The present disclosure generally relates to spray nozzle chips, for example for medicament delivery devices.
A nozzle device may be configured to atomise a liquid, i.e. to make an aerosol of the liquid. A nozzle device of this type may comprise a substrate having a sieve or filter side provided with a filter for filtering out any undesired larger particles contained in the liquid to be atomised. The substrate may also have a spray-side provided with a spray-membrane having a plurality of orifices. The spray-membrane and the filter are configured to be in liquid communication. In the process of atomisation, the liquid first passes the filter where a slight pressure drop is obtained. The filtered liquid subsequently passes through the orifices of the membrane, whereby the liquid is atomised.
An example of such a nozzle device is disclosed in WO2018/219798 A1. The nozzle device comprises: a substrate, a sieve-side membrane comprising a plurality of sieve-side orifices, the sieve-side membrane being provided on a sieve-side of the substrate, a spray-side membrane comprising a plurality of spray-side orifices, the spray-side membrane being provided on a spray-side of the substrate, wherein the substrate has a first cavity portion extending to the sieve-side membrane, and a second cavity portion extending from the first cavity portion to the spray-side membrane, thereby providing fluid communication, along a fluid communication axis, between the sieve-side orifices and the spray-side orifices, the first cavity portion having a larger cross-sectional area than a cross-sectional area of the second cavity portion, the cross-sections being with respect to the fluid communication axis.
For some diseases such as respiratory diseases, e.g. asthma, it has been found that increased adherence to prescribed treatments and improved administration techniques will help control symptoms and reduce the risk of complications.
An object of the present disclosure is to provide a spray nozzle chip which solves or at least mitigates problems of the prior art.
There is hence according to a first aspect of the present disclosure provided a spray nozzle chip comprising: a substrate having a spray side and a sieve side, a spray membrane provided on the spray side, a sieve membrane provided on the sieve side, wherein the spray membrane is provided with spray orifices and the sieve membrane is provided with sieve orifices, wherein the substrate has a fluid channel which connects the spray orifices with the sieve orifices, and a pressure sensing device configured to measure deformation of the spray membrane to obtain a measure of pressure on the spray membrane.
It can thereby be detected whether an aerosol dispensing has been performed. In the event that the spray nozzle chip is mounted in an inhaler, the performance of the user may be monitored.
According to one embodiment the spray orifices are provided in a spray orifice region of the spray membrane, and wherein the pressure sensing device is configured to detect deformation of the spray orifice region. Pressure changes in the spray orifice region may thereby be detected.
According to one embodiment the pressure sensing device comprises one of a strain gauge sensor, a capacitive pressure sensor and a piezoresistive pressure sensor.
According to one embodiment the pressure sensing device is a microelectromechanical system (MEMS) pressure sensor.
According to one embodiment the pressure sensing device is arranged on the spray membrane.
One embodiment comprises a reference pressure sensing device, wherein the substrate has a closed cavity which is delimited by a reference pressure region of the spray membrane, wherein the reference pressure sensing device is configured to measure deformation of the reference pressure region. In case the reference pressure sensing device is installed in an inhaler, as the user inhales, the reference pressure region will be is deflected towards the user's mouth. The reference pressure sensing device may thereby facilitate monitoring of the inhalation technique of a user.
According to one embodiment the cavity is a vacuum cavity.
According to one embodiment the reference pressure sensing device comprises one of a strain gauge sensor, a capacitive pressure sensor and a piezoresistive pressure sensor.
According to one embodiment the reference pressure sensing device is a MEMS pressure sensor.
According to one embodiment the reference pressure sensing device is arranged on the spray membrane.
There is according to a second aspect of the present disclosure provided a spray nozzle device comprising: the spray nozzle chip according to the first aspect, and a contact interface configured to be electrically connected to the pressure sensing device to supply power to and obtain pressure measurement signals from the pressure sensing device.
One embodiment comprises the spray nozzle chip including the reference pressure sensing device, wherein the contact interface is configured to be electrically connected to the reference pressure sensing device to supply power to and obtain pressure measurement signals from the reference pressure sensing device.
There is according to a third aspect of the present disclosure provided an aerosol dispenser comprising the spray nozzle device according to the second aspect.
According to one embodiment the aerosol dispenser is a medicament delivery device.
According to one embodiment the medicament delivery device is an inhaler or eye dispenser.
Generally, all terms used in the claims are to be interpreted according to their ordinary meaning in the technical field, unless explicitly defined otherwise herein. All references to “a/an/the element, apparatus, component, means, etc. are to be interpreted openly as referring to at least one instance of the element, apparatus, component, means, etc.”, unless explicitly stated otherwise.
The specific embodiments of the inventive concept will now be described, by way of example, with reference to the accompanying drawings, in which:
The inventive concept will now be described more fully hereinafter with reference to the accompanying drawings, in which exemplifying embodiments are shown. The inventive concept may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the inventive concept to those skilled in the art. Like numbers refer to like elements throughout the description.
