METHOD OF ACQUISITION OF ANALYTES WITH AN UNMANNED MOBILE PLATFORM, MOBILE DELIVERY PLATFORM, ASSEMBLY AND USE
20240409246 ยท 2024-12-12
Inventors
- Oscar Christoph VAN DER JAGT ('s-Gravenhage, NL)
- Marta Maria JEZIERSKA-SWITALA ('s-Gravenhage, NL)
- Hanno HILDMANN ('s-Gravenhage, NL)
Cpc classification
B64U2101/35
PERFORMING OPERATIONS; TRANSPORTING
G01N2001/022
PHYSICS
International classification
Abstract
The present disclosure relates to remote accumulation of an analyte from a fluid medium in a fluid sampler that comprises a collection medium for accumulating the analyte. There is provided a mobile platform (20) configured to perform delivering the fluid sampler (10) to a target location for sampling the fluid medium. The high volume fluid sampler is connected to a conduit (30) that opens a position upstream or downstream of a fluid displacement means (21) for propelling the platform. Operating the displacement means generates a sampling flow F that exposes the collection medium, thereby accumulating the analyte, if present.
Claims
1. A method of remote accumulation of an analyte from a fluid medium in a fluid sampler comprising a collection medium for accumulating the analyte, the method comprising: delivering the fluid sampler by a mobile delivery platform to a target location for sampling the fluid medium, wherein the fluid sampler is connected to a conduit opening at a position upstream or downstream of a fluid displacement means comprised in the mobile platform for propelling the mobile delivery platform, and generating, at the sampling location, a flow of the fluid medium through the conduit, by operating said displacement means thereby generating the flow and exposing the collection medium to the fluid medium, thereby accumulating the analyte, if present.
2. The method according to claim 1, comprising controlling a rate and duration of the flow by affecting a pressure differential across the fluid sampler.
3. The method according to claim 2, wherein controlling the rate and duration of the flow comprises adjusting a condition of a restriction valve associated to the conduit and or the fluid sampler.
4. The method according to claim 2, wherein controlling the rate and duration of the flow comprises: adjusting an orientation and/or separation distance of the opening of the conduit relative to the fluid displacement means.
5. The method according to claim 3, wherein controlling the rate and duration of the flow comprises: regulating a displacement rate of the fluid displacement means.
6. The method according to claim 1, comprising determining a quantity of the fluid medium exposed to the collection medium.
7. The method according to claim 6, comprising: determining a concentration of the analyte by correlating a determined amount of accumulated analyte to the quantity of the fluid medium exposed to the collection medium.
8. A mobile delivery platform comprising a fluid displacement means for propelling the mobile delivery platform, configured to perform the method according to claim 1, the mobile delivery platform comprising: means for carrying a fluid sampler comprising a collection medium for accumulating the analyte, and a conduit configured for connecting to an outlet of the fluid sampler and opening at a position upstream or downstream of the fluid displacement means.
9. The mobile delivery platform according to claim 8, wherein the mobile delivery platform is an unmanned aerial vehicle (UAV), whereby the fluid displacement means comprises at least one fan.
10. The mobile delivery platform according to claim 8, configured to adjust a condition of a restriction valve associated to one or more of the fluid sampler and the conduit.
11. The mobile delivery platform according to claim 8, configured to adjust a position and/or separation distance between the conduit and fluid displacement means.
12. The mobile delivery platform according to claim 8, configured to regulate a displacement rate of the fluid displacement means by one or more of adjusting a rotational speed of a fan comprised in the fluid displacement means, and adjusting a pitch angle of a blade comprised in the fan.
13. An assembly of a mobile platform according to claim 8 and a fluid sampler comprising a collection medium.
14. The assembly according to claim 13, comprising a plurality of the fluid samplers, each connected to a corresponding conduit opening at a position upstream or downstream of the or a further fluid displacement means comprised in the mobile platform for propelling the mobile delivery platform, wherein each fluid sampler comprises a collection medium for collecting one or more specific analytes from a plurality of different analytes.
15. A method for accumulating analytes associated to a presence of a controlled or hazardous substance in a fluid sampler comprising a collection medium, the method comprising using a pressure differential generated by a fluid displacement means of a mobile delivery platform for propelling the mobile delivery platform for said accumulating analytes in said fluid sampler.
16. The mobile delivery platform of claim 9, wherein the UAV is a micro UAV.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0017] These and other features, aspects, and advantages of the apparatus, systems and methods of the present disclosure will become better understood from the following description, appended claims, and accompanying drawing wherein:
[0018]
[0019]
[0020]
[0021]
DESCRIPTION OF EMBODIMENTS
[0022] Terminology used for describing particular embodiments is not intended to be limiting of the invention. As used herein, the singular forms a, an and the are intended to include the plural forms as well, unless the context clearly indicates otherwise. The term and/or includes any and all combinations of one or more of the associated listed items. It will be understood that the terms comprises and/or comprising specify the presence of stated features but do not preclude the presence or addition of one or more other features. It will be further understood that when a particular step of a method is referred to as subsequent to another step, it can directly follow said other step or one or more intermediate steps may be carried out before carrying out the particular step, unless specified otherwise. Likewise it will be understood that when a connection between structures or components is described, this connection may be established directly or through intermediate structures or components unless specified otherwise.
