EP4178378A1 - Heart rate sensor for vaping devices - Google Patents
Heart rate sensor for vaping devicesInfo
- Publication number
- EP4178378A1 EP4178378A1 EP21735994.2A EP21735994A EP4178378A1 EP 4178378 A1 EP4178378 A1 EP 4178378A1 EP 21735994 A EP21735994 A EP 21735994A EP 4178378 A1 EP4178378 A1 EP 4178378A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- electrode
- user
- electrodes
- vaping device
- vaping
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/50—Control or monitoring
- A24F40/51—Arrangement of sensors
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
- A24F40/49—Child proofing
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06V—IMAGE OR VIDEO RECOGNITION OR UNDERSTANDING
- G06V40/00—Recognition of biometric, human-related or animal-related patterns in image or video data
- G06V40/10—Human or animal bodies, e.g. vehicle occupants or pedestrians; Body parts, e.g. hands
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06V—IMAGE OR VIDEO RECOGNITION OR UNDERSTANDING
- G06V40/00—Recognition of biometric, human-related or animal-related patterns in image or video data
- G06V40/10—Human or animal bodies, e.g. vehicle occupants or pedestrians; Body parts, e.g. hands
- G06V40/15—Biometric patterns based on physiological signals, e.g. heartbeat, blood flow
Definitions
- the present invention relates to a heart rate sensor for vaping devices.
- Vaping devices such as electronic cigarettes, are becoming increasingly popular consumer products. They are used to deliver a flavour or a stimulant to a user in the form of aerosol without combustion. Such vaping devices typically include a heater arranged to heat a vaporisable product. In operation, the vaporisable product is heated with the heater to vaporise the constituents of the product for the consumer to inhale.
- the product may comprise tobacco in a capsule or may be similar to a traditional cigarette, in other examples the product may be a liquid, or liquid contents in a capsule.
- vaping devices The use of vaping devices is generally restricted to users over a certain age limit. It would therefore be desirable to prevent unauthorized usage of vaping devices, for example by minors.
- an aerosol generation device comprising: a first electrode and a second electrode, the first and second electrodes positioned on a housing of the device, wherein the first and second electrodes are connected to electrical circuitry that can detect a signal from a user’s heart when the device is held by the user. At least a portion of the first electrode is provided on one side of a vertical plane that passes through a longitudinal axis of the aerosol generation device and at least a portion of the second electrode is provided on the other side of the vertical plane.
- Placing first and second electrodes around the aerosol generation devices provides an effective sensor capable of detecting a signal from a user’s heart.
- the first and second electrodes can detect a signal from a user’s heart without the use of an intermediate substance between the user’s skin and the first and second electrodes.
- the first and second electrodes are dry electrodes, meaning that they do not require a gel or other liquid in order to form a suitable electrical contact with a user’s skin.
- Avoiding the need for gel or other liquid substances in order to detect a signal of a user’s heart provides a safer aerosol generation device. This is because the chance of excess gel (or similar substance) coming into contact with electrical circuitry within the aerosol generation is avoided. Furthermore, excess gel (or similar substances) can make the housing of the aerosol generation device difficult to hold (for example it may become slippery). Avoiding the need for gel or similar substances ensures that the user can maintain a firm grip on the housing of the aerosol generation device during usage.
- substantially the whole of the first electrode may be provided on one side of the vertical plane. In some examples substantially the whole of the second electrode may be provided on the other side of the vertical plane.
- the first and second electrodes may be provided on opposites sides of the vertical plane. At least a portion of the first electrode may vertically overlap with at least a portion of the second electrode.
- the first and second electrodes may be positioned vertically off-set to each other.
- the first and second electrodes may be positioned vertically in-line with each other. Preferably, the first and second electrodes are spaced apart from each other.
- the aerosol generation device may further comprise a third electrode positioned on the housing of the device and connected to the electrical circuitry for determining a measurement reference for the signal from the user’s heart.
- the measured reference signal may be used to improve the signal-to-noise ration of the detected signal.
