Cleaning station for urine analysis device

The cleaning station addresses hygiene and cleaning challenges of urine analysis devices by integrating a container for simultaneous cleaning and charging, ensuring thorough device maintenance.

FR3166975A1Pending Publication Date: 2026-04-03WITHINGS SAS
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Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Urine analysis devices installed in toilet bowls face hygiene and cleaning challenges due to incomplete flushing, leading to comfort issues and potential obstructions in the fluidic circuit.

Method used

A cleaning station with a container that holds the urine analysis device for simultaneous cleaning and charging, using a charger to power the device and activate a pump for fluid circulation, ensuring thorough cleaning of both the exterior and fluid circuit.

Benefits of technology

The solution provides efficient cleaning and charging, reducing downtime and maintaining device hygiene and functionality.

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Abstract

This description relates to a cleaning station (600) for a urine analysis device, the cleaning station (600) comprising: a container (610) configured to receive a cleaning liquid, the container (610) further sized to receive at least part of the urine analysis device so that the urine analysis device is in contact with the cleaning liquid; and a charger (620) configured to supply power to the urine analysis device when the urine analysis device is received at least partially in the container (610). Figure 6
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Description

Title of the invention: Cleaning station for urine analysis device

[0001] The present invention relates to a cleaning station for a urine analysis device. The invention also relates to an assembly comprising a urine analysis device and such a cleaning station configured to receive the urine analysis device, as well as the associated cleaning methods. The urine analysis device comprises a housing configured to be placed entirely inside a toilet bowl. State of the art

[0002] Many biological parameters are reflected in an individual's urine. From a urine sample, it is possible, for example, to detect health problems such as a urinary tract infection, diabetes, or kidney failure. The urine sample can also reflect the quality of a diet, identify a fertile period or pregnancy, and detect drug or tobacco use. It is therefore beneficial to monitor various biological parameters periodically.

[0003] Document WO2021 / 175909 describes a device that is mounted on the side of a toilet bowl and collects a urine sample before performing an optical analysis. The device includes a measuring station and a cartridge that can be removed and replaced from the measuring station. The cartridge contains reagents that react with urine, including urine test strips.

[0004] Such a urine analysis device placed in a toilet bowl faces a problem due to the cleaning of the casing following repeated urination by the user. Indeed, the toilet bowl has a flushing mechanism that sends water flowing along the side of the bowl. This water flow tends to pass over and / or behind the casing and therefore does not clean the front of the casing, which can present comfort and hygiene problems (yellowing of the casing, odor, etc.) for the user.

[0005] For this purpose, document FR2405625 (registration number) proposes a fixing arm comprising a water supply ramp configured to direct a flow of water from a toilet bowl flush towards the front face of the housing in order to clean it after each urination.

[0006] The cleaning problem also arises for the inside of the measuring station in which the user's urine circulates repeatedly, which can lead to potential obstructions due to repeated deposits in the fluidic circuit of the measuring station. Summary of the invention

[0007] The present description aims to further improve the cleaning of the urine analysis device in order to improve the device's lifespan and the user experience.

[0008] For this purpose, the present description relates to a cleaning station for a urine analysis device comprising a container configured to receive a cleaning liquid, the container being further sized to receive at least part of the urine analysis device, so that the urine analysis device is in contact with the cleaning liquid; a charger configured to supply power to the urine analysis device when the urine analysis device is received at least part of it in the container.

[0009] Indeed, the cleaning station allows at least part of the urine analysis device to be received and soaked in the cleaning liquid present in the container, which allows at least part of the outside of the device to be cleaned, in particular around the collection orifice.

[0010] Furthermore, the cleaning device's charger also powers the urine analysis device, allowing, for example, the device's rechargeable battery to be recharged before a new cycle of use in the user's toilet, and thus the battery to be recharged during a cleaning phase. The charging and cleaning tasks are performed simultaneously, which reduces the downtime of the urine analysis device.

[0011] This power supply via the charger can also activate a pump arranged in the device to draw cleaning fluid and thus at least partially clean the device's fluid circuit. The cleaning station therefore uses the pump of the urine analysis device to clean the fluid circuit.

[0012] The cleaning station according to this description thus allows for easy and efficient cleaning for the user, as well as providing power in parallel with the cleaning process. In particular, the charger can be a wireless charger (typically induction), which simplifies the placement of the urine analysis device in the cleaning station (fewer steps, no risk of water infiltration or short circuit, etc.).

[0013] In one embodiment, the container receives the urine analysis device in a removable manner.

[0014] In one embodiment, the cleaning liquid is detergent.

[0015] In one embodiment, the container includes a gauge indicating the volume recommended amount of cleaning fluid to pour into the container.

[0016] In one embodiment, the station lacks means for circulating the cleaning liquid in the container.

[0017] In one embodiment, the charger is positioned, along the depth of the container, at least partly between the bottom of the container and the gauge.

[0018] In one embodiment, the urine analysis device includes a rechargeable battery and the charger is configured to electrically charge the battery.

[0019] In one embodiment, the charger is a wireless charger, so that the charging between the charger and the urine analysis device is wireless.

[0020] In one embodiment, the charger is electromagnetic induction.

[0021] In one embodiment, the station comprises a coil placed opposite of a wall of the container.

[0022] In one embodiment, the coil is placed in a protrusion formed in said wall.

[0023] In one embodiment, the station includes a charging port connectable to the urine analysis device

[0024] In one embodiment, the station includes an electrical connection cable for connecting the charging system to an electrical network

[0025] In one embodiment, the station includes a battery.

[0026] In one embodiment, the container has a straight cylindrical shape.

[0027] In one embodiment, the container has a truncated cone shape.

[0028] In one embodiment, the container has an oval, round or square base.

[0029] In one embodiment, the urine analysis device has a dimension of lesser length along an X direction, the container being configured to receive the urine analysis device so that the X direction extends horizontally.

[0030] In one embodiment, the width of the container along the X direction is substantially equal to the dimension of least length.

[0031] In one embodiment, the container is configured to receive the device so that the X axis extends in a direction forming an angle between 20° and 70°, for example about 45°.

[0032] In one embodiment, the container includes at least one projection configured to support the urine analysis device.

[0033] In one embodiment, the device is supported only by the protrusion or protrusions in the container.

[0034] In one embodiment, at least one projection defines a clearance volume intended to receive the collection orifice of the analysis device.

[0035] In one embodiment, at least one projection is arranged in the lower part of the container.

[0036] In one embodiment, the container includes at least one lateral projection projecting substantially horizontally from the wall

[0037] In one embodiment, at least one projection is in the form of a promontory configured to support the device.

[0038] In one embodiment, the cleaning station includes a lid configured to at least partially close the container.

[0039] In one embodiment, the lid includes at least one wedge projecting from the lid towards the container, each wedge being configured to hold the urine analysis device in position in the container.

[0040] In one embodiment, the cover includes a hook configured to cooperate with a means for fixing the urine analysis device.

[0041] In one embodiment, the lid includes at least one opening suitable for being passed through by a fixing arm of the urine analysis device.

[0042] In one embodiment, the lid is formed of a material that is at least partially transparent or translucent.

[0043] In one embodiment, the cover includes a thinner area to make visible a light indicator of the device, in particular a light charge indicator.

[0044] This description also relates to an assembly comprising: - a urine analysis device, the urine analysis device comprising a housing and a fluid circuit housed inside the housing, and configured to circulate urine through the urine analysis device, the fluid circuit comprising a collection port on the housing, - a station as defined above, the assembly being configured to switch from an operational configuration in which the urine analysis device is received in the container to a separate configuration in which the urine analysis device is away from the container.

[0045] In one embodiment, the device is configured to be placed entirely in a toilet bowl in the separate configuration.

[0046] In one embodiment, the station and the device are configured to be placed entirely in the toilet bowl in the operational configuration.

[0047] In one embodiment, the station includes a means for fixing the container to the toilet bowl.

[0048] In one embodiment, the container is sized so that the collection orifice is immersed in the cleaning liquid in operational configuration.

