CN109613590B - Method for measuring radium concentration in water by closed-loop two-stage method - Google Patents

Method for measuring radium concentration in water by closed-loop two-stage method Download PDF

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CN109613590B
CN109613590B CN201811554193.XA CN201811554193A CN109613590B CN 109613590 B CN109613590 B CN 109613590B CN 201811554193 A CN201811554193 A CN 201811554193A CN 109613590 B CN109613590 B CN 109613590B
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electromagnetic valve
air
way electromagnetic
air outlet
radon
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CN109613590A (en
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袁红志
谭延亮
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Hengyang Normal University
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01TMEASUREMENT OF NUCLEAR OR X-RADIATION
    • G01T1/00Measuring X-radiation, gamma radiation, corpuscular radiation, or cosmic radiation
    • G01T1/16Measuring radiation intensity
    • G01T1/167Measuring radioactive content of objects, e.g. contamination
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A20/00Water conservation; Efficient water supply; Efficient water use
    • Y02A20/20Controlling water pollution; Waste water treatment

Abstract

The device for measuring the radium concentration in water by the closed-loop two-stage method comprises a water sample measuring bottle, a bottle cap, an air inlet pipe sleeve, an air outlet pipe sleeve, an air inlet pipe, an air outlet pipe, an air pump, a radon measuring instrument, a flowmeter, a first three-way electromagnetic valve and a second three-way electromagnetic valve; the measuring device is placed in a constant temperature environment, the second air outlet end of the first three-way electromagnetic valve and the second three-way electromagnetic valve is controlled to be opened to realize communication with the external atmospheric environment, or the first air outlet end of the first three-way electromagnetic valve and the first air outlet end of the second three-way electromagnetic valve are controlled to be opened to form a closed loop air path, the air pump controls air to enter the water sample measuring bottle to bubble, radon in a water sample to be measured is carried out, enters the air pump through the air outlet pipe, then enters the radon measuring instrument to measure the concentration of gaseous radon, and then enters the air inlet end of the air inlet pipe. And calculating radium concentration in the water sample according to the ambient temperature, the volume of the water sample to be detected, the volume of the closed-loop gas circuit and the reading of the radon detector. The device has the advantages of simple structure, convenient operation and short measuring time.