- the noise in the detected signal may be reduced, improving the quality of the detected signal.
- the third electrode is positioned between the first and second electrodes along a main longitudinal axis of the device. This may provide a convenient location for the third electrode such that it does not interfere with either the first or the second electrode.
- the aerosol generation device may comprise an activation button positioned on the housing.
- the activation button may be configured to be actuated, for example pressed, by a user to initiate generation of an aerosol.
- the first electrode may be positioned on an opposite side of the housing to the activation button.
- the activation button may comprise the first electrode. This may ensure that the first electrode is easily accessible by the user.
- the aerosol generation device comprises a mouthpiece.
- the second electrode may be positioned on the housing distally with respect to the mouthpiece and the first electrode. This may increase the distance between the first and second electrodes in order to reduce the chance of interference between the first and second electrodes.
- the second electrode has a shape that extends at least partially around a circumference of the housing. This may ensure compatibility between left and right handed users.
- the first electrode and/or the second electrode has a shape that extends at least partially around a circumference of the housing.
- the first electrode and/or the second electrode may extend around less than half the circumference of the housing.
- the first electrode and/or the second electrode may extend around greater than half the circumference of the housing.
- the first electrode and/or the second electrode may extend around substantially half the circumference of the housing.
- the length of the extent of the first electrode may be the same as the length of the extent of the second electrode.
- the length of the extent of the first electrode may be different to the length of the extent of the second electrode.
- the aerosol generation device may comprise at least two first electrodes and at least two second electrodes, positioned so that a first pairing of first and second electrodes is provided for a right handed user and a second pairing of first and second electrodes is provided for a left handed user. This may ensure compatibility between left and right handed users.
- Figure 1 shows a vaping device with a heart rate sensor
- Figure 2 is a block diagram of various components of the vaping device
- Figure 3 is a flow diagram of a user identification method
- Figure 4 is a graph showing an electrocardiogram signal
- Figure 5 shows an arrangement of electrodes on a vaping device
- Figure 6 shows another arrangement of electrodes on a vaping device
- Figure 7 shows another arrangement of electrodes on a vaping device.
- the invention relates to an aerosol generation device, which may also be referred to as a vaping device 100, having a sensor for monitoring the heart rate of a user as illustrated in Figure 1.
- the vaping device 100 has a main body 101 extending from a first end 102 to a second end 103.
- the second end 103 is configured as a mouthpiece 103.
- An air channel or path is defined in the main body 101 between the first and second ends 102, 103.
- the vaping device 100 in the present example is an electronic cigarette or a vapour generating device.
- the vaping device 100 works by vaporizing or heating an aerosol source contained inside the vaping devicelOO to release a flavour or a stimulant for a user to inhale through the mouthpiece 103.
- the vaping device 100 also includes an activation switch 104 that may be configured to perform at least one of a turn-on and/or a turn-off of a power source within the vaping device 100.
- the activation switch 104 may be a push button or a touch button disposed at any convenient location on the surface of the main body 101 of the vaping device 100.
- Vaping devices are generally restricted to use by persons over a certain age limit, which may vary between countries according to local laws. It is important to be able to identify the user of the vaping device in order to confirm that the intended user is of sufficient age to use the vaping device, and that they are complying with local laws. It is therefore also important to detect unauthorised usage of the vaping device by an intended user, for example by minors, and prevent the vaping device from being activated by the unauthorised user. Biometric user identification provides a suitable method of verifying that a user is authorised to use the vaping device. However, biometric user identification can be difficult to implement due to the limitations provided by vaping devices, for example limited space and user interfaces.
- Behavioural biometrics such as when and how often a user interacts with the vaping device, are highly susceptible to errors, for example if a user modifies their typical behaviour and habits in some way such as increasing the frequency of use.
- behavioural biometrics such as usage habits can be copied or replicated by an unauthorised user in order to falsely gain access to the vaping device. As such, behavioural biometrics do not provide a reliable or secure method of identifying an authorised user.
