Claims
- 1. A thermal transfer recording apparatus, comprising:a line type thermal head provided with a plurality of heat generating elements disposed thereon; a thermal transfer recording medium formed with thermal transfer recording material on a surface of a supporting material, of which dynamic shear modulus of elasticity is within a range of 1×103 Pa to 8×105 Pa, and loss tangent tan δ is within a range of 0.6 to 2.5 measured in dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the melting point at a frequency of 0.5 Hz; first conveyance means for conveying a printing medium; second conveyance means for conveying each thermal transfer recording medium; pressure contact means for pressurizing said heat generating elements against said thermal transfer recording medium to bring the same into contact therewith with a load of 0.3 to 1.0 N/mm, which is load per unit length in the direction of the arrangement of the heat generating elements; and transfer means for transferring said thermal transfer recording material to said printing medium by causing each heat generating element of the line type thermal head to generate heat at a recording time and by peeling off the thermal transfer recording material in a softened or melted status from the supporting material.
- 2. A thermal transfer recording apparatus according to claim 1, wherein peeling means for peeling off said thermal transfer recording medium from said printing medium is provided, said transfer means peels off said thermal transfer recording material in a softened or melted status from the supporting material and transfers the same to said printing medium by controlling the conveyance speeds of the first and second conveyance means to control the peeling time from a moment when said thermal transfer recording medium is heated by said heat generating elements to a moment when the same is peeled off from the supporting material thereof by said peeling means.
- 3. A thermal transfer recording apparatus according to claim 1, wherein, said thermal transfer recording medium includes an intermediate layer between the supporting material and the thermal transfer recording material, of which dynamic shear modulus of elasticity is smaller than 1×103 Pa measured by dynamic viscoelasticity measurement in a temperature range of the melting point of the thermal transfer recording material to 50° C. over the melting point at a frequency of 0.5 Hz.
- 4. A thermal transfer recording apparatus according to claim 3, wherein, a thermal transfer recording material is used as said thermal transfer recording material, of which dynamic shear modulus of elasticity is within a range of 1×104 Pa to 7×105 Pa, and loss tangent tan δ is within a range of 0.7 to 2.2 measured by dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the same at a frequency of 0.5 Hz.
- 5. A thermal transfer recording apparatus according to claim 3, wherein, the line type thermal head is provided with the heat generating elements disposed on the slope face between a main face and an end face on the flat base or on the end face thereof.
- 6. A thermal transfer recording apparatus according to claim 1, wherein said line type thermal head is provided with the heat generating elements disposed on the slope face between a main face and an end face on the flat base, or on the end face thereof.
- 7. A thermal transfer recording apparatus comprising;a plurality of line type thermal heads provided with a plurality of heat generating elements disposed thereon, respectively, disposed with a specific distance from each other; thermal transfer recording media formed, respectively, with thermal transfer recording material on a surface of supporting material and provided to each thermal head respectively, of which dynamic shear modulus of elasticity is within a range of 1×103 Pa to 8×105 Pa, and loss tangent tan δ is within a range of 0.6 to 2.5 measured in dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the melting point at a frequency of 0.5 Hz; first conveyance means for conveying a printing medium; second conveyance means for conveying each thermal transfer recording medium; pressure contact means for pressurizing said heat generating elements against said thermal transfer recording media to bring the same into contact therewith respectively, with a load of 0.3 to 1.0 N/mm, which is load per unit length in the direction of the arrangement of the heat generating elements; and transfer means for transferring said thermal transfer recording materials to said printing medium while shifting the timing in order and overlapping the thermal transfer materials of different colors at the same location on said printing medium by causing each heat generating element of the line type thermal heads to generate heat at a recording time and by peeling off the same in a softened or melted status from the supporting materials thereof.
- 8. A thermal transfer recording apparatus according to claim 7, wherein peeling means for peeling off said thermal transfer recording medium from said printing medium is provided, said transfer means peels off said thermal transfer recording material in a softened or melted status from the supporting material thereof and transfers the same to said printing medium by controlling the conveyance speeds of the first and second conveyance means to control the peeling time from a moment when said thermal transfer recording medium is heated by said heat generating elements to a moment when the same is peeled off from the supporting material thereof by said peeling means.
- 9. A thermal transfer recording apparatus according to claim 7, wherein, said thermal transfer recording medium includes an intermediate layer between the supporting material and the thermal transfer recording material, of which dynamic shear modulus of elasticity is smaller than 1×103 Pa measured by dynamic viscoelasticity measurement in a temperature range of the melting point of the thermal transfer recording material to 50° C. over the melting point at a frequency of 0.5 Hz.
- 10. A thermal transfer recording apparatus according to claim 9, wherein, said line type thermal head is provided with the heat generating elements disposed on the slope face between the main face and the end face on the flat base or on the end face thereof.
- 11. A thermal transfer recording apparatus according to claim 9, wherein, a thermal transfer recording material is used as said thermal transfer recording material, of which dynamic shear modulus of elasticity is within a range of 1×104 Pa to 7×105 Pa, and loss tangent tan δ is within a range of 0.7 to 2.2 measured by dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the same at a frequency of 0.5 Hz.
- 12. A thermal transfer recording apparatus according to claim 7, wherein, said line type thermal head is provided with the heat generating elements disposed on the slope face between a main face and an end face on the flat base or on the end face thereof.
- 13. A thermal transfer recording apparatus according to claim 7, wherein, while said thermal transfer recording material previously transferred to said printing medium is still in a softened status, the next thermal transfer recording material is transferred in an overlapping manner.
- 14. A thermal transfer recording apparatus according to claim 13, wherein, the line type thermal head is provided with the heat generating elements disposed on the slope face between a main face and an end face on the flat base or on the end face thereof.
