CN212646449U - Double-light-path detachable spherical chemiluminescent reaction chamber - Google Patents

Double-light-path detachable spherical chemiluminescent reaction chamber Download PDF

Info

Publication number
CN212646449U
CN212646449U CN202022021690.2U CN202022021690U CN212646449U CN 212646449 U CN212646449 U CN 212646449U CN 202022021690 U CN202022021690 U CN 202022021690U CN 212646449 U CN212646449 U CN 212646449U
Authority
CN
China
Prior art keywords
spherical
hemispherical shell
reaction chamber
chamber
input pipeline
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.)
Active
Application number
CN202022021690.2U
Other languages
Chinese (zh)
Inventor
张丽红
孙国利
郭晓亮
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.)
Shanxi Xinhuaxiang Technology Co ltd
Original Assignee
Shanxi Xin Huaxiang Technology Development 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 Shanxi Xin Huaxiang Technology Development Co ltd filed Critical Shanxi Xin Huaxiang Technology Development Co ltd
Priority to CN202022021690.2U priority Critical patent/CN212646449U/en
Application granted granted Critical
Publication of CN212646449U publication Critical patent/CN212646449U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Investigating Or Analysing Materials By The Use Of Chemical Reactions (AREA)

Abstract

The utility model belongs to the chemiluminescence method environmental ozone concentration field of measuring, concretely relates to spherical chemiluminescence reacting chamber can be dismantled to two light paths. A double-light-path detachable spherical chemiluminescence reaction chamber is characterized in that the bottom of a left hemispherical shell and a right hemispherical shell is provided with an R/2 spherical crown, and the central angle corresponding to the spherical crown is 60 degrees; a sealing gasket and a flat quartz glass lens are arranged at the position of the left hemispherical shell and the right hemispherical shell after the spherical crown is cut, a left shading dense chamber is arranged outside the left hemispherical shell flat quartz glass lens, and a right shading dense chamber is arranged outside the right hemispherical shell flat quartz glass lens; the utility model discloses an useful part is, two photomultiplier of two light paths obtain two sets of concentration signals simultaneously, through the light intensity signal of MCU minimum system redundancy calculation photomultiplier 1 and photomultiplier 2, obtain the concentration that can assist in evidencing ozone, reduce accidental measuring error.

