Fluid composition sensor device and method of use

The fluid composition sensor addresses limitations in existing devices by minimizing optical interference and enabling efficient, automated particle analysis with replaceable collection media, enhancing data accuracy and reliability.

JP7752662B2Active Publication Date: 2025-10-10HONEYWELL INTERNATIONAL INC
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Patent Information

Application Number
JP2023130726
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-01-21
Filing Date
2023-08-10
Publication Date
2025-10-10
Estimated Expiration
2041-01-13

AI Technical Summary

Technical Problem

Existing fluid sensor devices have limited functionality in generating data indicative of specific properties of fluid particles, such as unique identity and concentration, and suffer from optical interference in inertial impactor sampling methods.

Method used

A fluid composition sensor with an impactor nozzle, collection medium, illumination source, and imaging device that minimizes optical interference and allows for multiple sample analysis, featuring a configurable housing and replaceable collection media to enhance particle detection and analysis.

Benefits of technology

The sensor effectively characterizes particle properties by reducing optical interference and enabling rapid, automated particle sampling and analysis, improving data accuracy and device reliability through replaceable collection media.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide apparatuses and methods for detecting fluid particles and their characteristics.SOLUTION: A device for detecting fluid particles and their characteristics comprises an impactor nozzle 104 and is configured to collect fluid particles by inertial impact. The impactor nozzle is selectively configured to avoid optical reflections and scattering from illumination light passing through the nozzle. A collection media assembly can be replaced so as to facilitate continuous use of a plurality of collection media assemblies in a fluid composition sensor 100 and includes collection media 106, an orifice, a seal engagement portion, and a frame element.SELECTED DRAWING: Figure 1
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Description

[Background technology]

[0001] Sensors and devices may be used to characterize various aspects of fluids in a wide variety of applications. By way of example only, a sensor device may be used to monitor air conditions, such as monitoring and characterizing the particle content of an air stream. However, existing fluid sensor devices offer limited functionality in generating data indicative of specific properties of a fluid, such as the unique identity and concentration of individual particles contained within the fluid stream. A fluid sensor device may use holographic imaging to characterize the particle identity and concentration of particulate matter collected by inertial impaction. It is desirable to improve various aspects of particle sampling and analysis. In general, it may be advantageous for a fluid sampling device to utilize a sampling medium that enables rapid and / or simplified continuous sampling of particles. In devices that utilize holographic imaging (e.g., lensless holography) for in situ particle analysis, it is desirable to avoid light reflection and scattering to achieve optimal image quality.

[0002] Therefore, there is a need for an improved fluid sensor device that can reduce optical interference in inertial impactor sampling methods and / or that can analyze multiple samples from one or more impactor collection media. Summary of the Invention

[0003] Various embodiments described herein relate to an apparatus and method for collecting and characterizing particles suspended in a fluid. Various embodiments relate to an apparatus for detecting fluid particle properties, the apparatus including: a fluid composition sensor configured to receive a fluid volume, the housing defining an interior sensor portion and including a fluid inlet configured to receive the fluid volume; an inertial impactor nozzle disposed within the interior sensor portion and configured to receive at least a portion of the fluid volume such that at least a portion of the fluid volume received by the impactor is directed in a fluid flow direction; at least one collection medium configured to receive one or more particles of a plurality of particles in the fluid volume, at least a portion of the at least one collection medium disposed within the interior sensor portion, each of the at least one collection medium including at least one orifice configured to allow at least a portion of the fluid volume to flow therethrough; an illumination source emitting light propagating through the impactor nozzle; and an illumination source configured to emit light propagating through the illumination source ... and a controller configured to determine at least one particle characteristic of the fluid volume received by the fluid composition sensor based at least in part on the image captured by the imaging device, wherein the housing is selectively configurable between a first housing configuration and a second housing configuration, the first housing configuration enabling reconfiguration of the at least one collection medium, the second housing configuration providing a fixed seal for isolating at least a portion of the at least one collection medium disposed within the interior sensor portion from the surrounding fluid volume, the fluid flow direction being at least substantially toward the at least a portion of the at least one collection medium disposed within the interior sensor portion, and wherein when the fluid composition sensor is configured in the second housing configuration, at least substantially all of the at least a portion of the fluid volume received by the impactor nozzle flows through the at least one orifice of the at least one collection medium disposed within the interior portion of the housing.

[0004] In various embodiments, the at least one collection medium is mounted on a rotatable disk configured such that reconfiguring the at least one collection medium includes rotating the rotatable disk about an axis to move the at least one collection medium relative to the interior sensor portion of the housing. In various embodiments, the at least one collection medium may be disposed on an alignment plate configured such that reconfiguring the at least one collection medium includes moving the alignment plate along a plane to move the at least one collection medium relative to the interior sensor portion of the housing.

[0005] In various embodiments, the at least one collection medium may include a plurality of collection media, each configured to be sequentially positioned within the internal sensor portion. Furthermore, in various embodiments, the device may include a first collection medium assembly storage chamber configured to accommodate at least a portion of the plurality of collection media, the first collection medium assembly storage chamber positioned proximate to the housing such that the housing is configured to receive at least a portion of the plurality of collection media from the first collection medium assembly storage chamber. In various embodiments, each of the plurality of collection media may include a corresponding frame element configured to facilitate collective storage and subsequent removal of at least a portion of the plurality of collection media from the first collection medium assembly storage chamber. In various embodiments, the first collection medium assembly storage chamber may further include an actuator element configured to selectively apply a force to one of the plurality of collection media stored in the first collection medium assembly storage chamber to relocate the one of the plurality of collection media to the internal sensor portion of the fluid composition sensor. In various embodiments, the device may further include a second collection media storage chamber disposed proximate to the housing such that the housing is configured to feed at least a portion of the plurality of collection media to the second collection media assembly storage chamber, the second collection media assembly storage chamber configured to receive at least a portion of the plurality of collection media from the internal sensor portion of the housing.

[0006] Various embodiments relate to an apparatus for detecting fluid particle characteristics, the apparatus comprising: a fluid composition sensor configured to receive a fluid volume, the housing defining an interior sensor portion and including a fluid inlet configured to receive the fluid volume; at least one collection medium configured to receive one or more particles of a plurality of particles in the fluid volume, at least a portion of the at least one collection medium disposed within the interior sensor portion; and an impactor nozzle disposed within the interior sensor portion, the impactor nozzle including: a nozzle inlet including a nozzle inlet cross-sectional area, the nozzle inlet configured to receive at least a portion of the fluid volume; a nozzle outlet including a nozzle outlet cross-sectional area; and a plurality of sidewalls extending between the nozzle inlet and the nozzle outlet, each of the plurality of sidewalls including an inner sidewall and an outer sidewall; and the impactor nozzle configured to flow in a fluid airflow direction from the nozzle outlet at least substantially toward at least a portion of the at least one collection medium disposed within the interior sensor portion. at least one illumination source configured to emit one or more light beams to engage the at least one collection medium and illuminate one or more particles received by the at least one collection medium, each of the one or more light beams being emitted from the illumination source at a corresponding light beam emission angle; an imaging device configured to capture images of at least a portion of the one or more particles received by the at least one collection medium; and a controller configured to determine at least one particle characteristic of the fluid volume received by the fluid composition sensor based at least in part on the images captured by the imaging device, wherein the fluid composition sensor is configured such that at least a portion of the one or more light beams emitted from the illumination source extend through both the nozzle inlet and the nozzle outlet, and the impactor nozzle includes a particle imaging configuration in which at least one of the plurality of sidewalls is at least partially defined by a taper angle corresponding to the light beam emission angle of one of the one or more light beams, the taper angle being at least as great as each light beam emission angle.

[0007] In various embodiments, the plurality of sidewalls define a first nozzle portion and a second nozzle portion. The impactor nozzle may further include a central nozzle axis extending perpendicularly between the nozzle inlet and the nozzle outlet, the illumination source being aligned with the central nozzle axis.

[0008] In various embodiments, the impactor nozzle may be configurable between a first nozzle configuration and a second nozzle configuration, the first nozzle configuration corresponding to a particle collection function of the fluid composition sensor and the second nozzle configuration corresponding to a particle analysis function of the fluid composition sensor, and the fluid composition sensor is configured to selectively configure the nozzle between the first nozzle configuration and the second nozzle configuration. In various embodiments, a nozzle exit cross-sectional area of ​​the nozzle exit in the first nozzle configuration is smaller than a nozzle exit cross-sectional area of ​​the nozzle exit in the second nozzle configuration. Further, in various embodiments, each of the plurality of sidewalls may be configured to move independently relative to adjacent sidewalls of the plurality of sidewalls. In various embodiments, the fluid composition sensor may be configured to selectively apply a pushing force to each of outer sidewalls of the plurality of sidewalls.

[0009] Various embodiments relate to a collection medium assembly for receiving one or more particles from a fluid volume in a fluid composition sensor, the collection medium assembly comprising: a transparent substrate; at least one collection medium disposed on the transparent substrate and configured to receive one or more particles from the fluid volume; at least one orifice extending through the transparent substrate, the at least one orifice being disposed at least generally adjacent to a corresponding one of the at least one collection medium; and at least one air seal engagement portion, each air seal engagement portion configured to surround one of the at least one collection medium and its corresponding at least one orifice, the at least one orifice being configured to allow the fluid volume to flow through the transparent substrate, and each of the at least one seal engagement portion being configured to engage with one or more air seal components of the fluid composition sensor such that substantially all of the fluid volume flows through the at least one orifice surrounded by the at least one air seal engagement portion.

[0010] Various embodiments relate to a method for detecting fluid particle properties, including receiving a fluid volume with a sensor; directing the fluid volume toward a collection medium with an impactor nozzle in a first nozzle configuration; receiving one or more particles of a plurality of particles in the fluid volume with the collection medium; reconfiguring the impactor nozzle to a second nozzle configuration; illuminating the one or more particles received by the collection medium with one or more light beams emitted from an illumination source, each of the one or more light beams being emitted from the illumination source at a corresponding light beam emission angle; capturing an image of the one or more particles of the plurality of particles received by the collection medium; and determining at least one particle property of the plurality of particles in the fluid volume based at least in part on the image.

[0011] In various embodiments, reconfiguring the impactor nozzle to the second nozzle configuration may include rearranging at least a portion of the impactor nozzle such that at least a portion of one or more of the impactor nozzle's multiple sidewalls is at least partially defined by a taper angle corresponding to a beam exit angle of one of the one or more beams, the taper angle being at least as large as each of the beam exit angles. In various embodiments, the method may further include rearranging the second collection medium to replace the collection medium upon capturing an image of one or more particles of the multiple particles received by the collection medium. stomach. [Brief explanation of the drawings]

[0012] Reference is now made to the accompanying drawings, which are not necessarily drawn to scale.

[0013] [Figure 1] 1 is a schematic diagram of an exemplary fluid sensor according to various embodiments.

[0014] [Figure 2] 1 is a cross-sectional view of an exemplary fluid sensor described herein.

[0015] [Figure 3] FIG. 1 is a schematic diagram of an exemplary apparatus for practicing various embodiments of the present disclosure.

[0016] [Figure 4] FIG. 1 is a flow diagram of an exemplary method for detecting fluid particle properties of a fluid according to an embodiment of the present disclosure.

[0017] [Figure 5] 1 is an exemplary apparatus according to various embodiments described herein.

[0018] [Figure 6] 1 is a collection media assembly according to one embodiment described herein.

[0019] [Figure 7A] 1A-1D are various views of a collection media assembly according to one embodiment described herein. [Figure 7B] 1A-1D are various views of a collection media assembly according to one embodiment described herein.

[0020] [Figure 8A] 1A-1D are various views of a collection media assembly according to one embodiment described herein. [Figure 8B] 1A-1D are various views of a collection media assembly according to one embodiment described herein.

[0021] [Figure 9A] 1A-1C are various views of a collection media assembly according to various embodiments described herein. [Figure 9B] 1A-1C are various views of a collection media assembly according to various embodiments described herein.

[0022] [Figure 10] FIG. 1 is a top view of a collection media assembly according to an example embodiment described herein.

[0023] [Figure 11] FIG. 1 is a top view of a collection media assembly according to an example embodiment described herein.

[0024] [Figure 12] FIG. 1 is a top view of a collection media assembly according to an example embodiment described herein.

[0025] [Figure 13] 1 is a cross-sectional view of an apparatus according to an exemplary embodiment described herein.

[0026] [Figure 14A] 1 is an exemplary apparatus according to various embodiments described herein. [Figure 14B]1 is an exemplary apparatus according to various embodiments described herein.

[0027] [Figure 15] 1 is a cross-sectional view of an exemplary device according to one embodiment described herein.

[0028] [Figure 16] 1 is a cross-sectional view of an exemplary device according to one embodiment described herein.

[0029] [Figure 17] 1 is a cross-sectional view of an exemplary device according to one embodiment described herein.

[0030] [Figure 18A] 1 is a schematic diagram of an exemplary apparatus according to various embodiments described herein. [Figure 18B] 1 is a schematic diagram of an exemplary apparatus according to various embodiments described herein. [Figure 18C] 1 is a schematic diagram of an exemplary apparatus according to various embodiments described herein. [Figure 18D] 1 is a schematic diagram of an exemplary apparatus according to various embodiments described herein.

[0031] [Figure 19A] 1 is a perspective view of an exemplary device according to various embodiments. [Figure 19B] 1 is a perspective view of an exemplary device according to various embodiments. [Figure 19C] 1 is a perspective view of an exemplary device according to various embodiments.

[0032] [Figure 20A] 1A-1D are various views of an exemplary device according to various embodiments. [Figure 20B] 1A-1D are various views of an exemplary device according to various embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0033] The present disclosure will more fully describe various embodiments with reference to the accompanying drawings. While several embodiments have been shown and described herein, it should be understood that not all embodiments have been shown and described. Indeed, embodiments may take many different forms, and thus, this disclosure should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. Like numbers refer to like elements throughout.

[0034] While exemplary implementations of one or more aspects are presented below to begin with, it should be understood that the disclosed assemblies, systems, and methods may be implemented using any number of technologies, whether currently known or yet to exist. The present disclosure should in no way be limited to the exemplary implementations, drawings, and technologies illustrated below, but may be modified within the full scope of the appended claims and their equivalents. While dimensional values ​​of various elements are disclosed, the drawings may not be drawn to scale.