[0023] The invention is described more fully hereinafter with reference to the accompanying drawings, in which embodiments of the invention are shown. In the drawings, the absolute and relative sizes of systems, components, layers, and regions may be exaggerated for clarity. Embodiments may be described with reference to schematic and/or cross-section illustrations of possibly idealized embodiments and intermediate structures of the invention. In the description and drawings, like numbers refer to like elements throughout. Relative terms as well as derivatives thereof should be construed to refer to the orientation as then described or as shown in the drawing under discussion. These relative terms are for convenience of description and do not require that the system be constructed or operated in a particular orientation unless stated otherwise.
[0024] The term analyte as used herein can be understood to relate to specific substances of any form for which presence is to analyzed. Analytes thus include specific compounds, molecules, aerosols and/or particulate of interest. Such as those that can be associated to a presence of a controlled or hazardous substance such as one or more of explosives, nerve agents, and drugs, VOCs, and hazardous vapors and gasses. The term remote accumulation can be understood to concern accumulation, or sample collection, by an unmanned platform as opposed to manned on-site sample collection and remote sensing where analysis is performed from a distance without prior sample collection or preconcentration, e.g., a camera used from far away to record changes in the real world over time, effectively making measuring the impact of light on its environment.
[0025] The term fluid sampler as used herein generally refers to instruments used to collect analytes from samples of air or other fluid media. The instrument comprises a sorbent for retaining, accumulating, the target analytes, e.g. particles, comprised in the air. Suitable fluid samplers and collection media in relation to a target analyte or class of analytes to be accumulated are generally known in the field. A distinction between high volume and low volume fluid samplers can be made on account of an intended amount of fluid (e.g. air) that is to be sampled whereby High volume air samplers typically refer to instruments configured to sample more than 100 cubic meters (m.sup.3), more than 500 m.sup.3, or even more than 1500 m.sup.3 of air over a 24-hour period, while low volume air samplers draw only 24 m.sup.3 of air per day, or less. For the context of the present disclosure a high volume air sampler may be preferred in view of a comparatively higher sorption capacity and/or smaller flow resistance allowing a comparatively larger flow at a given pressure differential. Fluid samplers may be acquired from numerous commercial sources under names including high and low volume samples or air samplers. Examples of fluid samplers and collection media include but are not limited to: cotton; solid phase microextraction (SPME) fibres; Tenax sorbent tubes, and Gerstel Twister samplers.
[0026] The term micro- or nano-UAVs can be considered to relate to UAVs having overall dimension (widthlengthheight) in a range below 404040 centimeter.
[0027]
[0028] As illustrated in
[0029] As illustrated in
[0030] The mobile delivery platform 20 is in the form of a UAV. The UAV comprises a central housing including a number of arms provided with a rotor 21-1, 21-2, 21-3, 21-4 for propelling the mobile delivery platform 20. The mobile delivery platform 20 comprises means for carrying the high volume fluid sampler 10 and a conduit 30-1, 30-2 configured for connecting to an outlet of the high volume fluid sampler 10 and opening at a position upstream or downstream of the fluid displacement means 21. The conduit opens near the rotor at a position associated to a pressure differential (P1-P2) generated by said rotor during operation as indicated by the arrows (2a) indicating the flow of fluid medium 2, air. The disclosure uses this principle to temporarily and in a controlled manner use the draft generated by the fluid displacement means, not for propulsion, but to direct an airflow through the conduit 30. Specifically, in the embodiment shown inventors temporarily divert part of the under pressure created by the propellers from creating lift to creating an under pressure in a pipe 30 connected ultimately to high volume fluid sampler.
[0031] In a preferred embodiment the conduit 30 opens at a position upstream of the fluid displacement means 21. Positioning the opening 33 of the conduit at an upstream position advantageously draws a flow F of ambient air from the position marked P3 across the fluid sampler towards the rotor via the conduit. Drawing the air directly into the fluid sampler increases collection performance by minimizing contact of sampled air with tubing side walls prior to collection. Alternatively, or in addition, drawing in air directly into the fluid sampler 10 allows localized fluid sampling from a volume at the high volume fluid sampler 10. Turbulence generated by the rotors can further direct analyte from the object towards an inlet at the high volume fluid sampler 10, further increasing the amount of analyte taken up in the collection medium.
[0032] Positioning the opening below the rotor would direct the flow in the opposite direction, which could be used to draw in air from a more distant position, e.g. reference position, allowing the sampling of ambient, e.g. for collection of a base-line reading.