Description

Method for measuring radium concentration in water by closed-loop two-stage method
Technical Field
The invention relates to a nuclear radiation detection technology, in particular to a method for measuring radium concentration in water by a closed loop type two-stage method.
Background
Radium (Ra-226) is a very toxic osteogenic alpha radionuclide, and its massive deposition in vivo can induce bone cancer or leukemia, thus endangering human health. Radium (Ra-226) has generally higher activity in underground water, and is 1-2 orders of magnitude higher than that of general surface water (river water, lake water, seawater and the like); drinking water sources in many regions of the world are underground water, and underground water in some regions naturally contains high-concentration radium elements or a large amount of radium elements are activated and released into the underground water along with exploitation of different mineral products such as uranium mines and the like, so that great potential safety hazards exist when people use the underground water as the drinking water source, and the concentration of the radium elements contained in the local underground water needs to be monitored for a long time when the drinking water source is selected. In the prior art, the measuring device and the measuring method for the radium element concentration in water are complex and long in measuring time, and a device and a method for rapidly measuring the radium element concentration in water are needed.
Disclosure of Invention
The invention aims to overcome the defects in the prior art and provide a method for measuring radium concentration in water by a closed loop type two-stage method, and the method can be used for quickly obtaining the more accurate radium concentration in water.
The technical scheme of the invention is as follows: a method for measuring radium concentration in water by a closed-loop two-stage method is a device for measuring radium concentration in water based on the closed-loop two-stage method. The air inlet pipe sleeve and the air outlet pipe sleeve are respectively arranged on the bottle cap, the air inlet pipe is inserted on the air inlet pipe sleeve, the air outlet pipe is inserted on the air outlet pipe sleeve, the air outlet pipe is connected with the air inlet end of the air pump through a hose, the air outlet end of the air pump is connected with the air inlet end of the first three-way electromagnetic valve, the first air outlet end of the first three-way electromagnetic valve is connected with the air inlet end of the radon measuring instrument through a hose, the second air outlet end of the first three-way electromagnetic valve is communicated with the atmospheric environment, the air outlet end of the radon measuring instrument is connected with the air inlet end of the flow meter through a hose, the air outlet end of the flow meter is connected with the air inlet end of the second three-way electromagnetic valve through a hose, the first air outlet end of the second three-way electromagnetic valve is connected with the air inlet end of the air inlet pipe through a hose, and the second air outlet end of the second three-way electromagnetic valve is communicated with the atmospheric environment;
the method comprises a measuring process and a calculating process, and comprises the following specific steps:
First, measuring process
A. Placing a device for measuring radium concentration in water by a closed-loop two-stage method in a constant-temperature environment, and measuring the environment temperature;
B. pouring the water sample to be measured into the water sample measuring bottle, tightly covering the bottle cover, wherein the air outlet of the air inlet pipe is positioned in the water sample to be measured and close to the bottle bottom of the water sample measuring bottle, and the air inlet of the air outlet pipe is positioned on the liquid level of the water sample to be measured;
C. respectively opening second air outlet ends of a first three-way electromagnetic valve and a second three-way electromagnetic valve, closing first air outlet ends of the first three-way electromagnetic valve and the second three-way electromagnetic valve, starting an air pump, controlling the flow rate of the air pump to be very large, enabling air to enter a water sample to be detected through an air inlet pipe to be bubbled, simultaneously carrying out radon in the water sample to be detected, entering the first three-way electromagnetic valve through an air outlet pipe, and then entering an atmospheric environment from the second air outlet end of the first three-way electromagnetic valve, wherein the radon concentration in an air path can be considered to be 0 after the air pump is started for 5-30 minutes due to the very large flow rate of the air pump;
D. respectively closing second air outlet ends of the first three-way electromagnetic valve and the second three-way electromagnetic valve, opening first air outlet ends of the first three-way electromagnetic valve and the second three-way electromagnetic valve so as to form a closed loop air path, controlling the air pump to adjust the flow rate by obtaining the reading of the flow meter, enabling air to enter a water sample to be detected through the air inlet pipe to bubble, simultaneously carrying out radon in the water sample to be detected, entering the air pump through the air outlet pipe to enter the first three-way electromagnetic valve, then entering the radon detector from the first air outlet end of the first three-way electromagnetic valve, then entering the second three-way electromagnetic valve from the air outlet end of the flow meter through the flow meter, and then entering the air inlet pipe again from the first air outlet end of the second three-way electromagnetic valve; when the flow rate of the air pump is reduced, the flow rate of the air pump is kept moderate, so that the radon concentration in the measuring cavity of the radon measuring instrument and the gaseous radon concentration in the water sample measuring bottle synchronously change;
