1461145756-e1b24591-72f6-4e17-8f78-c877e5612e8d

What is claimed is:

1. An image-forming device which forms an image on a recording material at a heating drum heated to a predetermined temperature, the device comprising:
a heating device which heats the heating drum; and
a control device which controls the heating device by onoff control, and alters a period of onoff control in accordance with control modes, the control modes including a printing mode for maintaining the heating drum at the predetermined temperature during image-formation, and at least one ordinary mode which is used at times other than during image-formation,
wherein, if a period of onoff control of the printing mode is T1 and a period of onoff control of the at least one ordinary mode is T0, then
T1<T0.
2. The image-recording device of claim 1, wherein the ordinary mode includes a standby mode which maintains temperature of the heating drum at the predetermined temperature such that image-formation can be initiated promptly, and a pre-heating mode which reduces power consumption of the heating drum while keeping the heating drum in a state such that image-formation can be initiated in a short time, and, if the period of onoff control of the printing mode is T1, a period of onoff control of the standby mode is T2 and a period of onoff control of the pre-heating mode is T3, then at least one of the following relationships:
T1<T2
and
T1<T3
is satisfied.
3. The image-forming device of claim 2, wherein the periods T1, T2 and T3 are set so as to satisfy the relationship T1<T2<T3.
4. The image-forming device of claim 1, wherein information of the image is recorded onto a photosensitive material by exposure, and the image is formed on a transfer material which is superposed with the photosensitive material at the heating drum.
5. The image-forming device of claim 1, wherein the control device alters a duty ratio of onoff control in response to a difference between a current temperature of the heating drum and the predetermined temperature.
6. The image-forming device of claim 1, wherein from a time when a power source of the image-forming device is turned on until a time when the predetermined temperature is reached, the period of onoff control of the heating drum is set to a period the same as the period of onoff control of the printing mode, and when the predetermined temperature has been reached, the ordinary mode is selected for maintaining the predetermined temperature.
7. The image-forming device of claim 2, wherein, when image-formation has finished, the printing mode is deselected and the standby mode is selected.
8. The image-forming device of claim 2, wherein, if the standby mode is selected and no image-formation is performed for a predetermined period of time, then the pre-heating mode is selected.
9. The image-forming device of claim 2, wherein, in the pre-heating mode, the heating drum is maintained at a temperature lower than the predetermined temperature.
10. The image-forming device of claim 1, wherein there is another temperature control signal at the image-forming device, and a temperature control signal of the heating drum has a phase difference with respect to the other temperature control signal.
11. The image-forming device of claim 1, wherein information of the image is recorded onto a light and heat sensitive material by exposure, and the image is formed on the light and heat sensitive material by heating at the heating drum.
12. An image-forming device in which image information is exposed onto and carried by photosensitive material, and an image is formed on transfer material by the transfer material being superposed with the photosensitive material at a heating drum heated to a predetermined temperature, the device comprising:
a heating device which heats the heating drum; and
a control device which controls the heating device by onoff control, and alters a period of onoff control in accordance with control modes, the control modes including a printing mode for maintaining the heating drum at the predetermined temperature during image-formation, a standby mode for keeping the heating drum in a state such that image-formation can be initiated promptly, and a pre-heating mode for reducing power consumption of the heating drum while keeping the heating drum in a state such that image-formation can be initiated in a short time,
wherein, if a period of onoff control of the printing mode is T1, a period of onoff control of the standby mode is T2 and a period of onoff control of the pre-heating mode is T3, then
T1<T2,T1<T3,
and at least one of T2 and T3 is greater than T1.
13. The image-forming device of claim 12, wherein T1<T2<T3.