[0035] As used herein, the terms “example” or “exemplary” are intended to mean “serving as an example, instance, or illustration.” Any implementation described herein as an “example” or “exemplary embodiment” is not necessarily preferred or advantageous over other implementations. As used herein, “fluid” may be embodied as a gas, a liquid, or a combination of a gas and a liquid in a single flow. Accordingly, the term “fluid” encompasses various materials that tend to flow, including, but not limited to, liquids and / or gases (e.g., air, oil, etc.). Accordingly, various embodiments relate to fluid detection systems, such as gas detection systems (e.g., certain embodiments are specifically configured for operation with air, while other embodiments are configured for operation with other gases, such as inert gases, volatile gases, and / or the like) and / or liquid detection systems. overview

[0036] Described herein are devices configured to characterize and monitor particulate matter within a fluid volume. The devices discussed herein quantify and classify particles within the fluid volume based at least in part on imaging of particles received by a collection medium of a fluid composition sensor. Additionally, the devices discussed herein may be configured to characterize the particle composition within a fluid volume by directly identifying the particle size and particle type of each particle received by the collection medium of the fluid composition sensor. The devices described herein may be configured to detect changes in particle composition over time and / or location within the fluid volume by directly measuring particle size and particle type.

[0037] Additionally, the devices described herein may be configured to generate a clear optical output for an image captured by an imaging device of the fluid composition sensor. The devices described herein may include an impactor nozzle configured to minimize reflection of a portion of a light beam emitted from an illumination source. The devices described herein may include an impactor nozzle configured to minimize imaging distortion caused by divergent light beams emitted from the illumination source impinging on a sidewall thereof and reflecting toward the imaging device. For example, such device configurations can minimize scattering of light beams caused by the impactor nozzle, thereby reducing noise that could degrade the ability of the fluid composition sensor to identify, identify, and / or analyze individual particles of one or more particles deposited within the collection medium. The devices may also be configured to avoid degradation of the fluid composition sensor's ability to reconstruct an image of one or more captured particles, which could degrade the sensor's performance in classifying one or more particles using machine learning.

[0038] Additionally, the devices herein may be configured to utilize replaceable collection media in combination with the fluid composition sensor to increase device reliability and user satisfaction with the device. According to some embodiments discussed herein, the collection media used to collect particles from a fluid volume within the fluid composition sensor may be automatically replaced (in the fluid collection location) once a predetermined sample fluid volume or number of sample particles has been determined to have passed through the device. By minimizing intermittent user interaction with the collection media, the devices herein may expedite the sample collection process, reduce the physical effort required by the user, facilitate automated measurements, and minimize device failures caused by misalignment during user-defined reconfiguration of one or more device components. Fluid Composition Sensor

[0039] The device 10 may include a fluid composition sensor 100 configured to receive a volume of fluid flowing therethrough. Specifically, the device 10 may be configured to receive a volume of gas, such as air, flowing therethrough. In various embodiments, the fluid composition sensor 100 may further be configured to capture an image of one or more particles present within the received fluid volume. As shown in FIG. 1 , the fluid composition sensor 100 may include a housing 101, an impactor nozzle 104, a collection medium 106, an at least partially transparent transparent substrate 108, and an imaging device 110. In some embodiments, the fluid composition sensor 100 may further include a power source 114 configured to provide power to the fluid composition sensor 100 and a fan or pump 112 configured to draw the volume of fluid into and through the fluid composition sensor 100. In various embodiments, the fan or pump 112 is calibrated such that the flow rate of the fluid moving through the device is known / determined based at least in part on the operating characteristics (e.g., operating power) of the fan or pump 112. In various embodiments, fluid composition sensor 100 may include a lensless microscope, such as that described in WO 2018 / 165590, which is incorporated herein by reference in its entirety. In various embodiments, the lensless microscope may utilize one or more techniques, such as, for example, lensless holography, to capture particle images of one or more particles of the plurality of particles received by collection medium 106, as described herein. Alternatively, fluid composition sensor 100 may be configured to capture images that may be analyzed by the apparatus described herein to determine particle size or other particle characteristics of the one or more particles captured by collection medium 106. The fluid composition sensor 100 may comprise a lens-based imaging device or any other device. In various embodiments, the lens-based imaging device may utilize one or more imaging techniques, such as, for example, optical microscopy, to capture particle images of one or more particles of the plurality of particles 120 received by the collection medium 106, as described herein. In various embodiments, optical microscopy may include light passing through or reflected from the collection medium 106 and / or the plurality of particles 120 disposed within the collection medium 106, passing through one or more lenses to magnify and capture images of one or more of the particles of the plurality of particles 120 within the collection medium 106. As described herein, the fluid composition sensor 100 may be electronically and communicatively coupled to a controller 200.

[0040] In various embodiments, as shown in FIGS. 1 and 2 , the impactor nozzle 104 may be configured to direct a flow of a fluid volume received by the fluid composition sensor 100 in a flow direction 130 at least substantially perpendicular to and toward the receiving surface of the collection medium 106. In various embodiments, the collection medium 106 may be embodied as part of a collection medium assembly. For example, the collection medium assembly may be embodied as a replaceable slide (as shown in FIGS. 5-8B ), with the replaceable collection medium 106 disposed within the slide. In other embodiments, the entire replaceable slide may be disposable, with the collection medium 106 permanently secured within the slide. However, in other embodiments, the collection medium assembly may include a collection medium tape 106 (e.g., the collection medium tape may be embodied as an elongated collection medium 106 that may be moved through the fluid composition sensor 100 so that a new (e.g., unused) portion of the collection medium tape may be exposed to fluid flowing through the impactor nozzle 104). As yet another example, the collection medium 106 may be disposed on and / or as a portion of a rotatable disk such that the collection medium 106 can rotate relative to the fluid composition sensor 100 so that a new (e.g., unused) portion of the collection medium disk can be exposed to the fluid flowing through the impactor nozzle 104. It should be understood that the collection medium 106 may be embodied in any of a variety of forms. In yet other embodiments, the collection medium 106 may be permanently affixed within the composition sensor 100 such that the entire composition sensor 100 can be discarded once the collection medium 106 is sufficiently filled with particles from the fluid flowing through the composition sensor 100. The collection medium 106 may be configured to receive one or more particles of the plurality of particles 120 through interaction with the fluid volume. In various embodiments, the collection medium 106 may include a receiving surface 105, a back surface 107, and a thickness defined by the distance between the receiving surface 105 and the back surface 107. In various embodiments, the thickness of the collection medium 106 may be at least substantially between about 10 and about 1000 micrometers (eg, 100 micrometers).In various embodiments, the collection medium 106 may include a material suitable for stopping one or more particles of the plurality of particles 120 moving toward the receiving surface 105 at a certain velocity before the particles reach the rear surface 107, such that one or more particles of the plurality of particles 120 are disposed within the collection medium a certain distance along the thickness of the collection medium 106. For example, in various embodiments, the collection medium may include an adhesive (i.e., sticky) material, such as a gel. In various embodiments, the fluid composition sensor 100 may include a transparent substrate 108 positioned at least substantially adjacent to (e.g., directly secured to) the rear surface 107 of the collection medium 106. In various embodiments, the collection medium assembly may further include the transparent substrate 108. Furthermore, in various embodiments, such as when the collection medium assembly is embodied as a slide, the collection medium assembly may include a collection medium housing 113, which may define a handle 109. In various embodiments, the collection medium housing 113 may be configured to receive and secure at least a portion of the collection medium 106 and / or the substrate 108. In various embodiments, collection medium housing 113 may be configured to be at least partially removably positionable within fluid composition sensor 100 such that collection medium 106 is disposed within the fluid flow path of a volume of fluid moving in flow direction 130. In various embodiments, one or more particles of a plurality of particles present within the volume of fluid are collected by collection medium 113. The collection media housing 113 may be configured to have at least one opening positioned adjacent to at least a portion of the collection media 106 so that the collection media housing 113 may engage with the receiving surface 105 of the collection media 106 .

[0041] In various embodiments, the collection medium housing 113 may define a handle 109. In various embodiments, as shown in FIG. 5 , the handle 109 may be configured to facilitate accessibility of the collection medium 106 and / or the housing 113, for example, to allow for removal and / or replacement of the collection medium 106 from the fluid composition sensor 100. As mentioned above, the collection medium 106 may be configured for use with (or embodied as), for example, a slide, tape, disk, or any other suitable mechanism configured to facilitate transport of the collection medium 106.

[0042] In various embodiments, accuracy may decrease over time in device 10, for example, as the number of particles collected in collection medium 106 increases (and the resulting physical properties of collection medium 106 change as a result of the increasing number of particles disposed therein). Accordingly, one or more components of the collection medium assembly, as described herein, may be replaceable. In various embodiments, replacing one or more components of the collection medium assembly may include removing one or more components from fluid composition sensor 100 and replacing one or more components of the collection medium assembly with one or more at least substantially similar components. Alternatively, it should be understood that in various embodiments, replacing one or more components of the collection medium assembly may include cleaning, repositioning, and / or modifying one or more components of the collection medium assembly to reduce the number of particles present in a portion of collection medium 106 exposed to airflow within composition sensor 100. As a non-limiting example, in various embodiments in which the collection media assembly may include an adhesive tape, at least a portion of the tape may be removed to expose a new portion of the tape disposed beneath and corresponding to at least a portion of the removed tape. As a further non-limiting example, in various embodiments in which the collection media assembly may include a disk, the disk may be configured to be cleaned such that the characteristics of the disk may be at least substantially similar to the characteristics of a new disk. In various embodiments, the fluid composition sensor 100 may be configured to be partially or wholly replaceable and / or disposable.

[0043] In various embodiments, the fluid composition sensor 100 may include an imaging device 110 configured to capture images of one or more particles of the plurality of particles 120 received by the collection medium 106. In various embodiments, the imaging device 110 may be positioned at least substantially adjacent to the back surface 107 of the transparent substrate 108 (e.g., in contact with or spaced a distance from the back surface 107 of the transparent substrate 108) so that the imaging device 110 can effectively capture one or more images of the one or more particles trapped in the collection medium 106. In various embodiments, the fluid composition sensor 100 may have a designated field of view for permanently and / or temporarily capturing images of multiple particles of the plurality of particles simultaneously. The collection medium 106 may be at least partially within the field of view of the imaging device 110 so that the plurality of particles 120 trapped by the collection medium 106 are visible to the imaging device 110. As shown in FIG. 2 , the imaging device 110 may be positioned below the transparent substrate 108 with respect to the collection medium 106. For example, the imaging device 110 may be positioned about 100 micrometers to about 5 mm (e.g., 1 mm) away from the transparent substrate 108. Alternatively, the imaging device 110 may be positioned above the transparent substrate 108 with respect to the collection medium 106.

[0044] In various embodiments, the imager 110 uses one or more imaging techniques, such as, for example, lensless holography, to image the sacs of the plurality of particles 120 received by the collection medium 106. In various embodiments in which the imaging device is configured to utilize lensless holography, the imaging device may computationally generate images of one or more particles received by the collection medium 106 by digitally reconstructing one or more microscopic images of the one or more particles received by the collection medium 106 without the use of a lens. Alternatively and / or additionally, the imaging device 110 may utilize optical microscopy to capture images of one or more particles of the plurality of particles 120 received by the collection medium 106. In some embodiments, the fluid composition sensor 100 may be configured to simultaneously capture one or more images of the plurality of particles in the collection medium 106. For example, the fluid composition sensor 100 may have a designated field of view for simultaneously capturing images of multiple particles of the plurality of particles, permanently and / or temporarily, as described herein. In various embodiments, the one or more images captured by the fluid composition sensor 100 may be transmitted to at least the controller 200. In various embodiments, the imaging device 110 may be configured to capture one or more images at a first time and a second time, where the first time represents the start of analysis by the device 10 of one or more particles 120 captured by the collection medium 106, and the second time is after the first time. In such a configuration, the device may be able to distinguish between particles present in the collection medium 106 at the start of particle analysis and particles newly received by the collection medium 106 by comparing the respective particle images captured at the first and second times and identifying from the second captured particle image any particles not captured in the first captured particle image.

[0045] In various embodiments, fluid composition sensor 100 may be connected to a power source 114 configured to receive and provide power to fluid composition sensor 100. By way of non-limiting example, power source 114 may include one or more batteries, one or more capacitors, one or more constant power supplies (e.g., wall outlets), and / or the like. In some embodiments, power source 114 may comprise an external power source positioned outside fluid composition sensor 100 and configured to provide AC or DC power to fluid composition sensor 100. Further, in some embodiments, as shown in FIG. 1 , power source 114 may comprise an internal power source, such as, for example, one or more batteries, disposed within fluid composition sensor 100. In various embodiments, power source 114 may be connected to controller 200 to enable distribution of power to fluid composition sensor 100 through the controller.

[0046] 6-8B illustrate various exemplary embodiments of a collection media assembly as described herein. As shown in FIGS. 6-8B, the collection media assembly may include a collection media 106 disposed on an interchangeable slide, a collection media housing 113 configured to secure the interchangeable slide and, therefore, the collection media 106 therein, and a handle 109. In various embodiments, the collection media 106 may be configured to be attached to a transparent substrate 108, which may be further disposed within the collection media housing 113. In various embodiments, the interchangeable slide may define the transparent substrate 108. As shown in FIG. 6, the collection media housing 113 may include a tab adjacent at least a portion of an opening configured to receive the interchangeable slide via a hinged connection that allows the interchangeable slide to be snapped into a desired position. The collection medium 106 may be configured to be replaceable, such that the collection medium 106 may be removed from the collection medium housing 113 by pulling a replaceable slide away from its fixed position within the collection medium housing 113, and subsequently replaced with a different collection medium 106 (e.g., a new collection medium 106). In various embodiments, the collection medium housing 113 may be removed from the fluid composition sensor 100, for example, by user interaction with the handle 109. good.

[0047] 7A and 7B , the collection media housing 113 may include a slot along at least one side having dimensions corresponding to a cross-section of the replaceable slide, such that the housing 113 may be configured to receive the replaceable slide through the slot with the collection media 106 disposed thereon. The collection media 106 may be configured to be replaceable, such that the collection media 106 may be removed from the collection media housing 113 by sliding the replaceable slide through the slot from its fixed position within the collection media housing 113, and subsequently replaced with a different collection media 106. The collection media housing 113 may be removed from the fluid composition sensor 100, for example, by user interaction with the handle 109.

[0048] 8A and 8B , the collection media housing 113 may include a removable side, which may be configured to receive an interchangeable slide when the removable side is in a removed configuration and to secure the interchangeable slide in a desired position when the removable side is in an assembled configuration. The collection media 106 may be configured to be replaceable, such that the collection media 106 can be removed from the collection media housing 113 via separation of the removable side of the collection media housing 113 and withdrawal of the interchangeable slide from its secured position within the collection media housing 113, and subsequently replaced with a different collection media 106. The collection media housing 113 may be removed from the fluid composition sensor 100, for example, by user interaction with the handle 109.

