Pursuant to 35 U.S.C. §119 and the Paris Convention Treaty, this application claims the benefit of Chinese Patent Application No. 201210127208.0 filed Apr. 26, 2012, the contents of which, including any intervening amendments thereto, are incorporated herein by reference. Inquiries from the public to applicants or assignees concerning this document or the related applications should be directed to: Matthias Scholl P. C., Attn.: Dr. Matthias Scholl Esq., 14781 Memorial Drive, Suite 1319, Houston, Tex. 77079.
1. Field of the Invention
The invention relates to a method for controlling air volume provided by a motor and by an air-conditioning fan system.
2. Description of the Related Art
In an indoor ventilation duct of a household air-conditioner, static pressure often changes because of dust deposition in a duct or blockage of a filter. The static pressure is often higher than the standard static pressure for a nominal system of a manufacturer laboratory due to different installations of ducts. Constant air volume control can provide constant air volume for users under such cases, so as to maintain the comfortable ventilating, cooling or heating effect under broad static pressure conditions.
To realize the constant air volume control, an air volume meter is installed, which, however, increases the cost and the potential risk due to failure of the air volume meter. Currently, air conditioner manufactures mostly adopt a method for controlling air volume provided to remain constant without an air volume meter.
In addition, in some technical schemes, rotational speed is adjusted by monitoring the changes of static pressure to obtain constant air volume. A typical method for determination of the air volume is to directly measure the external static pressure, which requires that the relationship between the static pressure and air volume is measured in advance, then the torque of a motor is calculated under the static pressure corresponding to the specified air volume, and speed adjustment is carried out by monitoring the changes of static pressure. Some calculation formulas involve logarithmic computation or high-order polynomials, and this requires that a microprocessor control unit (MCU) for a motor controller has stronger calculating ability, thus the cost is further improved.
In view of the above-described problems, it is one objective of the invention to provide a method for controlling air volume provided by a motor. The method has high efficiency, high speed, high control accuracy, simple and convenient mathematical model for air volume calculation, and low implementation cost, and can automatically adapt the wide range of static pressure.
To achieve the above objective, in accordance with one embodiment of the invention, there is provided a method for controlling air volume provided by a motor, the method comprising:
In a class of this embodiment, step 7) is followed by step 8), that is, if the torque and the output air volume change due to the alteration of an external system, the motor controller compares the new steady torque with the torque in step 5) or step 7) to acquire the change of output air volume, and then steps 4), 5), 6), and 7) are repeated.
In a class of this embodiment, the functional relation formula Q=F (T, n, V) is acquired as follows according to original data of torque and air volume parameters under a base rotational speed nbase and other rotational speed values and under different external static pressure: arranging the motor fixed on a wind wheel in an air-conditioning device, setting the motor to work at the working state of constant rotational speed, selecting a plurality of rotational speed values comprising the base rotational speed within the range without exceeding the maximal rotational speed, allowing the motor to work under different rotational speed values, and changing the external static pressure of the system in sequence to collect the original data comprising the torque and the air volume parameters.
In accordance with another embodiment of the invention, there is provided a method for controlling air volume provided by an air-conditioning fan system, the air-conditioning fan system comprises a wind wheel and a motor, the motor comprises a motor controller, a stator component, and a rotor component, and the method comprising the following steps:
In a class of this embodiment, step 8) is followed by a step 9), that is, if the torque and the output air volume change due to the alteration of an external system, the motor controller compares the new steady torque with the torque in step 6) or step 8) to acquire the change of output air volume, and then steps 5), 6), 7), and 8) are repeated.
In a class of this embodiment, a calculation formula for calculating air volume is as follows:
in which coefficients c0, c1, and c2 are obtained by a curve fitting method under different external static pressure conditions of base rotational speed nbase according to the original data of the torque and air volume parameters.
In a class of this embodiment, the base rotational speed nbase ranges from 30% nmax to 80% nmax, and nmax represents a maximal rotational speed of the motor.
In a class of this embodiment, the value of the adjustment coefficient V in the functional relation formula Q=F (T, n, V) ranges from 0.1 to 2.
In a class of this embodiment, the calculated air volume Qc is equal or equivalent to the target air volume Qref in step 5) and step 7) means that the calculated air volume Qc is in the range of “target air volume Qref, ±error window”, and the error window of the target air volume Qref ranges from 1% to 2%.
In a class of this embodiment, increasing or decreasing the rotational speed n through the motor controller in step 6) means increasing or decreasing the rotational speed n according to step length sequence of at least 1% nmax each time, or new rotational speed=current rotational speed×(target air volume Qref/current calculated air volume Qc)2.
Advantages of the invention are summarized below:
The invention is described hereinbelow with reference to accompanying drawings, in which:
For further illustrating the invention, experiments detailing a method for controlling air volume to remain constant are described below. It should be noted that the following examples are intended to describe and not to limit the invention.