[0049] In one embodiment, the container is formed by a wall and a bottom, the container being dimensioned so that the collection orifice is away from at least one of the wall and the bottom.

[0050] In one embodiment, the urine analysis device further includes an arm for attaching to a toilet bowl, the attachment arm protruding at least partially from the container in the operational configuration.

[0051] In one embodiment, the fluidic circuit includes a pump configured to draw liquid into the fluidic circuit via the collection port.

[0052] In one embodiment, the charger is configured to, in operational configuration, supply the pump of the fluidic circuit, so that the cleaning liquid is drawn into the fluidic circuit.

[0053] In one embodiment, the charger is further configured to recharge a battery of the urine analysis device.

[0054] In one embodiment, the urine analysis device is configured to switch from a urine analysis configuration to a cleaning configuration, the device comprising at least one reagent suitable for reacting with urine, the fluid circuit comprising a drainage port on the housing, the fluid circuit being configured to, in the urine analysis configuration, inject the fluid collected through the collection port onto the reagent, the fluid circuit being configured to, in the cleaning configuration, circulate the fluid collected through the collection port directly to the drainage port.

[0055] In one embodiment, the urine analysis device is in the drainage position during the operational configuration.

[0056] In one embodiment, the fluidic circuit includes an injector configured to inject urine onto reagent, in which, in cleaning configuration, the fluidic circuit includes in series the collection port, the injector and the purge port.

[0057] In one embodiment, the device is configured to activate the pump when predetermined cleaning conditions are met.

[0058] In one embodiment, the cleaning conditions include: receiving a signal sent by a power supply system of the device indicating that it is receiving power from the charger, and / or receiving a signal sent by a radar sensor indicating that the wall of the container is detected, and / or receiving a signal sent by a temperature sensor indicating that a temperature change on the housing has been detected.

[0059] In one embodiment, the urine analysis device is configured to aspirate and purge the cleaning fluid present in the container in the operational configuration.

[0060] In one embodiment, the device includes a radar sensor configured to detect the presence of at least one wall in the vicinity of the device in the operational configuration.

[0061] In one embodiment, the device includes a temperature sensor configured to detect a temperature change at the housing level in the operational configuration.

[0062] In one embodiment, the fluidic circuit includes a liquid sensor configured to detect the presence of liquid in the fluidic circuit in the operational configuration, in response to the activation of the pump.

[0063] This description also relates to a cleaning and loading method implemented by an assembly as defined above, the method comprising the following successive steps, after bringing the assembly from the separate configuration to the operational configuration: - powering the device via the charger, - cleaning the device with the cleaning liquid in the container.

[0064] In one embodiment, cleaning is the cleaning of at least a part of the outer wall of the housing.

[0065] In one embodiment, cleaning is the cleaning of the fluidic circuit.

[0066] In one embodiment, the cleaning includes: activating the pump to circulate cleaning fluid through the fluid circuit.

[0067] In one embodiment, the pump operates using energy received from the wireless charger.

[0068] In one embodiment, the cleaning method includes a cleaning phase during which: - The device receives energy from the charger to power, among other things, the pump. - The pump is activated, so that liquid is drawn through the collection port.

[0069] This description also relates to a urine analysis device comprising: - a case, - a fluid circuit housed inside the casing, comprising a collection port, a drainage port and a pump configured to circulate urine through the urine analysis device, - a power supply system configured to supply power to the pump, the power supply system being rechargeable by an induction charger, in which the urine analysis device is configured to selectively be: in urine analysis configuration during which the fluid circuit is configured to inject urine onto a urine reagent, or in a cleaning configuration during which the collection port is connected to the drainage port, in which the fluidic circuit is configured, in the cleaning configuration, to circulate the fluid collected by the collection port directly to the drainage port, in which the device is configured to: - detect when the power supply system is in contact with a wireless charger and, - In response to the detection, put the device into cleaning mode. Figure presentation

[0070] Other features, details and advantages will become apparent from reading the detailed description below and from analyzing the accompanying drawings, in which: - [Fig. 1]: [Fig. 1] shows a schematic and simplified representation of a urine analysis device installed in a toilet bowl, - [Fig. 2]: [Fig. 2] shows an exploded view of the urine analysis device, in which the measuring station and the cartridge are visible, - [Fig. 3]: [Fig. 3] shows a detailed view of a cartridge according to an embodiment in cooperation with an actuator of the measuring station, - [Fig. 4]: [Fig. 4] shows a cross-sectional view of a cartridge and a measuring station according to an embodiment, at the location of an optical analyzer of the measuring station, - [Fig. 5]: [Fig. 5] shows a side view of the urine analysis device with a mounting arm, - [Fig. 6] : the [Fig.6] presents a perspective view of a cleaning station according to this description, - [Fig.7]: [Fig.7] presents a vertical cross-sectional view of the cleaning station, in separate configuration (a) without an inserted urine analysis device and in operational configuration (b) with an inserted urine analysis device, - [Fig.8]: [Fig.8] presents a horizontal cross-sectional view of the cleaning station, in separate configuration (a) without an inserted urine analysis device and in operational configuration (b) with an inserted urine analysis device, - [Fig.9]: [Fig.9] presents a perspective view of a cover of the cleaning station, - [Fig.10]: [Fig.10] presents a perspective view of an assembly in operational position, with the device and the mounting arm inserted in the cleaning station, - [Fig.11]: [Fig. 11] presents a life in perspective of another embodiment of the cleaning station cover, . - [Fig. 12]: [Fig. 12] shows a front view of an assembly in a separate configuration, with the device attached to the lid away from the cleaning station, - [Fig. 13]: [Fig. 13] shows a perspective view of another embodiment of the cleaning station (a) and a vertical cross-sectional view of this cleaning station (b), - [Fig. 14]: [Fig. 14] presents a perspective view of the assembly in operational configuration, with the cleaning station of [Fig. 13] and the urine analysis device inserted into the cleaning station, - [Fig. 15]: [Fig. 15] presents a side view of another embodiment of an assembly in its operational configuration, in the toilet bowl, - [Fig. 16]: [Fig. 16] schematically presents a view of the components of the device according to one embodiment of the description, as well as its ecosystem. Detailed description

[0071] The present description presents various examples of a urine analysis device comprising a station and a cartridge as disclosed in documents WO2021175909, WO2021175944, WO2023036805, WO2023036806, WO2023036808, WO2023036809.

[0072] The following paragraphs explain the general principle of a urine analysis device, but all the details of the WO documents in the preceding paragraph are applicable. General shape of the case

[0073] Figure 1 schematically illustrates an analysis device 100 (also referred to hereafter as "device 100") for urine analysis installed in the toilet 102. The toilet 102 generally comprises a water tank 104, a bowl 106, a seat 108, and a seat cover 110. The analysis device 100 is configured to be placed entirely within the toilet bowl. "Within the bowl" means "placed within the internal volume defined by the bowl." The analysis device 100 is removably positioned within the toilet 102. For example, the analysis device 100 can be easily removed from the toilet to replace a cartridge and then replaced in the toilet 102. The analysis device 100 is placed on an internal wall 112 of the toilet bowl 106.The analysis device 100 is positioned so that it is generally under the stream of urine of a user, so that when a user urinates (usually in a seated position), the urine comes into contact with the analysis device 100. The analysis device 100 can communicate remotely with a remote entity, such as a smartphone 114 or a server 116.

[0074] As illustrated in more detail in [Fig. 2], the analysis device 100 may include a measuring station 200 and a cartridge 202, removably mounted on The measuring station 200. The cartridge 202 contains a reagent suitable for reacting with urine (also called a "urine reagent"). Alternatively, the measuring station 200 includes the urine reagent directly without any removable parts. Alternatively, the measuring station 200 can be refilled by pouring in more reagent.

[0075] The measuring station 200 may include a housing 204 which may comprise two shells, in particular a front shell 206 and a rear shell 208. The front shell 206 and the rear shell 208 may cooperate with each other via a fastening mechanism 216, in a plane normal to the X-axis. The front shell 206 and the rear shell 208 may be assembled reversibly, for example by screwing or clipping. In one embodiment, the front shell 206 and the rear shell 208 may be assembled permanently, for example by gluing, clipping, magnetizing, or ultrasonic welding. Of course, other fastening means may be used to assemble the two shells.

