This application claims the benefit of priority under 35 U.S.C. §119(a) to Korean Patent Application No. 10-2009-0125695, filed on Dec. 16, 2009, in the Korean Intellectual Property Office, the disclosure of which is incorporated herein in its entirety by reference.
1. Field of the Invention
The present general inventive concept relates to an image forming apparatus, and more particularly, to a method and apparatus to control a temperature of a fuser by using a power capsule, and an image forming apparatus including the apparatus to control a temperature of a fuser, whereby the image forming apparatus may appropriately maintain the temperature of the fuser so that the requirements for flicker and harmonic characteristics of the image forming apparatus with respect to the fuser may be satisfied.
2. Description of the Related Art
In order to satisfy the power consumption regulations for image forming apparatuses, it is necessary to reduce the print waiting time thereof. For this, a heat rise function, or a function to increase the heat, of a heat pipe is increased by decreasing a heat capacity of the heat pipe in a fuser system. However, from a control point of view, if the heat rise function of the heat pipe is increased, the number of ON/OFF times that a heater increases and thus a flicker characteristic deteriorates. Also, when the heat capacity of the heat pipe decreases, power control of the heat pipe becomes difficult, and thus, a heat rise function of a fuser creates a ripple which deteriorates the flicker characteristic. Also, when a phase control is performed to address this deterioration, a harmonic characteristic deteriorates.
The present general inventive concept provides a method and apparatus to control a temperature of a fuser in an image forming apparatus by using a power capsule whereby power is optimally controlled so that the requirements for flicker and harmonic characteristics of the image forming apparatus are satisfied.
The present general inventive concept also provides an image forming apparatus with optimal power control so that the flicker and harmonic characteristics of the image forming apparatus are satisfied.
Additional aspects and utilities of the present general inventive concept will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the present general inventive concept.
Features and/or utilities of the present general inventive concept may be realized by a method of controlling a temperature of a fuser of an image forming apparatus, the method including the operations of generating a power capsule having a predetermined power and satisfying a predefined requirement for flicker and harmonic characteristics of the image forming apparatus with respect to the fuser, detecting the temperature of the fuser, and controlling the temperature of the fuser by supplying a power to the fuser in a unit of the power capsule according to a temperature difference between the detected temperature of the fuser and a reference temperature of the fuser
Features and/or utilities of the present general inventive concept may also be realized by a method of controlling a temperature of a fuser, the method including the operations of generating a power capsule including a soft start period in which a power supply is gradually increased to improve a flicker characteristic, a full turn on period in which the power supply is maximum, and a soft end period in which the power supply is gradually decreased to improve the flicker characteristic. The power capsule may be profiled to supply a constant amount of power and to satisfy a predefined requirement for flicker and harmonic characteristics of an image forming apparatus with respect to a fuser in the soft start period, the full turn on period, and the soft end period, to detect the temperature of the fuser, and to control the temperature of the fuser by performing a power control operation according to the power capsule according to a temperature variation of the detected temperature of the fuser with respect to a reference temperature of the fuser.
Features and/or utilities of the present general inventive concept may also be realized by a fuser temperature control apparatus including a temperature sensor to detect a temperature of a fusing roller heated by a heater, a switching unit to switch a supply of power from a power supply device to the heater, and a control unit to generate a power capsule including a soft start period in which a power supply is gradually increased to improve a flicker characteristic, a full turn on period in which the power supply is maximum, and a soft end period in which the power supply is gradually decreased to improve the flicker characteristic. The power capsule may be profiled to supply a constant amount of power and to satisfy a predefined requirement for flicker and harmonic characteristics of an image forming apparatus with respect to the fuser in the soft start period, the full turn on period, and the soft end period, and to control the switching unit so as to allow a power corresponding to the power capsule to be supplied to the heater according to a temperature variation of the fusing roller.
Features and/or utilities of the present general inventive concept may also be realized by an image forming apparatus including a power supply device, a fusing roller containing at least one heater that is heated by the at least one heater, a temperature sensor to detect a temperature of the fusing roller, a switching unit to switch a supply of power from a power supply device to the heater, and a control unit to generate a power capsule including a soft start period in which a power supply is gradually increased to improve a flicker characteristic, a full turn on period in which the power supply is maximum, and a soft end period in which the power supply is gradually decreased to improve the flicker characteristic. The power capsule may be profiled to supply a constant amount of power and to satisfy a predefined requirement for flicker and harmonic characteristics of an image forming apparatus with respect to the fuser in the soft start period, the full turn on period, and the soft end period, and to control the switching unit so as to allow power corresponding to the power capsule to be supplied to the heater according to a temperature variation of the fusing roller.
Features and/or utilities of the present general inventive concept may also be realized by a method of controlling a temperature of a heating unit including detecting the temperature of the heating unit and generating a power capsule to a adjust the temperature of the heating unit when the detected temperature is less than a target temperature.
The generated power capsule may have power characteristics that correspond to the difference between the detected temperature and the target temperature.