- physiological biometrics such as heartbeat monitoring
- heartbeat monitoring can be used to verify that a user is authorised to use the vaping device, as these are inherently more reliable and more secure compared to behavioural biometrics.
- a heart rate sensor 204 is integrated into the activation switch 104 such that when the user touches or presses the switch 104 to turn on the vaping device 100 the sensor 204 measures the heart rate of the user by skin contact, as will be described in detail later.
- the heart rate sensor 204 is not disposed on the activation switch 104 but on a side surface of the main body 101 of the vaping device 100.
- the sensor 204 may be provided in the form of a strip or a tag and is placed at a location such that when the user holds the vaping device 100 during use, his or her skin comes in contact with the sensor 204 allowing the sensor 204 to determine the user’s heart rate. Further details of the heart rate sensor 204 and its position on the vaping device 100 will be provided later.
- the vaping device 100 may be of any suitable shape and size and could have different functioning mechanisms.
- the activation switch 104 may be disposed at either side or bottom of the vaping device 100.
- the heart rate sensor 204 is disposed such that it comes in to contact with the user’s skin during normal use, without requiring the user to specifically locate the sensor 204 and make contact with it.
- Fig. 2 shows various components of the vaping device 100.
- the vaping device 100 comprises an aerosol source 201 and a vaporizer 202 that vaporizes the aerosol source 201 to release aerosol containing the flavour and/or stimulant for the user to inhale.
- the aerosol source 201 is a substance containing nicotine.
- the aerosol source 201 may be in the form of solid or liquid and is heated by the vaporizer 202 (including a heat source) to release the aerosol without combustion.
- the vaporizer 202 may be powered by a power source 203.
- the power source 203 is, for example, a lithium ion battery.
- the power source 203 supplies electric power necessary for an action of the vaping device 100.
- the power source 203 supplies electric power to all other components or modules included in the vaping device 100.
- the vaping device 100 further includes the heart rate sensor 204.
- the heart rate sensor 204 is an electrical sensor that measures the heart rate using electrocardiography (ECG), which is a process of detecting the electrical activity of the heart using electrodes placed on the user’s skin.
- ECG electrocardiography
- the heart rate sensor 204 includes two electrodes 205 which detect the small electrical changes in the electrical activity of the user’s heart during each cardiac cycle (i.e. heartbeat) when the vaping device 100 is held. The signals detected by the heart rate sensor 204 are then processed by a processor to produce understandable pulse or heart rate readings, as will be explained in more detail later.
- the vaping device 100 also includes a controller 206 that is configured to control various modules or components in the vaping device 100.
- the controller 206 is further configured to process the data captured by the heart rate sensor 204, using the processor, to determine the heart rate of the user.
- the vaping device 100 may include a memory 209 and other modules 210 such as a visual light emitting element, a display, and a sound emitter.
- the visual light-emitting element such as an LED may be disposed at the tip of the first end 102. Such an LED may exhibit a first light-emitting mode in a puff state where the aerosol has been being inhaled and a second light-emitting mode different from the first light-emitting mode, in a non-puff state where the aerosol has not been inhaled.
- the light-emitting mode is defined by a combination of parameters, such as the amount of light of the light-emitting element, the number of light-emitting elements in a lighting state, a colour of the light-emitting element, and a cycle in which lighting of the light-emitting element and non-lighting of the light- emitting element repeat.
- a different light-emitting mode means that at least any one of the above parameters is different.
- the device further includes a locking mechanism 211 which is controlled by the controller 206.
- a locking mechanism 211 which is controlled by the controller 206.
- operation of the vaping device 100 is prevented.
- operation of the vaping device 100 is allowed.
- two electrodes A and B are brought into contact with the skin of a user during use of the vaping device 100.
- the two electrodes A, B measure an ECG of the user and compare the ECG measurements to ECG measurements stored within a user profile. If the ECG measurements match the user profile, the user is an authorised user and the vaping device 100 is unlocked. If the ECG measurements do not match the user profile, the user is not an authorised user and the vaping device 100 is locked.
