PORTABLE REAL-TIME AIRBORNE FUNGI ACQUIRING AND DETECTING EQUIPMENT AND METHOD
20220349786 · 2022-11-03
Inventors
- SHOUQI YUAN (ZHENJIANG, CN)
- PAN WANG (ZHENJIANG, CN)
- NING YANG (ZHENJIANG, CN)
- JIAWEI SHEN (ZHENJIANG, CN)
Cpc classification
G01N21/6428
PHYSICS
G01N2015/0681
PHYSICS
C12Q1/04
CHEMISTRY; METALLURGY
G01N1/30
PHYSICS
International classification
C12Q1/04
CHEMISTRY; METALLURGY
G01N1/30
PHYSICS
Abstract
Portable real-time airborne fungi acquiring and detecting equipment and method are provided, the equipment includes a light source device, a manual constant-flow air pump, an impactor, an airborne fungi enrichment and dyeing device, and a fluorescence data collecting and processing device sequentially connected. The fluorescence detection technology is combined with the microparticle separation technology to develop the portable airborne fungi real-time acquiring and detecting equipment. This equipment improves the complex and extensive collection methods in conventional airborne fungi detection and the demand limitation of independent detection equipment, and realizes the real-time collection and quantification of airborne fungi concentration. Moreover, the equipment has the advantages of small volume, low costs, easy operation and is easy to be prompted.
Claims
1. A portable airborne fungi real-time acquiring and detecting equipment, comprising: a light source device (1), a manual constant-flow air pump (9), an impactor (13), an airborne fungi enrichment and dyeing device (14), and a fluorescence data collecting and processing device (16) sequentially connected in that order; wherein the light source device (1) comprises a box body (18) and a light-emitting component installed in the box body (18), and the box body (18) is provided with a light-transmitting hole (5); wherein a connecting component is arranged between the manual constant-flow air pump (9) and the box body (18), and the manual constant-flow air pump (9) is connected to the light-transmitting hole (5) through the connecting component; wherein the manual constant-flow air pump (9) comprises a manual driver and a constant-flow piston pump in transmission connection with the manual driver, an inlet end of the constant-flow piston pump is communicated with the connecting component, an outlet end of the constant-flow piston pump is communicated with the impactor (13), valves (7) are installed on the inlet end and the outlet end of the constant-flow piston pump and between the light-transmitting hole (5) and the connecting component respectively, and light emitted by the light-emitting component is capable of passing through the connecting component, the constant-flow piston pump and the impactor (13) in sequence to irradiate the airborne fungi enrichment and dyeing device (14); wherein the constant-flow piston pump comprises: a pump cavity (32); a manual constant-flow air pump inlet channel (8) and a manual constant-flow air pump outlet channel (10), symmetrically provided on a bottom of the pump cavity (32); a pneumatic piston (31), slidably disposed in the pump cavity (32); a pressure lever (28), fixedly connected with a middle part of a top end of the pneumatic piston (31), wherein the manual driver is in transmission connection with the pressure lever (28); a limit ring (37), fixedly connected with an inner wall of the pump cavity (32), wherein an end surface of a bottom of the limit ring (37) is flush with a top of the manual constant-flow air pump inlet channel (8), and the pneumatic piston (31) is matched with the limit ring (37) in positionally limiting manner; wherein the manual driver comprises: brackets (26), symmetrically fixed outside the pump cavity (32); two three-way clamps (27), fixed at tops of the brackets (26) respectively; a transmission shaft (38), penetrating through the two three-way clamps (27); a driving gear (30), fixed on the transmission shaft (38); a pressure lever gear (29), fixed on the pressure lever (28), wherein the driving gear (30) is meshed with the pressure lever gear (29); and a handle (36), provided on an end of the transmission shaft (38); wherein the manual driver further comprises: a transmission shaft friction disk (33), fixed on the end of the transmission shaft (38); a driving friction disk (34), arranged on one side of the transmission shaft friction disk (33) facing away from the two three-way clamps (27), wherein the driving friction disk (34) is sleeved on the transmission shaft (38); and a torque adjusting bolt (35), arranged between the driving friction disc (34) and the transmission shaft (38), wherein the driving friction disk (34) is rotatably connected with the transmission shaft (38) through the torque adjusting bolt (35), the handle (36) is perpendicularly fixed on a side wall of the driving friction disk (34), and the driving friction disk (34) is in transmission match with the transmission shaft friction disk (33).