[0049] 9A-9B illustrate various views of a collection medium assembly according to various embodiments described herein. As shown in FIGS. 9A and 9B, a collection medium assembly 150 may include at least one collection medium 106 disposed on a transparent substrate 108, at least one orifice 111 extending through the transparent substrate 108, and an air seal engagement portion 115A surrounding the collection medium 106, the at least one orifice 111, and the transparent substrate 108. In various embodiments, the transparent substrate 108 may be defined by an interchangeable slide, as described herein. In various embodiments, the at least one orifice 111 may be positioned at least generally adjacent to the at least one collection medium 106. For example, as shown in FIGS. 9A-9B, the at least one orifice 111 may include multiple orifices (e.g., two orifices disposed on either side of the collection center 106) disposed around the transparent substrate 108 to allow a fluid volume to flow through the transparent substrate 108. In various embodiments, the air seal engagement portion 115A may define at least a portion of the periphery of the collection medium assembly 150, such as a portion of the collection medium assembly 150 that surrounds one of the at least one collection medium 106 and the corresponding at least one orifice 111. In various embodiments, the air seal engagement portion 115A can be used to prevent or limit exposure of adjacent or nearby collection medium sections 106 to the fluid being sampled. In some embodiments, the air seal engagement portion 115A may be embodied as a rigid, at least substantially smooth component configured to interact with a gasket (or other flexible sealing component) of an air seal component of a device as discussed herein. As another example, the air seal engagement portion 115A may comprise one or more flexible components (e.g., elastomeric gaskets) configured to interact with corresponding components of an air seal component of a device to form at least a substantially fluid-tight seal therebetween.For example, the air seal engagement portion 115A may be configured to receive and / or engage an air seal component of the fluid composition sensor such that at least substantially all of the fluid volume flowing through the fluid composition sensor flows through the at least one orifice 111 surrounded by the at least one seal engagement portion 115A. As shown in FIG. 9A , the air seal engagement portion 115A may include a portion of a surface of the transparent substrate 108. In various embodiments, as described herein, the air seal engagement portion 115A may comprise multiple air seal engagement portions, each corresponding to a respective collection medium 106 and corresponding at least one orifice 111 of the at least one collection medium.

[0050] FIG. 9B shows a cross-sectional view of an exemplary collection media assembly according to one embodiment described herein. As shown, the collection media assembly 150 may include a collection media housing 113. In various embodiments, the collection media housing 113 may be configured to at least partially surround the transparent substrate 108, thereby embodying an outer frame for the collection media assembly 106. In various embodiments, as described herein, at least one seal-engaging portion of the collection media assembly 150 may include a portion of the collection media housing 113. In various embodiments, the collection media housing 113 may be configured to facilitate collective storage (e.g., stacking) and subsequent ejection of each of the multiple collection media assemblies 150 into the internal sensor portion of the fluid composition sensor. For example, as described herein, the collection media housing 113 of each of the multiple collection media assemblies 150 may be configured to receive force from one or more components (e.g., actuator elements) of the exemplary apparatus described herein such that each collection media assembly 150 can be sequentially and continuously fed from a storage position to the internal sensor portion of the fluid composition sensor.

[0051] 10-12 illustrate various collection media assemblies according to example embodiments described herein. FIG. 10 illustrates a top view of multiple collection media assemblies arranged on a rotatable disk according to one example embodiment. In various embodiments, multiple collection media assemblies 150 may be arranged on a rotatable disk, which may be rotatable about an axis, such that the multiple collection media assemblies 150 (e.g., including multiple collection media 106) can move relative to an interior sensor portion of a housing of the fluid composition sensor. As described herein, the rotatable disk may be configured to allow the multiple collection media 106 to move (e.g., rotate) relative to the fluid composition sensor so that new (e.g., unused) collection media 106 of the multiple collection media assemblies 150 can be exposed to a fluid volume flowing through the impactor nozzle.

[0052] In various embodiments, the rotatable disk may include multiple coplanar and concentric disk segments, each including a portion of the rotatable disk on which one or more of the multiple collection media assemblies 150 can be disposed. For example, as shown in FIG. 10 , the rotatable disk may include a first disk segment 108A and a second disk segment 108B, each of which has multiple collection media assemblies 150 disposed thereon. Each disk segment may be defined at least in part by a corresponding radial distance between the disk segment and a central axis of the rotatable disk, the corresponding radial distances for each disk segment having different values ​​such that the multiple disk segments can define multiple outer circumferential layers extending radially outward from the central axis of the rotatable disk. The multiple disk segments may be configured to increase the capacity of the rotatable disk in terms of the number of collection media 106 disposed thereon. In various embodiments, as described herein, the example apparatus described herein may be configured such that the rotatable disk rotates and / or moves linearly (e.g., radially relative to the disk) relative to the fluid composition sensor to position unused collection media 106 of the plurality of collection media assemblies 150 at least substantially adjacent to the outlet of the impactor nozzle of the fluid composition sensor.

[0053] As described herein, each of the plurality of collection media 106 of the plurality of collection media assemblies 150 may be disposed on a transparent substrate. In various embodiments, at least a portion of the rotatable disk on which the plurality of collection media 106 are disposed may comprise a transparent substrate, although an opaque or translucent material may be utilized to define the portions of the disk between the included collection media assemblies 150. For example, in various embodiments, the entire rotatable disk may comprise a transparent substrate. Furthermore, in various embodiments, the rotatable disk may be configured to detect when a volume of fluid flowing through the fluid composition sensor (e.g., through the impactor nozzle) crosses the surface of the collection media 106. The rotatable disk may include one or more alignment keys 151 configured to assist in manual and / or mechanical installation and / or alignment of the collection medium 106 disposed on the rotatable disk so that the collection medium 106 can be cut and passed through the rotatable disk. The rotatable disk may include a plurality of orifices corresponding to the at least one orifice 111 of each of the plurality of collection medium assemblies 150 configured to allow a fluid volume to flow therethrough. In various embodiments, each of the plurality of collection medium assemblies 150 may include an air seal engagement portion 115A surrounding a corresponding one of the plurality of collection media 106 and the at least one orifice 111 positioned adjacent thereto. In such a configuration, as described herein, a fluid volume flowing through the sensor can pass across a surface of the collection medium 106 that is surrounded by the air seal engagement portion 115A that engages with an air seal component of the fluid composition sensor. For example, the collection medium 106 that is surrounded by the air seal engagement portion 115A that engages with an air seal component of the fluid composition sensor may be fluidly isolated from each of the other collection media of the plurality of collection media disposed on the rotatable disk.

[0054] FIG. 11 illustrates a top view of multiple collection media assemblies arranged on an alignment plate, according to one exemplary embodiment. In various embodiments, multiple collection media assemblies 150 may be arranged on an alignment plate, which may be movable along a plane, so that the multiple collection media assemblies 150 (e.g., including multiple collection media 106) can move relative to an internal sensor portion of a housing of a fluid composition sensor. The alignment plate may be configured to allow the multiple collection media 106 to move (e.g., linearly shift) along at least two directional axes (e.g., x-axis and y-axis residing in the same plane) relative to the fluid composition sensor, so that new (e.g., unused) collection media 106 of the multiple collection media assemblies 150 can be exposed to a fluid volume flowing through the impactor nozzle, as described herein. As shown in FIG. 11 , in various embodiments, the multiple collection media assemblies 150 arranged on the alignment plate may be arranged to define an array including multiple rows and columns.

[0055] As described herein, each of the multiple collection media 106 of the multiple collection media assemblies 150 may be disposed on a transparent substrate. In various embodiments, at least a portion of the alignment plate on which the multiple collection media 106 are disposed may include a transparent substrate. For example, in various embodiments, the entire alignment plate may include a transparent substrate (although in some embodiments, portions of the alignment plate between the collection media assemblies may include an opaque or translucent material). Furthermore, in various embodiments, the alignment plate may include one or more alignment keys 151 configured to assist in manual and / or mechanical placement and / or alignment of the collection media 106 disposed on the alignment plate so that a fluid volume flowing through the fluid composition sensor (e.g., through the impactor nozzle) can pass across the surface of the collection media 106. In various embodiments, the one or more alignment keys 151 may be disposed along the alignment plate to correspond to a particular row and a particular column of the array defined by the multiple collection media assemblies 150.

[0056] The alignment plate may further comprise a plurality of orifices corresponding to at least one orifice in each of the plurality of collection media assemblies 150 configured to allow a fluid volume to flow therethrough. In various embodiments, the plurality of collection media assemblies 150 may each comprise an air seal engagement portion surrounding a corresponding one of the plurality of collection media 106 and at least one orifice 111 positioned adjacent thereto. In such a configuration, a fluid volume flowing through the sensor may pass across a surface of the collection media 106 that is surrounded by the air seal engagement portion 115A that engages with an air seal component of the fluid composition sensor, as described herein. For example, For example, the collection medium 106 surrounded by the air seal engagement portion that engages with the air seal component of the fluid composition sensor may be fluidly isolated from each of the other collection media among the plurality of collection media disposed on the alignment plate.

[0057] FIG. 12 illustrates a top view of multiple collection media assemblies 150 arranged on an alignment tape, according to one exemplary embodiment. In various embodiments, multiple collection media assemblies 150 may be arranged on an alignment plate that is movable in a direction at least substantially parallel to a linear axis extending along the length of the alignment plate, such that the multiple collection media assemblies 150 (e.g., including multiple collection media 106) arranged on the alignment plate can move relative to an internal sensor portion of the housing of the fluid composition sensor. The alignment tape may be configured to allow the multiple collection media 106 to move (e.g., linearly shift) relative to the fluid composition sensor, such that new (e.g., unused) collection media 106 of the multiple collection media assemblies 150 can be exposed to a fluid volume flowing through the impactor nozzle, as described herein. As shown in FIG. 12 , in various embodiments, the multiple collection media assemblies 150 arranged on the alignment tape may be arranged to define a row of collection media assemblies 150 extending along the length of the alignment tape.

[0058] In various embodiments, at least a portion of the alignment tape on which the plurality of collection media 106 are disposed may include a transparent substrate 108. For example, in various embodiments, the entire alignment tape may include the transparent substrate 108 (although it should be understood that the portions of the alignment tape between the collection media assemblies 150 may include an opaque or translucent material). Additionally, in various embodiments, the alignment tape may include one or more alignment keys 151 configured to assist in manual and / or mechanical placement and / or alignment of the collection media 106 disposed on the alignment tape so that a fluid volume flowing through the fluid composition sensor (e.g., through the impactor nozzle) can pass across the surface of the collection media 106. In various embodiments, the one or more alignment keys 151 may be disposed along the alignment tape to correspond to a particular collection media assembly 150 in a row defined by the plurality of collection media assemblies 150.

[0059] The alignment tape may further include a plurality of orifices corresponding to at least one orifice in each of the plurality of collection medium assemblies 150 configured to allow a fluid volume to flow therethrough. In various embodiments, the plurality of collection medium assemblies 150 may each include an air seal engagement portion surrounding a corresponding one of the plurality of collection media 106 and at least one orifice positioned adjacent thereto. In such a configuration, as described herein, a fluid volume flowing through the sensor may pass across a surface of the collection medium 106 that is surrounded by the air seal engagement portion 115A that engages with an air seal component of the fluid composition sensor. For example, the collection medium 106 that is surrounded by the air seal engagement portion that engages with an air seal component of the fluid composition sensor may be fluidly isolated from each of the other collection media in the plurality of collection media disposed on the alignment tape. As described herein, in various embodiments, the alignment tape may include a non-rigid (e.g., flexible, bendable, foldable, etc.) material. For example, the multiple collection media assemblies 150 may be separated from each other by fold lines along which the alignment tape may be folded. In various embodiments, the non-rigid material of the alignment tape may facilitate compact storage of the multiple collection media assemblies 150, allowing for increased capacity of the fluid composition sensor.

[0060] FIG. 13 is a cross-sectional view of an exemplary device according to one embodiment described herein. Specifically, FIG. 13 illustrates an exemplary collection medium assembly storage chamber 160 configured to accommodate at least a portion of a plurality of collection media. As described herein, in various embodiments, the exemplary collection medium assembly 150 may be configured to facilitate collective storage (e.g., stacking) of each of the plurality of collection medium assemblies 150 and subsequent discharge into the interior sensor portion of the fluid composition sensor. As shown in FIG. 13 , multiple exemplary collection medium assemblies 150 may be disposed within the collection medium assembly storage chamber 160. In various embodiments, the collection medium assembly storage chamber 160 may store multiple unused collection medium assemblies before each of the multiple collection medium assemblies is sequentially used for particle collection within the fluid composition sensor. The collection medium assembly storage chamber 160 may be configured to at least substantially minimize exposure of each of the collection medium assemblies 150 stored therein to the ambient environment, thereby avoiding contamination of the corresponding collection medium 106.

[0061] As described herein, the collection media assembly storage chamber 160 may be further configured to sequentially deliver each of the plurality of collection media assemblies 150 stored therein to the internal sensor portion of the fluid composition sensor. In various embodiments, the collection media assembly storage chamber 160 may include an actuator element 161 configured to selectively apply a force to one of the plurality of collection media stored therein to reposition the collection media assembly 150 from the collection media assembly storage chamber 160 to the internal sensor portion of the fluid composition sensor. For example, the actuator element 161 may be configured to move from a compressed position to an extended position as shown in FIG. 13 . The actuator element 161 may be configured to apply a force to the collection media assembly 150 as the actuator element 161 moves from the compressed position to the extended position. In various embodiments, the force applied to the collection medium assembly 150 as the actuator element 161 moves from the compressed position to the extended position may reposition the collection medium assembly such that the collection medium assembly 150 can be in a receiving position within the interior sensor portion of the fluid composition sensor when the actuator element 161 is in the extended position. In various embodiments, the receiving position may be defined by the placement of the collection medium assembly 150 within the interior sensor portion of the fluid composition sensor, with the corresponding collection medium 106 positioned such that a fluid volume flowing through the fluid composition sensor (e.g., through the impactor nozzle) passes across its surface. In various embodiments, the actuator element 161 may be configured to return from the extended position to the compressed position upon extension from the compressed position to the extended position (e.g., to position the collection medium assembly 150 in the receiving position). Furthermore, in various embodiments, the actuator element 161 may comprise a gear drive mechanism and / or a lever arm mechanism, which may be configured to operate according to one or more embodiments described herein.

[0062] As shown, the collection media assembly storage chamber 160 may include a discharge opening 162 in one or more walls of the chamber, the discharge opening 162 configured to allow one or more collection media assemblies 150 stored in the collection media assembly storage chamber 160 to pass through the discharge opening 162 as one or more of the collection media assemblies 150 are delivered to an internal portion of the fluid composition sensor. In various embodiments, the discharge opening 162 may comprise a discharge door that can be selectively opened or closed to facilitate selective discharge of the collection media assemblies 150. For example, in the exemplary embodiment shown in FIG. 13 , the actuator element 161 may be configured to apply a lateral (e.g., horizontal) force to a collection media assembly 150 positioned in a loading position (e.g., on top of a stack of collection media assemblies) to discharge the collection media assembly 150 from the collection media assembly storage chamber 160 through the discharge opening 162. As described herein, the housing may be configured to eject a collection media assembly 150 ejected from the collection media assembly storage chamber 160 by extension of the actuator element 161, which repositions the collection media assembly 150 through the discharge opening. Collection media assembly storage chamber 160 may be positioned proximate to the housing of the fluid composition sensor such that collection media assembly storage chamber 160 is configured to receive at least a portion of collection media assembly 150. Accordingly, discharge opening 162 may be at least substantially flush with the interior sensor portion (e.g., the location of collection media assembly 150 when used to collect particles from an airflow). As described above, collection media assembly storage chamber 160 may be configured to discharge collection media assembly 150 through discharge opening 162 (e.g., using actuator element 161) to deliver collection media assembly 150 to a receiving position within the interior sensor portion of the fluid composition sensor.