[0076] In particular, as illustrated in [Fig. 2], the front shell 206 and the rear shell 208 are screwed together. An internal portion of the front shell 206 includes a thread. The thread in the front shell 206 is designed to cooperate with a complementary thread in the rear shell 208. This allows for easy removal of the housing 204 to access the test assembly inside the housing.

[0077] A seal may be present between the front shell 206 and the rear shell 208. Thus, the housing 204 is watertight. Only the collection and drainage ports connect the exterior and interior of the housing 204, as described in more detail below.

[0078] As can be seen in the figures, the housing 204 can have an overall external shape of a circular pebble. In other words, the housing 204 has a spheroidal shape. The X-axis is the centerline of the housing. Advantageously, the front shell 206 can be substantially rotationally symmetrical, giving the device an aerodynamic appearance once installed. The housing 204 serves as a urine collector.

[0079] The housing 204 comprises a front face 220 for receiving a stream of urine directly from a user urinating on the toilet and a rear face 222 opposite the front face 220. As illustrated in [Fig. 2], the front face 220 can be arranged on the front shell 206 and the rear face 222 can be arranged on the rear shell 208. The front face 220 is oriented towards the inside of the bowl 106. The front face 220 is therefore intended to receive urine when the user urinates while sitting on the toilet 102. As shown in Figures 5 and 6, the rear face 222 faces the inner wall 112 of the bowl 106. For the purposes of this description, an object facing the bowl wall is understood to mean an object facing the bowl wall nearest to the object in question, and not the wall of the bowl opposite the other side of the internal volume of the bowl.

[0080] The front face 220 and the rear face 222 each have a curved edge 210. The respective curved edges 210 of the front and rear faces meet at an equatorial junction zone. Thus, the outer surface of the housing 204, consisting of the front face 220 and the rear face 222, is defined by curved lines and forms a generally convex object.

[0081] The outer surface of the front face 220 can be smooth. In other words, the front face 220 is free of ridges or grooves. Thus, the urine flow coming into contact with the front face 220 adheres to and spreads across the front face 220. The front face 220 can be substantially rotationally symmetrical about the X-axis.

[0082] The outer surface of the housing 204 can also be white or light-colored. The color of the outer surface can be similar to that of the toilet, which increases the discretion of the device.

[0083] The casing 204 can have a diameter, measured in the direction orthogonal to the X-axis, of between 50 mm and 150 mm. The casing 204 can have a thickness, measured in the direction of the X-axis, of between 15 mm and 50 mm. Thus, the casing 204 is compact enough to be entirely housed in the toilet bowl. The urine analysis device 100 is discreet. Furthermore, the casing 204 is large enough to consistently come into contact with the urine collected in the bowl. The user can then urinate in the toilet without worrying about the urine analysis device, or alternatively, simply aim.

[0084] According to another aspect, in one embodiment, the housing 204 has a general form factor such that the ratio between the thickness and the diameter is between 0.2 and 0.5, and even preferably between 0.3 and 0.4. Such proportions are reminiscent of a natural pebble and give the device a soothing appearance.

[0085] Preferably, the housing 204 is made of a hydrophilic material. For example, the material of the housing 204 may be: a ceramic, a polyamide (PA), a silicone, or a hydrophilic polymer. The outer surface of the housing 204 may also be treated with a hydrophilic surface treatment, for example, Aculon's acuWet®, a hydrophilic polymer, or Arkema's Pebax®. Fluidic circuit

[0086] A fluidic circuit 230 is present inside the housing 204 and configured to perform an analysis of the collected urine. The measuring station 200 includes an annular compartment 212, located inside the housing 204, arranged around an axis of rotation X. The annular compartment 212 is configured to receive at least partially the cartridge 202, which is rotatably mounted around the axis of rotation X (once in position within the annular compartment 212). The cartridge 202 includes a plurality of test supports, each of which includes at least one urinary reagent, for example, a dry reagent, the plurality of test supports being arranged along a a circle or an arc of a circle around the axis of rotation X. In one embodiment, the test supports are test strips. The test supports can be enclosed, for example individually, in a chamber.

[0087] The annular compartment 212 typically extends over 360° and forms a groove configured to receive at least partially the cartridge 202.

[0088] The measuring station 200 includes a collection port 218, located for example on the rear shell 208. The collection port 218 is configured to collect the urine flowing onto the surface of the housing 204. The measuring station 200 also includes a drainage port 530, visible in [Fig. 5], configured to drain the collected liquid out of the device 100.

[0089] The fluidic circuit 230 may include a pump 780 (shown schematically in [Fig. 7]), an injector, and an analyzer 400. In a collection configuration, the pump 780 draws the fluid, in particular urine, from the collection port 218. Then, in an injection configuration, the injector injects the urine onto one or more test media of the cartridge, and the analyzer obtains certain property values ​​(e.g., physical / chemical properties, such as color) of the test media after they have come into contact with the urine. In one case, the analyzer is an optical analyzer configured to analyze the optical properties of the test media. The injector and the cartridge may move relative to each other so that the injector can open (e.g., pierce) the chamber, for example, using a needle or a needle-like device.

[0090] Figure 3 shows an exploded view of the cartridge 202. The cartridge 202 includes at least one test holder 301, in particular several test holders 301 configured to receive urine from the injector. Each test holder 301 contains a urine reagent that reacts specifically upon contact with urine. The cartridge 202 includes a rotating support 300, configured to be driven in rotation by the measuring station 200. During normal use of the cartridge 202 and the device 100, the test holders 301 remain fixed to the rotating support and do not move relative to it.

[0091] In one embodiment, the rotating support 300 has a right circular cylinder shape, at least 80% of a hollow cylinder shape, extending annularly around an axis which, when the cartridge 202 is mounted in the measuring station 200, is the axis of rotation X. Each test support 301 can be a test strip. The rotating support 300 can comprise an annular portion 302 and a cylindrical portion 304, which extends from an outer radial end of the annular portion 302. The cylindrical portion 304, when in use, is housed inside the annular compartment 212. The test supports 301 are positioned along the cylindrical portion 304 so as to be able to scroll selectively and / or successively in front of the injector and the analyzer. For example, the test supports 301 are part of a support 308, which comprises several chambers 310, separated from each other along a perimeter around the X-axis. At least one test strip is received in a chamber 310.

[0092] The chambers 310 are arranged side by side in the form of a right circular cylinder with a circumference of at least 80% of the circle. To allow light to pass through, the support 308 includes at least one opening 312 per chamber 310 (shown in the upper left zoom where the rotating support is shown as transparent). The chambers 310 are all equidistant from the axis of rotation X, so that the injector can selectively inject urine once the desired chamber is positioned at the desired location facing the injector. The injector can move to the chamber 310 and pierce a operculum 410 closing the chamber 310 (visible in [Fig. 4]). In one embodiment, the operculum 410 is transparent or translucent to allow light to pass into the chamber and / or to perform optical analysis of the reagent, thus enabling analysis of the result of the reaction of the reagent with the urine.A drain port 314 is provided in the rotating support 300 to allow urine to be evacuated from the injector to the outside of the device 100, via the drainage port 530 located on the housing 204.

[0093] The annular part 302 of the rotating support 300 remains outside the annular compartment 212 to reinforce the cylindrical part and / or drive the cartridge 202 in rotation. For this purpose, the annular part 302 may include a mechanical coupling 306, which cooperates with an actuator 330 of the measuring station 200.

[0094] The dimensions of the cartridge 202 are disclosed in documents WO'909, WO'933 and WO'80X. The maximum dimension of the device 100 transverse to the axis of rotation X is less than 15 cm, or even less than 10 cm. The maximum dimension of the device along the axis of rotation X is less than 5 cm.

[0095] Figure 4 shows in more detail the interaction between the cartridge 202 and the measuring station 200 during or after the activation of the injector. The analyzer 400 comprises at least one light source 402, 404 (for example, two light sources; in particular, four light sources) and at least one optical sensor 406. The light travels from the light source 602, 604 to the optical sensor 606 through the cartridge 202 and in particular the cylindrical portion 304 and the test support 301.

