IP Library Granted Patent US 12,649,987
Granted Patent B2
US 12,649,987 · App. 18/169,758 · Granted Jun 9, 2026

Laundry treatment appliance including a variable speed blower fan and method of operating the same

Inventors: David Scott Dunn (Louisville, KY); Ionelia Silvia Prajescu (Louisville, KY); Jivko Ognianov Djerekarov (Louisville, KY)
Assignee: Haier US Appliance Solutions, Inc.
D06F58/38D06F58/26D06F2103/32D06F2103/34D06F2105/30
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Quick Facts
Patent No.
US 12,649,987
App. No.
18/169,758
Granted
Jun 9, 2026
Kind
B2
Abstract

A laundry treatment appliance includes a cabinet; a drum rotatably mounted within the cabinet; a sealed system; a duct system; a blower fan capable of operating at variable rotational speeds; and a controller configured to perform an operation. The operation includes directing the blower fan at a preliminary rotational speed; determining a condensation capacity of the sealed system with regards to the process air in the duct system; determining a mass flow rate of moisture in the process air while directing the blower fan at the preliminary rotational speed; determining a target rotational speed of the blower fan corresponding to a set ratio of the determined condensation capacity to the determined mass flow rate; and directing the blower fan at the determined target rotational speed.

Claims (50)

1 . A laundry treatment appliance, comprising:

a cabinet;

a drum rotatably mounted within the cabinet, the drum defining a chamber for receipt of articles, the drum defining a drum outlet and a drum inlet to the chamber;

a sealed system configured to heat and remove moisture from process air flowing therethrough, the sealed system comprising a compressor operable to urge a refrigerant through a refrigerant line;

a duct system for providing fluid communication between the drum outlet and the sealed system and between the sealed system and the drum inlet, the duct system, the sealed system, and the drum defining a process air flow path;

a blower fan operable to move process air along the process air flow path, the blower fan capable of operating at variable rotational speeds;

a temperature sensor provided within the duct system at the drum outlet to sense a temperature of the process air at the drum outlet;

a humidity sensor provided within the duct system at the drum outlet to sense a relative humidity of the process air at the drum outlet; and

a controller configured to perform an operation, the operation comprising:

directing the blower fan at a preliminary rotational speed;

determining a condensation capacity of the sealed system with regards to the process air in the duct system;

estimating an air flowrate of the process air at the drum outlet;

determining a mass flow rate of moisture in the process air while directing the blower fan at the preliminary rotational speed, wherein the determined mass flow rate of the moisture in the process air is based on the estimated air flowrate, a sensed relative humidity, and a sensed temperature of the process air at the drum outlet;

determining a target rotational speed of the blower fan corresponding to a set ratio of the determined condensation capacity to the determined mass flow rate; and

directing the blower fan at the determined target rotational speed.

2 . The laundry treatment appliance of claim 1 , wherein the set ratio of the determined condensation capacity to the determined mass flow rate is 1 : 1 such that the condensation capacity of the sealed system is equal to the mass flow rate of moisture in the process air.

3 . The laundry treatment appliance of claim 1 , wherein the air flowrate of the process air is estimated according to a cross-sectional area of the process air flow path and an air speed produced by the blower fan.

4 . The laundry treatment appliance of claim 1 , wherein the sealed system further comprises:

a first refrigerant temperature sensor provided on the refrigerant line at a first location; and

a second refrigerant temperature sensor provided on the refrigerant line at a second location spaced apart from the first location.

5 . The laundry treatment appliance of claim 4 , wherein the condensation capacity of the sealed system is determined according to a temperature difference between the first and second refrigerant temperature sensors and an operational speed of the compressor.

6 . The laundry treatment appliance of claim 5 , wherein directing the blower fan at the target rotational speed comprises:

reducing the rotational speed of the blower fan from the preliminary rotational speed to a low speed to reduce the mass flow rate of moisture in the process air.

7 . The laundry treatment appliance of claim 1 , wherein the operation further comprises:

a preheat phase;

a steady state drying phase following the preheat phase, wherein the mass flow rate of moisture in the process air exceeds the condensation capacity of the sealed system when the blower fan is directed at the preliminary rotational speed; and

a diminished rate drying phase following the steady state drying phase, wherein the condensation capacity of the sealed system exceeds the mass flow rate of moisture in the process air when the blower fan is directed at the preliminary rotational speed.

8 . The laundry treatment appliance of claim 7 , wherein the blower fan is directed at the determined rotational speed during the steady state drying phase.

9 . The laundry treatment appliance of claim 7 , wherein the operation further comprises:

determining that the drying operation is performing the diminished rate drying phase such that the condensation capacity of the sealed system exceeds the mass flow rate; and

reducing an operational speed of the compressor during the diminished rate drying phase upon determining that the condensation capacity of the sealed system exceeds the mass flow rate.

10 . A method of operating a laundry treatment appliance, the laundry treatment appliance comprising a drum, a duct system in fluid communication with the drum through which process air flows, a sealed system comprising a compressor configured to heat and remove moisture from the process air, the sealed system comprising a compressor operable to urge a refrigerant through a refrigerant line, a blower fan provided within the duct system, a temperature sensor provided within the duct system at a drum outlet to sense a temperature of the process air at the drum outlet, and a humidity sensor provided within the duct system at the drum outlet to sense a relative humidity of the process air at the drum outlet, the method comprising:

directing the blower fan at a preliminary rotational speed;

determining a condensation capacity of the sealed system with regards to the process air in the duct system;

estimating an air flowrate of the process air at the drum outlet;

determining a mass flow rate of moisture in the process air while directing the fan at the preliminary rotational speed, wherein the determined mass flow rate of the moisture in the process air is based on the estimated air flowrate, a sensed relative humidity, and a sensed temperature of the process air at the drum outlet;

determining a target rotational speed of the blower fan corresponding to a set ratio of the determined condensation capacity to the determined mass flow rate; and

directing the blower fan at the determined target rotational speed.

11 . The method of claim 10 , wherein the set ratio is 1 : 1 such that the condensation capacity of the sealed system is equal to the mass flow rate of moisture in the process air.

12 . The method of claim 10 , wherein the air flowrate of the process air is estimated according to a cross-sectional area of the duct system and an air speed produced by the blower fan.

13 . The method of claim 10 , wherein the sealed system further comprises:

a first refrigerant temperature sensor provided on the refrigerant line at a first location; and

a second refrigerant temperature sensor provided on the refrigerant line at a second location spaced apart from the first location.

14 . The method of claim 13 , wherein the condensation capacity of the sealed system is determined according to a temperature difference between the first and second refrigerant temperature sensors and an operational speed of the compressor.

15 . The method of claim 14 , wherein directing the blower fan at the determined target rotational speed comprises:

reducing the rotational speed of the blower fan from the preliminary speed to a low speed to reduce the mass flow rate of moisture in the process air.

16 . The method of claim 10 , wherein the drying operation comprises:

a preheat phase;

a steady state drying phase following the preheat phase; and

a diminished rate drying phase following the steady state drying phase, wherein the blower fan is directed at the determined target rotational speed during the steady state drying phase.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 16, 2023
From: DUNN, DAVID SCOTT; PRAJESCU, IONELIA SILVIA; DJEREKAROV, JIVKO OGNIANOV
To: HAIER US APPLIANCE SOLUTIONS, INC.
Reel/Frame 062719/0134 →
Continuity (1)
Related Publication 20240271355A1 · Aug 15, 2024
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