[0063] As described herein, the collection media assembly storage chamber 160 may be configured to accommodate multiple collection media assemblies 150 such that the multiple collection media assemblies 150 are sequentially and continuously delivered from a storage position to a receiving position within the internal sensor portion of the fluid composition sensor. For example, the collection media assembly storage chamber 160 may define a loading position disposed proximate to and / or at least substantially coplanar with the actuator element 161 and / or the discharge opening 162, and the collection media assembly 150 positioned in the loading position may be the next collection media assembly 150 among the multiple collection media assemblies 150 disposed within the collection media assembly storage chamber 160 to be delivered to the fluid composition sensor (e.g., chronologically prior to each of the other collection media assemblies stored within the collection media assembly storage chamber 160). As shown in FIG. 13 , the multiple collection media assemblies 150 stored within the collection media assembly storage chamber 160 may be arranged in a stack. As shown, the loading position may include a position proximate the actuator element 161 and / or the ejection opening 162 (e.g., at the top of the stack). In various embodiments, the collection media assembly storage chamber 160 may include a loading element 163 configured to arrange the plurality of collection media assemblies 150 disposed within the collection media assembly storage chamber 160 such that upon ejection of a first collection media assembly, a second collection media assembly is moved within the collection media assembly storage chamber 160 to the loading position. For example, the loading element 163 may include a plate configured to be capable of applying a biasing force to transmit a corresponding loading force to one or more of the plurality of collection media assemblies 150. In such an exemplary case, a biasing force may be applied to a bottom surface of the loading element 163 (e.g., by a spring) to push the next-stacked collection media assembly 150 of the plurality of collection media assemblies 150 toward the loading position.In various embodiments, the biasing force applied to the loading element 163 and / or the loading force applied from the loading element 163 to one or more of the plurality of collection media assemblies 150 may be either a constant force or an intermittent force selectively applied between subsequent ejections of the collection media assemblies 150 to position the plurality of collection media assemblies such that at least one collection media assembly 150 is in the loaded position.

[0064] 14A-14B illustrate an exemplary device according to various embodiments. As described herein, the fluid composition sensor may include a housing 101, an illumination source 116, an impactor nozzle 104, at least one collection medium 106 disposed on a transparent substrate 108, and an imaging device 110. In various embodiments, the fluid composition sensor may be configured to receive a fluid volume within an interior sensor portion of the housing 101. The impactor nozzle 104 may be configured to direct a flow of at least a portion of the fluid volume received by the fluid composition sensor 100 in a flow direction 130 that is at least substantially perpendicular to and toward the receiving surface of the collection medium 106.

[0065] As described herein, the impactor nozzle 104 may be disposed within the interior sensor portion of the housing 101 and may include a nozzle inlet configured to receive at least a portion of the fluid volume received by the fluid composition sensor, a nozzle outlet, and a plurality of sidewalls extending between the nozzle inlet and the nozzle outlet. and may comprise an inner sidewall and an outer sidewall. In various embodiments, the nozzle inlet may comprise a nozzle inlet cross-sectional area defined at least in part by a perimeter formed by each of the inner sidewalls of the plurality of sidewalls at the nozzle inlet. Similarly, the nozzle outlet may comprise a nozzle outlet cross-sectional area defined at least in part by a perimeter formed by each of the inner sidewalls of the plurality of sidewalls at the nozzle outlet. In various embodiments, the impactor nozzle 104 may further comprise a central nozzle axis extending perpendicularly between the nozzle inlet and the nozzle outlet.

[0066] In various embodiments, the impactor nozzle 104 may comprise a first nozzle portion and a second nozzle portion, both of which may be at least partially defined by portions of the sidewalls of the impactor nozzle 104. The first nozzle portion may comprise a portion of the impactor nozzle 104 defined at least partially by at least one tapered inner sidewall extending between a nozzle inlet and an intermediate nozzle location. The second nozzle portion may comprise a portion of the impactor nozzle 104 defined at least partially by at least one inner sidewall extending between the intermediate nozzle location and a nozzle outlet. As described herein, the intermediate nozzle location may include an intermediate nozzle cross-sectional area and may be defined by a plane disposed perpendicular to a central axis of the impactor nozzle 104 between the first and second nozzle portions. In various embodiments, the first nozzle portion may be configured such that the nozzle inlet cross-sectional area is greater than the intermediate nozzle cross-sectional area. Additionally, as described in more detail herein, the second nozzle section may be configured such that the nozzle exit cross-sectional area can be larger, smaller, or at least substantially the same as the intermediate nozzle cross-sectional area. For example, as shown in Figure 14, the impactor nozzle 104 is configured such that the nozzle exit cross-sectional area and the intermediate nozzle cross-sectional area are substantially the same.

[0067] As described, the impactor nozzle 104 may receive at least a portion of the fluid volume received by the fluid composition sensor 100 and may be configured to direct the fluid volume in a flow direction 130 that is at least substantially perpendicular to and toward a receiving surface of the collection medium 106. For example, the flow direction 130 may be at least substantially aligned with and / or parallel to a central nozzle axis of the impactor nozzle 104. The collection medium 106 may be configured to receive one or more particles of the plurality of particles 120 in the fluid volume through interaction with the fluid volume directed from the impactor nozzle 104. As described herein, the collection medium 106 may be a component of a collection medium assembly, which may further comprise a transparent substrate 108 and at least one orifice 111. As described herein, the at least one orifice 111 may be configured to allow at least a portion of the fluid volume to pass through the transparent substrate 108 and through the internal sensor portion in the flow direction 130.

[0068] In various embodiments, the fluid composition sensor may further include one or more air seal components 115B configured to engage one or more corresponding air seal engagement portions 115A of a collection medium assembly disposed within the interior sensor portion of the housing. As described herein, the one or more air seal components 115B may be configured to enclose at least the collection medium 106 and the corresponding at least one orifice 111 to fluidly isolate the collection assembly 106 from the ambient environment and ensure that at least substantially all of the fluid volume flowing through the fluid composition sensor flows through the at least one orifice 111.

[0069] As described, the fluid composition sensor may include an illumination source 116 configured to emit one or more light beams. In various embodiments, the illumination source 116 may emit light beams (e.g., ultraviolet, visible, etc.) toward the collection medium 106, as described in further detail herein. The illumination source 116 may be a laser, lamp, light-emitting diode (LED), or the like operable in conjunction with one or more lenses collectively configured to generate a light beam (e.g., optical, infrared, or polychromatic light). In some embodiments, the illumination source 116 may be configured to eliminate the need for a lens, for example, if the fluid composition sensor is configured to perform lensless holography, as described herein. For example, as shown in FIG. 14B , the illumination source may be configured to emit one or more light beams in an emission direction 131 such that the light beams can engage the collection medium 106 and illuminate one or more particles disposed within the collection medium 106. Additionally, as described herein, the fluid composition sensor may further include an imager 110 configured to capture an image of one or more particles 120 received by the collection medium 106. In various embodiments, the imaging device 110 may be positioned at least substantially adjacent to the transparent substrate 108 (e.g., in contact with or spaced a distance from the transparent substrate 108) so that the imaging device 110 can effectively capture one or more images of the one or more particles trapped in the collection medium 106. The collection medium 106 may be at least partially within the field of view of the imaging device 110 so that the plurality of particles 120 trapped by the collection medium 106 are visible to the imaging device 110. In various embodiments, the imaging device 110 may be configured to capture images of one or more particles of the plurality of particles 120 received by the collection medium 106 using one or more imaging techniques, such as, for example, lensless holography, optical microscopy, etc.

[0070] As described herein, in various embodiments, the fluid composition sensor may be configurable between an open housing configuration and a closed configuration. Specifically, FIG. 14A illustrates a cross-sectional view of an exemplary fluid composition sensor in a closed configuration. The fluid composition sensor in the closed housing configuration may be defined, at least in part, by the engagement of at least one air seal component 115A with an air seal engagement portion of the collection medium assembly. As described herein, such engagement by the fluid composition sensor in the closed configuration may provide a fixed seal surrounding at least the collection medium 106 and the one or more corresponding orifices 111, thereby isolating the collection medium 106 and the one or more corresponding orifices 111 from the surrounding fluid volume, thereby minimizing unwanted contamination of adjacent sections of the collection medium 106.

[0071] FIG. 14B illustrates a cross-sectional view of an exemplary fluid composition sensor in an open configuration. In various embodiments, a fluid composition sensor in an open housing configuration may be configured to allow reconfiguration of the collection medium assembly relative to at least a portion of the interior sensor portion of the housing 101. In various embodiments in which the fluid composition sensor is in the open configuration, a collection medium assembly including a collection medium 106 disposed within the interior sensor portion of the fluid composition sensor may be reconfigured such that the collection medium 106 is removed from the interior sensor portion. For example, the collection medium assembly may be removed from the interior sensor portion and transported to an exemplary secondary location. Furthermore, when the fluid composition sensor is in the open configuration, a collection medium assembly including a collection medium 106 positioned outside the housing 101 may be reconfigured such that the collection medium 106 is received within the interior sensor portion of the housing 101. For example, the collection medium assembly may be rotated and / or shifted relative to the interior sensor portion such that the collection medium 106 is disposed at least substantially adjacent to the nozzle outlet of the impactor nozzle 104. With respect to various exemplary embodiments described herein, it should be understood that while the internal sensor portion of the fluid composition sensor is shown as including a physical opening such that one or more components of the fluid composition sensor disposed within the internal sensor portion of the housing may be exposed to the ambient fluid volume, in various embodiments the sensor may remain at least substantially isolated from the ambient environment in an open configuration to avoid sensor contamination.

[0072] 15-17 show various cross-sectional views of an exemplary device according to embodiments described herein. Specifically, FIG. 15 shows a cross-sectional view of an exemplary fluid composition sensor in an open configuration. An exemplary fluid composition sensor includes a plurality of collection media assemblies 150 disposed on an alignment plate. For example, the plurality of collection media assemblies 150 disposed on the alignment plate may be arranged to define an array including a plurality of rows and / or columns. As described herein, the fluid composition sensor may be configured such that the alignment plate is movable in multiple directions along a transverse plane such that the plurality of collection media assemblies 150 (e.g., including a plurality of collection media 106) disposed on the alignment plate can move relative to an interior sensor portion of the housing 101 when the fluid composition sensor is in an open configuration. The alignment plate may be configured such that the plurality of collection media 106 can move (e.g., linearly shift and / or rotate) relative to the housing 101 such that new (e.g., unused) collection media 106 of the plurality of collection media assemblies 150 can be exposed to a fluid volume flowing through the impactor nozzle 104. As described herein, when an unused collection medium 106 is placed in a desired position at least substantially adjacent to the nozzle outlet of the impactor nozzle 104, the fluid composition sensor can be reconfigured to a closed configuration, thereby fixing the position of the collection medium 106 relative to the nozzle outlet.

[0073] 16 illustrates a cross-sectional view of an exemplary fluid composition sensor in an open configuration, the exemplary fluid composition sensor comprising multiple independent collection media assemblies 150, each configured to be sequentially positioned within an interior sensor portion of the fluid composition sensor. In various embodiments, the fluid composition sensor may comprise one or more collection media assembly storage chambers configured to store at least a portion of the multiple collection media assemblies. Further, in various embodiments, each of the at least one collection media assembly storage chamber may be configured to eject and / or receive one or more of the multiple collection media assemblies 150 into and / or from the housing 101. For example, as illustrated, the fluid composition sensor may comprise a first collection media assembly storage chamber 160 and a second collection media assembly storage chamber 164.

[0074] 16 , each of the plurality of collection media assemblies 150 includes a collection medium disposed on a transparent substrate, a plurality of orifices disposed adjacent the corresponding collection medium and extending through the transparent substrate 108, an air seal engagement portion, and a collection media housing (e.g., a frame element). As described herein, in various embodiments, each of the plurality of collection media assemblies 150 may be configured to facilitate collective storage of the plurality of collection media assemblies 150 within a collection media assembly storage chamber. For example, as shown, at least a portion of the plurality of collection media assemblies 150 may be organized in a stacked configuration, and the corresponding collection media housings may be stacked relative to one another, to minimize unwanted contamination of the collection media due to physical engagement of the collection media with one or more components of adjacent collection media assemblies (e.g., corresponding collection media housings).

[0075] In various embodiments, the first collection media assembly storage chamber 160 may store a plurality of unused collection media assemblies before each of the plurality of collection media assemblies is used for particle collection within the fluid composition sensor. For example, the first collection media assembly storage chamber 160 may be configured to arrange a plurality of collection media assemblies 150 therein such that the plurality of collection media assemblies 150 are sequentially fed from the first collection media assembly storage chamber 160 to the internal sensor portion of the fluid composition sensor. In various embodiments, the collection media assembly storage chamber 160 may include an actuator element 161 configured to selectively apply a force to one of the plurality of collection media stored within the first collection media assembly storage chamber 160 (e.g., in a loaded position) to reposition the collection media assembly 150 from the collection media assembly storage chamber 160 toward the internal sensor portion of the housing 101 of the fluid composition sensor (e.g., to be aligned with the impactor nozzle 104). For example, in the exemplary embodiment shown in FIG. 16, the actuator element 161 of the first collection media assembly storage chamber 160 is configured to actuate the collection media assembly 15 The fluid composition sensor may be configured to apply a lateral force to a collection media assembly 150 positioned in a loading position (e.g., on top of a stack of collection media assemblies) to eject the collection media assembly 150 from the first collection media assembly storage chamber 160 into an internal sensor portion of the fluid composition sensor. As described herein, the first collection media assembly storage chamber 160 may be positioned proximate to a housing of the fluid composition sensor such that the housing can be configured to receive the collection media assembly 150 ejected from the collection media assembly storage chamber 160.

[0076] In various embodiments, the fluid composition sensor may include a second collection medium assembly storage chamber 164 configured to store a plurality of used collection medium assemblies 150 ejected from the fluid composition sensor housing (e.g., collection medium assemblies 150 disposed within an internal sensor portion and including a collection medium 106 having a surface through which a fluid volume has passed such that one or more particles from at least one fluid volume are contained therein). For example, the second collection medium assembly storage chamber 164 may be configured to receive a plurality of collection assemblies 150 sequentially delivered from the internal sensor portion of the fluid composition sensor to the second collection medium assembly storage chamber 168. The second collection medium assembly storage chamber 164 may include a receiving opening in one or more walls of the chamber configured to allow one or more collection medium assemblies 150 ejected from the housing to pass therethrough so that the one or more collection medium assemblies 150 can be delivered from the internal portion of the fluid composition sensor to the second collection medium assembly storage chamber 164. In various embodiments, the receiving opening may include a receiving door that is selectively openable and closable to facilitate selective reception of the collection media assembly 150 .