- an authorised user of the vaping device 100 In order for the vaping device 100 to know whether a user is authorised to the vaping device or not, an authorised user of the vaping device 100, for example the owner of the vaping device, first needs to set up a user profile for the particular vaping device 100 in question.
- the user profile comprises an ECG of the authorised user which will form the basis of an identification ECG.
- the vaping device 100 can then compare subsequent ECGs to the identification ECG in order to determine if a subsequent user is the authorised user.
- the vaping device 100 In order to determine the identification ECG of the authorised user, when a user first uses the vaping device 100, they will hold the vaping device 100 such that their skin comes into contact with the two electrodes A, B.
- the electrodes A, B detect the electrical changes as a result of the depolarization and repolarization cycles of the cardiac muscle during each cardiac cycle or heartbeat.
- the two electrodes A, B measure a voltage difference which form the input signals input into the processor within the controller 206.
- the heart rate sensor-to-skin contact typically has a resistance of 10k - 100k Ohms.
- the identification ECG of the user can be measured and determined within a few heartbeats, for example one or more heartbeats. This typically takes around 1 to 2 seconds to measure.
- the two electrodes A, B After the initial signals have been detected by the two electrodes A, B, they are then cleaned up to remove noise.
- a number of different known signal cleaning methods can be used, either alone or in combination, for example DC mode rejection, signal range limitation, and high-frequency (HF) rejection such as for signals above 150 Hz. These techniques are well known in the field of signal processing and so will not be described further.
- the heart rate sensor 204 may also include a reference electrode R, which is also configured to come into contact with a user’s skin when the user holds the vaping device 100.
- the reference electrode R measures a reference signal which is used to isolate the input circuit ground from the earth ground, thereby improving the signal-to- noise ratio.
- the reference signal may also be used for common mode rejection if the input is provided with an operational amplifier having a high common-mode rejection ratio (CMRR). Input circuits having this configuration are well known in the art and will not be discussed further. If the reference electrode R is present in the heart rate sensor 204, the isolation and common mode rejection steps are preferably preformed in the analogue domain, but they could be performed in the digital domain.
- the input signal detected by the heart rate sensor 240 preferably has a bandwidth of around 0.5 Hz to 150 Hz. Within this range, the signal is preferably within +/- 6bB, and more preferably within +/- 3dB. As will be appreciated, this can be achieved using any suitable bandpass filter, for example a bandpass filter constructed from a high-pass filter at 0.5 Hz (which in some cases may be a single pole filter) and a low-pass filter at 150 Hz (which in some cases may be a double pole filter). In some arrangements, steeper filters may be used such as four or six pole filters).
- the filtering is done in the analogue domain, using analogue signals from the two electrodes and using standard filters built out of operational amplifiers (op amps), in other examples the filtering can be done in the digital domain, after converting the analogue signals to digital signals. In this latter case the bandwidth can be reduced to around 0.5 Hz to 60 Hz, adjusting the low- and high-pass filters accordingly, with only a minor loss in signal accuracy.
- This latter example has the advantage of simplifying signal processing.
- the signal can be amplified at this stage before it is further processed. For example, in some cases it may be preferably to amplify the signal by a factor of 1000. Amplifying the signal at this stage can help the quality and performance of the later signal processing steps.
- the analogue signals are converted to digital signals using standard analogue-to-digital (AD) conversion methods.
- AD analogue-to-digital
- the bit depth is chosen according to known methods so as obtain a suitable signal-to-noise ratio for further processing.
- the sampling frequency, as well as any anti-aliasing filtration, is also chosen according to known methods and so these will not be discussed.
- An ECG is a graph a voltage versus time of the electrical activity of the heart, and it comprises a number of peaks and troughs which correspond to different stages of the cardiac cycle. These peaks and troughs constitute the features which can be extracted from the ECG.
