tested mother liquor is filtered and can be measured, can expand the scope of application of the present utility model, be convenient to realize the real-time online measuring in industrial process;
2, measure by the ammonium salt solution to variable concentrations, can set up each ammonium salt negative ion through the linear corresponding relation between the normalized Raman peaks peak height of light intensity and concentration, further exploitation can be used for the database of three kinds of ammonium salt measurement of concetrations;
3, this device belongs to optical measuring technique category, and measuring speed is very fast, can greatly shorten detection required time, effectively enhances productivity;
4, measure by computing machine, effectively reduced uncertainty and personal error in manual measurement process, improved the accuracy of measuring;
5, as long as tested ammonium salt has its unique raman characteristic peak in measurement range, when can realizing multiple ammonium salt constituent concentration by single measurement, measure, save work and raw materials cost in repeatedly measuring;
6, the utility model belongs to heed contacted measure, can not disturb sample, has ensured the consistance of sample and former state;
7, the utility model is not subject in waste liquid to be measured the impact of precipitation or floccus, has the scope of application widely;
8, this device belongs to intelligent operating system, and operating personnel are without having professional knowledge, and training can complete operations a little.
Brief description of the drawings
Accompanying drawing described herein is used to provide further understanding of the present utility model, forms the application's a part, does not form to improper restriction of the present utility model, in the accompanying drawings:
Fig. 1 is the structural representation of the utility model embodiment.
Embodiment
Describe the utility model in detail below in conjunction with specific embodiment, be used for explaining the utility model in this illustrative examples of the present utility model and explanation, but not as to restriction of the present utility model.
Figure 1 shows that the embodiment of the measurement mechanism of a kind of ammonium salt concentration based on laser Raman spectroscopy technology described in the utility model, comprise laser instrument 1, optical fiber 1, Raman probe 3, fixture 5, optical fiber 28, spectrometer 9, computing machine 10, laser instrument 1 is connected in Raman probe 3 by optical fiber 1, on fixture 5, offer perforate 4, in fixture 5, be provided with sample cell 6, catoptron 7, the head of Raman probe 3 connects airtight in one end of sample cell 6 by perforate 4, the other end of sample cell 6 connects airtight in catoptron 7, sample cell 6 is for placing ammonium salt solution to be measured, Raman probe 3 is connected in one end of spectrometer 9 by optical fiber 28, the other end of spectrometer 9 is connected in computing machine 10.Wherein, catoptron 7 for strengthen with sample effect after reflected light; Head, sample cell 6 and the catoptron 7 of Raman probe 3 are all installed in fixture 5, to ensure the stability in measuring process.
Preferably, in the present embodiment, the output light of laser instrument 1 is visible or infrared light.
Preferably, in the present embodiment, Raman probe 3 has adjustable focal length, and while ensureing to measure, light beam can accurately focus on measured zone.
Further, in the present embodiment, spectrometer 9 is connected in computing machine 10 by USB line.
The technical scheme above the utility model embodiment being provided is described in detail, applied principle and the embodiment of specific case to the utility model embodiment herein and set forth, the explanation of above embodiment is only applicable to help to understand the principle of the utility model embodiment; , for one of ordinary skill in the art, according to the utility model embodiment, in embodiment and range of application, all will change, in sum, this description should not be construed as restriction of the present utility model meanwhile.

Claims (5)

1. a measurement mechanism for the ammonium salt concentration based on laser Raman spectroscopy technology, is characterized in that: comprise laser instrument, optical fiber one, Raman probe, fixture, optical fiber two, spectrometer, computing machine,
Described laser instrument is connected in Raman probe by optical fiber one,
On described fixture, offer perforate, in described fixture, be provided with sample cell, catoptron, the head of described Raman probe connects airtight the one end in sample cell by perforate, and the other end of described sample cell connects airtight in catoptron, described sample cell is for placing ammonium salt solution to be measured
Described Raman probe is connected in one end of spectrometer by optical fiber two, the other end of described spectrometer is connected in computing machine.
2. the measurement mechanism of the ammonium salt concentration based on laser Raman spectroscopy technology according to claim 1, is characterized in that: described laser instrument is semiconductor laser or solid state laser.
3. the measurement mechanism of the ammonium salt concentration based on laser Raman spectroscopy technology according to claim 1 and 2, is characterized in that: the output light of described laser instrument is visible or infrared light.
4. the measurement mechanism of the ammonium salt concentration based on laser Raman spectroscopy technology according to claim 1 and 2, is characterized in that: described Raman probe has adjustable focal length.
5. the measurement mechanism of the ammonium salt concentration based on laser Raman spectroscopy technology according to claim 1 and 2, is characterized in that: also comprise USB line, described spectrometer is connected in computing machine by USB line.
CN201420124251.6U 2014-03-19 2014-03-19 Ammonium salt concentration measuring device based on laser-Raman spectrum technology Expired - Fee Related CN203824912U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201420124251.6U CN203824912U (en) 2014-03-19 2014-03-19 Ammonium salt concentration measuring device based on laser-Raman spectrum technology

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201420124251.6U CN203824912U (en) 2014-03-19 2014-03-19 Ammonium salt concentration measuring device based on laser-Raman spectrum technology