[0077] As described herein, the fluid composition sensor may be configured to eject the used collection medium 106 and re-introduce fresh collection medium 106 into the inner sensor portion upon determining that at least substantially the entire sample fluid volume has passed over the surface of the collection medium 106. In various embodiments, the fluid composition sensor may be configured to receive fresh collection medium assembly 150 (e.g., fresh collection medium 106) from a first collection medium assembly storage chamber 160 and deliver the used collection medium 106 to a second collection medium assembly storage chamber 164 either at substantially similar times (e.g., simultaneously) or at different times (e.g., sequentially).

[0078] FIG. 17 shows a cross-sectional view of an exemplary fluid composition sensor in an open configuration, the exemplary fluid composition sensor comprising a plurality of collection media assemblies 150 disposed on an alignment tape. As shown in FIG. 17, the plurality of collection media assemblies 150 disposed on the alignment tape may be arranged to define a row of collection media assemblies 150 extending along the length of the alignment tape. In various embodiments, the alignment tape may be movable in a direction at least substantially parallel to a linear axis extending along the length of the alignment tape such that the plurality of collection media assemblies 150 (e.g., including a plurality of collection media 106) disposed on the alignment tape can move relative to an interior sensor portion of the housing of the fluid composition sensor. In various embodiments, at least a portion of the alignment tape may be wrapped around both a first alignment tape spool 165A and a second alignment tape spool 165B, which may be collectively arranged such that at least a portion of the alignment tape can extend between them. The first alignment tape spool 165A and the second alignment tape spool 165B may be further configured such that at least one collection media assembly 150 may be disposed on at least a portion of the alignment tape extending therebetween. For example, the fluid composition sensor may be configured such that the collection media assembly 150 disposed on at least a portion of the alignment tape extending between the first alignment tape spool 165A and the second alignment tape spool 165B has an internal sensor at least substantially adjacent to the nozzle outlet of the impactor nozzle 104. The sensor may be configured to be disposed within the sensor portion.

[0079] In various embodiments in which the fluid composition sensor is in an open configuration as shown, the alignment tape may be configured to allow the plurality of collection media 106 to move (e.g., linearly shift) relative to the fluid composition sensor housing so that new (e.g., unused) collection media 106 of the plurality of collection media assemblies 150 can be exposed to the fluid volume flowing through the impactor nozzle 104, as described herein. For example, the alignment tape may be configured to move relative to the fluid composition sensor housing based at least in part on the rotation of the first alignment tape spool 165A and the second alignment tape spool 165B. The first alignment tape spool 165A and the second alignment tape spool 165B may be configured to rotate in unison (e.g., at the same speed and in the same rotational direction) so that a portion of the alignment tape extending therebetween maintains a configuration in which one or more collection media 106 disposed thereon are at least substantially perpendicular to the central axis of the impactor nozzle 104.

[0080] 18A-18D are schematic diagrams of an exemplary apparatus according to various embodiments described herein. Specifically, FIGS. 18A-18D schematically illustrate exemplary apparatuses including various impactor nozzle configurations according to various embodiments described herein. As described herein, a fluid composition sensor may include an illumination source 116, an impactor nozzle 104, a collection medium 106 disposed on a transparent substrate 108, and an imaging device 110. In various embodiments, the fluid composition sensor may be configured to receive a fluid volume containing a plurality of particles. The fluid composition sensor may further be configured to utilize the impactor nozzle 104 to direct the fluid volume toward a receiving surface of the collection medium 106 in a flow direction at least substantially perpendicular to the collection medium 106, thereby facilitating engagement of the collection medium 106 with the fluid volume such that at least a portion of the plurality of particles within the fluid volume may be disposed within the collection medium 106.

[0081] As described herein, the impactor nozzle 104 may include a nozzle inlet configured to receive at least a portion of the fluid volume received by the fluid composition sensor, a nozzle outlet, and multiple sidewalls extending between the nozzle inlet and the nozzle outlet. Each of the multiple sidewalls of the impactor nozzle may include an inner sidewall 104A and an outer sidewall 104B. In various embodiments, the nozzle inlet may include a nozzle inlet cross-sectional area defined at least in part by an outer perimeter formed by each of the inner sidewalls 104A of the multiple sidewalls at the nozzle inlet. Similarly, the nozzle outlet may include a nozzle outlet cross-sectional area defined at least in part by an outer perimeter formed by each of the inner sidewalls 104A of the multiple sidewalls at the nozzle outlet. In various embodiments, the impactor nozzle 104 may further define a central nozzle axis extending perpendicularly between the nozzle inlet and the nozzle outlet.

[0082] 18A , the impactor nozzle 104 may include a first nozzle portion 104C and a second nozzle portion 104D, both of which may be at least partially defined by portions of the sidewalls of the impactor nozzle 104. The first nozzle portion 104C may include a portion of the impactor nozzle 104 defined at least partially by at least one tapered inner sidewall extending between the nozzle inlet and an intermediate nozzle position 104E. The second nozzle portion 104D may include a portion of the impactor nozzle 104 defined at least partially by at least a portion of one or more inner sidewalls 104A extending between the intermediate nozzle position 104E and the nozzle outlet. As described herein, the intermediate nozzle position 104E may include an intermediate nozzle cross-sectional area and may be defined by a plane disposed at least substantially perpendicular to a central axis of the impactor nozzle 104 between the first nozzle portion 104C and the second nozzle portion 104D. In various embodiments, the first nozzle section 104C has a nozzle inlet cross-sectional area that is larger than the intermediate nozzle cross-sectional area. The second nozzle section may also include a tapered shape with a larger cross-sectional area than the first nozzle section. Furthermore, in various embodiments, the second nozzle section may be configured such that the nozzle exit cross-sectional area can be larger, smaller, or at least substantially the same as the intermediate nozzle cross-sectional area. For example, as shown in FIG. 18A , the impactor nozzle 104 is configured such that the nozzle exit cross-sectional area and the intermediate nozzle cross-sectional area are substantially the same. As will be described, the variable cross-sectional areas of the various sections of the impactor nozzle 104 may be configured to increase the velocity of the fluid volume flowing through the nozzle (e.g., multiple particles within the nozzle) and induce laminar flow such that at least a portion of the multiple particles within the fluid volume contain sufficient momentum to impact and be disposed within the collection medium 106.

[0083] In various embodiments, the illumination source 116 may be a laser, a lamp, a light-emitting diode (LED), or the like capable of generating one or more light beams 300 (e.g., ultraviolet light, visible light, infrared light, or polychromatic light) that can be emitted toward the collection medium 106. For example, the illumination source 116 may be configured to emit the one or more light beams 300 in an emission direction such that the light beams can engage the collection medium 106 and illuminate one or more particles disposed within the collection medium 106. Further, as described herein, the imaging device 110 of the fluid composition sensor may be configured to utilize the one or more light beams 300 to capture images of one or more particles of the plurality of particles 120 received by the collection medium 106 using one or more imaging techniques, such as, for example, in situ imaging (e.g., lensless holography).

[0084] In various embodiments, the fluid composition sensor may be configured such that one or more illumination sources 116 may be disposed relative to a central nozzle axis of the impactor nozzle 104. For example, as shown in FIGS. 18A-18D , the fluid composition sensor may be configured such that the illumination source 116 is at least substantially aligned with the central nozzle axis of the impactor nozzle 104. In such a configuration, the illumination source 116 may emit one or more light rays 300 in an emission direction that extends at least substantially similar to the direction of the central nozzle axis, such that at least a portion of the one or more light rays 300 extend through both the nozzle inlet and the nozzle outlet of the impactor nozzle 104 to illuminate one or more particles disposed within the collection medium 106. In various embodiments, the one or more light rays 300 may naturally radiate from the emission direction as the one or more light rays 300 extend away from the illumination source 116 toward the collection medium 106 in the emission direction, such that the one or more light rays 300 may define a light emission angle. In such cases, the one or more light rays may collectively embody a cone-shaped light ray defined at least in part by their outer edges, with the cross-sectional area of ​​the cone-shaped light ray increasing as the light ray extends (e.g., along the central axis of the nozzle 104) towards the collection medium 106. In various embodiments, the light ray angle may correspond to the angle measured between the original emission direction of the light ray (e.g., the central axis of the impactor nozzle 104) and the outer edge of the one or more light rays (e.g., the diverging light ray).

[0085] 18A , diverging light rays 300 (including one or more rays) may comprise an outer edge and an inner ray portion 301 defined by a portion of the diverging light rays within the outer edge. For example, diverging light rays 300 emitted from illumination source 116 may be at least partially defined by outer edge 310. Additionally, diverging light rays 300 may be further defined, at least in part, by outer ray angle 311 corresponding to the divergence angle measured at outer edge 310 (e.g., the angle measured between outer edge 310 and the central axis of impactor nozzle 104). For example, in various embodiments, at least a portion of diverging light rays 300 may be constrained by intermediate nozzle position 104E.

[0086] In various embodiments, at least a portion of the inner portion 301 of the diverging light beam 300 has a ray angle that is small enough to allow it to exit the illumination source 116 and travel along the emission path into the collection medium 106 without substantially engaging the sidewalls of the impactor nozzle 104. For example, the impactor nozzle 104 may be configured such that a portion of the inner portion 301 of the diverging ray 300, defined by the intermediate edge 320 and the intermediate ray angle 321, extends between the illumination source 116 and the collection medium 106 through both the nozzle inlet and the nozzle outlet without substantially engaging the interior sidewall 104A of the impactor nozzle 104.

[0087] Further, in various embodiments, the impactor nozzle 104 may be configured such that at least a portion of the diverging light ray 300 traveling through the interior of the impactor nozzle 104 may be incident on one or more of the interior sidewalls 104A. In such cases, the portion of the diverging light ray that is incident on the interior sidewall 104A may be reflected and / or scattered by the interior sidewall 104A. For example, as shown, a portion of the inner portion 301 of the diverging light ray 300, defined by a ray angle greater than the intermediate ray angle 321 (e.g., the outer ray angle 321) and extending radially between the intermediate edge 320 and the outer edge 310, may be incident on the interior sidewall 104A of the impactor nozzle 104. Thus, a reflected portion 322 of the diverging light ray 300 may be generated. As shown, the reflected portion 322 may correspond to the portion of the interior portion 301 of the diverging light ray 300 that is incident on the interior sidewall of the second nozzle portion 104D. For example, upon engaging the inner sidewall 104A, the reflected portion 322 may be diverted to travel through the nozzle outlet in a reflected direction substantially different from the emission direction defined by one or more light rays corresponding to the reflected portion 322 at the illumination source 116. In various embodiments, at least a portion of the reflected portion 322 of the diverging light rays 300 may travel to illuminate the collection medium 106 and / or the imager 110. In such cases, the reflected portion 322 of the diverging light rays 300 may cause optical interference that may affect the performance of the imager 110 and be manifested, for example, by spatial variations in the apparent illumination intensity captured by the imager 110. In various embodiments, the reflected portion 322 may generate image noise that may at least partially obscure one or more features of one or more particles disposed within the collection medium 106, as described herein.

[0088] 18B-18C schematically illustrate exemplary apparatuses including various impactor nozzle configurations according to various embodiments described herein. Specifically, FIGS. 18B-18C schematically illustrate exemplary apparatuses including an impactor nozzle 104 configured to avoid the generation of reflected light beam portions caused by a portion of a diverging light beam 300 impinging on the sidewall of the impactor nozzle 104, as described herein. As illustrated, the impactor nozzle 104 may be configured such that the second nozzle portion 104D may include at least one tapered inner sidewall extending between the intermediate nozzle position 104E and the nozzle exit. For example, as shown in FIG. 18B, the inner sidewall 104A of the second portion of the impactor nozzle 104 may include a tapered shape defined at least in part by a taper angle 143A such that the nozzle exit cross-sectional area of ​​the impactor nozzle 104 is greater than the intermediate nozzle cross-sectional area. In various embodiments, the taper angle 143 of the second nozzle portion may correspond to at least one ray output angle of the diverging light rays 300 output from the illumination source 116 (e.g., outer ray output angle 311). For example, the taper angle 143 of the second nozzle portion may be at least as large as the outer ray output angle 311 corresponding to the outer ray 310, as described herein, and thus may be at least as large as each of the ray output angles corresponding to one or more rays defined by the diverging light rays 300. In such an example impactor nozzle 104 configuration, the inner wall 104A of the second nozzle portion of the impactor nozzle 104 may avoid interference with the outer edge 310 of the diverging light rays 300, thereby avoiding the generation of reflected light ray portions, as described herein.

[0089] As shown in FIG. 18C, in various embodiments, the taper angle 143A may reflect differences in configuration between the illustrated interior sidewall 104A and an exemplary interior sidewall that includes a straight shape (e.g., where the nozzle exit cross-sectional area and intermediate nozzle cross-sectional width are at least substantially similar as shown in FIG. 18A). In various embodiments, the taper angle 143A may reflect differences in configuration between the illustrated interior sidewall 104A and an exemplary interior sidewall that includes a straight shape (e.g., where the nozzle exit cross-sectional area and intermediate nozzle cross-sectional width are at least substantially similar as shown in FIG. 18A). As such, taper angle 143A may be small enough to have minimal effect on the velocity and / or laminar flow of an exemplary fluid volume flowing therethrough. For example, taper angle 143A may be at least substantially between 1 degree and 10 degrees (e.g., between 2 degrees and 5 degrees) based at least in part on the configuration of illumination source 116. In various embodiments, taper angle 143A may be defined at least in part by the intermediate nozzle cross-sectional width and the distance between illumination source 116 and the intermediate nozzle location. For example, in various embodiments, taper angle Q 143A is defined by the following equation: Can be defined as:

number

[0090] Additionally, while shown with straight (e.g., non-curved) sidewalls in accordance with various exemplary embodiments described herein, it should be understood that one or more of the sidewalls of the impactor nozzle 104 may, in various embodiments, have an at least partially curved configuration. For example, as shown in Figures 18B-18C, the transition between the first and second nozzle portions (e.g., about an intermediate nozzle position) may define a radius of curvature. As another example, the inner wall 104A of the impactor nozzle 104 may be at least partially curved such that some of the diverging light rays 200 are not incident on the sidewall 104A.