2. The portable airborne fungi real-time acquiring and detecting equipment according to claim 1, wherein the light-emitting component comprises a circuit fixing bracket (20), a white light-emitting diode (23), a first power supply (19) and an excitation filter device (22), a wire, a circuit protection layer (21), a power button (2), a shading plate (4), an excitation filter (24) and a light-transmitting protective layer (25); wherein the white light-emitting diode (23) is electrically connected with the first power supply (19) through the wire, an outer side of the wire is covered with the circuit protection layer (21), the white light-emitting diode (23) is fixedly matched with the circuit fixing bracket (20) through the circuit protection layer (21), the white light-emitting diode (23) horizontally corresponds to the light-transmitting hole (5); wherein the power button (2) is connected in series on the wire and fixed outside the box body (18); wherein the shading plate (4) is fixed on one side of the box body (18) close to the manual constant-flow air pump (9), and the light-transmitting hole (5) is arranged on the shading plate (4); and wherein the excitation filter device (22) is arranged between the shading plate (4) and the white light emitting diode (23), and the excitation filter device (22) comprises an excitation filter holder (3) detachably connected with the box body (18), the excitation filter holder (3) is detachably connected with the excitation filter (24) and the light-transmitting protective layer (25), and the light-transmitting protective layer (25) is located between the excitation filter (24) and the shading plate (4).
3. The portable airborne fungi real-time acquiring and detecting equipment according to claim 1, wherein the connecting component comprises a connecting pipe (6), a T-joint (56) and a suction hose (57); wherein one end of the connecting pipe (6) is communicated with the light-transmitting hole (5), and the other end of the connecting pipe (6) is provided with one of the valves (7); wherein two ports in a horizontal direction of the T-joint (56) are respectively communicated with the one of the valves (7) on the connecting pipe (6) and another one of the valves (7) on the inlet end of the constant-flow piston pump, and the suction hose (57) is communicated with a port in a perpendicular direction of the T-joint (56).
4. The portable airborne fungi real-time acquiring and detecting equipment according to claim 1, wherein the impactor (13) comprises an impactor inlet channel (12), a main airflow channel (42), air pumps, secondary airflow channel (43) and an interface threaded male head (44); wherein an end of the impactor inlet channel (12) close to the manual constant-flow air pump (9) is communicated with an interface (11), an end of the interface (11) is communicated with one of the valves (7) at the outlet end of the constant-flow piston pump, and another end of the impactor inlet channel (12) facing away from the interface (11) is communicated with the main airflow channel (42); wherein two ends of the main airflow channel (42) are provided with the air pumps, a middle of the main airflow channel (42) is provided with the secondary airflow channel (43), and the secondary airflow channel (43) is coaxially arranged with the impactor inlet channel (12); and wherein an external side of the secondary airflow channel (43) is provided with the interface threaded male head (44), and the airborne fungi enrichment and dyeing device (14) is installed on the secondary airflow channel (43) through the interface threaded male head (44).
5. The portable airborne fungi real-time acquiring and detecting equipment according to claim 4, wherein the airborne fungi enrichment and dyeing device (14) comprises a polymethyl methacrylate (PMMA) baseplate (47), a cylindrical wall (48) fixed on the PMMA baseplate (47), and a reaction tank (45) fixed in a middle of the PMMA baseplate (47); wherein an inner side of the cylindrical wall (48) is provided with an interface threaded female head (49), and the interface threaded female head (49) is in threaded connection with the interface threaded male head (44).
6. The portable airborne fungi real-time acquiring and detecting equipment according to claim 1, wherein the fluorescence data collecting and processing device (16) comprises: a detection equipment housing (55), an emission filter (50) and a data display screen (17) both installed on the detection equipment housing (55), a complementary metal oxide semiconductor (CMOS) image sensor (51), a microcontroller (52), and a second power supply (53); wherein a connector (15) is installed at an end of the detection equipment housing (55) close to the emission filter (50), and the detection equipment housing (55) is connected with the airborne fungi enrichment and dyeing device (14) through the connector (15); and wherein the emission filter (50) is located between the detection equipment housing (55) and the airborne fungi enrichment and dyeing device (14), the CMOS image sensor (51) is arranged between the emission filter (50) and the detection equipment housing (55), the microcontroller (52) and the second power supply (53) are installed in the detection equipment housing (55); the CMOS image sensor (51), the data display screen (17) and the second power supply (53) are electrically connected to the microcontroller (52); and the data display screen (17) is fixed on a side wall of the detection equipment housing (55) facing away from the CMOS image sensor (51).
7. A portable airborne fungi real-time acquiring and detecting method, by using the portable airborne fungi real-time acquiring and detecting equipment according to claim 5, comprising: S1, preparation: adjusting a position of the torque adjusting bolt according to a flow rate required for a separation of a detection target, adjusting the pneumatic piston to the limit ring, and adding fluorescent dye into the reaction tank with a pipette gun; S2, assembly of detecting equipment: keeping the light-transmitting hole, the manual constant-flow air pump inlet channel, the manual constant-flow air pump outlet channel of and the reaction tank on a same horizontal line to ensure barrier-free propagation of the light; S3, collection and dyeing of fungus particles in air: sending collected air with fungus particles to the impactor at a uniform speed by the manual constant-flow air pump for separation to obtain separated target airborne fungus particles, and enriching and dyeing the separated target airborne fungus particles in the reaction tank to obtain dyed fungus particles; S4. detection of fungus particles in air: after dyeing the separated target airborne fungus particles, starting the light source device to stimulate the dyed fungus particles, and starting the fluorescence data collecting and processing device to collect and process a fluorescent image after the dyeing, thereby to obtain a calculation result of microbial content in the air.