[0096] In one embodiment, the analyzer 400 is configured to measure the absorbance of a portion of the test supports 301 (in particular the test line and / or the control line of a strip, as will be explained later). The absorbance is detected by the light source (for example, an LED) which can pass light from light passes through the band, and the optical sensor receives the spectrum with about ten wavelengths.

[0097] In one embodiment, the light sensor is a camera capable of detecting a color change, in particular a change in color intensity, of a portion of the test media 301 (in particular the test line and / or the control line of a strip as will be explained below). The camera can detect a color in RGB values, for example.

[0098] The injector includes an injection tip 412 (for example, a needle), which can be moved between a standby position SP and an injection position IP. In the standby position SP, the injection tip 412 is outside the cartridge 202 (in its innermost radial position), so that the cartridge 202 can rotate freely in the annular compartment 212. In an injection position IP, the injection tip 412 has pierced the orifice 410 to access the interior of the chamber 310 and can inject a small amount of urine onto the reagent in the test support 301.

[0099] In the SP position, the injector is located radially inside the annular chamber. This maximizes the radius of the annular compartment while minimizing the size of the measuring station 200.

[0100] In one embodiment, the injector can be moved into a collection configuration in which the injection end 412 is placed at the collection port 218 to allow the collection of a liquid.

[0101] In one embodiment, the injector can be moved into a purge configuration in which the injection end 412 is placed at the level of the drain port 530 to allow purging of the liquid.

[0102] Reference is made to documents FR2410306, FR2410307 and FR2410308 (registration numbers) for more details on the operation of the injector. Collection point

[0103] The collection port 218 is configured to receive a liquid present opposite the port. In particular, the collection port 218 is configured to receive urine that flows by gravity onto the outer surface of the housing 204 when the device is positioned in a toilet. The urine is collected directly on the front face 220 and the rear face 222 of the housing 204. As will be explained in more detail later, the collection port 218 also allows for the collection of a cleaning fluid.

[0104] The collection orifice 218 is an opening configured to collect the liquid, allowing the liquid to enter the urine analysis device. The collection orifice 218 is generally circular, with a diameter preferably between 0.3 mm and 2 mm. The diameter of the collection orifice can be chosen to maximize the volume of urine collected on the outer surface of the housing 204.

[0105] As can be seen in the figures, the collection port 218 is located on the rear face 222. Thus, the collection port 218 faces the inner wall 112 of the toilet when the urine analysis device 100 is positioned in the toilet. This position allows the collection port 218 to be hidden from the user's view by the front face 220 of the housing. The front face 220 visible to the user resembles a simple, uniform pebble, as already mentioned, without any singular points or holes. It should also be noted that this position prevents the introduction of contaminants or elements that could obstruct the fluid circuit 230.

[0106] The collection orifice 218 is located on a lower portion of the rear face 222. "On a lower portion of the rear face" means "on the last quarter of the face along the Z direction from the lower end of the housing 204." The lower end faces the bottom of the basin 106 when the housing 204 is positioned in the basin. The lower end is located opposite the apex 550. This position corresponds to a normal operating position. This position allows urine to be collected by gravity over most of the outer surface of the housing 204.

[0107] In particular, the distance separating the collection orifice 218 from a lower edge of the housing 204 is less than 40 mm, preferably less than 20 mm. As illustrated, according to a particular embodiment, the collection orifice 218 is located a few millimeters above the lower edge of the housing 204. Alternatively, the collection orifice 218 may be located on the lower edge, the lower edge being defined when the device 100 is positioned for use in the toilet.

[0108] The collection orifice 218 can be covered by a mesh filter. The mesh filter is, for example, oblong in shape and covers the collection orifice 218. The average mesh size of the filter is, for example, 20 microns. The mesh filter prevents the introduction of contaminants or elements that could obstruct the fluid circuit 230 and filters the urine received in the collection orifice 218. The filter mesh can be made of metal. Power supply system

[0109] The urine analysis device 100 includes a power supply system 280 configured to provide power to the device 100, and in particular to the electronic components of the device 100. The power supply system 280 can further be configured to store energy.

[0110] The power supply system 280 may include a rechargeable battery. The rechargeable battery is configured to store chemical energy and to convert this chemical energy into electrical energy. The battery is configured to be recharged multiple times, i.e., by reversing the electrochemical reaction to recharge the chemical energy stored in the battery. To this end, the device 100 is configured to cooperate with a station charger as explained below. The battery can be, for example, a Lithium Ion battery or a Lithium Polymer battery.

[0111] As will be explained in more detail later, the power supply system 280 can be configured to power the electronic components of the device 100, including the pump 780, in parallel with the electrical charging of the rechargeable battery by a charger.

[0112] The urine analysis device 100 may include an indicator light 290, in particular a charge indicator light. The indicator light 290 is configured to provide visual information regarding the battery charge status. The indicator light 290 is, for example, an LED configured to illuminate green when the battery is at least 25% charged, orange when the battery is at least 5% charged, and red when the battery is below 5% charged. Temperature sensor

[0113] The device 100 may include a temperature sensor 560 configured to detect a temperature change at the housing 204. The temperature sensor 560 is mounted in the housing 204, for example at the collection port 218.

[0114] For example, when urine at a temperature above 35°C flows onto the housing, the temperature sensor 560 is configured to detect a sudden temperature increase. The temperature sensor 560 is then configured to associate this sudden temperature increase with the presence of a stream of urine on the housing 204, and, for example, trigger the activation of the pump 780.

[0115] In another example explained in more detail later, when the device 100 is placed in a cleaning liquid in a container, the temperature sensor 560 is configured to detect a temperature change on the housing, in particular a drop in temperature, and send a signal to a control circuitry of the device 100. Radar sensor

[0116] The device 100 may include a radar sensor 570 configured to detect the presence of bodies in the vicinity of the device 100. To this end, the radar sensor 570 is configured to send a radar signal and to receive at least one reflected radar signal, the reflections being caused by the body or bodies in the vicinity. Processing the received signals makes it possible to determine the presence and characterize these bodies. For example, the radar sensor 570 is configured to detect a stream of urine and determine at least one property relating to this stream of urine. Alternatively or in addition, the radar sensor 570 is configured to detect the genitals of a toilet user, in particular for the purpose of identifying them.

[0117] Alternatively or in addition, the radar sensor 570 is configured to detect at least one wall in the vicinity of the device 100, particularly opposite the front face 220 of the housing 204. Advantageously, the radar sensor 570 is configured to detect that the device 100 is surrounded by a wall located nearby. As will be explained later, the radar sensor 570 thus makes it possible to detect that the device 100 has been placed in a container.

[0118] Reference is made to documents FR3140448 (publication number), FR2403439 and FR2405542 (registration numbers) which describe the implementation of a radar sensor in the urine analysis device. Liquid sensor

[0119] The device 100 may include a liquid sensor 580 configured to detect the presence of liquid in the fluid circuit 230, particularly in response to the activation of the pump 780. The liquid sensor 580 may, for example, consist of at least two probes in two positions separated from the fluid circuit. Each probe is configured, in particular, to identify the state (liquid, gaseous, or mixed liquid / gas) of the fluid flowing past the probe. The liquid sensor 580 may further be configured to determine the flow rate of the fluid pumped through the collection port 218.

[0120] Reference is made to document WO2022184984 which describes in more detail the operation of such a liquid sensor 580. Fixing

[0121] The housing 204 is intended to be placed on the inner wall 112 of the toilet bowl 106. The housing 204 is secured by a mounting arm 500. The mounting arm 500 is configured to secure the urine analysis device 100 in the toilet bowl 106. The mounting arm 500 is typically made of a single material, for example plastic, by molding.

[0122] The analysis device 100 includes an attachment element 510 disposed on the rear face 222 of the housing. The attachment element 510 is configured to cooperate with a mounting arm 500.

[0123] The attachment element 510 is located at a median plane XZ of the housing 204. In other words, the attachment element 510 is located at a vertical plane of symmetry of the housing 204.