[0091] 18D schematically illustrates an exemplary apparatus including an impactor nozzle configuration according to various exemplary embodiments described herein. Specifically, FIG. 18D schematically illustrates an exemplary apparatus including an impactor nozzle 104 configured to avoid the generation of reflected light beam portions caused by a portion of a diverging light beam 300 impinging on a sidewall of the impactor nozzle 104, as described herein. As illustrated, the impactor nozzle 104 may be configured such that a second nozzle portion extending between an intermediate nozzle position and the nozzle exit can have a non-curved shape, with the nozzle exit cross-sectional area and the intermediate nozzle cross-sectional width being at least substantially similar. For example, the interior sidewalls 104A on either side of the central nozzle axis of the impactor nozzle can each define an at least substantially parallel configuration such that the taper angle 143 of the second nozzle portion can be at least substantially zero.

[0092] In various embodiments, to avoid interference with the diverging light beam 300 (e.g., with the outer edge 310), at least a portion of one or more of the impactor nozzle's side walls may be moved laterally in an outward direction (e.g., away from the central nozzle axis) to increase the nozzle exit cross-sectional area and / or intermediate cross-sectional area. Displacing at least a portion of one or more of the side walls may effectively widen the second nozzle section, allowing the diverging light beam 300 to pass through the impactor nozzle 104 without interfering with one or more of the interior side walls 104A. As described herein, in such embodiments, the nozzle side walls may be moved in an outward direction (e.g., away from the central nozzle axis) for particle analysis (e.g., image acquisition) purposes and in an inward direction (e.g., toward the central nozzle axis) for particle collection (e.g., control of fluid flow toward the collection medium 106). 18D , a portion of one or more of the sidewalls defining the nozzle outlet may be displaced away from the central axis of the nozzle by a first sidewall displacement distance 144A. In various embodiments, one or more of the sidewalls may be displaced away from the central axis by a different distance, such as a second sidewall displacement distance 144B. Alternatively, or in addition, in various embodiments, one or more of the sidewalls may be displaced away from the central axis of the nozzle by substantially the same distance, such as the first sidewall displacement distance 144A and the second sidewall displacement distance 144B being at least substantially similar. In various embodiments, one or more of the sidewall displacement distances 144A, 144B may correspond at least in part to an outer ray exit angle 311 of diverging light rays 300 emitted from the illumination source 116. For example, In various embodiments, one or more of the sidewall displacement distances 144A, 144B may be defined, at least in part, by the outlet nozzle dimensions, the distance between the illumination source 116 and the nozzle outlet, and the divergence angle of the illumination line.

[0093] In various embodiments, as described herein, the fluid composition sensor may include an exemplary impactor nozzle 104 that may be selectively configurable between a first nozzle configuration and a second nozzle configuration. For example, in various embodiments, the first nozzle configuration may correspond to a particle collection function of the fluid composition sensor, and the second nozzle configuration may correspond to a particle analysis function of the fluid composition sensor. As described herein, the particle collection function of the fluid composition sensor may correspond to the fluid composition sensor receiving a fluid volume containing a plurality of particles and utilizing the impactor nozzle 104 to direct the fluid volume toward a receiving surface of the collection medium 106 in a flow direction at least substantially perpendicular to the collection medium 106 to facilitate engagement of the fluid volume with the collection medium 106 such that at least a portion of the plurality of particles within the fluid volume may be disposed within the collection medium 106. For example, to achieve the particle collection function, the impactor nozzle 104 may be configured with its nozzle outlet positioned at least substantially adjacent to the collection medium 106. Further, as described herein, the particle analysis functionality of the fluid composition sensor may correspond to the fluid composition sensor capturing an image of one or more particles received by the collection medium 106 and determining at least one particle characteristic of the fluid volume received by the fluid composition sensor based at least in part on the image. For example, to achieve the particle analysis functionality of the fluid composition sensor, the illumination source 116 may be configured to emit one or more light beams that engage the collection medium 106 and illuminate one or more particles received by the collection medium 106, as described herein.

[0094] As described herein, in various embodiments, the particle collection and particle analysis functions of the fluid composition sensor may be performed sequentially, such that the fluid composition sensor may be configured to initiate the particle analysis function once it determines that the entire sample fluid volume has passed the surface of the collection medium 106 and, therefore, the need for the particle collection function of the fluid composition sensor has at least temporarily ceased. Accordingly, in various embodiments, the fluid composition sensor may be configured to selectively switch between a first nozzle configuration corresponding to the particle collection function and a second nozzle configuration corresponding to the particle analysis function. For example, in one exemplary embodiment, the first nozzle configuration may be embodied by the exemplary nozzle configuration shown in FIG. 18A , which is described in further detail herein. The variable cross-sectional areas of the various sections of the impactor nozzle 104 and the minimized nozzle exit cross-sectional area may be configured to increase the velocity of the fluid volume flowing through the nozzle and induce laminar flow, such that at least a portion of the particles in the fluid volume may be disposed within the collection medium 106 upon impact with the collection medium 106. Furthermore, in one exemplary embodiment, the second nozzle configuration may be embodied by the exemplary nozzle configuration shown in FIG. 18D , which is described in further detail herein. In this case, the particle analysis function of the fluid composition sensor may be achieved by emission of one or more light beams (e.g., diverging light beam 300) from illumination source 116, and impactor nozzle 104 in the second nozzle configuration may avoid the generation of reflected / scattered light beam portions caused by a portion of diverging light beam 300 impinging on the side walls of impactor nozzle 104, as described herein. To avoid interference with diverging light beam 300 (e.g., outer edge 310), at least a portion of one or more of impactor nozzle 104's side walls may be moved laterally away from the central nozzle axis to increase the nozzle exit cross-sectional area and / or intermediate cross-sectional area. Displacing at least a portion of at least one of the side walls may widen at least a portion of impactor nozzle 104, allowing diverging light beam 300 to pass through impactor nozzle 104 without interfering with one or more of interior side walls 104A.

[0095] In various embodiments, the impactor nozzle 104 switches between a first nozzle configuration and a second nozzle configuration based at least in part on either the application of force and / or the removal of an applied force. The fluid composition sensor may be configured to selectively switch the impactor nozzle 104 from the first nozzle configuration to the second nozzle configuration by applying a force in an outward direction (e.g., away from the central nozzle axis) to one or more of the impactor nozzle's side walls to displace at least a portion of the side walls in a corresponding outward direction a first sidewall displacement distance 144A. In such a case, the fluid composition sensor may be configured to selectively switch the impactor nozzle 104 from the second nozzle configuration back to the first nozzle configuration by removing the force being applied in an outward direction to one or more of the impactor nozzle's side walls or by applying an equal force in an inward direction (e.g., opposite the outward direction).

[0096] Alternatively, in various embodiments, the fluid composition sensor may be configured to switch the impactor nozzle 104 from the first nozzle configuration to the second nozzle configuration by removing a force being applied in an inward direction (e.g., toward the central nozzle axis) to one or more of the impactor nozzle's side walls to displace at least a portion of the side wall in an outward direction substantially opposite the inward direction a first side wall displacement distance 144A. In such a case, the fluid composition sensor may be configured to selectively return the impactor nozzle 104 from the second nozzle configuration to the first nozzle configuration by reapplying an inward force to one or more of the impactor nozzle's side walls to retract at least a portion of the side wall in a corresponding inward direction a first side wall displacement distance 144A.

[0097] Additionally, in various embodiments, the impactor nozzle 104 in the second nozzle configuration may be at least partially defined by a central nozzle axis that is reconfigured to be centered about the fluid composition sensor housing relative to the central nozzle axis location defined by the exemplary impactor nozzle of the first nozzle configuration. For example, the entire impactor nozzle 104 may be rotated, shifted, and / or similarly moved to the second nozzle position as the fluid composition sensor housing center such that the impactor nozzle 104 of the second nozzle configuration can avoid generating reflected light beam portions caused by portions of the diverging light beam 300 entering the impactor nozzle 104.

[0098] 19A-19C illustrate perspective views of an exemplary apparatus according to various embodiments. Specifically, FIGS. 19A-19C illustrate exemplary impactor nozzle configurations according to various embodiments described herein. In various embodiments, the impactor nozzle 104 may comprise multiple nozzle components (e.g., two components, three components, five components, etc.) that may be at least partially joined together to collectively define the impactor nozzle 104. As shown in FIG. 19A, the impactor nozzle 104 may comprise two nozzle components: a first nozzle component 141 and a second nozzle component 142. In various embodiments, the first nozzle component 141 and the second nozzle component 142 may embody two separate components of the impactor nozzle 104, each of which may be at least partially defined by a corresponding component that is joined together to collectively define the impactor nozzle 104. As shown and described herein, the exemplary impactor nozzle 104 defined by the first nozzle component 141 and the second nozzle component 142 may include a nozzle inlet, a nozzle outlet, and a plurality of sidewalls extending between the nozzle inlet and the nozzle outlet. Each of the plurality of sidewalls of the impactor nozzle may include an inner sidewall and an outer sidewall. In various embodiments, the nozzle inlet may include a nozzle inlet cross-sectional area defined at least in part by an outer perimeter formed by each of the inner sidewalls of the plurality of sidewalls at the nozzle inlet. Similarly, the nozzle outlet may include a nozzle outlet cross-sectional area defined at least in part by an outer perimeter formed by each of the inner sidewalls of the plurality of sidewalls at the nozzle outlet. In various embodiments, the impactor nozzle 104 may further include a central nozzle axis extending perpendicularly between the nozzle inlet and the nozzle outlet. Also, as shown in FIG. 19A , the first nozzle Component 141 and second nozzle component 142 may be configured such that impactor nozzle 104 may comprise a first nozzle portion, a second nozzle portion, and an intermediate nozzle position positioned therebetween. First nozzle component 141 and second nozzle component 142 may be configured such that the first and second nozzle portions of impactor nozzle 104 are configured according to various exemplary embodiments described in further detail herein. In various embodiments, first nozzle component 141 and second nozzle component 142 may comprise different properties, such as, for example, material composition.

[0099] 19B shows a perspective view of an exemplary first nozzle portion 141 according to various embodiments. In various embodiments, the first nozzle portion 141 may include an upper portion defining a first nozzle portion inlet and one or more first nozzle portion sidewalls. In various embodiments, the one or more first nozzle portion sidewalls may define at least a portion of the sidewalls of the impactor nozzle 104. As shown, the first nozzle portion 141 includes two first nozzle portion sidewalls 141A, 141B.

[0100] 19C shows a perspective view of an exemplary second nozzle portion 141 according to various embodiments. In various embodiments, the second nozzle portion 142 may include an upper portion defining a second nozzle portion inlet and one or more second nozzle portion sidewalls. In various embodiments, the one or more second nozzle portion sidewalls may define at least a portion of the sidewalls of the impactor nozzle 104. As shown, the second nozzle portion 142 includes two second nozzle portion sidewalls 142A, 142B.

[0101] In various embodiments, as described herein, the first nozzle component 141 and the second nozzle component 142 may comprise corresponding components that may be joined together to collectively define the impactor nozzle 104. For example, the tops of the first nozzle component 141 and the second nozzle component 142 may be configured to engage with one another in a stacked configuration. The respective tops may be at least substantially aligned to collectively define, at least in part, a nozzle inlet of the impactor nozzle 104. Furthermore, in various embodiments, one or more sidewalls of both the first nozzle component 141 and the second nozzle component 142 may be configured to engage with one another to define multiple sidewalls of the impactor nozzle 104. For example, as shown, the first nozzle component 141 is engaged with the second nozzle component 142 such that two first nozzle component sidewalls 141A, 141B and two second nozzle component sidewalls 142A, 142B collectively define the multiple sidewalls of the impactor nozzle 104. The two first nozzle element sidewalls 141A, 141B and the two second nozzle element sidewalls 142A, 142B may be arranged to collectively define a first nozzle portion, a second nozzle portion, and a nozzle outlet.

[0102] 20A-20B illustrate exemplary impactor nozzle configurations according to various embodiments described herein. Specifically, FIGS. 20A-20B illustrate exemplary impactor nozzle configurations that are capable of selectively reconfiguring one or more of a plurality of sidewalls. In various embodiments, as described herein, the exemplary impactor nozzle may be selectively reconfigured (e.g., from a first nozzle configuration to a second nozzle configuration) based at least in part on one or more environmental conditions. For example, in the exemplary embodiment described herein with reference to FIG. 18D , the impactor nozzle 104 may be selectively reconfigured from a first nozzle configuration to a second nozzle configuration by laterally moving at least a portion of one or more of the impactor nozzle's plurality of sidewalls in an outward direction (e.g., away from the central nozzle axis) to increase the nozzle exit cross-sectional area and / or intermediate cross-sectional area, effectively widening at least a portion of the impactor nozzle 104.

[0103] As shown in FIG. 20A, the impactor nozzle 104 has a plurality of impactor nozzles 104. The impactor nozzle 104 may be configured such that at least a portion of each of the two first nozzle component sidewalls 141A, 141B and two second nozzle component sidewalls 142A, 142B that collectively define the sidewalls of the impactor nozzle 104 may be independently movable relative to a central nozzle axis of the impactor nozzle 104. As shown, each of the sidewalls of the example impactor nozzle 104 (e.g., the two first nozzle component sidewalls 141A, 141B and the two second nozzle component sidewalls 142A, 142B) are laterally displaced in an outward direction.

[0104] 20B illustrates a top cross-sectional view of an exemplary impactor nozzle 104 defined at least in part by a nozzle configuration in which each of a plurality of sidewalls is laterally displaced in an outward direction away from the central nozzle axis 104F. Each of the plurality of sidewalls of the impactor nozzle 104 may move at least substantially independently from each of the other sidewalls of the plurality of sidewalls. For example, as shown, the configuration of the first nozzle component sidewall 141A may define a first sidewall displacement distance 144A, which extends outward from the central nozzle axis 104F. Further, as shown, the configuration of the first nozzle component sidewall 141B may define a second sidewall displacement distance 144B, which extends outward from the central nozzle axis 104F. As shown, the configuration of second nozzle component sidewall 142A may define a third sidewall displacement distance 145A, which extends outward from central nozzle axis 104F. Additionally, as shown, the configuration of second nozzle component sidewall 142B may define a fourth sidewall displacement distance 145B, which extends outward from central nozzle axis 104F. In various embodiments, sidewall displacement distances 144A, 144B, 145A, 145B may comprise either the same or different distances. Particle penetration depth

[0105] As discussed herein, each of one or more particles of the plurality of particles 120 may include one or more particle characteristics, such as, for example, particle size, particle mass, particle density, particle velocity (e.g., particle linear velocity), particle cross-sectional area, and particle shape. In various embodiments, the particle size of a particle may be approximated based on the particle diameter. In various embodiments, the particle velocity of a particle may be approximated based, at least in part, on the known flow rate of the fluid moving through the device 10. In various embodiments, a particle moving in the airflow direction 130 toward the collection medium 106 at a particle velocity may further include a particle momentum, which may be influenced, at least in part, by one or more particle characteristics. When the particle is at the receiving surface 105 of the collection medium 106, the particle may define an initial momentum. The depth to which the particle is subsequently embedded in the collection medium (i.e., particle impaction depth 121) is at least partially directly related to the particle's initial momentum. In various embodiments, the particle impaction depth 121 may be related to the particle size, particle mass, and particle velocity.