- 15. A method for thermal transfer recording which transfers a thermal transfer recording material from a thermal transfer recording medium to a printing medium to make a printing by heat generation of each heat generating element of a line type thermal head provided with a plurality of heat generating elements disposed thereon, comprising the steps of utilizing thermal transfer recording material of which dynamic shear modulus of elasticity is within a range of 1×103 Pa to 8×105 Pa, and loss tangent tan δ is within a range of 0.6 to 2.5 measured in dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the melting point at a frequency of 0.5 Hz; pressurizing heat generating elements on said line type thermal head against said thermal transfer recording medium to bring the same into contact therewith with a load of 0.3 to 1.0 N/mm, which is load per unit length in the direction of the arrangement of the heat generating elements as well as transferring said thermal transfer recording material to said printing medium by peeling off the same in a softened or melted status from the supporting material thereof.
- 16. A method for thermal transfer recording according to claim 15, wherein peeling means for peeling off said thermal transfer recording medium from said printing medium is provided, said transfer means peels off said thermal transfer recording material in a softened or melted status from the supporting material thereof and transfers the same to said printing medium by controlling the conveyance speeds of the first and second conveyance means to control the peeling time from a moment when said thermal transfer recording medium is heated by said heat generating elements to a moment when the same is peeled off from the supporting material thereof by said peeling means.
- 17. A method for thermal transfer recording according to claim 15, wherein, said thermal transfer recording medium includes an intermediate layer between the supporting material and the thermal transfer recording material, of which dynamic shear modulus of elasticity is smaller than 1×103 Pa measured by dynamic viscoelasticity measurement in a temperature range of the melting point of the thermal transfer recording material to 50° C. over the same at a frequency of 0.5 Hz.
- 18. A method for thermal transfer recording according to claim 17, wherein, a thermal transfer recording material is used as said thermal transfer recording material, of which dynamic shear modulus of elasticity is within a range of 1×104 Pa to 7×105 Pa, and loss tangent tan δ is within a range of 0.7 to 2.2 measured by dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the melting point at a frequency of 0.5 Hz.
- 19. A method for thermal transfer recording according to claim 17, wherein, the line type thermal head is provided with the heat generating elements disposed on the slope face between a main face and an end face on the flat base or on the end face thereof.
- 20. A method for thermal transfer recording according to claim 15, wherein said line type thermal head is provided with the heat generating elements disposed on the slope face between the main face and the end face on the flat base, or on the end face thereof.
- 21. A method for thermal transfer recording which transfers thermal transfer recording materials to said printing medium while shifting the timing in order and overlapping the thermal transfer materials of different colors at the same location on said printing medium by heating each heat generating element of the line type thermal heads disposed with a specific distance from each other comprising the steps of: utilizing a thermal transfer recording material of which dynamic shear modulus of elasticity is within a range of 1×103 Pa to 8×105 Pa, and loss tangent tan δ is within a range of 0.6 to 2.5 measured in dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the melting point at a frequency of 0.5 Hz; pressurizing heat generating elements on said line type thermal head against said thermal transfer recording medium to bring the same into contact therewith with a load of 0.3 to 1.0 N/mm, which is load per unit length in the direction of the arrangement of the heat generating elements as well as transferring said thermal transfer recording material to said printing medium by peeling off the same in a softened or melted status from the supporting material thereof.
- 22. A method for thermal transfer recording according to claim 21, wherein peeling means for peeling off said thermal transfer recording medium from said printing medium is provided, said transfer means peels off said thermal transfer recording medium in a softened or melted status from the supporting material thereof and transfers the same to said printing medium by controlling the first and second conveyance speed to control the peeling time from a moment when said thermal transfer recording medium is heated by said heat generating elements to a moment when the same is peeled off from the supporting material thereof by said peeling means.
- 23. A method for thermal transfer recording according to claim 21, wherein, said thermal transfer recording medium includes an intermediate layer between the supporting material and the thermal transfer recording material, of which dynamic shear modulus of elasticity is smaller than 1×103 Pa measured by dynamic viscoelasticity measurement in a temperature range of the melting point of the thermal transfer recording material to 50° C. over the same at a frequency of 0.5 Hz.
- 24. A method for thermal transfer recording according to claim 23, wherein, the line type thermal head is provided with the heat generating elements disposed on the slope face between the main face and the end face on the flat base or on the end face thereof.
- 25. A method for thermal transfer recording according to claim 23, wherein, a thermal transfer recording material is used as said thermal transfer recording material, of which dynamic shear modulus of elasticity is within a range of 1×104 Pa to 7×105 Pa, and loss tangent tan δ is within a range of 0.7 to 2.2 measured by dynamic viscoelasticity measurement in a temperature range of the melting point thereof to 50° C. over the melting point at a frequency of 0.5 Hz.
- 26. A method for thermal transfer recording according to claim 21, wherein, the line type thermal head is provided with the heat generating elements disposed on the slope face between the main face and the end face on the flat base or on the end face thereof.
- 27. A method for thermal transfer recording according to claim 21, wherein, during said thermal transfer recording material previously transferred to said printing medium is still in a softened status, the next thermal transfer recording material is transferred overlapping the same.
- 28. A method for thermal transfer recording according to claim 27, wherein, the line type thermal head is provided with the heat generating elements disposed on the slope face between the main face and the end face on the flat base or on the end face thereof.
Priority Claims (2)
Number |
Date |
Country |
Kind |
2000-006649 |
Jan 2000 |
JP |
|
2000-312116 |
Oct 2000 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is based upon and claims the benefit of priority from the prior Japanese Patent Applications No. 2000-006649, filed Jan. 14, 2000; and No. 2000-312116, filed Oct. 12, 2000, the entire contents of which are incorporated herein by reference.
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