[0124] As can be seen in the figures, the attachment element 510 can be arranged on the upper part of the housing 204. By "on the upper part of the housing," we mean "in the first quarter along the Z direction from the top of the housing 204." In particular, the attachment element 510 is arranged between 15% and 25% of the rear face 222 from a top 550 of the housing 204.

[0125] The attachment element 510 can be a lug. The lug protrudes from the rear face 222 of the housing 204.

[0126] Alternatively, the attachment element 510 is a magnet suitable for cooperating with another magnet placed on the fixing arm 500.

[0127] Alternatively, the attachment element 510 includes an adhesive part suitable for cooperating with the fixing arm 500.

[0128] According to one embodiment, the mounting arm 500 can be removable. In other words, the user can separate the mounting arm 500 from the attachment element 510 and thus from the housing. The mounting arm 500 can therefore be easily replaced, and a different type of mounting arm can, for example, be used.

[0129] The mounting arm 500 can be flexible. In other words, the mounting arm 500 can be deformed by the user or by the gravity of the device 100 placed in the toilet. This allows for better adaptation of the mounting arm to different toilet shapes and ensures that the housing 204 touches the inner wall 112 of the toilet.

[0130] The mounting arm 500 can extend to a height along the Z-axis of between 5 cm and 15 cm in a resting configuration (i.e., neither stretched nor compressed). The mounting arm 500 has, for example, a width along the Y-axis of between 1 cm and 2 cm. The mounting arm 500 has, for example, a thickness of between 1 mm and 2 mm.

[0131] The collection orifice 218 and the attachment element 510 (or the attachment arm 500) can be arranged on either side of the urine analysis device 100, so that when the device 100 is held via the attachment element 510, the latter is in the upper part and the collection orifice 218 is in the lower part (relative to the vertical defined by gravity). STATION

[0132] A cleaning station 600 for a urine analysis device 100 is shown in [Fig. 6]. The cleaning station 600 is configured to receive the urine analysis device 100. The cleaning station 600, together with the urine analysis device 100, forms a unit 700.

[0133] The cleaning station 600 includes a container 610 and a charger 620. The container 610 is configured to receive a cleaning liquid 710. The container 610 is further dimensioned to receive at least part of the urine analysis device 100, so that the urine analysis device 100 is in contact with the cleaning liquid 710 when it is inserted into the container 610.

[0134] The charger 620 is configured to supply power to the urine analysis device 100 when the urine analysis device 100 is received at least partially in the container 610.

[0135] The 700 assembly is configured to switch from an operational configuration to a separate configuration, and vice versa.

[0136] In the operational configuration, the urine analysis device 100 is received in the container 610, as shown in Figures 7 (b), 8 (b), 10, 14 and 15.

[0137] In one embodiment, shown in Figures 7 to 14, the urine analysis device 100 is positioned away from the toilet bowl 106 in the operational configuration. Alternatively, shown in [Fig. 15], the urine analysis device 100 is positioned in the toilet bowl 106 in the operational configuration.

[0138] In the separate configuration, the urine analysis device 100 is away from the container 610. In particular, the device 100 is configured to be placed entirely in the toilet bowl 106 in the separate configuration, as shown in [Fig.1].

[0139] In [Fig. 12], device 100 is in transition between the operational configuration and the separate configuration.

[0140] Thus, the container 610 is configured to removably receive the urine analysis device 100, between the separate configuration and the operational configuration of the assembly 700. In the embodiments shown in figures 7 to 14, the device 100 is inserted into the station 200 to switch to the operational configuration.

[0141] In the embodiment shown in [Fig. 15], the station 200 is inserted around the device 100 in the basin 106 to enter the operational configuration. The mounting arm 500 then protrudes from the container 610. The station 200 may then include a means 1502 for attaching the container 610 to the basin 106, in particular one or more arms or a magnet. Alternatively, the container 610 rests directly on the housing 204 and on the mounting arm 500 of the device, in particular via the lid 900, similarly to the embodiment shown in [Fig. 10]. The station 200 may then not include a means 1502 for attaching it to the basin 106.

[0142] The cleaning station 600 is designed to clean the urine analysis device 100. This cleaning primarily involves cleaning the fluid circuit 230. To this end, cleaning is carried out by introducing cleaning fluid 710 into the fluid circuit 230 via the collection port 218 by activating the pump 780. Container shape

[0143] A direction ABC reference frame, with three axes A, B, C orthogonal in pairs, is used to describe the shape of the container.

[0144] The container 610 has a hollow shape. In particular, the container 610 includes a wall 630 which defines an internal volume 640. The internal volume 640 is accessible via an opening 650. The container 610 includes a bottom 740, opposite the opening 650, visible in [Fig.7].

[0145] In one embodiment, visible in [Fig.8], the wall 630 can be a double partition in order to stiffen the container 610, with an external partition 630a outside the container 610 and an internal partition 630b inside the container 610 defining the internal volume 640. In an alternative not shown, the wall 630 can consist of a single partition.

[0146] In one embodiment, as shown in Figures 6 to 10, the container 610 has the shape of a truncated cone. In particular, the base of the cone (i.e., the part in contact with the support on which the cleaning station 600 is placed) has the largest cross-section. This shape improves the stability of the cleaning station 600, especially when the internal volume 640 is filled with liquid. The base of the container is, for example, an oval or, more generally, a rounded convex shape (i.e., a circle, an ovoid, an ellipse, etc.). In an alternative not shown, the base can be any geometric shape such as a square, a rectangle, a triangle, etc.

[0147] In another embodiment, as shown in Figures 12 to 14, the container 610 may have a straight cylindrical shape. The base of the container is, for example, oval, as shown in [Fig. 12]. Alternatively, the base of the container is, for example, round, as shown in Figures 13 and 14. In an alternative not shown, the base may be of any geometric shape such as a square, a rectangle, a triangle, etc.

[0148] In another embodiment, as shown in [Fig.15], the container 610 is of complementary shape to the internal surface of the bowl 106. In particular, the container 610 may have an ovoid shape.

[0149] In one embodiment, as shown in Figures 6 to 12 and 15, the container 610 is taller than it is wide. In other words, the container extends over a height along axis C greater than its transverse dimensions along axes A or B. In particular, the height of the container along axis C is, for example, between 10 cm and 30 cm. The length of the container along axis B is, for example, between 5 cm and 20 cm. The width of the container along axis A is, for example, between 3 cm and 10 cm.

[0150] Alternatively, as shown in Figures 13 and 14, the container 610 is wider than it is tall. In other words, the container's height along axis C is less than its transverse dimensions along axes A or B. This shape improves the stability of the cleaning station 600, particularly when the internal volume 640 is filled with liquid. Specifically, the height of the container along axis C is, for example, between 3 cm and 10 cm. The length of the container along axis B is, for example, between 10 cm and 20 cm. The width of the container along axis A is, for example, between 10 cm and 20 cm.

[0151] In one embodiment, the urine analysis device 100 has a shorter dimension along axis A. The container 610 is configured to receive the device 100 such that axis A extends horizontally, parallel to axis B of the container. The device 100 is therefore received vertically along axis C in the container 610.

[0152] In particular, the width of the container 610 along axis A is substantially equal to the shortest dimension of the device 100. Only a functional gap is present between the wall 630 and the housing 204 of the device 100 to allow the insertion of the device 100 into the container 610. Thus, the device 610 is supported laterally by the wall 630 in order to wedge the device 100 in the container.

[0153] Alternatively, as shown in [Fig.14], the container 610 is configured to receive the device 100 so that the axis A extends in a direction forming an angle α between 20° and 70°, for example about 45° with the horizontal direction X. In other words, the device 100 is received at an angle in the container 610, with the collection orifice 218 placed at the bottom.

[0154] The container 610 is designed to form a clearance volume 760 around the collection orifice 218. This clearance volume 760 is defined in particular by the fact that the collection orifice 218 is away from the wall 630 and / or the bottom 740, in order to have a sufficient volume of cleaning liquid in the immediate vicinity of the collection orifice 218 for its aspiration.