E. Continuously measuring two measurement periods with a longer time interval, wherein the two measurement periods are respectively T1、T2The value range is 5-120 minutes; the readings of the emanometer in the two measuring periods are respectively C1,C2
Second, calculating process
Calculating radium concentration in the water sample according to the environment temperature, the volume of the water sample to be detected, the volume of the closed-loop gas circuit and the reading of the radon detector;
radon in water in the water sample measuring bottle comes from decay of radium in the water; because the flow rate of the air pump is large, the radon concentration in the closed-loop air path can be considered to be equal. Setting the volume of the water sample as V and the radium activity in the water as ARaAnd then the radium concentration in water is CRaComprises the following steps:
CRa=ARa/V (1)
water sample measurement bottle for measuring radon concentration C 'in water'RnThe change rule is as follows:
dC'Rn/dt=CRaλRnRn(C'Rn+CRnV1/V)-λlCRnV1/V (2)
in the formula of lambdaRnIs the decay constant of radon; cRnIs the concentration of radon in the closed loop gas circuit; v1The volume of the closed-loop gas circuit comprises the sum of the pipeline volume of the hose, the pipeline volume of the gas inlet pipe, the pipeline volume of the gas outlet pipe, the volume of the internal measuring cavity of the emanometer and the volume of the upper space of the liquid level of the water sample measuring bottle; lambda [ alpha ]lIs the leakage coefficient.
According to the temperature during measurement, a table is looked up to obtain the concentration ratio X of water radon to gaseous radon during balance, and the concentration ratio X comprises the following components:
C'Rn=XCRn (3)
substituting formula (3) for formula (2) to obtain:
Figure GDA0003592125570000041
Let the effective decay constant lambdaeComprises the following steps:
Figure GDA0003592125570000042
equation (4) reduces to:
Figure GDA0003592125570000043
the initial radon concentration is 0 and the solution of equation (6) is:
Figure GDA0003592125570000044
for formula (7) at {0, T1And { T }1,T1+T2The intervals are integrated and divided by T1And T2It is possible to obtain:
Figure GDA0003592125570000045
Figure GDA0003592125570000046
calculating radium concentration in water according to formulas (8) and (9).
Compared with the prior art, the invention has the following advantages:
1. the device for measuring the radium concentration in water by the closed-loop two-stage method is simple in structure, convenient to operate and short in measuring time.
2. The method for measuring the radium concentration in the water has the advantages of simple calculation process and accurate calculation result, can establish a healthy drinking water standard for the country by monitoring and analyzing the radium concentration in the groundwater water sample in a certain area for a long time, provides a basis for water pollution treatment, national disease prevention and treatment, water for agriculture and animal husbandry and the like, and ensures the groundwater environment and the safety of drinking water of residents.
The detailed structure of the present invention will be further described with reference to the accompanying drawings and the detailed description.
Drawings
FIG. 1 is a schematic structural diagram of a device for measuring radium concentration in water by a closed-loop two-stage method.
Detailed Description
As shown in fig. 1: the device for measuring the radium concentration in water by the closed-loop two-stage method comprises a water sample measuring bottle 1, a bottle cap 2, an air inlet pipe sleeve 3, an air outlet pipe sleeve 4, an air inlet pipe 5, an air outlet pipe 6, an air pump 7, a radon measuring instrument 8, a flowmeter 9, a first three-way electromagnetic valve 10 and a second three-way electromagnetic valve 11. An air inlet pipe sleeve 3 and an air outlet pipe sleeve 4 are respectively arranged on the bottle cap 2, an air inlet pipe 5 is inserted on the air inlet pipe sleeve 3, an air outlet pipe 6 is inserted on the air outlet pipe sleeve 4, the air outlet pipe 6 is connected with an air inlet end of an air pump 7 through a hose, an air outlet end of the air pump 7 is connected with an air inlet end of a first three-way electromagnetic valve 10 through a hose, a first air outlet end of the first three-way electromagnetic valve 10 is connected with an air inlet end of a radon measuring instrument 8 through a hose, a second air outlet end of the first three-way electromagnetic valve 10 is communicated with the atmospheric environment, an air outlet end of the radon measuring instrument 8 is connected with an air inlet end of a flowmeter 9 through a hose, an air outlet end of the flowmeter 9 is connected with an air inlet end of a second three-way electromagnetic valve 11 through a hose, a first air outlet end of the second three-way electromagnetic valve 11 is connected with an air inlet end of the air inlet pipe 5 through a hose, and a second air outlet end of the second three-way electromagnetic valve 11 is communicated with the atmospheric environment.