- the first component is the P-wave which represents atrial depolarization.
- the second component is the GRS complex which represents ventricular depolarization.
- the third component is the T-wave which represents ventricular repolarization.
- the data measured by the heart rate sensor 204 represents a voltage fluctuation over a period time in seconds.
- the measured data is first processed in order to identify the specific number of heartbeats that were detected and measured, using techniques well known in the art for examples by counting R-peaks within data signal.
- the data is normalised for both time and amplitude.
- each individual heartbeat within the measured data can be identified and then averaged in order to provide an average heartbeat of the user in question.
- the identification and averaging steps are carried out using standard techniques that are well known in the field of electrocardiography. Once an individual heartbeat has been identified, the three main components of the ECG are then extracted from the data.
- These extracted features can be stored in a user profile in the memory 209 of the vaping device 100. Since these extracted features will be unique to a particular user, these extracted features can be used to determine whether a subsequent user is the same as the authorised user that created the saved user profile.
- measured data from the heart rate sensor 204 undergoes AD conversion, as described previously, the individual heartbeats within the measured data are identified, and then these heartbeats are averaged.
- features present within the averaged data are then analysed.
- the features that are present can be any or all of the three main components of an ECG, namely the P-wave, the QRS complex, and the T-wave.
- the P-wave and the QRS complex may be identified and analysed.
- all of the P-wave, the QRS complex, and the T-wave may be identified and analysed.
- any of the known morphology of the ECG, when displayed in the time domain, can be used for the analysis.
- the P, Q, R, S, and T values of the ECG curve are used, either alone or in combination with each other.
- only a subsection of the P, Q, R, S, and T vales could be used, for easier processing.
- features of the ECG in the frequency domain could also be used to determine the unique ECG pattern of a user. However the computational cost of carrying out this data processing is higher and so this method is less preferable.
- the determined P, Q, R, S, and T values are then compared with the corresponding P, Q, R, S, and T values (or a subset thereof) stored within the user profile of the authorised user in the memory 209 of the vaping device 100. If the determined values match the stored values, the controller 206 determines that the current user is the authorised user and the vaping device 100 is unlocked. If the determined values do not match the stored values, the controller 206 determines that the current user is not the authorised user and the vaping device 100 is locked and use of the vaping device is therefore prevented.
- the vaping device 100 can be calibrated. Calibration is carried out in a similar manner to the initial set-up and detection steps described above, however many more heartbeats are detected and averaged during calibration. More heartbeats are required during calibration in order to provide sufficient source data from which the relevant features can be extracted and subsequently stored in the user profile. The more heartbeats that can be detected during calibration, and thus the more heartbeats that contribute to the source data, the more accurately the feature extraction process can be carried out, and the corresponding ECG stored in the user profile will more closely match the actual ECG of the authorised user.
- heartbeats are detected providing a large sample of source data for the feature extraction process.
- the features extracted from the large pool of test or sample data will represent a sufficient average of the authorised user’s ECG, to be stored a user profile in the vaping device 100.
- the user profile is stored in an encrypted format in the memory to prevent attacks. Any suitable data encryption method can be used and so this aspect will not be discussed further.
- the ECG-based user recognition method 300 shown in Figure 3 includes detecting ECG signals of a user using a heart rate sensor 204.
- Analogue signal measurements are received 301 by the electrodes and cleaned 302 to reduce noise.
- Optional reference signals may also be detected 310 and combined with the analogue signals to reduce noise.
- the cleaned signals are then passed through a filter 303, and optionally amplified.
- the filtered signals are then converted to digital signals 304 and processed to extract ECG features 305.
- the extracted features are then compared 306 to stored features in order to determine whether the current user of the vaping device 100 matches the user of the user profile 307. If the extracted features match those of the user profile, the vaping device 100 is unlocked 308. If the extracted features do not match the user profile, the vaping device remains locked 309
- the vaping device 100 is provided with at least two electrodes, namely a first electrode and a second electrode, on a housing of the vaping device.