Description

Double-light-path detachable spherical chemiluminescent reaction chamber
Technical Field
The utility model belongs to the chemiluminescence method environmental ozone concentration field of measuring, concretely relates to spherical chemiluminescence reacting chamber can be dismantled to two light paths.
Background
The principle of measuring trace ozone by a chemiluminescence method is as follows: NO and O3 gas are oppositely introduced into the reaction ball chamber, O3 reacts with NO to generate excited NO2 molecules, NO2 molecules cannot exist stably, the NO 3 molecules can be rapidly attenuated to ground NO2, the attenuation time is less than 1 nanosecond, fluorescence with the central wavelength of 1200nm is radiated, and the spectrum range is 600-3000 nm. In the case of excess NO, the O3 complete depletion reaction can be approximately considered, and the measured fluorescence signal is approximately proportional to the concentration of O3, so that the trace ozone in the environment can be accurately measured. The chemiluminescence method is researched to measure trace-level ozone, and a chemiluminescence reaction chamber is a key device for measuring ozone. Selecting a spherical chemiluminescence reaction chamber, compounding O3 and NO gas in the center of a sphere, arranging a light-emitting point in the center of the sphere, arranging a photoelectric tube at the spherical crown, and measuring the concentration of O3. This measurement, however, presents a problem as to how the data is validated. The idea of redundant method for measuring the concentration of O3 is as follows: the light emitted by the ball center can be uniformly emitted to the periphery; if the spherical crown is cut in two opposite directions, a flat quartz glass lens and a photomultiplier are arranged; the two photomultiplier tubes are used for respectively measuring light intensity signals, so that the two signals can be mutually proved to obtain an exact measurement result; the redundancy method measures the concentration of O3 to obtain a credible measurement result which can be mutually verified. In addition, the reflected light interference problem of the spherical chemiluminescence reaction chamber is solved, in order to eliminate the reflected light, the spherical radius of the double-light-path spherical chemiluminescence reaction chamber is increased, the interior of the sphere is treated by fumigation, and the reflected light interference is prevented. Similarly, the double-light-path spherical chemiluminescence reaction chamber needs temperature control, and an external power supply, a temperature controller, a heating rod and a temperature measuring probe form a temperature control system inside the sphere, so that the inside of the sphere is ensured to be in an optimal luminous temperature range.
Disclosure of Invention
The utility model aims at providing an instrument for measuring trace ozone gas by a double-optical-path luminescence method.
The technical scheme of the utility model: a double-light-path detachable spherical chemiluminescent reaction chamber comprises a left hemispherical shell, six flange lugs outside the spherical shell, an ozone input pipeline, a temperature measuring probe, an exhaust pipeline, an NO input pipeline, a heating rod, a sealing gasket, 2 flat quartz glass lenses, a right hemispherical shell, a left shading dense chamber, a right shading dense chamber, a photomultiplier 1 and a photomultiplier 2, and is characterized in that the whole spherical luminescent reaction chamber is a spherical inner cavity with the radius of R, and R =61.8 mm; the interior of the spherical cavity is blackened; the spherical inner cavity is cut by a vertical plane passing through the center of the sphere and is divided into a left hemispherical shell and a right hemispherical shell; the bottom of the left hemispherical shell and the right hemispherical shell is cut into spherical crowns with the radius of R/2, and the central angles corresponding to the spherical crowns are 60 degrees; a sealing gasket and a flat quartz glass lens are arranged at the position of the left hemispherical shell and the right hemispherical shell after the spherical crown is cut, a left shading dense chamber is arranged outside the left hemispherical shell flat quartz glass lens, and a right shading dense chamber is arranged outside the right hemispherical shell flat quartz glass lens; a photomultiplier tube 1 is arranged in the left shading closed room, and a photomultiplier tube 2 is arranged in the right shading closed room; a series of holes which can be sealed are arranged along the clockwise direction from one side of the left hemispherical shell ball along the horizontal line, and an ozone input pipeline, a temperature measuring probe, an exhaust pipeline, an NO input pipeline and a heating rod are sequentially arranged, wherein the ozone input pipeline and the NO input pipeline are arranged on the same diameter passing through the center of the ball; six flange lugs are arranged outside the spherical edges of the boundary surfaces of the left hemispherical shell and the right hemispherical shell at intervals of a central angle of 60 degrees, and threaded through hole bolts are arranged in the centers of the flange lugs; sealing gaskets are added on the interfaces of the left hemispherical shell and the right hemispherical shell, and the left hemispherical shell and the right hemispherical shell are mechanically connected and folded through flange lugs and threaded through holes and bolts of the outer spherical edge to form an airtight shading spherical luminous reaction chamber inside; an external power supply, a temperature controller, a heating rod and a temperature probe form a temperature control