As shown in
As shown in
As shown in
Technical scheme of a method for controlling air volume provided by an air-conditioning fan system of the invention is summarized as follows:
A method for controlling air volume provided by an air-conditioning fan system, the air-conditioning fan system comprises a wind wheel and a motor, the motor comprising a motor controller, a stator component, and a rotor component, and the method comprising the following steps:
Step 8) is followed by a step 9), that is, if the torque and the output air volume change due to the alteration of an external system, the motor controller compares the new steady torque with the torque in step 6) or step 8) to acquire the change of output air volume, and then steps 5), 6), 7), and 8) are repeated.
A calculation formula for calculating air volume is as follows:
in which coefficients c0, c1, and c2 are obtained by a curve fitting method under different external static pressure conditions of base rotational speed nbase according to the original data of the torque and air volume parameters.
The base rotational speed nbase ranges from 30% nmax to 80% nmax, and nmax represents the maximal rotational speed of the motor.
The value of the adjustment coefficient V in the functional relation formula Q=F (T, n, V) ranges from 0.1 to 2.
The calculated air volume Qc is equal or equivalent to the target air volume Qref in step 5) and step 7) means that the calculated air volume Qc is in the range of “target air volume Qref, ±error window”, and the error window of the target air volume Qref ranges from 1% to 2%.
Increasing or decreasing the rotational speed n through the motor controller in step 6) means increasing or decreasing the rotational speed n according to step length sequence of at least 1% nmax each time, or new rotational speed=current rotational speed×(target air volume Qref/current calculated air volume Qc)2.
The derivation process of the functional relation formula Q=F (T, n, V) is as follows.
The law for the fan indicates that, under certain conditions,
For convenient derivation, the relation formula between the air volume and the torque under a base rotational speed is as follows:
Q
equiv
=c0+c1×T,
or (if a quadratic polynomial is used)
Q
equiv
=c0+c1×T+c2×T2.
From the formula above, by combining the law for the fan, the relationship between the torque and air volume can be further derived under an arbitrary rotational speed. Thus, it is needed to derive the equivalent torque when the rotational speed n=nbase, and then the air volume is converted into a new rotational speed according to the law for the fan:
Put the relation formula into the equation under a base rotational speed, if a linear relation formula is used, then
If a quadratic polynomial is used, then
From the experimental results, the device for testing air volume is always used for dynamically regulating back pressure for controlling the external static pressure, it causes that the law for the fan is invalid in the whole range of air volume, thus an adjustment coefficient V is required to be added in the formula above. The formula after adjustment is as follows.
If a linear relation formula is used, then
If a quadratic polynomial is used, then
The value of the adjustment coefficient V is changed between 0.1 and 2, and the selecting principle is that the air volume value calculated from the formula above is equal or similar to the actual test value. Table 1 is a value table for the adjustment coefficient V of a load.
The rotational speed values are selected to be 500, 600, 700, 800, 900, 1000, 1200 RPM, and the corresponding adjustment coefficient V values are also recorded in Table 1, and the V value can be calculated through linear interpolation of the V value of two adjacent Ts under other working conditions of unmeasured rotational speed.
A calculation formula above is premised on selecting a base rotational speed nbase for deriving the functional relation formula between the air volume and torque under the rotational speed. Therefore, the calculating precision is ensured, and from the point of calculation amount simplification, the function can be linear, that is,
Q
equiv
=c0+c1×T,
or a quadratic polynomial, that is,
Q
equiv
=c0+c1×T+c2×T2.
The experimental data show that the problem of “excessive curve fitting” will be raised if a higher-order function is used to describe the relationship between the air volume and torque, i.e., the phenomenon that the calculation amount is increased, but the fitting precision is not enhanced. With this function, the calculating function formula Q=F (T, n, V) for the air volume can be further derived under any other rotational speed and torque. The value of the adjustment coefficient V is also different under different rotational speed values. Therefore, the working state of constant rotational speed of the motor is required to be set, and the values of a plurality of rotational speed values n comprising the base rotational speed are selected in the range of without exceeding the maximal rotational speed, so that the motor works under different rotational speeds n, and the external static pressure of the system is changed in sequence for collecting the original data comprising torque and air volume parameters. The test result of part of the original data of a load is shown in Table 2 below.
The corresponding adjustment coefficients V under different rotational speed values in Table 1 are obtained through the original data, and the selecting principle is that the air volume value calculated from the formula above is equal or similar to the actual test value.
The following example illustrates the control process to provide constant air volume:
Q
equiv
=c0+c1×T+c2×T2,
While particular embodiments of the invention have been shown and described, it will be obvious to those skilled in the art that changes and modifications may be made without departing from the invention in its broader aspects, and therefore, the aim in the appended claims is to cover all such changes and modifications as fall within the true spirit and scope of the invention.
Number | Date | Country | Kind |
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201210127208.0 | Apr 2012 | CN | national |