- the housing may also be referred to as the main body of the vaping device.
- the first and second electrodes are for detecting a signal (in particular an ECG signal) from a user’s heart.
- An analogue input module is configured to receive the detected signal (which may also be referred as measurements) from the electrodes.
- a (analogue or digital) filter module is configured to filter the measurements, and an AD converter is configured to convert the filtered measurements.
- a data storage unit which may also be referred to as a memory, is configured to store user profile data and measurement results.
- the data storage unit is configured to store a signal that is characteristic of a registered user.
- a processing unit is provided with software to control the calibration and measurement process, as well as for controlling the vaping device (including normal operation and locking and unlocking).
- the processing unit comprises control circuitry configured to compare the detected signal with the stored signal and to perform an action using the aerosol generation device based on the comparison.
- the construction of the heart rate sensor and electrodes could take a number of different configurations. Some of these configurations will be described in further detail below.
- the present disclosure provides dry electrodes for use in the above-described ECG measurement system.
- the dry electrodes are placed around the vaping device 100, as will be described in more detail below, in order to form a heart rate sensor 204 that is suitable for vaping devices 100. It should be noted that by dry electrodes we mean that no gel, or other liquid-based substance, is required in order for a user to make sufficient contact with the ECG electrodes in the heart rate sensor 204.
- At least two electrodes are needed to obtain ECG measurements from a user.
- the ECG measurements taken from the user rely on the two electrodes A, B having a good contact with the user’s skin, which will typically be the user’s hand when they are holding the vaping device 100.
- a third reference electrode namely electrode R, can also be included which improves the ECG measurements taken by electrodes A and B. Good contact between the user and the reference electrode R is desirable.
- the at least two electrodes A, B are electrically isolated from the vaping device 100.
- the at least two electrodes A, B are in electrical connection with an electrical circuit in the vaping device 100 that carries out the signal processing, as has been explained.
- the at least two electrodes A, B are made from any suitable electrically conductive material.
- Vaping devices 100 comes in two general forms.
- the first form comprises a long-pen-like cylindrical shape having a circular or oval-like cross section. This form of vaping device 100 is illustrated in Figure 1.
- the second form comprises a box-like shape having a shorter length and greater width than the first form and is shown in Figure 7.
- the heart rate sensor position and arrangements of electrodes on the vaping device 100 varies depending on the particular form of the overall vaping device 100 to which the heart rate sensor 204 is being applied. The following description will provide details about the arrangements of the heart rate sensor electrodes A, B on different forms of vaping device 100.
- the pen-like vaping device will be considered first.
- Some pen-like vaping devices such as the vaping device 100 of Figure 1 , have a preferred direction of orientation in the user’s hand as a result of the provision of the activation element 104.
- the activation element 104 defines a preferred orientation direction because the activation element 104 must be able to be activated simply and easily by a user when they pick up the vaping device 100.
- the two electrodes A and B since the user will generally be holding the vaping device 100 in the same configuration each time they pick up the vaping device 100, it is not necessary for the two electrodes A and B to be completely circumferential. That is, it is not necessary for the two electrodes A and B to be accessible by the user around the entire circumference of the vaping device 100. Instead, it is sufficient that only a portion of the circumference of the vaping device 100 provides access to the two electrodes A, B by the user when the user is holding the vaping device 100 during usage. The portion of the circumference that provides access to the electrodes A, B is a portion of that circumference that coincides with the user’s grip when the user is holding the vaping device 100.
- one electrode is located substantially opposite to the activation element 104. That is to say, electrode A is located on one side of a vertical plane that passes through the longitudinal axis of the vaping device 100 and the activation element 104 is located on the other side of the same plane.
- the second electrode (in this case electrode B), is spaced apart from the first electrode A along the length of the vaping device 100.
- electrode B is located closer to a distal end of the vaping device 100 (and therefore further away from the mouthpiece end 103) than electrode A.
- the second electrode B will contact the user’s thumb when the user is gripping the vaping device 100 during operation of the vaping device 100.