system in the sphere to keep the interior of the spherical luminous reaction chamber in an optimal luminous temperature range; the outlets of the ozone input pipeline and the NO input pipeline on the junction plane of the left hemispherical shell and the right hemispherical shell are oppositely arranged around the spherical center of the spherical luminous reaction chamber, the intersection point of the two gas centers is at the spherical center of the spherical luminous reaction chamber, and the intersection point of the two gases is the luminous point; the exhaust pipeline, the ozone input pipeline and the NO input pipeline are arranged on the intersection plane of the left and right hemispherical shells, and the whole process of the excitation luminescence of the intersection and mixing of the two gases in the spherical luminescence reaction chamber is arranged on the intersection plane of the left and right hemispherical shells, namely the luminescence plane is arranged on the intersection plane of the left and right hemispherical shells; the spherical center luminous point and the luminous plane of the spherical luminous reaction chamber are arranged leftwards, pass through the flat quartz glass lens and are optically connected with the photomultiplier 1 in the shading dense chamber at the left side; the spherical center luminous point and the luminous plane of the spherical luminous reaction chamber are towards the right, and the spherical center luminous point and the luminous plane penetrate through the flat quartz glass lens and are optically connected with the photomultiplier tube 2 in the shading dense chamber at the right side.
The utility model relates to a two light paths can dismantle spherical chemiluminescence reaction chamber's theory of operation brief: the light attenuation distance for molecular fluorescence NO2 was found to be 100 mm at a suitable temperature of 50 degrees celsius, as obtained by reference to the manual. In order to reduce the interference caused by fluorescence reflection, the radius R of the spherical reaction chamber must be 2R > 100. R =61.8 mm was chosen to ensure that the reflected light does not reach the flat quartz glass lens. In order to prevent interference caused by fluorescence reflection at other parts, the interior of the cavity of the spherical inner cavity is subjected to sooting treatment. Inside the spherical reaction chamber, an ozone input pipeline is thin, an NO input pipeline is thick and is arranged oppositely along the radius, the junction point of the two gases is near the center of the sphere, and NO wraps O3 gas; NO reacts with O3 to generate excited NO2 molecules, while NO2 molecules cannot exist stably, can be rapidly attenuated to ground NO2 for less than 1 nanosecond, and emit fluorescence with the central wavelength of 1200nm, and the spectral range of the fluorescence is 600-3000 nm; gas is converged, namely, the light is emitted, and the light emitting point is near the center of the sphere; the whole fluorescence of 600-3000 nm can be passed by using a flat quartz glass lens. The exhaust pipeline is perpendicular to the connecting line of the ozone input pipeline and the NO input pipeline, the exhaust pipeline points to the center of the sphere, the two gases are discharged from the exhaust pipeline after meeting, and the gas light-emitting plane is arranged on the interface of the left hemisphere and the right hemisphere; the total luminous reaction of O3 gas is ensured by adjusting the pipe diameters of an ozone input pipeline and an NO input pipeline, the distance between the pipes and the flow; the spherical center luminous point and the luminous plane are leftwards and pass through the flat quartz glass lens to be optically connected with the photomultiplier 1 in the shading dense room at the left side; the spherical center luminous point and the luminous plane are rightwards and pass through the flat quartz glass lens to be optically connected with the photomultiplier 2 in the shading dense chamber at the right side. The photomultiplier converts light intensity into a voltage signal, the photomultiplier 1 and the photomultiplier 2 are electrically connected with a linear amplifier, the linear amplifier is electrically connected with an analog-to-digital conversion module, the analog-to-digital conversion module is electrically connected with an MCU minimum system, the MCU minimum system redundantly calculates the light intensity signals of the photomultiplier 1 and the photomultiplier 2, and the concentration of ozone is displayed on a display screen. Furthermore, the input directions of ozone and NO are changed, namely NO is input into the ozone input pipeline, mark ozone is input into the NO input pipeline, the double-optical-path detachable spherical chemiluminescence reaction chamber can redundantly measure the concentration of trace NO, and the concentration of NO is displayed on a display screen.
The utility model has the advantages that the radius R of the spherical luminous reaction chamber is 61.8 mm, the interior of the spherical inner cavity of the spherical luminous reaction chamber is blackened, and the interference of reflected light is reduced; the double-light-path double-photomultiplier simultaneously obtains two groups of concentration signals, and light intensity signals of the photomultiplier 1 and the photomultiplier 2 are calculated through MCU minimum system redundancy, so that the ozone concentration which can be proved is obtained, and accidental measurement errors are reduced. The left hemisphere and the right hemisphere are arranged, so that the cavity can be conveniently and periodically checked and maintained, and the flat quartz glass lens can be scrubbed.
Drawings
