Fusing device adapted for fusing toners on a printing media and printing apparatus therewith
10474073 ยท 2019-11-12
Assignee
Inventors
Cpc classification
G03G2215/2035
PHYSICS
G03G15/2017
PHYSICS
G03G15/2046
PHYSICS
G03G15/167
PHYSICS
G03G15/206
PHYSICS
International classification
Abstract
A fusing device includes a driving roller and a fusing unit including a heat insulating component, a heat generating component, a heat conducting component connected to the heat insulating component, a heat reflecting component, a metal reinforcing component and a fusing component. The heat generating component and the heat reflecting component are located inside the heat insulating component. The metal reinforcing component is located outside the heat insulating component and separated from the heat conducting component. The fusing component movably surrounds the heat conducting component, the heat insulating component and the metal reinforcing component. The heat reflecting component reflects heat generated from the heat generating component to the heat conducting component. The heat conducting component conducts the heat to the fusing component. The fusing component contacts with a printing media to fuse toners onto the printing media by heating when the driving roller drives the printing media to move.
Claims
1. A fusing device adapted for fusing toners onto a printing media, the fusing device comprising: a driving roller for driving the printing media to move along a moving direction; and a fusing unit comprising: a heat insulating component, an accommodating space being formed in the heat insulating component, an opening being formed on a side of the heat insulating component near the driving roller and communicated with the accommodating space; a heat generating component located inside the accommodating space and for generating heat; a heat conducting component connected to the heat insulating component and covering the opening; a heat reflecting component connected to the heat insulating component, the heat reflecting component being located inside the accommodating space and on a side of the heat generating component away from the heat conducting component for reflecting the heat generated by the heat generating component to the heat conducting component; a metal reinforcing component installed on an outer side of the heat insulating component, a stiffness of the metal reinforcing component being greater than a stiffness of the heat insulating component; and a fusing component movably enclosing the heat conducting component, the heat insulating component and the metal reinforcing component, the heat conducting component conducting the heat to the fusing component, and the fusing component contacting with the printing media to fuse the toners onto the printing media by heating when the driving roller drives the printing media to move along the moving direction.
2. The fusing device of claim 1, wherein the heat conducting component and the metal reinforcing component are separated from each other.
3. The fusing device of claim 1, wherein the metal reinforcing component is disposed on a side of the heat insulating component away from the driving roller.
4. The fusing device of claim 3, wherein a cross section of the metal reinforcing component is substantially formed in a U shape, and two sides of the metal reinforcing component are fixed on the side of the heat insulating component away from the driving roller.
5. The fusing device of claim 1, wherein the heat reflecting component and the heat conducting component are separated from each other.
6. The fusing device of claim 5, wherein a cross section of the heat insulating component is substantially formed in a U shape, a first step-shaped structure is formed on a side of the heat insulating component near the opening, the first step-shaped structure comprises a first disposing surface and a second disposing surface, and a side of the heat conducting component and a side of the heat reflecting component are connected to the first disposing surface and the second disposing surface respectively and do not contact with each other.
7. The fusing device of claim 6, wherein a second step-shaped structure is formed on another side of the heat insulating component near the opening, the second step-shaped structure comprises a third disposing surface and a fourth disposing surface, and another side of the heat conducting component and another side of the heat reflecting component are connected to the third disposing surface and the fourth disposing surface respectively and do not contact with each other.
8. The fusing device of claim 1, wherein the heat reflecting component is a bent mirror aluminum plate.
9. The fusing device of claim 1, wherein the heat insulating component is made of heat resistant plastic.
10. A printing apparatus comprising: a toner cartridge storing toners; a photoconductive drum for transferring the toners from the toner cartridge to a printing media; and a fusing device for fusing the toners onto the printing media, the fusing device comprising: a driving roller for driving the printing media to move along a moving direction; and a fusing unit comprising: a heat insulating component, an accommodating space being formed in the heat insulating component, an opening being formed on a side of the heat insulating component near the driving roller and communicated with the accommodating space; a heat generating component located inside the accommodating space and for generating heat; a heat conducting component connected to the heat insulating component and covering the opening; a heat reflecting component connected to the heat insulating component, the heat reflecting component being located inside the accommodating space and on a side of the heat generating component away from the heat conducting component for reflecting the heat generated by the heat generating component to the heat conducting component; a metal reinforcing component installed on an outer side of the heat insulating component, a stiffness of the metal reinforcing component being greater than a stiffness of the heat insulating component; and a fusing component movably enclosing the heat conducting component, the heat insulating component and the metal reinforcing component, the heat conducting component conducting the heat to the fusing component, and the fusing component contacting with the printing media to fuse the toners onto the printing media by heating when the driving roller drives the printing media to move along the moving direction.
11. The printing apparatus of claim 10, wherein the heat conducting component and the metal reinforcing component are separated from each other.
12. The printing apparatus of claim 10, wherein the metal reinforcing component is disposed on a side of the heat insulating component away from the driving roller.
