IP Library › Granted Patent US 8,959,794
Granted Patent B2
US 8,959,794 · App. 13/653,784 · Granted Feb 24, 2015

Process and apparatus to control the airflow in dehumidifying dryers

Inventor: Roderich W. Graeff (Palm Springs, CA)
F26B21/083F26B25/02F26B2200/08
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Quick Facts
Patent No.
US 8,959,794
App. No.
13/653,784
Granted
Feb 24, 2015
Kind
B2
Abstract

A control system for dryers in which the rotation speed of the motors are changed through frequent on/off connections to the electric power line. In accordance with the invention this task is solved by interrupting the electric power driving the electric motor for short periods in such a way that the motor does not come to a complete standstill or remains at a constant speed below the maximum speed. The motor power interruption or application is based upon readings of sensors reading dryer parameters other than the actual speed of the motor being controlled.

Claims (41)

1. A method of controlling motor speed of at least one motor in a dryer by interrupting motor power powering the at least one motor in response to a sensor output related to a parameter other than motor speed which varies with motor speed, comprising the steps of:

a) compare the sensor output to a first set point; if the sensor output does not meet the first set point, then repeat this step (a);

b) if the sensor output met the first set point in step (a), turn motor power off;

c) start a power-off timer;

d) compare the sensor output to a second set point and the power-off timer elapsed time to a selected time duration; if the sensor output does not meet the second set point and the power-off timer is less than the time duration, then repeat this step (d); and

e) if either the sensor output met the second set point or the power-off timer exceeded the duration in step (d), turn the motor power on, and repeat the method from step (a).

2. The method of claim 1 , in which the time duration of step (d) is set to a duration shorter than that which would result in the motor stopping.

3. The method of claim 1 , in which the parameter varies directly with motor speed, and:

the first set point is an upper bound and the sensor output meets the set point in step (a) if the sensor output is greater than or equal to the upper bound; and

the second set point is a lower bound and the sensor output meets the set point in step (d) if the sensor output is less than or equal to the lower bound.

4. The method of claim 1 , in which the parameter varies inversely with motor speed, and:

the first set point is a lower bound and the sensor output meets the set point in step (a) if the sensor output is less than or equal to the lower bound; and

the second set point is an upper bound and the sensor output meets the set point in step (d) if the sensor output is greater than or equal to the upper bound.

5. The method of claim 1 , in which more than one motor is powered by the motor power, such that a plurality of motors are controlled simultaneously by the method.

6. The method of claim 1 , in which at least one of the at least one motor is a fan motor.

7. The method of claim 1 , in which the dryer is an adsorption dryer which uses a honeycomb rotor containing the adsorption medium, and at least one of the at least one motor is a motor powering the rotor.

8. The method of claim 1 in which the parameter is temperature in an air duct of the dryer.

9. The method of claim 1 in which the parameter is air flow in a duct of the dryer.

10. The method of claim 1 in which the motor power is turned on and off by a triac.

11. A dryer comprising:

at least one motor;

at least one sensor having an output related to a parameter other than motor speed which varies with motor speed; and

a controller comprising at least one input coupled to an output of the sensor, a power-off timer, and an output supplying motor power to the at least one motor; in which the controller operates by controlling motor speed of the at least one motor by interrupting the motor power on the output powering the at least one motor in response to the input coupled to the sensor output, the controller controlling the speed of the motor by a method comprising the steps of:

a) compare the sensor output to a first set point; if the sensor output does not meet the first set point, then repeat this step (a);

b) if the sensor output met the first set point in step (a), turn motor power off;

c) start a power-off timer;

d) compare the sensor output to a second set point and the power-off timer elapsed time to a selected time duration; if the sensor output does not meet the second set point and the power-off timer is less than the time duration, then repeat this step (d); and

e) if either the sensor output met the second set point or the power-off timer exceeded the duration in step (d), turn the motor power on, and repeat the method from step (a).

12. The dryer of claim 11 , in which the time duration of step (d) is set to a duration shorter than that which would result in the motor stopping.

13. The dryer of claim 11 , in which the parameter varies directly with motor speed, and:

the first set point is an upper bound and the sensor output meets the set point in step (a) if the sensor output is greater than or equal to the upper bound; and

the second set point is a lower bound and the sensor output meets the set point in step (d) if the sensor output is less than or equal to the lower bound.

14. The dryer of claim 11 , in which the parameter varies inversely with motor speed, and:

the first set point is a lower bound and the sensor output meets the set point in step (a) if the sensor output is less than or equal to the lower bound; and

the second set point is an upper bound and the sensor output meets the set point in step (d) if the sensor output is greater than or equal to the upper bound.

15. The dryer of claim 11 , in which more than one motor is powered by the motor power, such that a plurality of motors are controlled simultaneously by the method.

16. The dryer of claim 11 , in which at least one of the at least one motor is a fan motor.

17. The dryer of claim 11 , in which the dryer is an adsorption dryer which uses a honeycomb rotor containing the adsorption medium, and at least one of the at least one motor is a motor powering the rotor.

18. The dryer of claim 11 in which the parameter is temperature in an air duct of the dryer.

19. The dryer of claim 11 in which the parameter is air flow in a duct of the dryer.

20. The dryer of claim 11 in which the motor power is turned on and off by a triac.

Continuity (2)
Provisional Application 61548485 · Oct 18, 2011
Related Publication 20130091723A1 · Apr 18, 2013