The method for measuring the radium concentration in water by adopting the measuring device through the closed-loop two-stage method comprises a measuring process and a calculating process, and specifically comprises the following steps:
first, measuring process
A. Placing a device for measuring radium concentration in water by a closed-loop two-stage method in a constant-temperature environment, and measuring the environment temperature;
B. pouring a water sample to be detected into the water sample measuring bottle 1, tightly covering the bottle cap 2, enabling the air outlet of the air inlet pipe 5 to be positioned in the water sample to be detected and close to the bottle bottom of the water sample measuring bottle 1, and enabling the air inlet of the air outlet pipe 6 to be positioned on the liquid level of the water sample to be detected;
C. respectively opening second air outlet ends of a first three-way electromagnetic valve 10 and a second three-way electromagnetic valve 11, closing the first air outlet ends of the first three-way electromagnetic valve 10 and the second three-way electromagnetic valve 11, starting an air pump 7, controlling the flow rate of the air pump 7 to be very large, enabling air to enter a water sample to be detected through an air inlet pipe 5 to bubble, simultaneously carrying out radon in the water sample to be detected, entering the air pump 7 through an air outlet pipe 6 to enter the first three-way electromagnetic valve 10, and then entering an atmospheric environment from the second air outlet end of the first three-way electromagnetic valve 10, wherein the radon concentration in an air path can be considered to be 0 after the air pump 7 is started for 5-30 minutes due to the very large flow rate of the air pump 7;
D. respectively closing second air outlet ends of a first three-way electromagnetic valve 10 and a second three-way electromagnetic valve 11, opening first air outlet ends of the first three-way electromagnetic valve 10 and the second three-way electromagnetic valve 11, thereby forming a closed loop air path, controlling the air pump 7 to reduce the flow rate by obtaining the reading of the flowmeter 9, enabling air to enter a water sample to be detected through an air inlet pipe 5 to bubble, simultaneously carrying out radon in the water sample to be detected, entering the air pump 7 through an air outlet pipe 6 to enter the first three-way electromagnetic valve 10, and then entering the air inlet pipe 5 again from the first air outlet end of the second three-way electromagnetic valve 10; when the flow rate of the air pump 7 is reduced, the flow rate of the air pump 7 is kept moderate, so that the radon concentration in the measuring cavity of the radon measuring instrument 8 and the gaseous radon concentration in the water sample measuring bottle 1 synchronously change;
E. Continuously measuring two measurement periods with a longer time interval, wherein the two measurement periods are respectively T1、T2The value range is 5-120 minutes; the readings of the emanometer 8 in the two measuring periods are respectively C1,C2
Second, calculating process
Calculating radium concentration in the water sample according to the environment temperature, the volume of the water sample to be detected, the volume of the closed-loop gas circuit and the reading of the radon detector 8;
radon in water in the water sample measuring bottle 1 comes from decay of radium in the water; because the flow rate of the air pump 7 is large, the radon concentration in the closed-loop air path can be considered to be equal. Setting the volume of the water sample as V and the radium activity in the water as ARaAnd then the radium concentration in water is CRaComprises the following steps:
CRa=ARa/V (1)
water sample measurement bottle 1 for measuring radon concentration C 'in water'RnThe change rule is as follows:
dC'Rn/dt=CRaλRnRn(C'Rn+CRnV1/V)-λlCRnV1/V (2)
in the formula ofRnIs the decay constant of radon; cRnIs the concentration of radon in the closed loop gas circuit; v1The volume of the closed-loop gas circuit comprises the sum of the pipeline volume of the hose, the pipeline volume of the gas inlet pipe 5, the pipeline volume of the gas outlet pipe 6, the volume of the internal measuring cavity of the emanometer 8 and the volume of the upper space of the liquid level of the water sample measuring bottle 1; lambda [ alpha ]lIs the leakage coefficient.
According to the temperature during measurement, the concentration ratio X of water radon to gaseous radon during balance is obtained by looking up a table, and the concentration ratio X comprises the following components:
C'Rn=XCRn (3)
substituting formula (3) into formula (2) to obtain:
Figure GDA0003592125570000071
Let the effective decay constant λeComprises the following steps:
Figure GDA0003592125570000072
equation (4) reduces to:
Figure GDA0003592125570000081
the initial radon concentration is 0 and the solution of equation (6) is:
Figure GDA0003592125570000082
for formula (7) at {0, T1And { T }1,T1+T2The intervals are integrated and divided by T1And T2It is possible to obtain:
Figure GDA0003592125570000083
Figure GDA0003592125570000084
calculating radium concentration in water according to formulas (8) and (9).

