IP Library › Granted Patent US 12,607,373
Granted Patent B2
US 12,607,373 · App. 18/301,593 · Granted Apr 21, 2026

Humidification module and electronic apparatus including same

Inventors: Youngchang Seo (Suwon-si, KR); Hyejin Lim (Suwon-si, KR); Jongchan Kwon (Suwon-si, KR); Youngmok Park (Suwon-si, KR)
Assignee: Samsung Electronics Co., Ltd.
F24F6/14B05B5/053F24F11/0008F24F11/63
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Quick Facts
Patent No.
US 12,607,373
App. No.
18/301,593
Granted
Apr 21, 2026
Kind
B2
Abstract

A humidification module and an electronic apparatus including the same are provided. The humidification module includes a supply part supplying water, a droplet generation part generating droplets by using the water supplied through the supply part, and a blowing part discharging the generated droplets to the outside, the droplet generation part includes a nozzle part including a plurality of nozzles spraying the water supplied through the supply part, and an electrode part including a substrate on which a plurality of holes corresponding to the plurality of respective nozzles are formed and electrodes arranged around the plurality of holes for supplying a voltage to the plurality of nozzles, and the plurality of respective nozzles are arranged to penetrate the corresponding holes.

Claims (57)

1 . A humidification apparatus comprising:

a supply part configured to supply water;

a droplet generation part configured to generate droplets by using the water supplied through the supply part; and

a blowing part configured to discharge the droplets to an outside,

wherein the droplet generation part comprises:

a nozzle part including a plurality of nozzles spraying the water supplied through the supply part, and

an electrode part comprising:

a substrate on which a plurality of holes corresponding to the plurality of nozzles, respectively, are formed; and

a plurality of electrodes arranged around the plurality of holes, respectively, for supplying a voltage to the plurality of nozzles,

wherein the plurality of nozzles are arranged to penetrate the plurality of holes, respectively, and

wherein a hydrophilic fine structure including hydrophilic particles is housed inside the nozzle part.

2 . The humidification apparatus of claim 1 ,

wherein the electrode part further comprises a conducting wire connecting the plurality of electrodes arranged around the plurality of holes, and

wherein the humidification apparatus further comprises a power supply part applying a voltage to the plurality of electrodes through the conducting wire.

3 . The humidification apparatus of claim 2 , wherein, based on the voltage being applied to the plurality of electrodes through the conducting wire, a voltage is induced to the plurality of nozzles penetrating the plurality of holes, and water supplied to the plurality of nozzles is electrostatically sprayed.

4 . The humidification apparatus of claim 1 , wherein the substrate comprises a non-conductive substrate.

5 . The humidification apparatus of claim 1 , wherein, based on water being supplied to the nozzle part, an ultrafine capillary is generated by the hydrophilic fine structure and the water is introduced into the plurality of nozzles through the generated ultrafine capillary.

6 . The humidification apparatus of claim 1 , wherein the droplet generation part comprises a ground plate arranged on an opposite side of the electrode part than the droplet generation part, the ground plate being arranged for generating an electric field.

7 . The humidification apparatus of claim 1 , wherein the droplet generation part and the blowing part are arranged inside an electric field shielding case.

8 . The humidification apparatus of claim 1 , further comprising:

an electrolyte removing part configured to, based on water being supplied to an inside of the humidification apparatus, collect electrolytes with an electric force through trap electrodes arranged on both sides of a tube in which the water flows and remove the electrolytes; and

a storage part storing deionized water from which the electrolytes have been removed.

9 . The humidification apparatus of claim 8 ,

wherein the supply part comprises a valve, and

wherein, based on the valve opening, the deionized water stored in the storage part is supplied to the nozzle part.

10 . An electronic apparatus comprising:

a memory storing at least one instruction;

a humidification apparatus; and

a processor connected to the memory and configured to control the humidification apparatus,

wherein the humidification apparatus comprises:

a supply part configured to supply water,

a droplet generation part configured to generate droplets by using the water supplied through the supply part, and

a blowing part configured to discharge the droplets to an outside,

wherein the droplet generation part comprises:

a nozzle part including a plurality of nozzles spraying the water supplied through the supply part, and

an electrode part comprising:

a substrate on which a plurality of holes corresponding to the plurality of nozzles, respectively, are formed; and

a plurality of electrodes arranged around the plurality of holes for supplying a voltage to the plurality of nozzles,

wherein the plurality of nozzles are arranged to penetrate the plurality of holes, respectively,

wherein a hydrophilic fine structure including hydrophilic particles is housed inside the nozzle part, and

wherein the hydrophilic fine structure further includes an ultrafine capillary structure generated through empty spaces among the hydrophilic particles.

11 . The electronic apparatus of claim 10 , further comprising:

a wind duct located on an opposite side of the electrode part than the blowing part, the wind duct being configured to discharge the droplets to the outside.

12 . The electronic apparatus of claim 11 ,

wherein the humidification apparatus further comprises a power supply part,

wherein the processor is further configured to:

control the power supply part to apply the voltage to the plurality of electrodes, and

wherein, based on the voltage being applied to the plurality of electrodes through the power supply part, a voltage is induced to the plurality of nozzles penetrating the plurality of holes and water supplied to the plurality of nozzles is electrostatically sprayed.

13 . The electronic apparatus of claim 12 , wherein the processor is further configured to:

based on a user input for adjusting a humidification amount being received, control the power supply part to apply a specific voltage corresponding to the user input to the plurality of electrodes, or control the blowing part to generate wind of a strength corresponding to the user input.

14 . The electronic apparatus of claim 10 , wherein the droplet generation part and the blowing part are arranged inside an electric field shielding case.

15 . The electronic apparatus of claim 10 ,

wherein each of the plurality of electrodes has a ring shape, and

wherein the plurality of electrodes are configured to receive a voltage through a conducting wire connected to a power supply part of the humidification apparatus.

16 . The electronic apparatus of claim 10 ,

wherein the humidification apparatus further comprises an electrolyte removing part, and

wherein the electrolyte removing part is configured to, based on water being supplied to an inside of the humidification apparatus, collect electrolytes with an electrical force through trap electrodes arranged around a pipe in which the water flows and remove the electrolytes to the outside.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 17, 2023
From: SEO, YOUNGCHANG; LIM, HYEJIN; KWON, JONGCHAN; PARK, YOUNGMOK
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 063345/0444 →
Priority Claims (1)
KR 10-2022-0021299 · Feb 18, 2022 · national
Continuity (2)
Continuation PCTKR2023002309 · Feb 17, 2023
Related Publication 20230266022A1 · Aug 24, 2023
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