FIG. 1 is a schematic view of the overall structure of a two-optical-path detachable spherical chemiluminescent reaction chamber.
FIG. 2 is a schematic diagram of a left hemisphere of a detachable dual-optical-path spherical chemiluminescent reaction chamber.
FIG. 3 is a schematic diagram of a right hemisphere of a dual-optical-path detachable spherical chemiluminescent reaction chamber.
In the figure, 1, a left hemispherical shell, 2, six flange lugs, 2.1, bolts, 2.2, threaded through holes, 3, an ozone input pipeline, 4, a temperature measuring probe, 5, an exhaust pipeline, 6, an NO input pipeline, 7, a heating rod, 8, a sealing gasket, 9, 2 flat quartz glass lenses, 10, a right hemispherical shell, 11, a left shading closed chamber, 12, a right shading closed chamber, 13, photomultiplier tubes 1 and 14 and a photomultiplier tube 2 are arranged.
Detailed Description
The embodiment of a luminescent redundancy measuring device of XHX- -O3 trace ozone is described in the accompanying drawings of the specification as follows: a dual-optical-path detachable spherical chemiluminescence reaction chamber is adopted in a light-emitting chamber of an XHX-O3 trace ozone light-emitting redundancy measuring device, and the design idea is as follows, wherein the radius of an inner cavity of a sphere is determined by the chemiluminescence attenuation distance. Examining the chemiluminescence handbook, wherein the fluorescence attenuation distance is 100 mm; the intracavity reflection optical path 2R is larger than 100 mm, so the radius R of the inner cavity of the sphere is equal to 61.8 mm. Cutting off spherical crowns corresponding to 60-degree spherical center angles at the bottoms of the left hemisphere and the right hemisphere; and installing a sealing gasket and a flat quartz glass lens at the position of the intercepted spherical crown. The volume of the sphere lumen was calculated to be 968 ml. The diameter of the ozone input pipeline is 0.20 mm to 1.2 mm, 0.5 mm is selected, and the distance between the ozone input pipeline and the center of the sphere is 5 mm; the pipe diameter of the NO input pipeline is 3 mm-12 mm, 5 mm is selected, and the distance from the center of the sphere is 0.5 mm. At a proper temperature of 50 ℃, the thickness of the ozone input pipeline in the spherical reaction chamber is =0.5 mm, and the distance from the outlet end to the center of the sphere is 5 mm; the thick and even side of the NO input pipeline =5 mm, distance. The outlet end is 0.5 mm away from the center of the sphere. The two gases are oppositely arranged along the radius, the junction point of the two gases is near the center of the sphere, and NO wraps O3 gas; NO reacts with O3 to generate excited NO2 molecules, NO2 molecules cannot exist stably, the excited NO2 molecules can be rapidly attenuated to ground NO2, the time is less than 1 nanosecond, fluorescence with the central wavelength of 1200nm is radiated, the spectral range of the fluorescence is 600-3000 nm, and the light-emitting point is near the center of a sphere; the exhaust pipeline is perpendicular to the connecting line of the ozone input pipeline and the NO input pipeline, the exhaust pipeline points to the sphere center, and the two gases are discharged from the exhaust pipeline after meeting; therefore, the gas luminous band is arranged on the interface of the left hemisphere and the right hemisphere; by adjusting the distance between the ozone input pipeline and the NO input pipeline and adjusting the flow, the center of NO gas injected by O3 gas is ensured, and O3 gas is completely luminous and reacts. The spherical center luminous point and the luminous plane are leftwards and pass through the flat quartz glass lens to be optically connected with the photomultiplier 1 in the shading dense room at the left side; the spherical center luminous point and the luminous plane are rightwards and pass through the flat quartz glass lens to be optically connected with the photomultiplier 2 in the shading dense chamber at the right side. The photomultiplier converts light intensity into a voltage signal, the photomultiplier 1 and the photomultiplier 2 are electrically connected with a linear amplifier, the linear amplifier is electrically connected with an analog-to-digital conversion module, the analog-to-digital conversion module is electrically connected with an MCU minimum system, the MCU minimum system redundantly calculates the light intensity signals of the photomultiplier 1 and the photomultiplier 2, and the concentration of ozone is displayed on a display screen. Furthermore, the input directions of ozone and NO are changed, namely NO is input into the ozone input pipeline, mark ozone is input into the NO input pipeline, the double-optical-path detachable spherical chemiluminescence reaction chamber can redundantly measure the concentration of trace NO, and the concentration of NO is displayed on a display screen. The detected concentration of O3 gas was 0.1ppb by experimental test.
The utility model has the advantages that the radius R of the spherical luminous reaction chamber is 61.8 mm, the interior of the spherical inner cavity of the spherical luminous reaction chamber is blackened, and the interference of reflected light is reduced; the double-light-path double-photomultiplier simultaneously obtains two groups of concentration signals, and light intensity signals of the photomultiplier 1 and the photomultiplier 2 are calculated through MCU minimum system redundancy, so that the ozone concentration which can be proved is obtained, and accidental measurement errors are reduced. The left hemisphere and the right hemisphere are arranged, so that the cavity can be conveniently and periodically checked and maintained, and the flat quartz glass lens can be scrubbed.