[0155] The container 610 may include at least one projection 720, 722, 1300, 1500 configured to support the urine analysis device 100 in the operational configuration.

[0156] In one embodiment shown in particular in Figures 7 and 8, at least one projection 720 forms a cradle for holding the urine analysis device 100 in the cleaning station in its operational configuration. Each cradle is specifically designed to define the clearance volume 760 in the immediate vicinity of the collection orifice 218.

[0157] In particular, at least one projection 720 is arranged in the lower part of the container 610. In other words, the projection 720 is arranged on the bottom 740 or in the first quarter along the axis C from the bottom 740 of the container.

[0158] Advantageously, the device 100 is supported only by the projection(s) 720 in the container 610. In other words, the housing 204 is in contact only with the projections 720 and is not in contact with the rest of the wall 630.

[0159] In one embodiment shown in [Fig. 7], the container 610 comprises at least two projections 720 arranged near the bottom 740 of the container 160. According to one embodiment, the two projections 720 are arranged symmetrically on either side of the container along axis B. As will be explained in more detail later, The projections 720 allow the collection orifice 218 to remain free and not obstructed to allow the passage of the cleaning liquid 710. In particular, the projections 720 contribute to defining the clearance volume 760.

[0160] Alternatively or in addition, the container 610 includes at least one lateral projection 722 projecting substantially horizontally from the wall 630. The lateral projection(s) 720 allow the device 100 to be wedged laterally in the container 610 and held in position.

[0161] In an embodiment shown in [Fig. 13], the container 610 comprises at least one projection 1300 in the form of a promontory configured to support the device 100. In particular, the projection 1300 comprises a receiving surface 1302 configured to be in contact with one of the two faces 220, 222 of the housing 204 in order to support the device 100. The receiving surface 1302 extends along a plane forming an angle [3] with the horizontal direction between 0° and 70°. The receiving surface 1302 advantageously has a shape complementary to the face 220, 222 of the housing 204 with which it is in contact. In particular, the projection 720 may include at least one retaining element 1304 configured to cooperate with the face 220, 222 of the housing so as to hold it in position. As shown in [Fig.

[13] , the retaining element 1304 is, for example, a notch of complementary shape with at least part of the device 100, in particular with the attachment element 510 of the housing 204.

[0162] Similar to the container 610 of [Fig.7], the container 610 of [Fig. 13] defines a clearance volume 1306 within which the collection orifice 218 is located when the device 100 is in the operational position.

[0163] In the embodiments of figures 7 and 13, due to the positioning of the collection orifice 218 on the housing 204 and the positioning of the device 100 in the cleaning station 600, the clearance volume 1306 is located at the level of the bottom of the container 610. Lid

[0164] The cleaning station 600 may include a lid 900 configured to close at least partially the internal volume 640 of the container 610. In other words, the lid 900 is configured to obstruct at least partially the opening 650 of the internal volume 640.

[0165] The lid 900 is configured to move from an open to a closed position, and vice versa. In the open position, the lid 900 is away from the opening 650. The open position allows the device 100 to be easily inserted into or removed from the container 610. In the closed position, the lid 900 mechanically cooperates with the container 610 to at least partially close it. the opening 650. The closed configuration allows the device 100 to be kept inside the container 610.

[0166] The cover 900 is, for example, made of a plastic material. The cover may be at least partially transparent or translucent, so that the user can see at least partially through the device 100 through the cover 900 when the assembly is in its operational configuration and the cover 900 is in its closed configuration.

[0167] The lid 900 may have a shape substantially complementary to the opening 650. In one embodiment, the lid 900 may be clipped into the opening 650. Alternatively, the lid 900 may be magnetically attached to the container 610. Alternatively, the lid 900 may be hinged to the container 610.

[0168] With reference to [Fig. 9], the lid 900 may include at least one wedge 910 projecting from the lid 900 into the internal volume 640 of the container 610 in the closed configuration. Each wedge 910 is configured to hold the device 100 in position within the container 610. In particular, each wedge 910 is dimensioned to be in contact with the housing 204 in the closed configuration of the lid 900 (a slight functional clearance may be provided). Each wedge 910 may include an end with a shape complementary to the housing 204. In the operational configuration of the assembly and in the closed configuration of the lid, the device 100 is then held in position by at least one projection 720 and at least one wedge 910. As seen in [Fig. 9], the lid may include two wedges 910.

[0169] In an alternative shown in [Fig. 11], the lid 900 may include a hook 1110 configured to cooperate with the attachment element 510 of the urine analysis device 100. The hook 1110 protrudes towards the internal volume 640 in the closed configuration of the lid 900. When the attachment element 510 is a lug, the hook may include an opening 1120 suitable for receiving the lug. Alternatively, when the attachment element 510 is a magnet, the hook 110 may include a complementary magnet for binding to the magnet of the device 100. As shown in [Fig. 12], the device 100 can thus be attached to the lid 900 in the open configuration of the lid and in the separated configuration of the assembly.The device 100 can then be easily inserted into the container 610 at the same time as the lid 900 is placed on the opening 650 so that the lid 900 goes into the closed configuration at the same time as the assembly goes into the operational configuration.

[0170] In one embodiment, as shown in [Fig. 9], the cover 900 may include at least one through opening 920. The through opening 920 is The device is designed to be traversed by a mounting arm 500 of the urine analysis device 100 when the assembly 700 is in its operational configuration and the lid 900 is closed, as shown in [Fig. 10]. The mounting arm 500 thus protrudes at least partially from the container 610 in the operational configuration. The container 610 may include a stud 670 protruding from the rim of the opening 650. The through-opening 920 is complementary in shape to the stud 670. The stud 670 helps, in particular, to orient the user in the direction in which to close the lid 900 over the opening 650.

[0171] The through-opening 920 eliminates the need to remove the retaining arm 500 when the device 100 is placed in the container 100. This allows the user to easily manipulate the device 100 by grasping the arm to insert or remove it from the container 610. Since the retaining arm 500 generally does not receive urine in the toilet bowl, it is better suited for user gripping. This allows the user to move the device 100 from the toilet to the cleaning station without touching the housing 204, which may have received urine. Furthermore, the proximal part of the retaining arm 500 (the part closest to the housing 204) can thus be washed in the cleaning station 600.

[0172] Alternatively, as shown in [Fig. 1 1], the lid 900 does not have an opening. In other words, the lid 900 is sized to completely obstruct the opening 650 of the container 610 in the closed configuration.

[0173] Alternatively or in addition, the cover 900 may include a thinner area 930. The thinner area 900 allows the indicator light 290 of the device 100, in particular the battery charge indicator 280 of the device 100, to be visible to the user through the cover 900. The thinner area 900 may, for example, be less than 2 mm thick. The thinner area 900 may, for example, be in the shape of a circle with a diameter of less than 1 cm. CLEANING FUNCTION - station side

[0174] As explained above, the container 610 is dimensioned to receive at least part of the urine analysis device 100, so that the urine analysis device 100 is in contact with the cleaning liquid 710 when inserted into the container 610.

[0175] In particular, as seen in [Fig.7] (b), the container 610 and at least one projection 720, 722, 1300, 1500 are designed so that the collection orifice 218 is immersed in the cleaning liquid 710 in the operational configuration.

[0176] In particular, the container 610 is further dimensioned, notably with at least one projection 720, 722, 1300, to define the clearance volume 760. This volume is defined in particular by the fact that the collection orifice 218 is offset from the wall 630 and / or the bottom 740 of the container 610. By "apart", it is meant at least 3 mm, in particular at least 5 mm, between the collection orifice 218 and the furthest point between the wall 630 and the bottom 740. As will be explained below, this allows the unimpeded pumping of the cleaning fluid 710 by the device 100 in order to allow its internal cleaning, in particular the cleaning of the fluid circuit 230.

[0177] In one embodiment, the container 610 is sized so that the housing 204 is completely immersed in the cleaning fluid 710 in its operational configuration. The entire exterior of the housing 204 can thus be passively cleaned by contact with the cleaning fluid 710. Indeed, the housing 204 is regularly in contact with urine, which can soil it and cause hygiene problems. The cleaning station 600 therefore allows for at least partial passive cleaning of the exterior of the housing 204 of the device 100.