[0106] As shown in FIG. 2 , each particle of the plurality of particles 120 within the collection medium 106 may further define both a penetration depth 121 and a focal depth 122. In various embodiments, the penetration depth 121 of a particle may include the distance between the receiving surface 105 of the collection medium 106 and a location at which the particle is stopped within the collection medium 106. As described herein, the particle may travel at a velocity in the airflow direction 130 through the receiving surface 105 and enter the collection medium 106 before reaching the back surface 107. The depth to which the particle is embedded in the collection medium 106 may define the penetration depth 121 of the particle. The penetration depth 121 of the particle may correlate to at least the initial momentum of the particle at the receiving surface 105 of the collection medium that must be dissipated by the collection medium 106. In various embodiments, the penetration depth 121 of the particle may be affected by the collection medium type, particle shape (e.g., particle cross-sectional area, particle orientation), ambient temperature, and / or ambient humidity. In various embodiments, a compensation factor may be applied to the estimated mass of the particle to account for, for example, particle cross-sectional area, since a larger particle cross-sectional area will reduce particle penetration depth by dissipating kinetic energy more quickly within the collection medium. In various embodiments, a compensation factor may be applied to the estimated mass of the particle to account for ambient temperature and / or humidity, as both may affect the viscosity of the collection medium and therefore affect particle penetration depth by either increasing or decreasing the drag force experienced by the particle from the collection medium. In various embodiments, the ambient temperature and humidity may be measured either by the device or by one or more remote sensors configured to transmit temperature and humidity data to the device.

[0107] In various embodiments, the penetration depth 121 of one or more particles of the plurality of particles 120 may be determined by the controller 200 based at least in part on the depth of focus 122. In various embodiments, the penetration depth 121 of the particle within the collection medium 106 may be calculated by subtracting the measured depth of focus 122 of the particle from the sum of the collection medium thickness, the transparent substrate thickness, and the distance between the transparent substrate 108 and the imaging device 110. In various embodiments, the depth of focus 122 of the particle may include the distance between the imaging device 110 and the location where the particle is suspended within the collection medium 106. In various embodiments, as shown in FIG. 2 , the depth of focus 122 of the particle within the collection medium 106 may include the sum of the distance between the location where the particle is suspended within the collection medium 106 and the back surface 107 of the collection medium 106, the thickness of the transparent substrate 108, and the distance between the transparent substrate 108 and the imaging device 110. In various embodiments, the focal depth 122 of one or more particles of the plurality of particles 120 can be calculated using a computational technique. The depth of focus may be determined by the controller 200 using one or more imaging techniques, such as (e.g., Angular Spectrum Propagation (ASP)) or mechanical techniques (e.g., optomechanical adjustments). In various embodiments, the optomechanical adjustments may include mechanical adjustments of one or more components of the lens-based imager 110 to optimize the particle image. Various embodiments may further include collecting data corresponding to the adjustments of one or more components of the imager to determine the depth of focus. controller

[0108] As shown in FIGS. 1-3 , the apparatus 10 may include a controller 200 configured to determine a particle penetration depth 121 for each of one or more particles 120 in the collection medium 106 and to determine an approximate collective mass of the plurality of particles present in the fluid volume based at least in part on the particle penetration depth 121 for each of the one or more particles 120. As shown in FIG. 3 , the controller 200 may include a memory 201, a processor 202, input / output circuitry 203, communications circuitry 205, an imager data repository 107, a collection medium characteristics database 204, a particle imaging circuitry 206, a particle type identification circuitry 207, a particle mass concentration calculation circuitry 208, and a fluid composition sensor configuration circuitry 209. The controller 200 may be configured to perform the operations described herein. While components are described with respect to functional limitations, it should be understood that specific implementations necessarily involve the use of specific hardware. It should also be understood that certain of the components described herein may comprise similar or common hardware. For example, duplicate hardware is not required for each set of circuitry because both sets of circuitry leverage the use of the same processor, network interface, storage medium, etc. to perform their associated functions. Thus, the use of the term "circuitry," as used herein with respect to components of controller 200, should be understood to include specific hardware configured to perform the functions associated with the particular circuitry described herein.

[0109] The term "circuitry" should be broadly understood to include hardware and, in some embodiments, software for configuring the hardware. For example, in some embodiments, "circuitry" may include processing circuitry, storage media, network interfaces, input / output devices, etc. In some embodiments, other components of controller 200 may be included. Elements may provide or complement the functionality of particular circuitry. For example, processor 202 may provide processing functionality, memory 201 may provide storage functionality, and communications circuitry 205 may provide network interface functionality.

[0110] In some embodiments, the processor 202 (and / or any other processing circuitry supporting or associated with the processor) may communicate with the memory 201 via a bus for passing information between components of the device. The memory 201 may be non-transitory, e.g., may include one or more volatile and / or non-volatile memories. For example, the memory 201 may be an electronic storage device (e.g., a computer-readable storage medium). In various embodiments, the memory 201 may be configured to store information, data, content, applications, instructions, etc. to enable the device to perform various functions in accordance with exemplary embodiments of the present disclosure. It will be understood that the memory 201 may be configured to partially or entirely store any electronic information, data, data structures, embodiments, examples, diagrams, processes, operations, techniques, algorithms, instructions, systems, devices, methods, look-up tables, or computer program products described herein, or any combination thereof. By way of non-limiting example, memory 201 may be configured to store particle size data, particle type data, particle penetration depth data, particle image data, particle shape data, particle cross-sectional area data, particle mass data, particle density data, and particulate matter mass concentration data associated with a fluid volume. In various embodiments, the memory may be further configured to store one or more particle penetration depth-momentum lookup tables.

[0111] Processor 202 may be embodied in many different ways, and may, for example, include one or more processing units configured to perform independently. Additionally or alternatively, the processor may include one or more processors configured in tandem via a bus to enable independent execution of instructions, pipelines, and / or multithreads. Use of the term "processing circuitry" may be understood to include single-core processors, multi-core processors, multiple processors within a device, and / or remote or "cloud" processors.

[0112] In an exemplary embodiment, processor 202 may be configured to execute instructions stored in memory 201 or otherwise accessible to the processor. Alternatively, or additionally, the processor may be configured to perform hard-coded functions. Thus, whether configured by hardware or software methods, or a combination thereof, a processor, while configured accordingly, may represent an entity (e.g., physically embodied in circuitry) that is capable of performing operations according to embodiments of the present disclosure. Alternatively, as another example, if the processor is embodied as an execution body of software instructions, the instructions, when executed, may specifically configure the processor to perform the algorithms and / or operations described herein.

[0113] In some embodiments, controller 200 may include input-output circuitry 203 that communicates with processor 202 to provide output to a user and, in some embodiments, may accept input, such as commands provided by a user. Input-output circuitry 203 may include a user interface, such as a graphical user interface (GUI), and may include a display, which may include a web user interface, a GUI application, a mobile application, a client device, or any other suitable hardware or software. In some embodiments, input-output circuitry 203 also includes a display device, display screen, touch screen, touch area, soft keys, a keyboard, a mouse, a microcomputer, a keyboard, a mouse, a display device, a display screen, a touch area, a display area, a display screen, a display area ... A user input element such as a phone, a speaker (e.g., a buzzer), a light emitting device (e.g., a red light emitting diode (LED), a green LED, a blue LED, a white LED, an infrared (IR) LED, an ultraviolet (UV) LED, or the like) The controller 200 may include a processor 202, a combination of processors, or other input-output mechanisms. The processor 202, the input-output circuitry 203 (which may utilize processing circuitry), or both may be configured to control one or more functions of one or more user interface elements via computer-executable program code instructions (e.g., software, firmware) stored in a non-transitory computer-readable storage medium (e.g., memory 201). The input-output circuitry 203 is optional, and in some embodiments, the controller 200 may not include input-output circuitry. For example, if the controller 200 does not directly interact with a user, the controller 200 may generate user interface data for display by one or more other devices with which one or more users directly interact and transmit the generated user interface data to one or more of those devices. For example, the controller 200 may use the user interface circuitry to generate user interface data for display by one or more display devices and transmit the generated user interface data to those display devices.

[0114] Communications circuitry 205 may be a device or circuitry embodied in either hardware or a combination of hardware and software configured to receive and / or transmit data from and / or to a network and / or any other device, circuit, or module in communication with device 200. For example, communications circuitry 205 may be configured to communicate with one or more computing devices via wired (e.g., USB) or wireless (e.g., Bluetooth, Wi-Fi, cellular, and / or the like) communications protocols.

[0115] In various embodiments, the processor 202 may be configured to communicate with the particle imaging circuit 206. The particle imaging circuit 206 may be a device or circuit embodied in either hardware or a combination of hardware and software configured to receive, process, generate, and / or transmit data, such as images captured by the imaging device 110. In various embodiments, the particle imaging circuit 206 may be configured to analyze one or more images captured by the imaging device 110 of the fluid composition sensor 100 to determine which particles of the plurality of particles 120 present in the collection medium 106 have been newly received by the collection medium 106 during a new particle analysis. The particle imaging circuit 206 may receive a first captured particle image and a second captured particle image from the imaging device 100, captured at a first time and a second time, respectively, where the first time represents the start of analysis by the device 10 of one or more particles of the plurality of particles 120 captured by the collection medium 106, and the second time is after (occurs after) the first time. In such a configuration, the device may be configured to distinguish between particles present in the collection medium 106 at the start of the particle analysis and particles newly received by the collection medium 106 by comparing the respective particle images captured at the first and second times and identifying from the second captured particle image any particles not captured in the first captured particle image. In various embodiments, the particle imaging circuit 206 may be further configured to analyze one or more images captured by the imaging device 110 of the fluid composition sensor 100 to determine the size of each of one or more particles of the plurality of particles 120 in the collection medium 106. In various embodiments, the size of a particle may be defined by the cross-sectional area of ​​the particle. In various embodiments, the particle imaging circuit 206 may be configured to determine the particle size of particles having any of a variety of particle sizes. By way of example, the particle imaging circuit 206 may be configured to determine the particle size of a particle having a diameter of about 0.3 to about 100 micrometers (e.g., 2.5 micrometers) and therefore a size category to which the particle may be associated, such as, for example, PM10, PM4, PM2.5, or PM1.In embodiments, the controller and / or particle imaging circuitry 206 may be further configured to analyze one or more images captured by the imaging device 110 of the fluid composition sensor 100 to determine a shape of each of the one or more particles 120 in the collection medium 106. In various embodiments, the particle shape may be defined, at least in part, by a particle cross-sectional area. The particle imaging circuitry 206 may be further configured to determine a particle penetration depth 121 of each of the one or more particles 120 in the collection medium 106 using one or more imaging techniques. The particle imaging circuitry 206 may be configured to execute instructions stored in the memory 201, for example, to perform the one or more imaging techniques. In various embodiments, the one or more imaging techniques may include one or more computational techniques, such as, for example, angular spectral propagation (ASP). In other embodiments, optomechanical adjustment may be used as an imaging technique. In various embodiments, the particle imaging circuitry 206 may use one or more imaging techniques to determine a focal depth 122 for each of the one or more particles 120 in the collection medium. Upon determining the focal depth for each of the one or more particles, the particle imaging circuitry 206 may be configured to calculate a penetration depth 121 for each of the one or more particles 120 within the collection medium 106 using known dimensions of the fluid composition sensor 100, such as, for example, the collection medium thickness and the distance between the transparent substrate 108 and the imager 110. In various embodiments, for example, the penetration depth 121 of a particle within the collection medium 106 may be calculated by subtracting the measured focal depth 122 of the particle from the sum of the collection medium thickness, the transparent substrate thickness, and the distance between the transparent substrate 108 and the imager 110. The particle imaging circuitry 206 may transmit data to and / or receive data from the imager data repository 107. In various embodiments, the particle imaging circuitry 206 may be configured to determine the penetration depth of a particle using one or more machine learning techniques.In various embodiments, the one or more machine learning techniques used by the particle imaging circuitry 206 to determine particle penetration depth may include using deep supervised learning in conjunction with one or more labeled data sets of one or more known particle characteristics, such as particle type, particle velocity, particle size, particle shape, and / or any other data generated, transmitted, and / or received by the controller 200, to estimate particle penetration depth.

[0116] In various embodiments, the processor 202 may be configured to communicate with a particle type identification circuit 207. The particle type identification circuit 207 may be a device or circuit embodied in either hardware or a combination of hardware and software configured to identify the particle type and / or particle species of one or more particles of the plurality of particles 120 received by the collection medium 106. In various embodiments, the plurality of particles 120 in the fluid volume may include one or more particles of various particle types, such as, for example, one or more of bacteria, pollen, spores, mold, biological particles, soot, inorganic particles, and organic particles. In various embodiments, the particle type identification circuit 207 may use one or more machine learning techniques to determine the particle type and / or particle species of each of the one or more particles of the plurality of particles 120 received by the collection medium 106. In various embodiments, the one or more machine learning techniques used by the particle type identification circuit 207 to determine the particle type and / or particle species of each of one or more particles of the plurality of particles 120 may include analyzing images captured by the imager 110, particle size data, particle shape data, and / or any other data generated, transmitted, and / or received by the controller 200. In various embodiments, the particle type identification circuit 207 may transmit data to and / or receive data from the imager data repository 107. Further, in various embodiments, the particle type identification circuit 207 may be configured to receive determined particle initial velocity data corresponding to one or more of the particles of the plurality of particles 120 received by the collection medium 106 from the particulate matter mass concentration calculation circuit 208. In various embodiments, the particle type identification circuit 207 may calculate the particle initial velocity of the particle by at least calculating the particle initial velocity based on the determined particle initial velocity of the particle relative to a known flow rate of the fluid moving through the fluid composition sensor 100. The particle type identification circuit 207 may be configured to compare the particle velocity of the particle estimated based in part on the particle velocity to generate velocity comparison data associated with the particle. In various embodiments, the particle type identification circuit 207 may be configured to implement a feedback loop, where the one or more velocity comparison data associated with one or more particles of the plurality of particles 120 received by the collection medium 106 may define one or more inputs to a machine learning model to increase the machine learning rate associated with one or more machine learning techniques, as described herein.

[0117] In various embodiments, the apparatus 10 may be configured with or in communication with a collection medium characteristics database 204. The collection medium characteristics database 204 may be stored, at least in part, in the system's memory 201. In some embodiments, the collection medium characteristics database 204 may be remote from the apparatus 10 but connected to it. The collection medium characteristics database 204 may include information such as one or more particle impaction depth-momentum relationship lookup tables. In various embodiments, a particle impaction depth-momentum relationship lookup table may include a data matrix used to define the relationship between particle impaction depth and particle initial momentum (i.e., the momentum of the particle at the receiving surface 105 of the collection medium 106, where the particle is received at the receiving surface 105 by the collection medium 106, as described herein) for a particular collection medium type. Various particle impaction depth-momentum relationship lookup tables may include data matrices used to define the relationship between particle impaction depth and particle initial momentum for various collection medium types.