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 processing a UniDirectional (UD) preimpregnated material (prepreg), the method comprising the steps of:
arranging a plurality of reinforced fibers in one direction;
arranging at least one auxiliary fiber such that it crosses the plurality of reinforced fibers to maintain the arrangement of the plurality of reinforced fibers; and
impregnating the plurality of reinforced fibers and the at least one auxiliary fiber with a coupling material, and curing the coupling material with the plurality of reinforced fibers and the at least one auxiliary fiber.
2. The method of claim 1, wherein the at least one auxiliary fiber is weaved into or bonded on the plurality of reinforced fibers.
3. The method of claim 1, wherein the at least one auxiliary fiber is disposed at a right angle to the plurality of reinforced fibers.
4. The method of claim 1, wherein the at least one auxiliary fiber comprises a plurality of auxiliary fibers disposed at an interval between approximately 10 mm and approximately 200 mm.
5. The method of claim 1, further comprising:
performing a post-process after curing the coupling material with the plurality of reinforced fibers and the at least one auxiliary fiber.
6. The method of claim 5, wherein the post-process comprises at least one of a dyeing process, a deposition process, and a coating process.
7. The method of claim 1, wherein the plurality of reinforced fibers comprises one of carbon fibers, glass fibers, and aramid fibers.
8. The method of claim 1, wherein the coupling material comprises one of an epoxy resin, a polyester resin, and a thermoplastic resin.
9. The method of claim 1, wherein the at least one auxiliary fiber comprises at least one of a carbon fiber, a Kevlar fiber, and a basalt fiber.
10. The method of claim 1, wherein the at least one auxiliary fiber comprises a plurality of auxiliary fibers disposed at equal intervals.
11. The method of claim 1, wherein the at least one auxiliary fiber comprises a plurality of parallel auxiliary fibers.
12. A UniDirectional (UD) preimpregnated material (prepreg) comprising:
a plurality of reinforced fibers arranged in one direction;
at least one auxiliary fiber that crosses the plurality of reinforced fibers to maintain an arrangement of the plurality of reinforced fibers; and
a coupling material that impregnating and cured with the plurality of reinforced fibers and the at least one auxiliary fiber.
13. The UD prepreg of claim 12, wherein the at least one auxiliary fiber is weaved into or bonded on the plurality of reinforced fibers.
14. The UD prepreg of claim 12, wherein the at least one auxiliary fiber is disposed at a right angle to the plurality of reinforced fibers.
15. The UD prepreg of claim 12, wherein the at least one auxiliary fiber comprises a plurality of auxiliary fibers disposed at an interval between approximately 10 mm and approximately 200 mm.
16. The UD prepreg of claim 12, wherein the plurality of reinforced fibers comprises one of carbon fibers, glass fibers, and aramid fibers.
17. The UD prepreg of claim 12, wherein the coupling material comprises one of an epoxy resin, a polyester resin, and a thermoplastic resin.
18. The UD prepreg of claim 12, wherein the at least one auxiliary fiber comprises at least one of a carbon fiber, a Kevlar fiber, and a basalt fiber.
19. The UD prepreg of claim 12, wherein the at least one auxiliary fiber comprises a plurality of auxiliary fibers disposed at equal intervals.
20. The UD prepreg of claim 12, wherein the at least one auxiliary fiber comprises a plurality of parallel auxiliary fibers.
21. An electronic device comprising:
a plurality of electronic components; and
at least one housing that provides a space for receiving the electronic components and that formed from a UniDirectional (UD) preimpregnated material (prepreg) having a plurality of reinforced fibers arranged in one direction, at least one auxiliary fiber that crosses the plurality of reinforced fibers to maintain an arrangement of the plurality of reinforced fibers, and a coupling material that impregnating and cured with the plurality of reinforced fibers and the at least one auxiliary fiber.

1461145746-40d8246f-f8fc-4c83-9ddf-7e0f9e9197a9

1. An article for use in preparing a visual presentation comprising:
a substrate having ruled lines pre-printed thereon; and
a reducing fluid source;
whereby a user can apply the reducing fluid from the reducing fluid source to the ruled lines to chemically reduce the ruled lines on at least a portion of the paper or paper display item to thereby render that portion free of visual ruled lines.
2. The article of claim 1 further comprising at least one pen or marker containing an ink which is not reduced when contacted with the reducing fluid source.
3. The article of claim 1 wherein the ruled lines include at least one of the dyes selected from the group consisting of acid violet 19, acid green 3, acid blue 93, basic yellow 49, basic red 14, basic blue 69, basic green 4, and combinations thereof.
4. A method of preparing a visual presentation comprising:
providing a substrate having ruled lines pre-printed thereon;
writing on the substrate using the pre-printed lines for guidance;
applying a reducing fluid to the lines to render the ruled lines substantially invisible without rendering invisible the writing disposed on the substrate.
5. The method of claim 4 wherein the writing step is performed using an ink or other indicia that is not reduced upon contact with the reducing fluid used in the reducing fluid application step.
6. The method of claim 4 wherein the ruled lines include at least one of the dyes selected from the group consisting of acid violet 19, acid green 3, acid blue 93, basic yellow 49, basic red 14, basic blue 69, basic green 4, and combinations thereof.
7. A method of preparing a visual presentation comprising:
providing a substrate having ruled lines pre-printed thereon;
applying a reducing fluid to a portion of the lines to render the portion substantially invisible; and
applying a visual indicia or writing on the substrate at the portion to which the reducing fluid was applied to the ruled lines.
8. The method of claim 7 wherein the ruled lines include at least one of the dyes selected from the group consisting of acid violet 19, acid green 3, acid blue 93, basic yellow 49, basic red 14, basic blue 69, basic green 4, and combinations thereof.
9. A method of aiding in the preparation of a visual presentation comprising:
providing a paper or paper display item having ruled lines printed thereon; and
providing a source of reducing fluid which reducing fluid renders the printed ruled lines substantially invisible when applied to the lines.
10. The method of claim 9 wherein the ruled lines include at least one of the dyes selected from the group consisting of acid violet 19, acid green 3, acid blue 93, basic yellow 49, basic red 14, basic blue 69, basic green 4, and combinations thereof.