13. The printing apparatus of claim 12, wherein a cross section of the metal reinforcing component is substantially formed in a U shape, and two sides of the metal reinforcing component are fixed on the side of the heat insulating component away from the driving roller.
14. The printing apparatus of claim 10, wherein the heat reflecting component and the heat conducting component are separated from each other.
15. The printing apparatus of claim 14, wherein a cross section of the heat insulating component is substantially formed in a U shape, a first step-shaped structure is formed on a side of the heat insulating component near the opening, the first step-shaped structure comprises a first disposing surface and a second disposing surface, and a side of the heat conducting component and a side of the heat reflecting component are connected to the first disposing surface and the second disposing surface respectively and do not contact with each other.
16. The printing apparatus of claim 15, wherein a second step-shaped structure is formed on another side of the heat insulating component near the opening, the second step-shaped structure comprises a third disposing surface and a fourth disposing surface, and another side of the heat conducting component and another side of the heat reflecting component are connected to the third disposing surface and the fourth disposing surface respectively and do not contact with each other.
17. The printing apparatus of claim 10, wherein the heat reflecting component is a bent mirror aluminum plate.
18. The printing apparatus of claim 10, wherein the heat insulating component is made of heat resistant plastic.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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(6) The metal reinforcing component 1325 is installed on an outer side of the heat insulating component 1321 and separated from the heat conducting component 1323. A stiffness of the metal reinforcing component 1325 can be greater than a stiffness of the heat insulating component 1321 for increasing structural strength of the fusing unit 132, which prevents structural failure of the fusing unit 132 caused by the driving roller 131. In this embodiment, the metal reinforcing component 1325 can be installed onto the outer side of the heat insulating component 1321 by fasteners. The fusing component 1326 movably encloses the heat conducting component 1323, the heat insulating component 1321 and the metal reinforcing component 1325. In this embodiment, the fusing component 1326 can be a fusing belt or a fusing film. The heat insulating component 1321 and the metal reinforcing component 1325 together support the fusing component 1326 for maintaining a shape of the fusing component 1326. The heat conducting component 1323 conducts the heat to the fusing component 1326, and the fusing component 1326 contacts with the printing media 2 to fuse the toners onto the printing media 2 by heating when the driving roller 131 drives the printing media 2 to move along the moving direction S.
(7) In this embodiment, preferably, a cross section of the heat insulating component 1321 can be substantially formed in a U shape. A first step-shaped structure L1 is formed on a side of the heat insulating component 1321 near the opening 1328. The first step-shaped structure L1 includes a first disposing surface P1 and a second disposing surface P2. A second step-shaped structure L2 is formed on another side of the heat insulating component 1321 near the opening 1328. The second step-shaped structure L2 includes a third disposing surface P3 and a fourth disposing surface P4. Two sides of the heat conducting component 1323 are connected to the first disposing surface P1 and the third disposing surface P3 respectively. Two sides of the heat reflecting component 1324 are connected to the second disposing surface P2 and the fourth disposing surface P4 respectively. In other words, by arrangement of the first step-shaped structure L1 and the second step-shaped structure L2, the heat conducting component 1323 and the heat reflecting component 1324 can be separated from each other. In such a way, it prevents the heat from transferring from the heat conducting component 1323 to the heat reflecting component 1324, which reduces heat loss. Furthermore, in order to increase the structural strength of the fusing unit 132, preferably, a cross section of the metal reinforcing component 1325 can be substantially formed in a U shape. Two sides of the metal reinforcing component 1325 can be fixed on a side 13213 of the heat insulating component 1321 away from the driving roller 131. That is, the metal reinforcing component 1325 and the heat conducting component 1323 are located at two opposite sides of the heat insulating component 1321 and separated from each other. In such a way, it prevents the heat from transferring from the heat conducting component 1323 to the metal reinforcing component 1325, which reduces heat loss, too. Besides, in this embodiment, preferably, the heat reflecting component 1324 can be a bent mirror aluminum plate, and the heat insulating component 1321 can be made of heat resistant plastic. However, it is not limited to this embodiment. It depends on practical demands. For example, in another embodiment, the two sides of the heat conducting component 1323 can be connected to the first disposing surface P1 and the third disposing surface P3, and the two sides of the heat reflecting component 1324 can also be connected to the disposing surface P1 and the third disposing surface P3 to contact with the two sides of the heat conducting component 1323.
(8) In contrast to the prior art, the present disclosure utilizes the heat insulating component for isolating the heat conducting component, the heat reflecting component and the metal reinforcing component. Furthermore, the metal reinforcing component with the greater stiffness is installed on the outer side of the heat insulating component. In such a way, it prevents the heat from transferring from the heat conducting component to the heat reflecting component or the metal reinforcing component, which reduces heat loss effectively and maintains temperature. Therefore, the fusing device can achieve a purpose of reducing electricity consumption and enhancing printing quality.
(9) Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the disclosure. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.