A condensation-type air purifier that adjusts humidity before cooling.

JP2026141164APending Publication Date: 2026-09-04吉水 幸博
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Patent Information

Application Number
JP2025027575
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-09-04
Estimated Expiration
2045-02-25

AI Technical Summary

Benefits of technology

【0008】 本発明によれば、最小の噴霧により塵埃粒子を凝結核とすることができ、伴って効率と性能が高くエネルギー効率に優れる凝結式空気清浄装置が提供される。

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Abstract

This invention provides a highly efficient and high-performance condensation-type air purifier by suppressing the generation of liquid particles in the air immediately before cooling, which significantly impacts efficiency. [Solution] By controlling spraying, heating, and airflow using sensors, etc., it is possible to maximize the amount of water vapor in the air immediately before cooling and minimize the amount of liquid particles.
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Description

Technical Field

[0001] The present invention relates to a condensation-type air cleaning device.

Background Art

[0002] When air is cooled, water vapor condenses with solid particles or liquid particles as condensation nuclei. By this action, dust particles can be separated from air.

[0003] When the content of water vapor in air is low, the condensation efficiency is poor, so there is a mechanism that performs spraying in advance (Patent Document 1).

[0004] There is one patent document that includes the terms "air cleaning", "condensation" and "heating", but it does not employ spraying as a pre-process for condensation (Patent Document 2).

Prior Art Literature

Patent Literature

[0005]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0006] The prior art has a problem that a large number of liquid particles exist in the air immediately before cooling, and these liquid particles also become condensation nuclei during cooling, resulting in low separation efficiency of dust particles. The present invention suppresses the generation of liquid particles and provides a condensation-type air cleaning device with high efficiency and performance.

Means for Solving the Problems

[0007] In order to solve the above problems, the present invention comprises the means described in 1) and 2) below. That is, 1) A condensation-type air purifier comprising a sprayer, a heating element, a cooling element, and a blower. 2) The condensation type air purifier according to 1), comprising a humidity sensor and a control device to which the humidity sensor is connected and which controls the sprayer, the heating element, the cooling element, and the blower. [Effects of the Invention]

[0008] According to the present invention, dust particles can be used as condensation nuclei with minimal spraying, and a condensation-type air purifier is provided that is highly efficient, performs well, and is energy-efficient. [Brief explanation of the drawing]

[0009] [Figure 1] This is a cross-sectional view of a condensation-type air purifier according to one embodiment of the present invention. [Figure 2] This is a flowchart illustrating the control of a condensation-type air purifier according to one embodiment of the present invention. [Modes for carrying out the invention]

[0010] When air is cooled and water vapor condenses, if there are unvaporized liquid particles present, these also act as condensation nuclei, preventing dust particles from efficiently serving as condensation nuclei. By controlling spraying, heating, and airflow, the amount of water vapor in the air immediately before cooling is maximized and the amount of liquid particles is minimized.

[0011] While the primary purpose of this invention is air purification, it can be used for the general removal of solid and liquid particles suspended in gases. For example, it can be used to remove oil particles by spraying alcohol into gaseous nitrogen.

[0012] While the primary purpose of this invention is air purification, it can also be used for sampling solid and liquid particles suspended in gases.

[0013] The present invention will be described as an embodiment with reference to the drawings. The embodiments shown below are merely illustrative, and there is no intention to exclude various modifications or applications of techniques not explicitly shown in the embodiments below.

[0014] Figure 1 is a cross-sectional view of a condensation-type air purifier according to one embodiment of the present invention.

[0015] (1) In Figure 1, the Peltier element 3 is installed sandwiched within a housing 1 which has a U-shaped airflow channel, and the Peltier element 3 is connected to a heating heat sink 4 and a cooling heat sink 5 installed within the airflow channel. (2) Inlet blowers 6 and outlet blowers 7 are installed at the two openings of the housing 1, and are driven so that the heating heat sink 4 is on the upstream side and the cooling heat sink 5 is on the downstream side, taking in outside air and discharging it through the gas flow path of the housing 1. (3) A sprayer 2 is installed near the heating heat sink 4, and water is obtained from the water supply tank 21 via the water supply tube 22 and sprayed onto the heating heat sink 4. (4) A drain tank 23 is installed at the bottom of the cooling heat sink 5 to collect the condensed liquid. (5) An inlet temperature sensor 11 is installed near the inlet blower 6, and an intermediate temperature sensor 12 and an intermediate humidity sensor 13 are installed in the middle of the heating heat sink 4 and the cooling heat sink 5. (6) The drive circuit 14 is electrically connected to the sprayer 2, the Peltier element 3, the inlet blower 6, and the outlet blower 7. (7) The control unit 15 is electrically connected to the drive circuit 14, the inlet temperature sensor 11, the intermediate temperature sensor 12, and the intermediate humidity sensor 13.

