The invention relates to a nebulization system, a nebulizer and its driving method.
Recently, various nebulizers namely sprayers are widely applied to healthcare or beauty care. They nebulize medicated liquid, lotion or essence, etc. by nebulization devices into a fine mist or aerosol absorbed into a body easily. For example, they can be applied to health care or treatment of respiratory diseases, or faster absorption of medicated liquid or lotion by skin, or aroma, etc.
Practically, the nebulizer can connect to mains electricity which acts as the power source so as to supply drugs at full capacity and shorten the treatment time. When the user utilizes the nebulizer at a place where mains electricity is not available, a battery can be taken for the nebulizer as the power source for supplying drugs. However, due to limited quantity of electricity provided by the battery, if the nebulizer still keeps supplying drugs at full capacity, the battery will quickly run low, the supply time will be also shorten and the course of treatment is blocked.
In other sides, because the current nebulizer cannot automatically adjust the drug supply with the user's breath rhythm during spray treatment. When breathing out, users would blow medicated mist out and do not indeed inhale it. Thus, the drug is wasted and the treatment effect is influenced.
Therefore, it is needed to provide a nebulization system, a nebulizer and a driving method which can have better performance and battery life, and adjust the drug supply with the user's breath rhythm so as to avoid a waste of medicated liquid.
An aspect of the disclosure is to provide a nebulization system, a nebulizer and a driving method which can have better performance and battery life, and adjust the drug supply with the user's breath rhythm so as to avoid a waste of medicated liquid.
A nebulization system comprises a power adapter and a nebulizer. The nebulizer is adapted to be detachably connected to the power adapter and comprises a nebulization module and a nebulization driving device. The nebulization module has an accommodation room for placing a liquid. The nebulization driving device connects to the nebulization module and comprises a battery unit, an input terminal, a voltage detection unit, a voltage adjustment unit, a control unit and a driving unit. The input terminal is coupled to the power adapter and the battery unit. The voltage detection unit is coupled to the input terminal to detect whether an input voltage of the input terminal is larger than a predefined value. The predefined value is set larger than a voltage outputted from the battery unit. The voltage adjustment unit is coupled to the input terminal. The control unit is coupled to the voltage detection unit and the voltage adjustment unit. The control unit controls the voltage adjustment unit to adjust the input voltage to a first operating voltage as an output voltage if the input voltage is larger than the predefined value, the control unit controls the voltage adjustment unit to adjust the input voltage to a second operating voltage as an output voltage if the input voltage is smaller than the predefined value, and the first operating voltage is larger than the second operating voltage. The driving unit is coupled to the voltage adjustment unit, and drives the nebulization module to nebulize the liquid according to the output voltage of the voltage adjustment unit.
A nebulizer is adapted to be detachably connected to a power adapter. The nebulizer comprises a nebulization module and a nebulization driving device. The nebulization module has an accommodation room for placing a liquid. The nebulization driving device connects to the nebulization module and comprises a battery unit, an input terminal, a voltage detection unit, a voltage adjustment unit, a control unit and a driving unit. The input terminal is coupled to the power adapter and the battery unit. The voltage detection unit is coupled to the input terminal to detect whether an input voltage of the input terminal is larger than a predefined value. The predefined value is set larger than a voltage outputted from the battery unit. The voltage adjustment unit is coupled to the input terminal. The control unit is coupled to the voltage detection unit and the voltage adjustment unit. The control unit controls the voltage adjustment unit to adjust the input voltage to a first operating voltage as an output voltage if the input voltage is larger than the predefined value, the control unit controls the voltage adjustment unit to adjust the input voltage to a second operating voltage as an output voltage if the input voltage is smaller than the predefined value, and the first operating voltage is larger than the second operating voltage. The driving unit is coupled to the voltage adjustment unit, and drives the nebulization module to nebulize the liquid according to the output voltage of the voltage adjustment unit.
In one embodiment, the nebulization driving device further comprises a PWM unit coupled to the driving unit and generating a PWM signal to control a duty cycle of the driving unit to drive the nebulization module to nebulize the liquid.
In one embodiment, the nebulization driving device further comprises a switch unit having one terminal coupled to the input terminal and having the other terminal coupled to the battery unit. The control unit controls the switch unit to cut off so the battery unit does not supply power to the input terminal if the input voltage is larger than the predefined value.