Claims (1)

1. A double-optical-path detachable spherical chemiluminescent reaction chamber comprises a left hemispherical shell (1), six flange lugs (2) outside the spherical shell, an ozone input pipeline (3), a temperature measuring probe (4), an exhaust pipeline (5), an NO input pipeline (6), a heating rod (7), a sealing gasket (8), 2 flat quartz glass lenses (9), a right hemispherical shell (10), a left shading dense chamber (11), a right shading dense chamber (12), photomultiplier tubes (1 and 13) and photomultiplier tubes (2 and 14), and is characterized in that the spherical chemiluminescent reaction chamber is integrally a spherical inner cavity with the radius of R, and R is 61.8 mm; the interior of the spherical cavity is blackened; the spherical inner cavity is cut by a vertical plane passing through the center of the sphere and is divided into a left hemispherical shell and a right hemispherical shell; the bottom of the left hemispherical shell and the right hemispherical shell is cut into spherical crowns with the radius of R/2, and the central angles corresponding to the spherical crowns are 60 degrees; a sealing gasket (8) and a flat quartz glass lens (9) are arranged at the position of the left hemispherical shell and the right hemispherical shell after spherical crowns are cut, a left shading dense chamber (11) is arranged outside the flat quartz glass lens (9) of the left hemispherical shell (1), and a right shading dense chamber (12) is arranged outside the flat quartz glass lens (9) of the right hemispherical shell (10); a photomultiplier tube 1(13) is arranged in the left light-shielding sealed chamber (11), and a photomultiplier tube 2(14) is arranged in the right light-shielding sealed chamber (12); a series of holes which can be sealed are arranged clockwise from one side of the ball of the left hemispherical shell (1) along the horizontal line, and an ozone input pipeline (3), a temperature measuring probe (4), an exhaust pipeline (5), an NO input pipeline (6) and a heating rod (7) are sequentially arranged, wherein the ozone input pipeline (3) and the NO input pipeline (6) are on the same diameter passing through the center of the ball; six flange lugs are arranged outside the spherical edges of the boundary surfaces of the left hemispherical shell and the right hemispherical shell at intervals of a central angle of 60 degrees, and threaded through hole bolts are arranged in the centers of the flange lugs; sealing gaskets (8) are added on the interfaces of the left and right hemispherical shells (10), and the left and right hemispherical shells are mechanically connected and folded through flange lugs and threaded through holes and bolts of the outer spherical edge to form an inner airtight shading spherical chemiluminescent reaction chamber; an external power supply, a temperature controller, a heating rod (7) and a temperature measuring probe (4) form a temperature control system in the sphere to keep the interior of the spherical chemiluminescent reaction chamber in an optimal luminescent temperature range; the outlets of the ozone input pipeline (3) and the NO input pipeline (6) of the junction plane of the left hemispherical shell and the right hemispherical shell are oppositely arranged around the sphere center of the spherical chemiluminescent reaction chamber, the intersection point of the centers of the two gases is at the sphere center of the spherical chemiluminescent reaction chamber, and the intersection point of the gases is a luminous point; the exhaust pipeline (5), the ozone input pipeline (3) and the NO input pipeline (6) are arranged on the intersection plane of the left and right hemispherical shells (10), and the whole process of the light excitation of the intersection and mixing of the two gases in the spherical chemiluminescent reaction chamber is arranged on the intersection plane of the left and right hemispherical shells (10), namely the light emitting plane is arranged on the intersection plane of the left and right hemispherical shells (10); the spherical center luminous point and the luminous plane of the spherical chemiluminescence reaction chamber are arranged leftwards, pass through the flat quartz glass lens (9), and are optically connected with the photomultiplier tube 1(13) in the left shading closed chamber (11); the spherical center luminous point and the luminous plane of the spherical chemiluminescence reaction chamber are towards the right, and the spherical center luminous point and the luminous plane penetrate through a flat quartz glass lens (9) and are optically connected with a photomultiplier tube 2(14) in a shading closed chamber (12) at the right side.
CN202022021690.2U 2020-09-16 2020-09-16 Double-light-path detachable spherical chemiluminescent reaction chamber Active CN212646449U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202022021690.2U CN212646449U (en) 2020-09-16 2020-09-16 Double-light-path detachable spherical chemiluminescent reaction chamber