[0118] The particulate matter mass concentration calculation circuit 208 may be a device or circuit embodied in either hardware or a combination of hardware and software configured to determine the particulate matter mass concentration in the fluid volume. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine the particulate matter mass concentration in the fluid volume based on the approximate collective mass of the plurality of particles present in the fluid volume. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine the approximate collective mass of the plurality of particles present in the fluid volume based on the collective mass of the plurality of particles 120 received by the collection medium 106. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine the collective mass of the plurality of particles 120 received by the collection medium 106 based on the corresponding estimated mass of each particle of the plurality of particles 120. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to estimate the corresponding mass of each particle of the plurality of particles 120 based at least in part on the corresponding determined penetration depth of each particle.

[0119] In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to estimate the mass of a particle of the plurality of particles 120 by looking up data corresponding to the particle, such as particle size data, particle shape data (e.g., particle cross-sectional area data, particle orientation data), and particle penetration depth, and to determine the initial momentum of the particle before it is received by the collection medium 106 based on data in a particle penetration depth-momentum lookup table that correlates particle penetration depth to particle initial momentum for a given type of collection medium 106. Using the known relationship between momentum, velocity, and mass, where the momentum of a particle is equal to the mass of the particle multiplied by the velocity of the particle, and the known velocity of the particle, i.e., a controlled value based on the airflow velocity within the apparatus 10, the particulate matter mass concentration calculation circuit 208 may be configured to determine the estimated mass of the particle.

[0120] In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine the estimated mass of the particle using one or more machine learning techniques. In various embodiments, the particulate matter mass concentration calculation circuit 208 may use one or more machine learning techniques to determine the estimated mass of the particle. The one or more machine learning techniques may include using supervised deep learning with one or more labeled data sets of one or more known particle characteristics, such as particle type, particle velocity, particle penetration depth, various particle weight measurements, and / or any other data generated, transmitted, and / or received by controller 200, to estimate the mass of the particle. In various embodiments, particulate matter mass concentration calculation circuit 208 may be configured to apply one or more compensation factors to the determined particle mass using one or more machine learning techniques.

[0121] Further, in various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine an estimated density of the particles based at least in part on one or more of the particle penetration depth, estimated particle mass, particle shape, particle type, and particle size data. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine an estimated mass and / or estimated density of each of the particles of the plurality of particles 120 received by the collection medium 106. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to apply one or more compensation factors to the estimated mass of the particles to account for one or both of particle conditions associated with the particles and ambient conditions associated with the surrounding environment. In various embodiments, for example, the particulate matter mass concentration calculation circuit 208 may be configured to apply an appropriate compensation factor based at least in part on particle cross-sectional area, ambient temperature, and / or ambient humidity. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine an estimated collective mass of the plurality of particles 120 received by the collection medium 106 based on the estimated mass of each of the particles of the plurality of particles 120 received by the collection medium. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine an approximate collective mass of a plurality of particles present in the fluid volume based on the determined collective mass of the plurality of particles 120 received by the collection medium 106. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine a particulate matter mass concentration in the fluid volume based on the approximate collective mass of the plurality of particles present in the fluid volume. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to apply one or more scale factors to the determined particulate matter mass concentration in the fluid volume to account for experimental inefficiencies, such as, for example, particle collection efficiency and detection probability factors. In various embodiments, appropriate scale factors may be determined based on empirical data.

[0122] The particulate matter mass concentration calculation circuitry 208 may also be configured to determine that the collection medium 106 needs to be replaced. For example, in various embodiments, the particulate matter mass concentration calculation circuitry 208 may be configured to determine that a threshold amount of time has elapsed since the collection medium 106 was last replaced, that the number of particles present in the collection medium 106 exceeds a predetermined threshold number of particles, and / or that the particle coverage percentage within the field of view exceeds a threshold particle coverage percentage.

[0123] Further, in various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to determine a particle initial velocity of one or more particles of the plurality of particles 120 received by the collection medium 106 based at least in part on the determined particle mass of the particle, where the particle initial velocity is the velocity of the particle at the receiving surface 105 of the collection medium 106. In various embodiments, the particulate matter mass concentration calculation circuit 208 may be configured to transmit the determined particle initial velocity data corresponding to one or more particles of the plurality of particles 120 received by the collection medium 106 to the particle type identification circuit 207.

[0124] The fluid composition sensor configuration circuitry 209 may be a device or circuitry embodied as either hardware or a combination of hardware and software configured to control the selective configuration of one or more selectively configurable components of the fluid composition sensor. In various embodiments, the fluid composition sensor configuration circuitry 209 may include, as described herein: The fluid composition sensor may be configured between an open configuration and a closed configuration. Further, in various embodiments, the fluid composition sensor configuration circuit 209 may facilitate automatic reconfiguration of one or more collection media assemblies, as described herein. In various embodiments, the fluid composition sensor configuration circuit 209 may selectively configure an outlet door and / or a receiving door of one or more collection media assembly storage chambers of the fluid composition sensor between an open configuration and a closed configuration. Further, in various embodiments, the fluid composition sensor configuration circuit 209 may be configured to selectively configure an impactor nozzle of the fluid composition sensor between a first nozzle configuration and a second nozzle configuration. For example, the fluid composition sensor configuration circuit 209 may switch the impactor nozzle between a first nozzle configuration corresponding to a particle collection function of the fluid composition sensor and a second nozzle configuration corresponding to a particle analysis function of the fluid composition sensor, as described herein.

[0125] In various embodiments, the device 10 may be configured with or in communication with an imager data repository 107. The imager data repository 107 may be stored, at least in part, in the system's memory 201. In some embodiments, the imager data repository 107 may be remote from the device 10, but is connected to the device 10. The imager data repository 107 may contain information, such as images, related to one or more potential components of the fluid. In some embodiments, the imager data repository 107 and / or other similar reference databases in communication with the device 10 may contain non-image information used to identify particles (e.g., in the case of fluorescent particles, a spectrometer may be used by the fluid composition sensor 100 as discussed herein, and the device 10 may receive spectral information to identify and / or classify the particles). Additionally, in some embodiments, device 10 may use machine learning to identify and / or classify particles, such that device 10 can initially use a reference database, such as imager data repository 107, to train device 10, and may thereafter be configured to identify and / or classify particles without reference to imager data repository 107 or other reference databases (e.g., the system may not actively communicate with imager data repository 107 during normal operation). method

[0126] FIG. 4 shows a block diagram of an example method 400 for detecting fluid particle properties according to some embodiments discussed herein.

[0127] In block 402, one or more particles of the plurality of particles may be received by the collection medium via the fluid volume. The plurality of particles may be received by the collection medium from the fluid volume containing the plurality of particles. In various embodiments, the plurality of particles received by the collection medium may represent a plurality of particles present in the fluid volume. In various embodiments, the fluid composition sensor may include the collection medium and be configured to direct at least a portion of the fluid volume in a direction perpendicular to a receiving surface of the collection medium such that the fluid volume interacts with the collection medium.

[0128] Further, at block 404, an image of one or more particles of the plurality of particles received by the collection medium is captured. In various embodiments, the image of one or more particles of the plurality of particles received by the collection medium may be captured by an imaging device. In various embodiments, the imaging device may be configured to capture both an image of one or more particles of the plurality of particles present in the collection medium at the start of the particle analysis and an image of one or more particles of the plurality of particles present in the collection medium at the end of the particle analysis. The images may be compared to determine which particles of the one or more particles of the plurality of particles present in the collection medium were received by the collection medium during the particle analysis. In various embodiments, the imaging device may capture an image of one or more particles of the plurality of particles received by the collection medium. The fluid composition sensor may be positioned in proximity to the collection medium so as to be within a designated field of view of the imaging device. In various embodiments, an image of one or more particles of the plurality of particles received by the collection medium may be captured using one or more imaging techniques, such as, for example, lensless holography or optical microscopy. In various embodiments, the particle image may include a holographic image reconstruction.

[0129] At block 406, a particle penetration depth for each of one or more particles of the plurality of particles in the collection medium is determined. The particle penetration depth for a particle received by the collection medium may be defined by the depth to which the particle is embedded within the collection medium. In various embodiments, the particle penetration depth for each of one or more particles of the plurality of particles in the collection medium may be determined using an image captured by an imaging device. In various embodiments, the particle penetration depth for each of one or more particles of the plurality of particles in the collection medium may be determined based on a measured depth of focus, a distance between the imaging device and the transparent substrate, a thickness of the transparent substrate, and a collection medium thickness, where the depth of focus is the distance between the imaging device and the particle. The depth of focus for a particle may be defined as the distance between the imaging device and the particle. In various embodiments, the depth of focus for each of one or more particles of the plurality of particles received by the collection medium may be determined using one or more imaging techniques, such as computational methods (e.g., angular spectrum propagation) and / or mechanical methods (e.g., optomechanical adjustment). In various embodiments, the penetration depth of each of one or more particles of the plurality of particles within the collection medium may be calculated by subtracting the measured focal depth of each particle from the sum of the collection medium thickness, the transparent substrate thickness, and the distance between the transparent substrate and the imaging device.

[0130] At block 408, an approximate collective mass of a plurality of particles present in the fluid volume is determined based at least in part on the particle penetration depth of each of one or more of the plurality of particles. In various embodiments, the correspondingly determined particle penetration depth of each particle may be used to estimate the corresponding mass of each of the plurality of particles. In various embodiments, the particle penetration depth data and the measured particle size data may be used to determine the initial momentum of each particle before it is received by the collection medium based on data in a particle penetration depth-momentum lookup table correlating particle penetration depth to the initial momentum of the particle for a given collection medium type. The estimated mass of each of the particles may be determined using a known relationship between momentum, velocity, and mass, where the momentum of a particle is equal to the mass of the particle multiplied by the velocity of the particle, and the known velocity of each particle, i.e., a controlled value based on the airflow velocity of the fluid volume. In various embodiments, one or more compensation factors may be applied to the estimated mass of each of the particles to account for one or both of particle conditions associated with the particle and ambient conditions associated with the surrounding environment. In various embodiments, for example, an appropriate compensation factor may be applied based at least in part on the particle cross-sectional area, the ambient temperature, and / or the ambient humidity. In various embodiments, the corresponding estimated mass of each of the plurality of particles may be used to determine a collective mass of the plurality of particles received by the collection medium. In various embodiments, the determined collective mass of the plurality of particles received by the collection medium may be used to approximate a collective mass of the plurality of particles present in the fluid volume. In various embodiments, the approximate collective mass of the plurality of particles present in the fluid volume may be used to estimate a particulate matter mass concentration in the fluid volume. In various embodiments, one or more scale factors may be applied to the determined particulate matter mass concentration in the fluid volume to account for experimental inefficiencies, such as particle collection efficiency and detection probability factors. In various embodiments, an appropriate scale factor may be determined based on empirical data.

[0131] In block 410, a compensation factor may be applied to the approximate collective mass of the plurality of particles present in the fluid volume based at least in part on one or more of the particle cross-sectional area, the ambient temperature, and the ambient humidity. In various embodiments, the compensation factor may be applied to the particle conditions and the ambient environment associated with the particles. A compensation factor may be applied to each estimated mass of a particle to account for one or both of the relevant ambient conditions. In various embodiments, a compensation factor may be applied to the estimated mass of a particle to account for, for example, particle cross-sectional area, since a larger particle cross-sectional area will reduce particle penetration depth by dissipating kinetic energy more quickly within the collection medium. In various embodiments, a compensation factor may be applied to the estimated mass of a particle to account for ambient temperature and / or ambient humidity, since both affect the viscosity of the collection medium and therefore affect particle penetration depth. In various embodiments, the ambient temperature and humidity may be measured either by the device or by one or more remote sensors configured to transmit temperature and humidity data to the device.

[0132] At block 412, a particle size of each of one or more particles of the plurality of particles received by the collection medium may be determined. In various embodiments, the particle size of each of the one or more particles may be determined based on the captured particle image. In various embodiments, the particle size and size category, such as, for example, PM10, PM4, PM2.5, or PM1, of particles having a diameter of about 0.3 to about 100 micrometers (e.g., 2.5 micrometers) may be determined. In various embodiments, the particle size data may include particle cross-sectional area data.

[0133] At block 414, the particle type of each of one or more particles of the plurality of particles received by the collection medium may be determined using one or more machine learning techniques. In various embodiments, the one or more machine learning techniques used to determine the particle type of each of one or more particles of the plurality of particles may include analyzing captured particle images of the one or more particles, particle size data, and / or any other data associated with the one or more particles. In some embodiments, the machine learning techniques may be used to identify and / or classify the particles. In various embodiments, a reference image database containing various particle data may be used to initially train the machine learning device, and the machine learning device may then be utilized to identify and / or classify particles without reference to the image database or other reference database.

[0134] At block 416, a particle density of each of one or more particles of the plurality of particles received by the collection medium may be determined based at least in part on the particle penetration depth of each of the one or more particles. In various embodiments, the particle density of the particles may be determined based at least in part on one or more of the particle penetration depth, the estimated particle mass, the particle type, and the particle size data.

[0135] In various embodiments, the methods described herein may further include replacing the collection medium as described herein. In various embodiments, the collection medium may be replaced based on one or more parameters, such as, for example, time elapsed, number of particles received, and / or percentage of particle coverage within the field of view. conclusion

[0136] Many modifications and other embodiments will come to mind to one skilled in the art to which this disclosure pertains having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. It is to be understood, therefore, that the disclosure is not limited to the particular embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.

Claims

[Claim 1] 1. A method for detecting fluid particle properties, comprising: receiving a fluid volume with a sensor; directing the fluid volume toward a collection media through an impactor nozzle in a first nozzle configuration; receiving, by the collection medium, one or more particles of the plurality of particles in the fluid volume; configuring the impactor nozzle in a second nozzle configuration; illuminating the one or more particles received by the collection medium with one or more light beams emitted from an illumination source, each of the one or more light beams being emitted from the illumination source at a corresponding light beam emission angle; capturing an image of the one or more particles of the plurality of particles received by the collection medium; determining at least one particle characteristic of the plurality of particles in the fluid volume based at least in part on the image; configuring the impactor nozzle to be selectable between the first nozzle configuration and the second nozzle configuration; Including, The impactor nozzle is A nozzle inlet; A nozzle outlet; a plurality of sidewalls extending between the nozzle inlet and the nozzle outlet, each of the plurality of sidewalls including an inner sidewall; In the first nozzle configuration, at least a portion of the light beam is incident on the inner sidewall and is reflected by the inner sidewall; In the second nozzle configuration, the inner sidewall is configured to define a taper angle such that a cross-sectional area of ​​the nozzle outlet is larger than a cross-sectional area of ​​the nozzle middle to avoid reflected light rays caused by at least some of the light rays being incident on the inner sidewall.

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