[0016] (1) In Figure 1, when the Peltier element 3 is activated, the heating heatsink 4 is heated and the cooling heatsink 5 is cooled. (2) The outside air taken in by the inlet blower 6 is humidified by spraying and heating in the sprayer 2 and heating heat sink 4. (3) When the humidified gas reaches the cooling section heat sink 5, water vapor condenses around the dust particles and can be separated from the gas. (4) The condensed liquid is collected in the drainage tank 23, and the gas is released by the outlet blower 7.

[0017] In FIG. 1, thermal energy is transferred from the heating heat sink 4 to water vapor vaporized by spraying, and circulates back to the heating heat sink 4 via the cooling heat sink 5 and the Peltier element 3, resulting in high energy efficiency.

[0018] (1) In order to efficiently use dust particles as condensation nuclei, it is necessary to maximize the amount of water vapor in the gas humidified by spraying and heating and minimize the amount of liquid particles. (2) For this purpose, the balance among spraying, heating and air blowing is important. (3) When a Peltier element is used, the heating capacity is overwhelmingly smaller compared to spraying and air blowing, so spraying and air blowing need to be adjusted. (4) For convenience, the target humidity after performing spraying and heating is described as 95%.

[0019] (1) In FIG. 1, when an operation command is sent to the control unit 15 by an external signal or an operator, the control unit 15 causes the drive circuit 14 to drive the Peltier element 3 at full power. (2) Similarly, the sprayer 2, the inlet blower 6, and the outlet blower 7 are driven at preset default values (FIG. 2, step S1). (3) The control unit 15 acquires measurement values from the intermediate humidity sensor 13, the intermediate temperature sensor 12, and the inlet temperature sensor 11 (FIG. 2, step S2). (4) When the value of the intermediate humidity sensor 13 is higher than 95% and the value of the intermediate temperature sensor 12 is greater than the value of the inlet temperature sensor 11, it can be determined that there is surplus heating capacity, so the control unit 15 increases the operation of the sprayer 2, the inlet blower 6, and the outlet blower 7 (FIG. 2, steps S3, 4, 7). (5) When the humidity is higher than 95% and the temperature of the intermediate portion is the same as that of the inlet portion, it can be determined that there is surplus capacity for spraying and heating, so the operation of the inlet blower 6 and the outlet blower 7 is increased (FIG. 2, steps S3, 4, 8). (6) When the humidity is higher than 95% and the temperature of the intermediate portion is lower than that of the inlet portion, it can be determined that spraying is excessive, so the operation of the sprayer 2 is reduced (FIG. 2, steps S3, 4, 9). (7) When the humidity is 95% and the temperature in the middle section is higher than that in the inlet section, it can be determined that there is surplus heating capacity, so the operation of the sprayer 2, the inlet blower 6, and the outlet blower 7 is increased (Figure 2, steps S3, 5, 10). (8) When the humidity is 95% and the temperature of the middle section and the inlet section are the same, the target condition can be determined, and the current operation will be maintained (Figure 2, steps S3, 5, 11). (9) If the humidity is 95% and the temperature in the middle section is lower than that in the inlet section, it can be determined that heating is insufficient, so the operation of the sprayer 2, the inlet blower 6, and the outlet blower 7 is reduced (Figure 2, steps S3, 5, 12). (10) If the humidity is lower than 95% and the temperature in the middle section is higher than that in the inlet section, it can be determined that there is insufficient spraying, so the operation of sprayer 2 is increased (Figure 2, steps S3, 6, 13). (11) If the humidity is lower than 95% and the temperature in the middle section and the inlet section are the same, it can be determined that the airflow is excessive, so the operation of the inlet fan 6 and the outlet fan 7 is reduced (Figure 2, steps S3, 6, 14). (12) If the humidity is lower than 95% and the temperature in the middle section is lower than that in the inlet section, it can be determined that heating is insufficient, so the operation of the sprayer 2, the inlet blower 6, and the outlet blower 7 is reduced (Figure 2, steps S3, 6, 15). (13) After changing the operation, the control unit 15 acquires the measured values ​​from the intermediate humidity sensor 13, the intermediate temperature sensor 12, and the inlet temperature sensor 11 (Figure 2, step S2). [Explanation of Symbols]

[0020] 1 cabinet 2 spray machine 3 Peltier element 4. Heating heatsink 5. Cooling heatsink 6. Inlet fan 7 Outlet blower 11. Inlet temperature sensor 12. Intermediate temperature sensor 13. Intermediate humidity sensor 14. Drive Circuit 15 Control Unit 21 Water tank 22 Water supply tube 23 Drainage tank

Claims

1. A condensation-type air purifier comprising a sprayer, a heating element, a cooling element, and a blower.

2. The condensation-type air purifier according to claim 1, comprising a humidity sensor and a control device to which the humidity sensor is connected and which controls the sprayer, the heating element, the cooling element, and the blower.

Citation Information

Patent Citations

  • Air purifying method

    JP1988051959A

  • Air treatment device

    JP2006288453A