1. A fusing device, comprising:
a belt defining a closed loop and comprising a black coating layer disposed on an inner surface of the loop to absorb radiant heat;
a first roller rotatably disposed inside the loop, the first roller comprising a metallic layer disposed on an outer circumferential surface thereof;
a second roller rotatably disposed outside the loop, the first and second rollers each being in a pressing contact with a portion of the belt that passes therebetween; and
a first heat source disposed inside the loop and outside of the first roller, to radiate heat onto the black coating layer of the belt and the metallic layer of the first roller.
2. The fusing device of claim 1, wherein the first roller comprises:
a core; and
an elastic layer disposed between the core and the metallic layer.
3. The fusing device of claim 2, wherein the first roller further comprises an insulating layer disposed between the elastic layer and the metallic layer.
4. The fusing device of claim 2, wherein:
the core has a hollow inner portion; and
the fusing device further comprises a second heat source disposed inside the hollow inner portion of the core.
5. The fusing device of claim 1, wherein the belt comprises:
a substrate disposed around the coating layer and comprising a metallic layer; and
an elastic layer disposed around the substrate.
6. The fusing device of claim 5, wherein the belt comprises a separation layer disposed on around the elastic layer, the separation layer to promote the separation of the belt from a printing medium on which a toner image is fused by the fusing device.
7. The fusing device of claim 1, wherein the belt is configured to move past the first and second rollers in a tensionless state.
8. The fusing device of claim 7, further comprising:
a belt guide disposed inside the loop to support a section of the belt.
9. The fusing device of claim 8, wherein the belt guide is configured to mitigate skewing of the belt.
10. The fusing device of claim 1, further comprising:
a third roller disposed inside the loop to maintain the belt in a tensioned state.
11. The fusing device of claim 10, further comprising:
a second heat source disposed inside the third roller.
12. An image forming apparatus, comprising:
a print unit configured to develop an electrostatic latent image using a developing agent to produce a visible developed image, the print unit being configured to transfer the visible developed image onto a printing medium; and
a fusing device configured to fix the visible developed image on the printing medium, the fusing device comprising:
a belt defining a closed loop and comprising a black coating layer disposed on an inner surface of the loop to absorb radiant heat;
a first roller rotatably disposed inside the loop and comprising a metallic layer formed on the outer surface thereof;
a second roller rotatably disposed outside the loop, the first and second rollers each being in a pressing contact with a portion of the belt that passes therebetween; and
a first heat source disposed inside the loop and outside of the first roller, to radiate heat onto the black coating layer of the belt and the metallic layer of the first roller.
13. The image forming apparatus claim 12, wherein the first roller comprises:
a core; and
an elastic layer disposed between the core and the metallic layer.
14. The image forming apparatus claim 13, wherein the first roller further comprises an insulating layer disposed between the elastic layer and the metallic layer.
15. The image forming apparatus claim 13, wherein:
the core has a hollow inner portion; and
the fusing device further comprises a second heat source disposed inside the hollow inner portion of the core.
16. The image forming apparatus claim 12, wherein the belt comprises:
a substrate comprising a metallic layer; and
an elastic layer; and
a substrate disposed between the black coating layer and the elastic layer and comprising a metallic layer.
17. The image forming apparatus claim 16, wherein the belt comprises a separation layer disposed around the elastic layer to promote separation of the belt from a printing medium.
18. The image forming apparatus claim 12, wherein the belt is configured to move past the first and second rollers in a tensionless state.
19. The image forming apparatus claim 18, wherein the fusing device further comprises:
a belt guide disposed inside the loop to support a section of the belt.
20. The image forming apparatus claim 19, wherein the belt guide is configured to mitigate skewing of the belt.
21. The image forming apparatus claim 18, wherein the fusing device further comprises:
a third roller disposed inside the loop to apply tension to the belt.
22. The image forming apparatus claim 21, wherein the fusing device further comprises:
a second heat source disposed inside the third roller.
23. A fusing device usable in an image forming apparatus for fixing a toner image onto a printing medium, comprising:
a belt defining a closed loop;
a first member disposed inside the loop and comprising:
a solid non-hollow core;
a metallic layer disposed around the solid non-hollow core; and
an insulating layer disposed between the solid non-hollow core and the metallic layer;
a second member disposed outside the loop, the first and second members each being in a pressing contact with a portion of the belt that passes therebetween so as to cause a fusing nip to form between the portion of the belt that passes between the first and second members; and
a heat source disposed inside of the loop and outside of the first member, to radiate heat onto the metallic layer of the first member and the belt.
24. A fusing device comprising:
a belt defining a closed loop;
a first roller rotatably disposed inside of the loop, the first roller comprising a metallic layer disposed on an outer circumferential surface thereof;
a second roller rotatably disposed outside of the loop, the first and second rollers being in pressing contact with a portion of the belt disposed therebetween; and
a first heat source disposed inside of the belt and outside of the first roller, to radiate heat to the metallic layer.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A method for repairing a semiconductor memory device including a plurality of memory cells disposed in a plurality of first semiconductor memory chips and a fuse circuit for repairing defective cells among the memory cells, where the first semiconductor memory chips are different from a second memory chip including the fuse circuit, comprising:
testing memory cells included in each of the plurality of first semiconductor chips;
programming the fuse circuit included in the second semiconductor chip based on a result of the testing of the first semiconductor chips; and
vertically stacking the first semiconductor chips and the second semiconductor chip after the programming of the fuse circuit.
2. The method of claim 1, further comprising:
storing the test result.
3. The method of claim 1, wherein the testing of the memory cells is performed at a wafer level before stacking the first semiconductor memory chips on top of each other.
4. A method for repairing a semiconductor memory device including a plurality of memory cells disposed in a plurality of first semiconductor memory chips and a fuse circuit for repairing defective cells among the memory cells, where the first semiconductor memory chips are different from a second memory chip including the fuse circuit, comprising:
vertically stacking the plurality of first semiconductor chips;
testing memory cells included in each of the stacked first semiconductor chips;
programming the fuse circuit included in the second semiconductor chip based on a result of the testing of the first semiconductor chips; and
vertically stacking the second semiconductor chip with the stacked first memory chips after the programming of the fuse circuit.
5. The method of claim 4, further comprising:
storing the integrated test result.