Claims (1)

1. A method for measuring radium concentration in water by a closed-loop two-stage method is a device for measuring radium concentration in water based on the closed-loop two-stage method, and the device comprises a water sample measuring bottle, a bottle cap, an air inlet pipe sleeve, an air outlet pipe sleeve, an air inlet pipe, an air outlet pipe, an air pump, a radon measuring instrument, a flowmeter, a first three-way electromagnetic valve and a second three-way electromagnetic valve;
the air inlet pipe sleeve and the air outlet pipe sleeve are respectively arranged on the bottle cap, the air inlet pipe is inserted on the air inlet pipe sleeve, the air outlet pipe is inserted on the air outlet pipe sleeve, the air outlet pipe is connected with the air inlet end of the air pump through a hose, the air outlet end of the air pump is connected with the air inlet end of the first three-way electromagnetic valve through a hose, the first air outlet end of the first three-way electromagnetic valve is connected with the air inlet end of the radon detector through a hose, the second air outlet end of the first three-way electromagnetic valve is communicated with the atmospheric environment, the air outlet end of the radon detector is connected with the air inlet end of the flow meter through a hose, the air outlet end of the flow meter is connected with the air inlet end of the second three-way electromagnetic valve through a hose, the first air outlet end of the second three-way electromagnetic valve is connected with the air inlet end of the air inlet pipe through a hose, and the second air outlet end of the second three-way electromagnetic valve is communicated with the atmospheric environment;
The method is characterized in that: the method comprises a measuring process and a calculating process, and comprises the following specific steps:
first, measurement process
A. Placing a device for measuring radium concentration in water by a closed-loop two-stage method in a constant-temperature environment, and measuring the environment temperature;
B. pouring a water sample to be detected into the water sample measuring bottle, tightly covering the bottle cap, wherein the air outlet of the air inlet pipe is positioned in the water sample to be detected and close to the bottle bottom of the water sample measuring bottle, and the air inlet of the air outlet pipe is positioned on the liquid level of the water sample to be detected;
C. respectively opening second air outlet ends of a first three-way electromagnetic valve and a second three-way electromagnetic valve, closing the first air outlet ends of the first three-way electromagnetic valve and the second three-way electromagnetic valve, starting an air pump, controlling the flow rate of the air pump to be very large, enabling air to enter a water sample to be detected through an air inlet pipe to bubble, simultaneously carrying out radon in the water sample to be detected, entering the first three-way electromagnetic valve through an air outlet pipe, and then entering an atmospheric environment from the second air outlet end of the first three-way electromagnetic valve, wherein the radon concentration in an air path can be considered to be 0 after the air pump is started for 5-30 minutes due to the very large flow rate of the air pump;
D. respectively closing second air outlet ends of the first three-way electromagnetic valve and the second three-way electromagnetic valve, opening first air outlet ends of the first three-way electromagnetic valve and the second three-way electromagnetic valve so as to form a closed loop air path, controlling the air pump to adjust the flow rate by obtaining the reading of the flow meter, enabling air to enter a water sample to be detected through the air inlet pipe to bubble, simultaneously carrying out radon in the water sample to be detected, entering the air pump through the air outlet pipe to enter the first three-way electromagnetic valve, then entering the radon detector from the first air outlet end of the first three-way electromagnetic valve, then entering the second three-way electromagnetic valve from the air outlet end of the flow meter through the flow meter, and then entering the air inlet pipe again from the first air outlet end of the second three-way electromagnetic valve; when the flow rate of the air pump is reduced, the flow rate of the air pump is kept moderate, so that the radon concentration in the measuring cavity of the radon measuring instrument and the gaseous radon concentration in the water sample measuring bottle synchronously change;
E. Continuously measuring two measurement periods with a longer time interval, wherein the two measurement periods are respectively T1、T2The value range is 5-120 minutes; the readings of the emanometer in the two measuring periods are respectively C1,C2
Second, calculating process
Calculating radium concentration in the water sample according to the environment temperature, the volume of the water sample to be detected, the volume of the closed-loop gas circuit and the reading of the radon detector;
radon in water in the water sample measuring bottle comes from decay of radium in the water; because the flow rate of the air pump is large, the radon concentration in the closed-loop air path can be considered to be equal; setting the volume of the water sample as V and the radium activity in the water as ARaAnd then the radium concentration in water is CRaComprises the following steps:
CRa=ARa/V (1)
water sample measurement bottle for measuring radon concentration C 'in water'RnThe change rule is as follows:
dC'Rn/dt=CRaλRnRn(C'Rn+CRnV1/V)-λlCRnV1/V (2)
in the formula ofRnIs the decay constant of radon; cRnIs the concentration of radon in the closed loop gas circuit; v1The volume of the closed-loop gas circuit comprises the sum of the pipeline volume of the hose, the pipeline volume of the gas inlet pipe, the pipeline volume of the gas outlet pipe, the volume of the internal measuring cavity of the emanometer and the volume of the upper space of the liquid level of the water sample measuring bottle; lambda [ alpha ]lIs the leakage coefficient;
according to the temperature during measurement, the concentration ratio X of water radon to gaseous radon during balance is obtained by looking up a table, and the concentration ratio X comprises the following components:
C'Rn=XCRn (3)
substituting formula (3) into formula (2) to obtain:
Figure FDA0003592125560000031
Let the effective decay constant lambdaeComprises the following steps:
Figure FDA0003592125560000032
equation (4) reduces to:
Figure FDA0003592125560000033
the initial radon concentration is 0 and the solution of equation (6) is:
Figure FDA0003592125560000034
for formula (7) at {0, T1And { T }1,T1+T2The intervals are integrated and divided by T1And T2It is possible to obtain:
Figure FDA0003592125560000035
Figure FDA0003592125560000041
calculating radium concentration in water according to formulas (8) and (9).
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Publication number Priority date Publication date Assignee Title
CN109655860B (en) * 2018-12-18 2022-06-07 衡阳师范学院 Method for quickly measuring radium concentration in water in closed loop mode
CN109655869B (en) * 2018-12-21 2022-06-21 衡阳师范学院 Method for rapidly measuring radium concentration in water in closed-loop two-period mode
CN109655867B (en) * 2018-12-21 2022-06-21 衡阳师范学院 Method for quickly measuring radium concentration in water through closed-loop partial integration