Publications (1)

Publication Number Publication Date
CN203824912U true CN203824912U (en) 2014-09-10

Family

ID=51480395

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201420124251.6U Expired - Fee Related CN203824912U (en) 2014-03-19 2014-03-19 Ammonium salt concentration measuring device based on laser-Raman spectrum technology

Country Status (1)

Country Link
CN (1) CN203824912U (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104020150A (en) * 2014-03-19 2014-09-03 苏州久王环保科技有限公司 Device and method for measuring concentration of ammonium salt based on laser Raman spectrum technology
CN105548138A (en) * 2016-01-13 2016-05-04 华南理工大学 On-line wine making fermentation liquid yeast activity detection device and method based on Raman spectrum

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104020150A (en) * 2014-03-19 2014-09-03 苏州久王环保科技有限公司 Device and method for measuring concentration of ammonium salt based on laser Raman spectrum technology
CN105548138A (en) * 2016-01-13 2016-05-04 华南理工大学 On-line wine making fermentation liquid yeast activity detection device and method based on Raman spectrum
CN105548138B (en) * 2016-01-13 2018-04-13 华南理工大学 The detection method of brewing fermentation liquid yeast activity on-line measuring device based on Raman spectrum

Similar Documents

Publication Publication Date Title
CN102590318B (en) Method and device for continuously analyzing pH value, phenolphthalein end-point alkalinity, total alkalinity and chloridion concentration
CN105334184A (en) On-line near-infrared spectrum analyzer
CN104101722A (en) Multi-object continuous automatic analysis device and method for industrial boiler water quality detection
CN203824912U (en) Ammonium salt concentration measuring device based on laser-Raman spectrum technology
CN104020150A (en) Device and method for measuring concentration of ammonium salt based on laser Raman spectrum technology
CN104655580A (en) Method for quickly determining content of alpha-cellulose in dissolving pulp
CN102768191A (en) Method for easily detecting trace thallium in water
CN103440425B (en) A kind of method for building up of octane value regression model
CN102393378B (en) Method for rapidly detecting alcoholysis degree and polymerization degree in production of polyvinyl alcohol by utilizing near infrared spectrum technology
CN209279824U (en) Power steering stgear steering nut conduit hole position check tool
CN109324018B (en) Method for improving accuracy of protein content modeling basic data of near infrared spectrum analysis technology
CN203908943U (en) Device for monitoring concentration of industrial explosive raw material ammonium nitrate solution on line
CN204008454U (en) Portable near infrared spectrometer for detection of mould index in storage paddy
CN102706823A (en) Method for measuring total nitrogen content in environmental water by adopting flow injection spectrophotometry
CN103698297A (en) Near infrared rapid detection method of compound donkey-hide gelatin syrup total nitrogen
CN101592644B (en) Method for detecting barium ions in oil field water
CN104606912B (en) Based on the internal thermal coupled rectifying online observation device of temperature wave characteristic
CN107389500A (en) A kind of method and application by specific gravity test NaSCN solution concentrations
CN203870030U (en) Nondestructive amber authenticating and testing system device
CN102495039A (en) Raman spectrum qualitative detection method for compound fertilizer nitrogen forms
CN203720067U (en) Droplet analysis device
CN110567904A (en) method for measuring sulfate content in urea by spectrophotometry
CN110470785A (en) The detection method of sulfur dioxide and sulfate in boron trifluoride
CN1096609C (en) Method for on-line testing sodium aluminate solution in production of aluminium oxide
yi; LU Ying; TU Xing-ming; XU Xu-tao; LOU Hai-lin Determination of Trace Uranium in Soil Samples by Microwave Digestion-laser Fluorescence Method

Legal Events

Date Code Title Description
C14 Grant of patent or utility model
GR01 Patent grant
ASS Succession or assignment of patent right

Free format text: FORMER OWNER: SUZHOU JIUWANG NEW MATERIAL DEVELOPMENT CO., LTD.

Effective date: 20141203

Owner name: SUZHOU LEIMANPU OPTICAL TECHNOLOGY CO., LTD.

Free format text: FORMER OWNER: SUZHOU JIUWANG MULTIPLE AMMONIUM SALT TECHNOLOGY CO., LTD.

Effective date: 20141203

C41 Transfer of patent application or patent right or utility model
COR Change of bibliographic data

Free format text: CORRECT: ADDRESS; FROM: 215159 SUZHOU, JIANGSU PROVINCE TO: 215000 SUZHOU, JIANGSU PROVINCE

TR01 Transfer of patent right

Effective date of registration: 20141203

Address after: 215000 Zhiyuan Weihai International Commercial Affairs Building, No. 101, FA FA Road, Suzhou hi tech Industrial Development Zone, Jiangsu, Suzhou, 1102

Patentee after: Suzhou Lehman Optical Technology Co., Ltd.

Address before: 215159 Jiangsu city of Suzhou province Wuzhong District Guangfu Town Industrial Park

Patentee before: Suzhou Jiuwang Environmental Protection Science & Technology Co., Ltd.

Patentee before: Suzhou Jiuwang New Material Research and Development Co., Ltd.

CF01 Termination of patent right due to non-payment of annual fee
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20140910

Termination date: 20160319