The power capsule may be generated using a phase profile sequence.
The power capsule may be generated using a “number of waveform” duty profile sequence.
The temperature of the heating unit may be repeatedly detected, and a plurality of power capsules having different power characteristics may be generated when a plurality of difference temperatures may be detected.
The heating unit may have a warm-up mode, a full-power mode, and a ready mode, and power capsules having different power characteristics may be generated in each of the warm-up mode, the full power mode, and the ready mode, respectively.
The heating unit may include a plurality of heating units, each power capsule may include a ramp-up portion during which power may be increased, a ramp-down portion in which power may be decreased, and a sustained power portion between the ramp-up portion and the ramp-down portion during which power may be sustained, and the method may further include delaying generating a second power capsule to a second of the plurality of heating units when a ramp-up portion of a first power capsule is supplied to a first heating unit of the plurality of heating units.
Features and/or utilities of the present general inventive concept may also be realized by a fusing unit including a heating unit to receive a power capsule to heat the fusing unit.
The fusing unit may include a sensor to detect a temperature of the fusing unit, and the power capsule may be supplied to the heating unit when a the detected temperature of the fusing unit is less than a target temperature.
Features and/or utilities of the present general inventive concept may also be realized by a fuser temperature control apparatus including a sensor to detect a temperature of a fusing unit, a switching unit to switch on and off a power capsule supplied to the fusing unit, and a control unit to control the switching unit to supply the power capsule to the fusing unit when the detected temperature is less than a target temperature.
The control unit may generate the power capsule to have power characteristics based on the difference between the detected temperature and the target temperature.
The power capsule may include a power ramp-up portion, a power ramp-down portion, and a sustained power portion between the ramp-up portion and the ramp-down portion, and the control unit may generate the power capsule to have a sustained power portion that may have a duration that corresponds to the difference between the detected temperature and the target temperature, such that a larger difference corresponds to a longer duration than that of a smaller difference.
The control unit may generate the power capsule using a phase profile sequence.
The control unit may generate the power capsule using a “number of waveforms” duty profile sequence.
The control unit may generate a plurality of power capsules having different power characteristics to correspond to a warm-up mode, a full-power mode, and a ready mode of the heating unit.
The heating unit may include a plurality of heating units, each power capsule may include a power ramp-up portion, a power ramp-down portion, and a sustained power portion between the ramp-up portion and the ramp-down portion, and the control unit delays generating a second power capsule to a second of the plurality of heating units when a ramp-up portion of a first power capsule may be supplied to a first heating unit of the plurality of heating units.
Features and/or utilities of the present general inventive concept may also be realized by an image forming apparatus including a fusing unit including a heater to heat the fusing unit, a power supply device to supply power to the fusing unit, and a fuser temperature control apparatus to control the supply of power from the power supply device to the fusing unit, the fuser temperature control apparatus comprising a sensor to detect a temperature of the fusing unit and a controller to control the power from the power supply device to generate a power capsule to supply to the fusing unit to heat the fusing unit.
The above and other features and advantages of the present general inventive concept will become more apparent by describing in detail exemplary embodiments thereof with reference to the attached drawings in which:
Reference will now be made in detail to the embodiments of the present general inventive concept, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. The embodiments are described below in order to explain the present general inventive concept by referring to the figures.
In order to satisfy the requirements for a flicker characteristic of an image forming apparatus, power is soft started and soft ended in a lamp load (heater) so that the flicker characteristic is improved. However, by doing so, the number of times a phase control is performed increases, and thus, the requirements for a harmonic characteristic are not satisfied. A waveform number control provides a low power control ability to the image forming apparatus. When the number of times power is turned ON or OFF is reduced (that is, when the waveform number control is performed), the flicker characteristic is improved. However, when the power control is inadequate, it is necessary to increase a temperature ripple. However, by doing so, the lifetime and function of a fuser deteriorate.
Meanwhile, in order to satisfy the requirements for the harmonic characteristic of the image forming apparatus, it is necessary to control the harmonic characteristic according to a ratio of the phase control to the waveform number control. The waveform number control is appropriate to satisfy the harmonic characteristic and Electromagnetic Interference (EMI), but provides the low power control ability and thus is limited in overcoming the flicker characteristic.
The image forming apparatus of
The fuser temperature control apparatus 100 controls the supply of power from the power supply device 120 to the heater 142, and includes a control unit 102, a switching unit 104, and a temperature sensor 106.
The temperature sensor 106 detects a temperature of the fusing roller 140. The switching unit 104 switches the supply of power from the power supply device 120 to the heater 142.
The control unit 102 generates control signals corresponding to a power capsule and controls the switching unit according to the control signals. In turn, the power is supplied to the heater 142 in the form of the power capsule.
The term “power capsule” as used in the present specification and claims refers to a pattern of a power signal that is in the shape of a “capsule.” In other words, the power signal may have an AC voltage component, and the power level may gradually increase on either side of a reference power level, may even out in a center portion to have a sustained power level, and may gradually decrease at a trailing end of the power capsule. The power level may be calculated by the formula P=V·I·cos(θ).