The spray nozzle chip 1 comprises a substrate 3. The substrate 3 has a spray side 3a and a sieve side 3b. The spray side 3a and the sieve side 3b are arranged opposite to each other.
The substrate 3 may for example comprise a ceramic material such as silicon. The exemplified substrate 3 comprises a spray side substrate 3c and a sieve side substrate 3d which are joined or bonded, and which form the substrate 3. Alternatively, the substrate 3 could be made of a single piece of substrate material.
The spray nozzle chip 1 comprises a spray membrane 7. The spray membrane 7 may for example comprise silicon or a nitride. The spray membrane 7 is provided on the spray side 3a of the substrate 3. The spray membrane 7 may be bonded with the substrate 3; or formed by etching through the substrate 3 directly. The spray membrane 7 comprises a plurality of spray orifices 11. The spray membrane 7 has a spray orifice region comprising the spray orifices 11.
The spray nozzle chip 1 comprises a sieve membrane 9. The sieve membrane 9 may for example comprise silicon or a nitride. The sieve membrane 9 is provided on the sieve side 3b of the substrate 3. The sieve membrane 9 is bonded with the substrate 3, or formed by etching through the substrate 3 directly. The sieve membrane 9 comprises a plurality of sieve orifices 13, shown in
The spray orifice region is defined by the borders or boundary formed by the inner walls of the fluid channel 15 relative to the spray membrane 7.
Turning back to
The pressure sensing device 12 is configured to detect deformation of the spray orifice region of the spray membrane 7. The pressure sensing device 12 or a portion thereof is arranged on the spray orifice region of the spray membrane 7.
The pressure sensing device 12 may be a MEMS pressure sensor.
In the example shown in
The pressure sensing device 12 may alternatively to a strain gauge comprise a capacitive pressure sensor or a piezoresistive pressure sensor.
In the example of the spray nozzle chip 1 shown in
The exemplified spray nozzle chip 1 comprises a reference pressure sensing device 19, also depicted in
According to the example shown in
The reference pressure sensing device 19 may alternatively to a strain gauge comprise a capacitive pressure sensor or piezoresistive pressure sensor.
The contact pads 12b may for example be connected to the first conductive paths 23 by soldering or conductive glue.
The contact interface 21 comprises second conductive paths 25 configured to be electrically connected to the reference pressure sensing device 19. The second conductive paths 25 may be connected to the reference contact pads 19b. The second conductive paths 25 may be configured to carry current to the reference pressure sensing device 19 and to transport current or pressure measurement signals from the reference pressure sensing device 19.
The reference contact pads 19b may for example be connected to the second conductive paths 25 by soldering or conductive glue.
The contact interface 21 is provided with a second through-opening 21b. The second through-opening 21b is aligned with the reference pressure region of the spray membrane 7. The reference pressure region is hence accessible via the second through-opening 21b. Part of the reference pressure sensing device 19 is arranged within the second through-opening 21b.
The contact interface carrier 27 has a carrier second through-opening 27c. The carrier second through-opening 27c is aligned with the reference pressure region of the spray membrane 7 and the second through-opening 21b. The carrier second through-opening 27c hence leads to the reference pressure region. The reference pressure sensing device 19 is hence accessible via the carrier second through-opening 27c.
Fluid flow through the spray orifices 11 is hence enabled. Moreover, the reference pressure sensing device 19 is able to detect deformation of the reference pressure region due to deformation of the reference pressure region caused by suction force generated by user inhalation.
The spray nozzle chip 1 and/or the contact interface carrier 27 may be moulded into the main body of the spray nozzle device 29.
The aerosol dispenser 33 may comprise an electronics unit configured to power the pressure sensing device 12. The electronics unit may be configured to power the pressure sensing device 12 and to receive pressure measurement signals via the contact pads 12C. The electronics unit may be configured to power the reference pressure sensing device 19 and to receive pressure measurement signals via the reference contact pads 19c.
The electronics unit may be configured to process the pressure measurement signals from the pressure sensing device 12. For example, the electronics unit may be configured to determine the pressure applied to the spray membrane 7 in the spray orifice region based on the pressure measurement signals. The electronics unit may be configured to process the pressure measurement signals from the reference pressure sensing device 19. For example, the electronics unit may be configured to determine the suction force or pressure applied to the spray membrane 7 in the reference pressure region.
The electronics unit may according to one variation be configured to transmit the pressure measurement signals from the pressure sensing device 12 and/or the reference pressure sensing device 19 wirelessly to an external unit, such as a smart phone, a tablet computer or to a server in a cloud.
The inventive concept has mainly been described above with reference to a few examples. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the inventive concept, as defined by the appended claims.
Number | Date | Country | Kind |
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19207343.5 | Nov 2019 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/077990 | 10/6/2020 | WO |