In one embodiment, the switch unit comprises a switch and a diode, one terminal of the switch is coupled to the battery unit and the anode of the diode, another terminal of the switch is coupled to the input terminal and the cathode of the diode, and the other terminal of the switch is coupled to the control unit.
In one embodiment, the nebulization system further comprises an auxiliary element including a respiration detection unit coupled to the control unit to detect the breath state of a user. The control unit controls the driving unit to act if the user breathes in, and the control unit controls the driving unit to stop acting if the user breathes out.
In one embodiment, the respiration detection unit is a micro switch, an infrared detector or an audio detector.
In one embodiment, the predefined value is smaller than a voltage outputted from the power adapter.
In one embodiment, the nebulizer further comprises a current detection unit coupled to the input terminal to detect an input current corresponding to the input voltage. The control unit calculates electric power according to the input voltage and the input current.
A nebulizer is adapted to be detachably connected to a power adapter. The nebulizer comprises a nebulization module and a nebulization driving device. The nebulization module has an accommodation room for placing a liquid. The nebulization driving device connects to the nebulization module and comprises a battery unit, an input terminal, a current detection unit, a voltage adjustment unit, a control unit and a driving unit. The input terminal is coupled to the power adapter and the battery unit. The current detection unit is coupled to the input terminal to detect whether an input current of the input terminal is larger than a predefined current value. The input current corresponds to an input voltage. The voltage adjustment unit is coupled to the input terminal. The control unit is coupled to the current detection unit and the voltage adjustment unit. The control unit controls the voltage adjustment unit to adjust the input voltage to a first operating voltage as an output voltage if the input current is smaller than the predefined current value, the control unit controls the voltage adjustment unit to adjust the input voltage to a second operating voltage as an output voltage if the input current is larger than the predefined current value, and the first operating voltage is larger than the second operating voltage. The driving unit is coupled to the voltage adjustment unit and drives the nebulization module to nebulize the liquid according to the output voltage of the voltage adjustment unit.
A method for driving a nebulization system, wherein the nebulization system comprises a nebulizer and a power adapter, the nebulizer comprises a battery unit and an input terminal coupled to the power adapter and the battery unit, comprises: detecting whether an input voltage of the input terminal is smaller than a lowest operation value; detecting whether the input voltage is smaller than a predefined value if the input voltage is larger than the lowest operation value, wherein the predefined value is larger than a voltage outputted from the battery unit; adjusting the input voltage to a first operating voltage by the nebulizer if the input voltage is larger than the predefined value so as to generate spray; and adjusting the input voltage to a second operating voltage by the nebulizer if the input voltage is smaller than the predefined value so as to generate spray, wherein and the first operating voltage is larger than the second operating voltage.
In one embodiment, the nebulizer stops operation if the input voltage is smaller than the lowest operation value.
In one embodiment, the second operating voltage is 60% to 80% of the first operating voltage.
In one embodiment, if the nebulizer adjusts the input voltage to the first operating voltage, the input terminal is disconnected from the battery unit so the battery unit does not supply electrical power to the input terminal.
In one embodiment, a duty cycle of the nebulizer is controlled by a PWM signal while the input voltage is adjusted to the first operating voltage or the second operating voltage.
In one embodiment, the predefined value is smaller than a voltage outputted from the power adapter.
As mentioned above, the voltage or current of the input terminal is detected to accordingly determine whether the nebulizer is supplied with mains electricity or battery. Moreover, the driving mode is adjusted according to the power source so as to keep better performance and battery life. In some embodiments, the breath detection unit is utilized to detect the breath state of the user so that the nebulizer can adjust the drug supply with the user's breath rhythm so as to avoid a waste of medicated liquid.
The embodiments will become more fully understood from the detailed description and accompanying drawings, which are given for illustration only, and thus are not limitative of the present invention, and wherein:
The embodiments of the invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
Please also referring to
The nebulization driving device 11 includes an input terminal 111, a battery unit 112, a switch unit 113, a voltage detection unit 114, a voltage adjustment unit 115, a driving unit 116, a PWM unit 117 and a control unit 118. It is noted that the PWM unit 117 is not necessary. In some embodiments where the PWM unit 117 is absent, the nebulizer 1 still keeps functions and operates well. In some embodiments with the PWM unit 117, it enhances the power management efficiency of the nebulization driving device 11 as described hereinafter.