Citations (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1414856A (en) * 1972-07-13 1975-11-19 Commissariat Energie Atomique Portable instruments for detecting alpha particles
CN2314367Y (en) * 1997-08-11 1999-04-14 宝安县石岩英成来料加工电子厂 Portable automatic radon monitor
KR20110135901A (en) * 2011-11-06 2011-12-20 박영웅 Simplified method for measurement of radium in the underground water
CN103487360A (en) * 2013-09-26 2014-01-01 衡阳师范学院 Method for quickly measuring radon exhalation rate in closed-loop manner
CN103969673A (en) * 2014-05-15 2014-08-06 衡阳师范学院 Method for continuously measuring radon exhalation rate in close-loop mode
KR20150072742A (en) * 2013-12-20 2015-06-30 주식회사 오리온이엔씨 Method and system for automatically on-line monitering radon in water
CN105182398A (en) * 2015-09-30 2015-12-23 衡阳师范学院 Quick radon exhalation rate measurement method using integral for closed loop part of electrostatic collection method
CN204945129U (en) * 2015-09-18 2016-01-06 中国疾病预防控制中心辐射防护与核安全医学所 A kind of water radon rapid measurement device
CN105353396A (en) * 2015-09-30 2016-02-24 衡阳师范学院 Rapid measurement method of radon exhalation rate through closed-loop partial integration
CN108802793A (en) * 2018-05-31 2018-11-13 南华大学 Radon concentration monitoring system and method in a kind of new type water
CN108919329A (en) * 2018-05-21 2018-11-30 南华大学 A kind of closed loop measurement is emanated the method and apparatus of medium precipitation rate of radon
CN109001790A (en) * 2018-09-19 2018-12-14 衡阳师范学院 A kind of continous way water radon measurement device and method
CN109655860A (en) * 2018-12-18 2019-04-19 衡阳师范学院 The device and method of radium concentration in closed loop rapid survey water

Patent Citations (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1414856A (en) * 1972-07-13 1975-11-19 Commissariat Energie Atomique Portable instruments for detecting alpha particles
CN2314367Y (en) * 1997-08-11 1999-04-14 宝安县石岩英成来料加工电子厂 Portable automatic radon monitor
KR20110135901A (en) * 2011-11-06 2011-12-20 박영웅 Simplified method for measurement of radium in the underground water
CN103487360A (en) * 2013-09-26 2014-01-01 衡阳师范学院 Method for quickly measuring radon exhalation rate in closed-loop manner
KR20150072742A (en) * 2013-12-20 2015-06-30 주식회사 오리온이엔씨 Method and system for automatically on-line monitering radon in water
CN103969673A (en) * 2014-05-15 2014-08-06 衡阳师范学院 Method for continuously measuring radon exhalation rate in close-loop mode
CN204945129U (en) * 2015-09-18 2016-01-06 中国疾病预防控制中心辐射防护与核安全医学所 A kind of water radon rapid measurement device
CN105182398A (en) * 2015-09-30 2015-12-23 衡阳师范学院 Quick radon exhalation rate measurement method using integral for closed loop part of electrostatic collection method
CN105353396A (en) * 2015-09-30 2016-02-24 衡阳师范学院 Rapid measurement method of radon exhalation rate through closed-loop partial integration
CN108919329A (en) * 2018-05-21 2018-11-30 南华大学 A kind of closed loop measurement is emanated the method and apparatus of medium precipitation rate of radon
CN108802793A (en) * 2018-05-31 2018-11-13 南华大学 Radon concentration monitoring system and method in a kind of new type water
CN109001790A (en) * 2018-09-19 2018-12-14 衡阳师范学院 A kind of continous way water radon measurement device and method
CN109655860A (en) * 2018-12-18 2019-04-19 衡阳师范学院 The device and method of radium concentration in closed loop rapid survey water

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
地下热水中天然放射性镭-226和氡-222测定及分析评价;李婷;《中国优秀博硕士学位论文全文数据库(硕士) 基础科学辑》;20131215(第12期);A011-207-37-40 *

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