In the soft start period A, a power supply to the heater 142 is gradually increased or ramped up to the full power level. Since the power is based on an AC voltage signal, the power level gradually increases in both a positive and negative direction with respect to a reference power level according to the positive and negative swings of the AC signal. The gradual increase of power improves flicker characteristics of the fusing roller by decreasing the flicker.
Referring again to
In the soft end period C, the procedure performed in the soft start period A is performed in a reverse manner, and may have a power about 30% of a power of the soft start period A. In other words, the duration of the soft end period C may be shorter than that of the soft start period A.
While
A plurality of power capsules may be used according to the desired amount of power supply, and each profile of the power capsules may be optimally configured to satisfy the requirements for the flicker and harmonic characteristics. An optimal profile may be profiled in such a manner that a temporal proportion between the soft start period A, the full turn on period B, and the soft end period C is constant. In other words, when a plurality of power capsules is used, a ratio of the durations of A:B:C may be constant in each of the plurality of power capsules, even when the duration of a soft start period A is different from one capsule to another. In addition, with respect to a profile setting in the soft start period A and the soft end period C, phase values in the soft start period A and the soft end period C may be configured as a look-up table so as to control a ratio of a power amount variation with respect to a time variation to be constant according to a load characteristic.
As illustrated in
The image forming apparatus according to the present embodiment controls the temperature of the fuser by detecting the temperature of the fuser and then performing a switching operation so as to used the proper power capsule according to the temperature difference. In this regard, the image forming apparatus may control the temperature of the fuser by varying the levels of the power capsules and the number of the power capsules according to each of an initial warm up period, a continuous printing period, and a ready period corresponding to a standby period in which a printing operation is not performed.
For example, a power capsule corresponding to a warm up mode profile may be used in the initial warm up period, a large number of power capsules may be used in the continuous printing period, and a power capsule corresponding to a ready mode profile may be used in the ready period. Also, the temperature of the fuser may be controlled by varying the levels of the power capsules used in the initial warm up period, the continuous printing period, and the ready period may vary.
In
The power capsule may be generated by saving control signals in memory to be accessed when temperature differences are detected between a detected temperature and a target temperature. A plurality of power capsules may be used according to the amount of a power supply, and each profile of the power capsules may be optimally designed to satisfy the requirements for the flicker and harmonic characteristics. When the profiles of the power capsules are generated, the levels and number of periods of the power capsules may vary for each of an initial warm up period, a continuous printing period, and a ready period corresponding to a standby period in which a printing operation is not performed. The profiles of the power capsules may be configured in a look-up table and stored in the control unit 102.
When a temperature of the fusing roller 140 is detected in operation S510 by using the temperature sensor 106, a temperature variation with respect to a reference temperature of the fusing roller 140 is calculated in operation S520.
The control unit 102 switches the switching unit 104 in operation S530 so as to allow a power corresponding to the power capsule to be supplied to the heater 142 according to the temperature variation with respect to the reference temperature, thereby controlling the temperature of the fusing roller 140.
As illustrated in
In this manner, according to the embodiments of the present general inventive concept, the temperature of the fuser in the image forming apparatus is controlled by power capsules. The temperature may be controlled by varying the levels of the power capsules for each of the warm up period, the continuous printing period, and the ready period, or may be controlled by varying the number of the power capsules. When the temperature is controlled with power capsules, the power capsules may be generated to reduce negative flicker and harmonic characteristics, so that it is possible to control the temperature of the fuser while improving flicker and harmonic characteristics.
When a single 800 W lamp is controlled in a reference printer or imaging apparatus, the Plt value indicating a flicker value in a ready mode is 0.62 in a ZCVF duty profile sequence and is 0.332 in the phase profile sequence. The Pst value indicating a flicker value in a printing mode is 0.63 in the ZCVF duty profile sequence. Since it is necessary for the flicker value to be equal to or less than 1 according to a predetermined flicker requirement, it is possible to see that the Plt and Pst values satisfy the flicker requirements when the present general inventive concept is implemented in the reference imaging apparatus.
When two 800 W lamps (totaling 1600 W) are controlled in a JIG profile test, the Plt value indicating a flicker value in a ready mode is 0.62 in a ZCVF duty profile sequence, and 0.332 in the phase profile sequence. The Pst value indicating a flicker value in a printing mode is 1.895 in a ZCVF Non Soft Start ON/OFF profile sequence. Although the Pst value 1.895 exceeds the flicker requirement in the Non-Soft Start profile sequence, the Pst value is 0.75 in the ZCVF duty profile sequence and 0.635 in the phase profile sequence. Accordingly, the Plt and Pst values satisfy the flicker requirements since it is necessary for the flicker value to be equal to or less than 1.
While the present general inventive concept has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by those of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present general inventive concept as defined by the following claims.
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