[0178] In one embodiment, the cleaning station 600 lacks means for circulating the cleaning fluid 710 in the container 610. The cleaning station 600 is thus a passive cleaning system, with the device 100 being the element that actively circulates the cleaning fluid 710. The movement of the fluid by the device 100 also promotes the cleaning of the exterior of the housing 204.

[0179] Alternatively or in addition, the cleaning station 600 may include a pump configured to circulate the cleaning fluid 710 in the container 610 and inject the fluid into the device 100. The pump may also simply generate a circulation of cleaning fluid in the container 610 to promote the cleaning of the housing 204.

[0180] To ensure that the user has put in a sufficient quantity of cleaning fluid, the container 610 may include a gauge 750 indicating the recommended volume of cleaning fluid 710 to be poured into the container 610 when the device 100 is not inserted into the container 610. The gauge 750 is, for example, a horizontal mark placed on the wall 630, in particular inside the internal volume 640.

[0181] The cleaning fluid 710 is, in particular, a detergent, for example Tergazyme®. Alternatively, the cleaning fluid is water. The cleaning fluid can be generated by mixing a detergent tablet (solid) with water directly in the container 610. CLEANING FUNCTION - device side

[0182] The device 100 is configured to switch from a urine analysis configuration to a cleaning configuration, and vice versa. In the urine analysis configuration, the device 100 is configured to be placed in the toilet bowl 106, to collect and analyze a user's urine, as shown in [Fig. 1] and explained in detail above.

[0183] The device 100 is configured to switch to the cleaning configuration when it is placed in the container 610, in the operational configuration of the assembly 700. The urine analysis device 100 is then configured to initiate a cleaning phase in which the fluid circuit 230 is in the sampling position. The device 100 is then configured to draw the cleaning fluid 710 from the container 610 through the collection port 218 by means of the pump 780 of the fluid circuit 230. The device 100 is configured to circulate the cleaning fluid 710 through the fluid circuit 230 and to purge the cleaning fluid 710 through the drain port 530. A cleaning phase may include a plurality of successive cycles of drawing and purging.

[0184] In particular, in the cleaning configuration, the fluidic circuit 230 includes in series the collection port 218, the injector and the drainage port 530. The fluidic circuit 230 thus communicates between the collection port 218 and the drainage port 530. During the cleaning phase, the cleaning fluid 710 therefore travels through the fluidic circuit 230, from the collection port 218 to the drainage port 530, via the injector, thus enabling their cleaning.

[0185] Indeed, during the operation of the device 100 in urine analysis configuration, urine circulates repeatedly in the fluid circuit 230. Deposits can then form, potentially leading to partial obstruction of the fluid circuit and / or contamination of subsequent urine samples, thus compromising future analyses. Cleaning the fluid circuit 230 of the device 100 using the cleaning station 600 removes these deposits, thereby increasing the lifespan of the device 100 and improving the reliability of the analyses.

[0186] In one embodiment, the cleaning phase is controlled by a control circuit 590 of the device 100, shown in more detail in [Fig. 16]. The control circuit 590 comprises a processor 1610, a memory 1620, and an I / O (input / output) interface 1630 configured to send and receive data from the control circuit 590. A communication module 1640 may be provided for exchanging data with an external terminal 1650. The communication module 310 may be a wireless module, such as Wi-Fi, Bluetooth, Bluetooth Low Emission, etc. The control circuit 590 may, in particular, communicate with the radar sensor 570, the temperature sensor 560, and / or the liquid sensor 580 to control the cleaning phase.

[0187] The 280 power supply system is configured to supply these components with power.

[0188] Memory 1620 can store instructions which, when executed by processor 1610, implement the method(s) of this description. methods are preferably carried out locally, by the 1610 processor of device 100.

[0189] Device 100 can communicate, using communication module 1640 and a communication network 1660, with an external terminal 1650, such as a mobile terminal 1650a (“smartphone”). Device 100 can also communicate with a server 1650b, either directly via the communication network 1660 or via the external mobile terminal 1650a.

[0190] In particular, the control circuitry 590 is configured to activate the pump 780 when the device 100 is placed in the container 610 in order to draw the cleaning liquid 710 in the cleaning configuration. The control circuitry 590 is configured to control the power supply to the pump 780 from the power supply device 280 of the device 100.

[0191] The cleaning configuration of device 100 can be activated by means of an activation signal sent by the user via an external terminal 1650, for example via a smartphone or a server.

[0192] In one embodiment, the control circuitry 590 is configured to activate the pump 780 when the control circuitry 590 determines that predetermined cleaning conditions are met. The cleaning conditions include, for example, receiving a signal from the power supply system 280 indicating that it is receiving power from the charger 620. Alternatively, or in addition, the cleaning conditions include receiving a signal from the radar sensor 570 indicating that the wall 630 of the container 610 has been detected. Alternatively, or in addition, the cleaning conditions include receiving a signal from the temperature sensor 560 indicating that a temperature change on the housing 204 has been detected, indicating the presence of cleaning fluid 710 in the container 610.Alternatively or in addition, the cleaning conditions include the reception of a signal from the external terminal 1650 (for example, a user triggering a cleaning session).

[0193] In one embodiment, the control circuitry 590 is configured to suspend the operation of the pump 780 when the control circuitry 590 receives a signal from the liquid sensor indicating that the aspirated fluid is gas or a mixed fluid, and not liquid, indicating an absence or lack of cleaning fluid 710 in the container 610. CHARGING FUNCTION - station side

[0194] The charger 620 is configured to power the urine analysis device 100 when the assembly 700 is in the operational configuration. The device 100 can be charged as soon as the device 100 is inserted into the container 610. Alternatively, station 200 may include a user-operable control button to start or stop the charging of device 100.

[0195] The charger 620 is housed at the level of the container 610. In other words, the charger 620 is housed inside the internal volume 640 of the container or the charger 620 is housed between the two partitions forming the wall 630 of the container 610.

[0196] The loader 620 is placed opposite the wall 630 of the container 610. As seen in [Fig.8], the loader 620 can be arranged in the lateral projection 722 formed in the wall 630. The loader 620 is positioned, along the depth of the container 610 along the axis C, at least partially between the bottom 740 of the container 610 and the gauge 750.

[0197] In one embodiment, the charger 620 is a wireless charger, meaning that the charging between the charger 620 and the device 100 is wireless. In other words, there is no physical electrical connection linking the device 100 to the charger 620. The charger 620 is, in particular, an electromagnetic induction charger. Specifically, the charger 620 includes a coil. The inventors observed that wireless charging was possible despite the presence of cleaning fluid in the container and therefore between the wall 630 and the device 100.

[0198] In an alternative not shown, the charger 620 includes a charging port that can be connected to the urine analysis device 100, for example a USB port protruding from the wall 630 into the internal volume 640.

[0199] The cleaning station 600 may include a power connection cable 660 for connecting the charger 620 to a power supply. The cable 660 may, for example, protrude from the bottom of the outside of the container 620. The cable 660 may be detachable, for example via a USB connection.

[0200] Alternatively or in addition, the cleaning station 600 includes a battery configured to power the charger 620. The battery can be recharged via the electrical connection cable 650. Alternatively, the battery is supplied in the form of replaceable batteries. CHARGING FUNCTION - device side

[0201] In one embodiment, the power supply system 280 is powered by the charger 620, whether or not there is cleaning fluid in the container 610. The cleaning station 600 thus functions as a simple charger.

[0202] In one embodiment, the power supply system 280 is configured to be powered by the charger 620 and to simultaneously supply power to the device 100. Thus, the activation of the pump 780 can be powered by energy ultimately supplied by the charger 720 and occur without discharging the battery (and thus without reducing the operating time of the device 100 in the toilet). Furthermore, when the pump's power consumption is less than the charger's power, the The 280 power supply system can charge the battery, despite the cleaning of the fluid circuit by the 780 pump.

[0203] The battery is arranged in the device 100 so as to be positioned opposite the charger 620 in the operational configuration. In particular, the battery is positioned opposite the face of the housing 204 in contact with the lateral projection 720 housing the charger 620.