- electrode B extends around a greater proportion of the circumference of the vaping device 100 compared to electrode A. This ensures that the second electrode B is compatible with both left- and right-handed users.
- a first electrode for example electrode A
- a second electrode for example electrode B
- the optional reference electrode R can be located between electrodes A and B.
- Other pen-like vaping devices do not have a preferred direction of orientation during use of the vaping device 100. This is the case for vaping devices which are not provided with an activation element 104 or an on/off switch, as shown in Figure 6. In this case, the orientation of the vaping device 100 during use is not defined and so the user is able to hold the vaping device in any orientation that is comfortable for them and still allows operation of the vaping device 100.
- both electrodes A and B are substantially circumferential, extending around substantially the entire circumference of the vaping device 100.
- at least one of the electrodes extends fully around the entire circumference of the vaping device 100 such that the at least one electrode takes the form of a ring on an outer surface of the vaping device 100.
- the distance between the two electrodes A and B is as large as possible, to ensure better measurements being taken from each electrode.
- a greater distance between electrodes A and B means that more skin can be measured, resulting in more consistent results than would be achieved over a shorter measuring distance.
- the voltage drop over a larger distance is higher than over shorter distances (which have a smaller voltage drop) which gives a better measuring accuracy.
- the only requirement is that the two electrodes A, B are positioned such that a typical grip of the vaping device 100 by a user results in the user making skin contact with both electrodes.
- optional reference electrode R can be located between the two electrodes A and B.
- a user has two main grip options: gripping the front of the device or gripping the rear of the device.
- front and rear are used to refer to two parallel sides of a box located opposite to each other. If no an activation element 104, or on/off switch, is present then the same constraints that applied to the pen-like vaping device apply here.
- the two electrodes A, B extend around substantially the entire perimeter of the vaping device.
- perimeter is used to mean the side walls of the box-like structure rather than top and bottom/base faces.
- the two electrodes A, B extend around at least a portion of perimeter of the vaping device.
- perimeter is used to mean the side walls of the box-like structure rather than top and bottom/base faces.
- at least one of the electrodes may partially extend over a part of the base of the vaping device, as well over a part of a side wall of the vaping device 100.
- the electrode A can be thought of as being at least partially wrapped around an edge of the vaping device 100, for example a lower body edge when the vaping device 100 is held in its operative configuration.
- the activation element may comprise a first electrode, for example electrode A, as shown in Figure 1.
- the electrodes A and B may comprise a multi-electrode surface.
- each electrode of the multi electrode surface must be electrically connected within the vaping device.
- electrode A may comprise a plurality of sub-electrodes (for example electrodes A1 , A2, and A3) and these sub-electrodes are electrically connected together, and operate together, to form electrode A.
- the contact surface area of each sub-electrode compared to the contact surface area of a single electrode can be reduced, whilst still maintaining functionality. This may help reduce the manufacturing cost of the vaping device as fewer materials are required to form each electrode.
- a multi-electrode configuration also provides increased design options when manufacturing the vaping device whilst maintaining function.