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202022021690.2U CN212646449U (en) 2020-09-16 2020-09-16 Double-light-path detachable spherical chemiluminescent reaction chamber

Publications (1)

Publication Number Publication Date
CN212646449U true CN212646449U (en) 2021-03-02

Family

ID=74762223

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202022021690.2U Active CN212646449U (en) 2020-09-16 2020-09-16 Double-light-path detachable spherical chemiluminescent reaction chamber

Country Status (1)

Country Link
CN (1) CN212646449U (en)

Similar Documents

Publication Publication Date Title
CN106153573B (en) A kind of high temperature and pressure optics cavity and its application method for absorption coefficient calibration
CN100476389C (en) Luminous flux measurement device using standard light source in narrow beam for LED, and testing method
CN108106998B (en) Atmosphere pollution detection device and detection method
CN109655423A (en) A kind of gas concentration analytical equipment and its measuring device and analysis method
CN109444074B (en) Laser spectrum absorption probe device with self-calibration function and measurement method thereof
CN103884671A (en) Nondispersive infrared (NDIR) CO2 gas sensor
CN107148566A (en) The optical gas sensor of LED emitters with the light for launching narrow bandwidth
CN212646449U (en) Double-light-path detachable spherical chemiluminescent reaction chamber
CN115096840A (en) Automatic zero calibration multi-gas sensor and automatic zero calibration method
KR20090008600A (en) Intake-type gas sensor module using infrared rays
CN112033906A (en) Spherical chemical reaction chamber with left and right photomultiplier tubes
CN206479449U (en) Optical gas absorbance pond and optical gas sensor
CN212514279U (en) Double-photomultiplier redundancy method ozone concentration measuring device
CN210487587U (en) Calibration device for gas laser absorption spectrum measurement
CN214252021U (en) Detachable spherical reaction chamber for measuring trace ozone
CN219161976U (en) Carbon dioxide gas detection device based on diffuse reflection of two connected integrating spheres
CN104335028B (en) For the device for the concentration for determining at least one of sample gas gas
CN203299116U (en) Cubic cavity embedded type double-channel methane gas concentration real-time monitoring device
CN106442354A (en) Gas detecting device
CN110736720A (en) online detector for detecting HF gas content and detection method
CN213181249U (en) Trace nitric oxide measuring device
CN108303376B (en) Multi-cavity series gas sample cell with built-in reflecting mirror
CN114184560A (en) Spectral measurement device based on gas rapid mixing
CN110426353B (en) Calibrating device for gas laser absorption spectrum measurement
CN208872664U (en) It is a kind of for measuring the device of gas density in coal mine

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant
CP03 Change of name, title or address
CP03 Change of name, title or address

Address after: 044000, No. 4886 Dayu Street, Yuncheng Economic and Technological Development Zone, Yuncheng City, Shanxi Province

Patentee after: Shanxi Xinhuaxiang Technology Co.,Ltd.

Country or region after: China

Address before: 044000 xinhuaxiang company, 4th floor, building 1, Jihua Industrial Logistics Park, Gangfu Avenue, Konggang South District, Yuncheng City, Shanxi Province

Patentee before: SHANXI XIN HUAXIANG TECHNOLOGY DEVELOPMENT Co.,Ltd.

Country or region before: China