[0204] When the assembly 700 is in its operational configuration, the indicator light 290 of the device 100 is configured to provide visual information regarding the battery's state of charge. This information can be observed by the user, allowing them to know when the battery is fully charged.

[0205] In one embodiment, the power supply system 280 does not include energy storage means. The energy supplied by the charger 620 is then directly transmitted to the operation of the device 100, in particular to the pump. METHOD

[0206] A method for cleaning device 100 using cleaning station 600 will now be described.

[0207] The assembly 700 is initially in the separate configuration. The urine analysis device 100 is, for example, placed in the user's toilet bowl 106, as shown in [Fig. 1]. The device 100 is then in urine analysis configuration and can regularly perform urine analyses of the user.

[0208] Then, when for example the cartridge 202 is consumed or the case 204 has a dirty visual appearance or when the battery charge level is low, the user can decide to proceed with a cleaning of the device 100.

[0209] The user fills the container 620 with cleaning fluid 710, typically up to the gauge 750.

[0210] In one embodiment, the user then removes the device 100 from the toilet, for example by grasping the retaining arm 500, and inserts the device 100 into the container 620, as shown in [Fig. 10]. Alternatively, the user inserts the container 610 around the device 100 into the toilet bowl 106, as shown in [Fig. 15].

[0211] The device 100 is then at least partially immersed in the cleaning fluid 710. In particular, the collection orifice 218 is immersed in the cleaning fluid 710. The user can further close the container 610 with the lid 900. The assembly 700 then changes from the separated configuration to the operational configuration. The lid 900 changes from the separated configuration to the closed configuration.

[0212] The part of the housing 204 in contact with the cleaning fluid 710, and where applicable, the fixing arm 500 are then passively cleaned.

[0213] The charger 620 supplies the device 100 with power, specifically the power supply system 280. In one embodiment, the charger 620 supplies the device 100 wirelessly, by electromagnetic induction. The power supply system 280 may include a battery, which is then recharged. The user can monitor the battery's charging status via the indicator light 290 on the device 100, visible through the cover 900.

[0214] In parallel or successively, the user sends via an external terminal 1650 an activation signal to the device 100 to switch it from the urine analysis configuration to the cleaning configuration.

[0215] Then, the control circuitry 590 of the device 100 initiates a first cycle of the cleaning phase by activating the pump with the energy supplied by the charger 620 and / or with the battery of the device 100 when the predetermined cleaning conditions are met. The cleaning conditions include, in particular, the receipt of a signal sent by the power supply system 280 indicating that it is receiving energy from the charger 620 and / or the receipt of a signal sent by the radar sensor 570 indicating that the wall 630 of the container 610 has been detected, and / or the receipt of a signal sent by the temperature sensor 560 indicating that a temperature change on the housing 204 has been detected, indicating the presence of cleaning fluid 710 in the container 610.

[0216] The pump then draws the cleaning fluid 710 through the collection port 218. The cleaning fluid 710 circulates and cleans the fluid circuit 230 until it is purged through the drain port 530.

[0217] The control circuitry 590 suspends the operation of the pump if the control circuitry 590 receives a signal from the liquid sensor indicating that the aspirated fluid is gas or a mixed fluid, and not liquid, indicating an absence or lack of cleaning fluid 710 in the container 610.

[0218] The cleaning phase may include several cycles of pumping and draining the cleaning fluid 710. The cleaning phase may stop after a predetermined time, for example between five minutes and five hours, or when the user removes the device 100 from the container 610, for example when the battery charge is complete.

[0219] Cleaning and charging the urine analysis device 100 is therefore carried out in a simple and intuitive manner. The user simply inserts the device 100 into the container 610 so that the charger 620 can supply power to the device 100 and the cleaning fluid 710 cleans the exterior of at least part of the housing 204. The device 100 can also draw in cleaning fluid 710 and circulate it through the fluid circuit 230 for cleaning. The cleaning station 600 can therefore perform exterior and interior cleaning as well as recharging of the device 100. and therefore helps to improve the lifespan and quality of measurements taken by device 100.

Claims

Demands

1. Cleaning station (600) for urine analysis device, the cleaning station (600) comprising: - a container (610) configured to receive a cleaning liquid (710), the container (610) further sized to receive at least part of the urine analysis device (100), so that the urine analysis device (100) is in contact with the cleaning liquid (710), - a charger (620) configured to supply power to the urine analysis device (100) when the urine analysis device (100) is received at least part of it in the container (610).

2. Cleaning station (600) according to claim 1, wherein the urine analysis device (100) includes a rechargeable battery and the charger (620) is configured to electrically charge the battery.

3. Cleaning station (600) according to claim 1 or 2, wherein the charger (620) is a wireless charger, so that the charging between the charger (620) and the urine analysis device (100) is wireless.

4. Cleaning station (600) according to any one of the preceding claims, wherein the container (610) includes at least one projection (720, 722, 1300) configured to support the urine analysis device (100).

5. Cleaning station (600) according to claim 4, wherein the device (100) is supported only by the projection(s) (720, 722, 1300) in the container (610).

6. Cleaning station (600) according to claim 4 or 5, wherein at least one projection (720, 722, 1300) defines a clearance volume (760) intended to receive the collection orifice (218) of the analysis device (100).

7. Cleaning station (600) according to any one of the preceding claims, wherein the cleaning station (600) includes a lid (900) configured to at least partially close the container (610).

8. Cleaning station (600) according to claim 7, wherein the cover (900) comprises at least one projecting wedge (910) from the lid (900) to the container (610), each wedge (910) being configured to hold the urine analysis device (100) in position in the container (610).

9. Cleaning station (600) according to claim 7 or 8, wherein the cover (900) includes at least one opening (920) suitable for being passed through by a fixing arm (500) of the urine analysis device (100).

10. Assembly (700) comprising: - a urine analysis device, the urine analysis device (100) comprising a housing (204) and a fluidic circuit (230) housed inside the housing (204), and configured to circulate urine into the urine analysis device (100), the fluidic circuit (230) comprising a collection port (218) on the housing (204), - a station according to any one of the preceding claims, the assembly (700) being configured to switch from an operational configuration in which the urine analysis device (100) is received in the container (610) to a separate configuration in which the urine analysis device (100) is away from the container (610).

11. Assembly (700) according to claim 10, wherein the container (610) is dimensioned so that the collection orifice (218) is immersed in the cleaning liquid (710) in operational configuration.

12. Assembly (700) according to claim 10 or 11, wherein the container (610) is formed by a wall (630) and a bottom (740), the container (610) being dimensioned so that the collection orifice (218) is away from at least one of the wall (630) and the bottom (740).

13. Assembly (700) according to any one of claims 10 to 12, wherein the fluidic circuit (230) includes a pump (780) configured to draw liquid into the fluidic circuit (230) via the collection port (218).

14. Assembly (700) according to claim 13, wherein the charger (620) is configured to, in operational configuration, supply the pump (780) of the fluidic circuit (230), so that the cleaning fluid (710) is drawn into the fluidic circuit (230).

15. Assembly (700) according to any one of claims 10 to 14, wherein the charger (620) is further configured to recharge a battery of the urine analysis device (100).

16. Assembly (700) according to any one of claims 10 to 15, wherein the urine analysis device (100) is configured to switch from a urine analysis configuration to a cleaning configuration, the device (100) comprising at least one reagent suitable for reacting with urine, the fluid circuit (230) comprising a drainage port (530) on the housing (204), the fluid circuit (230) being configured, in the urine analysis configuration, to inject the fluid collected by the collection port (218) onto the reagent, the fluid circuit (230) being configured, in the cleaning configuration, to circulate the fluid collected by the collection port (218) directly to the drainage port (530).

17. A cleaning and charging method implemented by an assembly according to any one of claims 10 to 16, the method comprising the following successive steps, after bringing the assembly from the separate configuration to the operational configuration: - supplying the device (100) by the charger (720), - cleaning the device (100) by the cleaning liquid (710) in the container (610).

Citation Information

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