Landscapes
- Engineering & Computer Science (AREA)
- Health & Medical Sciences (AREA)
- Child & Adolescent Psychology (AREA)
- General Health & Medical Sciences (AREA)
- Human Computer Interaction (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Multimedia (AREA)
- Theoretical Computer Science (AREA)
- Measurement And Recording Of Electrical Phenomena And Electrical Characteristics Of The Living Body (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP20184880 | 2020-07-09 | ||
| PCT/EP2021/068717 WO2022008544A1 (en) | 2020-07-09 | 2021-07-06 | Heart rate sensor for vaping devices |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4178378A1 true EP4178378A1 (en) | 2023-05-17 |
Family
ID=71574969
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP21735994.2A Withdrawn EP4178378A1 (en) | 2020-07-09 | 2021-07-06 | Heart rate sensor for vaping devices |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP4178378A1 (en) |
| JP (1) | JP2023533530A (en) |
| WO (1) | WO2022008544A1 (en) |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8019321B2 (en) * | 2003-03-31 | 2011-09-13 | Varia Holdings Llc | Wireless mobile phone with authenticated mode of operation including heart beat profile based authentication |
| US9160730B2 (en) * | 2013-03-15 | 2015-10-13 | Intel Corporation | Continuous authentication confidence module |
| WO2016064688A1 (en) * | 2014-10-25 | 2016-04-28 | Sumner Bluffs, Llc. | Pharmaceutical and biological agent delivery system having biometric data acquisition and monitoring capabilities |
| US10517330B2 (en) * | 2017-05-23 | 2019-12-31 | RAI Stategic Holdings, Inc. | Heart rate monitor for an aerosol delivery device |
| TW201915804A (en) * | 2017-09-13 | 2019-04-16 | 江國慶 | Portable device with thermal sensor |
-
2021
- 2021-07-06 JP JP2023501051A patent/JP2023533530A/en active Pending
- 2021-07-06 EP EP21735994.2A patent/EP4178378A1/en not_active Withdrawn
- 2021-07-06 WO PCT/EP2021/068717 patent/WO2022008544A1/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| JP2023533530A (en) | 2023-08-03 |
| WO2022008544A1 (en) | 2022-01-13 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| JP7483925B2 (en) | Aerosol generating device and method of operation thereof | |
| CN111479497B (en) | Method for Assessing Contact Between Electrodes and Tissue Using Complex Impedance Measurements | |
| EP3259022B1 (en) | Apparatus for identifying sick sinus syndrome in an implantable cardiac monitoring device | |
| US9510764B2 (en) | Methods for detecting atrial tachyarrhythmia in implantable devices without dedicated atrial sensing | |
| CN108601941B (en) | Triggering storage of initiation of physiological conditions | |
| US9456763B2 (en) | Apparatus and method for simultaneous capture of biopotential and tissue impedance signals | |
| CN118557279A (en) | Systems and methods for mapping and modulating repolarization | |
| JP2019523678A5 (en) | ||
| EP1677671A1 (en) | A device arranged for carrying out a bioelectrical interaction with an individual and a method for on-demand lead-off detection | |
| JPH1147148A (en) | Ablation catheter with multiple poles | |
| EP2429391A2 (en) | Measures of cardiac conractility variability during ischemia | |
| US8401628B2 (en) | Sensing vector configuration in ICD to assist arrhythmia detection and annotation | |
| AU2019417023B2 (en) | High frequency QRS in biometric identification | |
| Oehler et al. | Extraction of SSVEP signals of a capacitive EEG helmet for human machine interface | |
| US20250169747A1 (en) | System and method for diagnosing sleep disorders | |
| Noordergraaf et al. | Electroacupuncture | |
| US9968301B2 (en) | Body-driven pseudorandom signal injection for biomedical acquisition channel calibration | |
| WO2015088695A1 (en) | Measuring atrial fibrillation burden using implantable device based sensors | |
| US20110245701A1 (en) | Arrhythmia classification | |
| EP4178378A1 (en) | Heart rate sensor for vaping devices | |
| EP4178380A1 (en) | User identification using heart rate sensor for vaping devices | |
| Zhang et al. | Flexible MEA for adult zebrafish ECG recording covering both ventricle and atrium | |
| JP2023500046A (en) | Devices, systems and methods for bioelectrical signal acquisition and monitoring | |
| KR20200116885A (en) | Method and system for measuring electrocardiogram using wearable device | |
| US11298083B2 (en) | Methods and systems for detecting loss of electrode-tissue contact |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: UNKNOWN |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE |
|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE |
|
| 17P | Request for examination filed |
Effective date: 20230103 |
|
| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| DAV | Request for validation of the european patent (deleted) | ||
| DAX | Request for extension of the european patent (deleted) | ||
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN |
|
| 18D | Application deemed to be withdrawn |
Effective date: 20230829 |