The control unit 118 is coupled to the switch unit 113, the voltage detection unit 114, the voltage adjustment unit 115 and the PWM (pulse width modulation) unit 117 to receive signals from the above respective units or control the actions of the above respective units. The control unit 118 can be implemented with a digital circuit such as IC (integrated circuit) or an analog circuit. For example, IC can be micro-processor, MCU (micro control unit), FPGA (field-programmable gate array) or CPLD (complex programmable logic device), or ASIC (application-specific integrated circuit), which is not limited thereto. In the embodiment where the PWM unit 117 is absent, the control unit 118 is directly coupled to the driving unit 116 or the control unit 118 is indirectly coupled to the driving unit 116.
The input terminal 111 can be coupled to the power adapter 2 so that the power adapter 2 can supply power to the nebulization driving device 11. The input terminal 111 can be also coupled to the battery unit 112. If the nebulizer 1 is not coupled to mains electricity, the battery unit 112 can act as the power source of the nebulization driving device 11.
One terminal of the switch unit 113 is coupled to the input terminal 111, and the other terminal is coupled to the battery unit 112. The voltage detection unit 114 is coupled to the input terminal 111 to detect whether the voltage of the input terminal 111 is larger than a predefined value. In the embodiment, if the power adapter 2 is coupled to the input terminal 111 and supplies mains electricity, the voltage supplied by the power adapter 2 can be higher than the voltage supplied by the battery unit 112, and the predefined value is set between these two voltages. For example, the power adapter 2 supplies 5V and the battery unit 112 supplies 3V, the predefined value can be set 4V. Thus, if the voltage detection unit 114 detects that an input voltage of the input terminal is larger than the predefined value and then returns a detection signal to the control unit 118, the control unit 118 accordingly determines that the power adapter 2 is coupled to the input terminal 111. The power adapter 2 also supplies mains electricity to the nebulizer 1. Then the control unit 118 controls the switch unit 113 to cut off (or disconnect) so that the battery unit 112 cannot supply power to the input terminal 111 and cannot be charged by mains electricity. Thus, the battery unit 112 is protected and its usage life will not be negatively influenced.
Subsequently, if the voltage detection unit 114 detects that an input voltage of the input terminal 111 is smaller than the predefined value and then returns a detection signal to the control unit 118, the control unit 118 accordingly determines that the power adapter 2 does not supply mains electricity to the nebulizer 1, for example the power adapter 2 is not coupled to the input terminal 111 or alternatively the power adapter 2 is coupled to the input terminal 111 but not coupled to mains electricity. At the moment, the control unit 118 controls the switch unit 113 to be conductible so as to utilize the battery unit 112 as the power source. For example, the circuit of the voltage detection unit 114 can refer to
In details, referring to
The voltage adjustment unit 115 adjusts the input voltage received by the input terminal 111 to the operating voltage and outputs it to the driving unit 116. The input voltage can be provided by the power adapter 2 or the battery unit 112. In the embodiment, the voltage adjustment unit 115 can be a boost circuit, a buck circuit, or a boost-buck circuit for example, and it is not limited thereto.
The driving unit 116 is coupled to the voltage adjustment unit 115, and drives the vibration unit 121 of the nebulization module 12 to vibrate according to the operation voltage of the voltage adjustment unit 115 so as to nebulize the medicated liquid to generate spray or aerosol. The vibration unit 121 can be piezoelectric material. The vibration is generated by applying voltage on the piezoelectric material so as to convert medicated liquid into spray or aerosol. The higher the applied voltage level, the larger the generated vibration and the more the spray quantity. For example, the circuit of the voltage adjustment unit 115 and the driving unit 116 can refer to
In some embodiments, the driving unit 116 may be controlled to act or not by some switches which set between the PWM unit 117 and the driving unit 116 and controlled by the control unit 118 to be conductible or cut off. Alternatively, some switches may be disposed between the control unit 118 and the PWM unit 117 and controlled by the control unit 118 similarly. They are not limited thereto.
It should be noted that although the respiration detection unit 31 in the embodiment is triggered by breathing in for example. For example, the respiration detection unit 31 can be also triggered by breathing out so as to stop the nebulizer 1 supplying drug, and they are not limited thereto.