7. A portable airborne fungi real-time acquiring and detecting method, by using the portable airborne fungi real-time acquiring and detecting equipment according to claim 5, comprising: S1, preparation: adjusting a position of the torque adjusting bolt according to a flow rate required for a separation of a detection target, adjusting the pneumatic piston to the limit ring, and adding fluorescent dye into the reaction tank with a pipette gun; S2, assembly of detecting equipment: keeping the light-transmitting hole, the manual constant-flow air pump inlet channel, the manual constant-flow air pump outlet channel of and the reaction tank on a same horizontal line to ensure barrier-free propagation of the light; S3, collection and dyeing of fungus particles in air: sending collected air with fungus particles to the impactor at a uniform speed by the manual constant-flow air pump for separation to obtain separated target airborne fungus particles, and enriching and dyeing the separated target airborne fungus particles in the reaction tank to obtain dyed fungus particles; S4. detection of fungus particles in air: after dyeing the separated target airborne fungus particles, starting the light source device to stimulate the dyed fungus particles, and starting the fluorescence data collecting and processing device to collect and process a fluorescent image after the dyeing, thereby to obtain a calculation result of microbial content in the air.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] In order to more clearly explain the embodiments of the disclosure or the technical schemes in the prior art, the drawings needed in the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the disclosure, and for ordinary technicians in the field, other drawings can be obtained according to these drawings without paying creative efforts.
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[0043] In drawings, light source device—1, power button—2, excitation filter holder—3, shading plate—4, light-transmitting hole—5, connecting pipe—6, valve—7, manual constant-flow air pump inlet channel—8, manual constant-flow air pump—9, manual constant-flow air pump outlet channel—10, interface—11, impactor inlet channel—12, impactor—13, airborne fungi enrichment and dyeing device—14, connector—15, fluorescence data collecting and processing device—16, data display screen—17, box body—18, first power supply—19, circuit fixing bracket—20, circuit protection layer—21, excitation filter device—22, white light emitting diode—23, excitation filter—24, light-transmitting protective layer—25, bracket—26, three-way clamp—27, pressure lever—28, pressure lever gear—29, driving gear—30, pneumatic piston—31, pump cavity—32, transmission shaft friction disk—33, driving friction disk—34, torque adjusting bolt—35, handle—36, limit ring—37, transmission shaft—38, PDMS (Polydimethylsiloxane) film—39, PDMS film holder—40, acceleration zone—41, main airflow channel—42, secondary airflow channel—43, interface threaded male head—44, reaction tank 45, reaction tank wall—46, PMMA (polymethyl methacrylate) chassis—47, cylindrical wall—48, interface threaded female head—49, emission filter—50, CMOS (Complementary Metal Oxide Semiconductor) image sensor—51, microcontroller—52, second power supply—53, detection equipment housing—55, T-joint—56, suction hose—57.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0044] Next the technical schemes in the embodiments of the disclosure will be clearly and completely described with reference to the drawings in the embodiments of the disclosure. Obviously, the described embodiments are only part of the embodiments of the disclosure, not all of them. Based on the embodiments in the disclosure, all other embodiments obtained by ordinary technicians in the field without creative efforts are within the scope of the disclosure.
[0045] In order to make the above-mentioned objects, features and advantages of the disclosure more obvious and easier to understand, the disclosure will be described in further detail below with reference to the accompanying drawings and specific embodiments.
[0046] Referring to
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[0054] The disclosure combines the fluorescence detection technology with the gas micro particle separation technology to develop a portable airborne fungi real-time acquiring and detecting equipment. The equipment overcomes the complex and extensive collection mode in the traditional detection of airborne fungi and the demand restriction of independent detection equipment, which may realize the real-time collection and quantification of airborne fungi concentration, and the equipment has the advantages of small volume, low cost, no professional operation and is easy to be prompted.
[0055] In the description of the disclosure, it is to be understood that the terms “longitudinal”, “transverse”, “up”, “down”, “vertical”, “horizontal”, “top”, “bottom”, “inside”, “outside” and the like indicate orientation or positional relationships based on those shown in the accompanying drawings and are intended only to facilitate the description of the disclosure, not to indicate or imply that the device or element referred to must have a particular orientation, be constructed and operate in a particular orientation, and therefore are not to be construed as a limitation.
[0056] The above-described embodiments only describe the preferred mode of the disclosure and do not limit the scope of the disclosure. Without departing from the design spirit of the disclosure, various modifications and improvements made by ordinary technicians in the art to the technical scheme of the disclosure shall fall within the protection scope determined by the claims of the disclosure.