DRYING DEVICE AND INKJET PRINTER SYSTEM INCLUDING DRYING DEVICE
20180126752 ยท 2018-05-10
Assignee
Inventors
Cpc classification
B41J15/04
PERFORMING OPERATIONS; TRANSPORTING
B41J11/0015
PERFORMING OPERATIONS; TRANSPORTING
B41J29/377
PERFORMING OPERATIONS; TRANSPORTING
B41J11/0022
PERFORMING OPERATIONS; TRANSPORTING
B41F23/0483
PERFORMING OPERATIONS; TRANSPORTING
F26B13/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B41J11/00
PERFORMING OPERATIONS; TRANSPORTING
B41J29/377
PERFORMING OPERATIONS; TRANSPORTING
B41F23/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A drying device includes a drying section to dry a recording medium; a cooling section to cool the recording medium conveyed from the drying section; and a duct to expel air inside the drying section to outside the drying device. The duct includes a joint section where the air from the drying section meets air from the cooling section meet. The air from the drying section containing moisture and solvent medium is cooled in the duct.
Claims
1-7. (canceled)
8. A heating device comprising: a heating section to heat a recording medium; a cooling section to cool the recording medium conveyed from the heating section; and a duct to guide air from inside the heating section to outside the heating device, the duct including: a first inflow portion through which the air in the heating section flows into the duct; and a second inflow portion through which the air in the cooling section flows into the duct, wherein a width of the duct in a height direction of the heating device decreases from the first inflow portion toward the second inflow portion.
9. The heating device according to claim 8, further comprising an intake port to expel the air in the duct to outside the heating device, wherein the width of the duct in the height direction of the heating device decreases from the first inflow portion toward the intake port.
10. The heating device according to claim 8, further comprising a collection unit disposed in the duct to collect a condensed liquid in the duct, wherein the collection unit is disposed at a position at which the width of the duct in the height direction of the heating device is largest in the duct.
11. The heating device according to claim 10, further comprising: an inclined portion disposed at a bottom of the duct and inclined downwardly toward the collection unit; and a serpentine path disposed above the inclined portion inside the duct.
12. An inkjet printer system comprising: an inkjet printer to form an image on a recording medium; and the heating device according to claim 8 to heat the recording medium.
13. A heating-and-cooling device comprising: a heating section to heat a recording medium; a cooling section to cool the recording medium conveyed from the heating section; and a duct to guide air inside the heating section to outside the heating-and-cooling device, the duct including: a first inflow portion through which the air in the heating section flows into the duct; and a second inflow portion through which the air in the cooling section flows into the duct, wherein a width of the duct in a height direction of the heating-and-cooling device decreases from the first inflow portion toward the second inflow portion.
14. The heating-and-cooling device according to claim 13, further comprising an intake port to expel the air in the duct to outside the heating-and-cooling device, wherein the width of the duct in the height direction of the heating-and-cooling device decreases from the first inflow portion toward the intake port.
15. The heating-and-cooling device according to claim 13, further comprising a collection unit disposed in the duct to collect a condensed liquid in the duct, wherein the collection unit is disposed at a position at which the width of the duct in the height direction of the heating-and-cooling device is largest in the duct.
16. The heating-and-cooling device according to claim 15, further comprising: an inclined portion disposed at a bottom of the duct and inclined downwardly toward the collection unit; and a serpentine path disposed above the inclined portion inside the duct.
17. An inkjet printer system comprising: an inkjet printer to form an image on a recording medium; and the heating-and-cooling device according to claim 13 to heat and cool the recording medium.
18. A drying device comprising: a heating section to heat a recording medium; a cooling section to cool the recording medium conveyed from the heating section; and a duct to guide air inside the heating section to outside the drying device, the duct including: a first inflow portion through which the air in the heating section flows into the duct; and a second inflow portion through which the air in the cooling section flows into the duct, wherein a width of the duct in a height direction of the drying device decreases from the first inflow portion toward the second inflow portion.
19. The drying device according to claim 18, further comprising an intake port to expel the air in the duct to outside the drying device, wherein the width of the duct in the height direction of the drying device decreases from the first inflow portion toward the intake port.
20. The drying device according to claim 18, further comprising a collection unit disposed in the duct to collect a condensed liquid in the duct, wherein the collection unit is disposed at a position at which the width of the duct in the height direction of the drying device is largest in the duct.
21. The drying device according to claim 20, further comprising: an inclined portion disposed at a bottom of the duct and inclined downwardly toward the collection unit; and a serpentine path disposed above the inclined portion inside the duct.
22. An inkjet printer system comprising: an inkjet printer to form an image on a recording medium; and the drying device according to claim 18 to dry the recording medium.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The aforementioned and other aspects, features, and advantages of the present disclosure would be better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
[0011]
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[0020]
DETAILED DESCRIPTION
[0021] Hereinafter, embodiments of the present disclosure will be described with reference to accompanying drawings.