Besides, in some embodiments, the respiration detection unit 31 can be an infrared detector or an audio detector. The infrared detector can detect variations or fluctuations of breathing airflow so as to determine whether the user is breathing in or breathing out. The audio detector can detect the sounds when the user breathes in or out so as to accordingly determine the breath state of the user.
It is noted that in the embodiment, the driving method by detecting breath to supply drug can be applied to the driving mode in the previous embodiment. For example, in the energy-saving driving mode, when the respiration detection unit 31 detects that the user breathes in, the control unit 118 can control the driving unit 116 to act either at the moment the input voltage of the driving unit 116 is at the second operating voltage V2 or at the moment the PWM unit 117 generates a PWM signal with 45% duty cycle. When the respiration detection unit 31 detects that the user breathes out, the control unit 118 controls the driving unit 116 to stop acting. Similarly, the ordinary driving mode can be also applied to the above embodiment, and it is not repeated here.
Besides, referring to
Besides, in the embodiment, the input terminal 111 is coupled to the switch unit 113. Namely, the current provided by the power adapter 2 will flow through the switch unit 113 to the current detection unit 114a, and flow to the voltage adjustment unit 115. Because the elements and operations of the switch unit 113 can refer to the previous embodiment, they are not repeated here.
In some embodiments, both the voltage detection unit 114 and the current detection unit 114a are effective as shown in
In step S01, if the nebulizer 1 does not connect to mains electricity and the battery unit 112 contains low quantity of electricity, the voltage detection unit 114 detects that the input voltage is inadequate to operate the nebulizer 1 even in the energy-saving driving mode. In the embodiment, the lowest operation value may be 1.8V. Thus, the control unit 118 will stop the operation or action of the driving unit 116 (step S02) as the input voltage is smaller than 1.8V. Otherwise, if the input voltage is adequate to trigger the nebulizer 1, step S03 is performed to determine whether the input voltage is smaller than the predefined value or not.
In step S04, in the energy-saving driving mode, the battery unit 112 supplies power and the input voltage of the driving unit 116 is the second operating voltage. In the embodiment, the PWM unit 117 can be utilized to reduce the duty cycle T of the driving unit 116 so as to further decrease the power consumption of the battery unit 112 and prolong the usage time of the battery unit 112.
In step S05, in the ordinary mode, mains electricity supplies power, the input voltage of the driving voltage is the first operating voltage, and the first operating voltage is larger than the second operating voltage. Thus, the power can be continuously supplied to enhance the spray treatment. Besides, the control unit 118 can further turn off the switch unit 113 so that the battery unit 112 will not supply power and will not be charged by mains electricity.
As mentioned above, in some embodiments, the nebulization system includes a respiration detection module and a spray adjustment module. The respiration detection module detects a breath state of a user to generate a detection result. The detection result can represent the breath rhythm of the user, for example a breathing in state or a breathing out state of the user at the moment, or an oncoming breathing in state or an oncoming breathing out state of the user. The spray adjustment module adjusts the time of generating the spray or the amount of generated spray by the nebulization module 12. Preferably, under control by the spray adjustment module, the spray of the nebulization module 12 is generated or outputted following the breath rhythm of the user. For example, the nebulization module 12 is controlled by the spray adjustment module not to generate the spray when the user breathes out. The respiration detection module can include the detection unit 31 mentioned above. The spray adjustment module can include the control unit 118 and the driving unit 116 mentioned above. In addition, the spray adjustment module can further include other elements of the nebulization driving device 11.
As mentioned above, the voltage or current of the input terminal is detected to accordingly determine whether the nebulizer is supplied with mains electricity or battery. Moreover, the driving mode is adjusted according to the power source so as to keep better performance and battery life. In some embodiments, the breath detection unit is utilized to detect the breath state of the user so that the nebulizer can adjust the drug supply with the user's breath rhythm so as to avoid a waste of medicated liquid.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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104132036 | Sep 2015 | TW | national |
This application claims the priority benefits of U.S. provisional application Ser. No. 62/174,144, filed on Jun. 11, 2015 and under 35 U.S.C. §119(a) on patent application No(s). 104132036 filed in Taiwan, Republic of China on Sep. 30, 2015. The entirety of the above-mentioned patent applications are hereby incorporated by references herein and made a part of specification.
Number | Date | Country | |
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62174144 | Jun 2015 | US |