[0033] As schematically shown in
[0034]
[0035] In another or further preferred embodiment, the method, comprises controlling a rate and/or duration, preferably both, of the flow F by affecting a pressure differential across the fluid sampler. Controlling the rate and/or duration advantageously allows determining a total volume of fluid medium 2 passed which can be used to determine a concentration of analyte at a sampling location, e.g. by dividing a total collected amount of analyte by the total collected volume of fluid medium. Methods and means for affecting a pressure differential across the fluid sampler will be explained in more detail hereinbelow.
[0036] Controlling the rate and/or duration generally includes measuring a duration and/or flow rate. In some embodiments, the method comprises determining a quantity of the fluid medium exposed to the collection medium. In a preferred embodiment, the method comprises determining a concentration of the analyte by correlating a determined amount of accumulated analyte to the quantity of the fluid medium exposed to the collection medium.
[0037] In some embodiments, the flow rate and/or total quantity of the fluid medium exposed to the collection medium is measured by an appropriate means, e.g. a flow sensor. Alternatively, or in addition, the flow rate and/or total exposed quantity can be determined in a calibration step, e.g. by collecting analyte from a sample having a known rate of emitting analyte under similar sampling conditions.
[0038] In one embodiment, e.g. as shown in the embodiment depicted in
[0039] Preferably, there is no direct contact to the object to be analyzed. This mitigates disturbances which can be of particular relevance when analyzing objects suspect of comprising a hazardous substance, e.g. an explosive. Alternatively the platform, e.g. a drone, can land in the vicinity of an object to be analyzed. This can increase a potential sampling time by reducing power needed for keeping the drone airborne and/or simplifies control when desiring to reduce the power of its fluid displacement means, blades.
[0040] In another or further embodiment, controlling the rate and duration of the flow F comprises adjusting an orientation and/or separation distance of the opening 31 of the conduit 30 relative to the fluid displacement means 21.
[0041] The opening 33 of the conduit 30 is typically kept about perpendicular (+/) 10 to a displacement of the medium 2 across the fluid displacement means. This maximizes the rate of the flow F through the fluid sampler. The diameter and length of the conduit also affect flow rate. the diameter of the conduit is generally selected within an appropriate range. The length of the conduit is preferably minimized to minimize pressure drop across the conduit. Likewise, the diameter is generally selected such that the pressure drop across the conduit is less than the pressure drop across the high volume fluid sampler 10. Generally the diameter is in a range between 0.5 and 10 millimeter, typically 2-5 mm.
[0042] In some embodiments, controlling the rate and duration of the flow F comprises regulating a displacement rate of the fluid displacement means 21. For example, by setting an operating power of the fluid displacement means 21, e.g. the rpm, or pitch angle of the propeller blades. It was found that regulating the flow rate of a limited number (e.g. 1 or 2) of fluid rotors in UAVs comprising a plurality of additional rotors (e.g. 8) is possible without losing aerial control over the vehicle.
[0043] In some embodiments the system comprises a plurality of conduits 30-1, 30-2 and/or a plurality of fluid samplers, e.g. high volume fluid samples 10-1, 10-2, 10-3, 10-4. The conduits can each be fluidly connected to a single high volume fluid sampler 10, e.g. as shown in
[0044] It will be understood that in order to regulate the rate and duration of the flow by affecting a pressure differential across the sampler the system can be provided with a controller 29 to adjust one or more of: an orientation and/or separation distance of the opening 31 of the conduit 30 relative to the fluid displacement means; a displacement rate of the fluid displacement means 21; and a condition of a restriction valve 31. Advantageously the system may use a controller and/or communication means already comprised in the mobile delivery platform.
[0045] It will be appreciated that the disclosure is not limited to aerial vehicles, the method of remote can in principle be applied with any platform, preferably a remotely controlled or autonomous vehicle, comprising a fluid displacement means. Possible applications include wheeled vehicles, such as cars, rovers, and nautical platforms including but not limited to boats and submarines.
[0046] For the purpose of clarity and a concise description, features are described herein as part of the same or separate embodiments, however, it will be appreciated that the scope of the invention may include embodiments having combinations of all or some of the features described. Of course, it is to be appreciated that any one of the above embodiments or processes may be combined with one or more other embodiments or processes to provide even further improvements in finding and matching designs and advantages. It is appreciated that this disclosure offers particular advantages to detection of controlled and/or hazardous substances, and in general can be applied for any application wherein presence of an analyte in low concentration regimes within a fluid medium is to be monitored.
[0047] In interpreting the appended claims, it should be understood that the word comprising does not exclude the presence of other elements or acts than those listed in a given claim; the word a or an preceding an element does not exclude the presence of a plurality of such elements; any reference signs in the claims do not limit their scope; several means may be represented by the same or different item(s) or implemented structure or function; any of the disclosed devices or portions thereof may be combined together or separated into further portions unless specifically stated otherwise. Where one claim refers to another claim, this may indicate synergetic advantage achieved by the combination of their respective features. But the mere fact that certain measures are recited in mutually different claims does not indicate that a combination of these measures cannot also be used to advantage. The present embodiments may thus include all working combinations of the claims wherein each claim can in principle refer to any preceding claim unless clearly excluded by context.