First Embodiment
[0022] In the first embodiment, the temperature of moist air having a relatively higher temperature is decreased to 45 C. or less, and generation of condensation is prevented. For this purpose, a path of a duct is bent to lengthen the path, so that the air including a great deal of moisture is gradually cooled when passing though the duct. Further, to increase the cooling efficiency, a contact area between the saturated air and the duct is increased and the duct is formed with materials with a higher heat conductivity. The air containing a solvent medium needs to be handled, and therefore materials for the duct are preferably solvent-resistant materials. In the present disclosure, stainless steel (such as SUS304) is used due to its higher solvent-resistant property. However, stainless steel has a lower heat conductivity than other steels, and has a low radiation performance. Thus, the air sucked in from the drying section and the low-temperature air from the cooling section that cools the recording medium are made to collide, to thereby accelerate reduction of the temperature.
[0023] The drying device according to the first embodiment will be described in more detail referring to the drawings, in particular
[0024]
[0025] A continuous recording medium W rolled into the shape of a roller is sent from an unwinder UW and a coating device C pre-treats the recording medium W with a solvent coating. Then, the inkjet printer P prints letters or images on the recording medium W, and the recording medium W is sent to a drying device D. In the drying device D, the recording medium W after having been subjected to heating and cooling processes is rolled up by a re-winder RW to complete a single printing process.
[0026] The drying device D includes a dancer roller unit 1 including two driven rollers movable in the vertical direction. The dancer roller unit 1 applies its own weight to the recording medium W conveyed to the drying device D, so that the recording medium W is pulled with tension by the dancer roller unit 1 downward.
[0027] Next, the recording medium W passes through a sensor 2 that senses the recording medium W and the drying device D whether or not the recording medium W is at an input part. Then, another sensor detects the temperature of the recording medium W. The recording medium W is heated while passing through a drying section 3 to accelerate fixing of the image onto the recording medium W. The drying section 3 includes a built-in heater and includes 6 heat rollers each having a surface controlled at a predetermined temperature. The heat roller is disposed to rotate following the move of the recording medium W.
[0028] A cutter unit 4 including a cutter is disposed to prevent the internal structure inside the drying device from being damaged due to an excess tension applied to the recording medium W caused by malfunction and runaway of the drying device. The cutter unit 4 cuts the recording medium W depending on the tension of the recording medium W and an increasing speed of the tension.
[0029] The recording medium W is conveyed to a cooling section 5 that cools the recording medium W after having passed the above sections. The cooling section 5 includes a plurality of driven rollers and defines a path in which the recording medium W is moved in the vertical direction. The cooling section 5 includes a plurality of cooling fans 6 each to cool the recording medium W by blowing air from the bottom upward. In addition, air is taken in from an intake port 7. The air sent by the cooling fans 6 hits and flows along the recording medium W and is sucked out or expelled via the intake port 7. When the recording medium W passes through the cooling section 5, cooling of the recording medium W is complete. Length of the cooling path, and amount and temperature of the cooling air, are determined based on the heat applied in the drying section 3 and the thermal capacity of the recording medium W, and are determined in the design of the device.
[0030] After the cooling section 5, provided are an outfield roller 8 and a pressure roller 9 that pinches the recording medium W together with the outfield roller 8. The outfield roller 8 is connected to a drive source such as a motor, and minutely adjusts a speed of the recording medium W depending on the state of the dancer roller unit 1 or a position in the vertical direction. The outfield roller 8 and the pressure roller 9 can convey the recording medium W following rotation of the drive source.
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[0035] With the present structure, the condensed liquid inside the duct 10 is concentrated and collected in a collection section 16 due to the weight and is collected therein, because the collection section 16 disposed in the bottom of the duct 10 has a narrowed shape. The cooling section 5 and the duct 10 are connected via an opening 14. The air from the drying section 3 joins in the vicinity of the opening 14 (at a joint section 18) inside the duct 10, and is cooled. The air joined in the vicinity of the opening 14 is sucked and exhausted in the direction of the arrow as illustrated in
Second Embodiment
[0036]
Third Embodiment
[0037]
Fourth Embodiment
[0038]
[0039] As described above, according to the embodiments of the present disclosure, provided is a drying device that can absorb heat in the air such that the moisture and the air containing the solvent medium in ink do not cause dew formation even discharged outside the device, and after the moisture in the air and the solvent medium is concentrated in a liquid shape, is collected in the form of the liquid, and the air is discharged outside. Also, an inkjet printer system including the drying device is provided.
[0040] According to the drying device and the inkjet printer system including the drying device according to at least one embodiment of the present disclosure, water and solvent are collected from the air containing a great deal of moisture generated in the drying section, and condensation generation due to the concentration outside the drying device can be prevented.
[0041] Additional modifications and variations of the present disclosure are possible in light of the above teachings. It is therefore to be understood that, within the scope of the appended claims, the disclosure may be practiced other than as specifically described herein.