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 probe for a coordinate measurement machine comprising:
a probe tip;
at least one device comprising non-modifiable information relating to calibrating the probe with the coordinate measurement machine and configured to provide said information relating to calibrating the probe with the coordinate measurement machine; and
a probe mount configured to mount the probe tip and the at least one device to the coordinate measurement machine,
wherein the probe tip, probe mount, and at least one device form a singular unit configured to mount to a coordinate measurement machine.
2. The probe of claim 1, wherein the at least one device comprises a solid-state memory device configured to store data.
3. The probe of claim 2, wherein the solid-state memory device comprises a non-volatile electrically erasable programmable read-only memory (EEPROM) device.
4. The probe of claim 2, wherein the solid-state memory device is further configured to provide a machine readable serial number configured to uniquely identify the probe.
5. The probe of claim 2, wherein the solid-state memory device is further configured to store nominal data relating to the characteristics of the probe.
6. The probe of claim 2, wherein the solid-state memory device is further comprises a presence detection sensor.
7. The probe of claim 1, wherein the at least one device comprises a temperature sensor configured to provide the temperature of the probe.
8. The probe of claim 1, wherein the at least one device comprises a presence detection sensor configured to indicate that the probe is mounted onto a coordinate measurement machine.
9. The probe of claim 1, wherein the at least one device comprises a processor configured to control the operations of the solid-state memory device, the temperature sensor, or the presence detection sensor.
10. The probe of claim 1, wherein the probe tip comprises at least one device configured to provide temperature of the probe or information relating to calibrating the probe with the coordinate measurement machine.
11. The probe of claim 1, wherein the probe is configured to communicate wirelessly with the coordinate measurement machine.
12. The probe of claim 11, where said wireless communication is over a communications protocol selected from the group of Bluetooth, WiFi, and radio frequency.
13. The probe of claim 1, wherein the at least one device configured to provide information is configured to provide information over a two wire data communications protocol.
14. The probe of claim 13, wherein the two wire data communications protocol also provides power.
15. The probe of claim 13, wherein the two wire data communications protocol comprises only a power wire and a ground wire.
16. The probe of claim 1, wherein the non-modifiable information comprises a laser etched serial number.
17. A spatial coordinate measurement system comprising:
a coordinate measurement machine;
a singular probe that is removably attached to the coordinate measurement machine to form an end of the coordinate measurement machine; and
wherein the singular probe comprises at least one device comprising non-modifiable information relating to calibrating the probe with the coordinate measurement machine and configured to provide said information relating to calibrating the probe with the coordinate measurement machine.
18. The spatial coordinate measurement system of claim 17, wherein the coordinate measurement machine calibrates the probe based at least in part on the information provided by the at least one device configured to provide information relating to calibrating the acquisition device with the coordinate measurement machine.
19. The spatial coordinate measurement system of claim 18, wherein the probe comprises a temperature sensor configured to provide the temperature of the probe.
20. The spatial coordinate measurement system of claim 18, wherein the probe comprises a presence detection sensor configured to indicate that the probe is mounted onto a coordinate measurement machine.
21. The spatial coordinate measurement system of claim 17, wherein the coordinate measurement machine comprises a solid-state memory device configured to provide data.
22. The spatial coordinate measurement system of claim 21, wherein the solid-state memory device is configured to provide a machine readable serial number uniquely identifying the probe.
23. The spatial coordinate measurement system of claim 21, wherein the solid-state memory device comprises a non-volatile electrically erasable programmable read-only memory (EEPROM) device.
24. The spatial coordinate measurement system of claim 21, wherein the solid-state memory device is further configured to provide nominal data relating to the physical parameters of the probe.
25. The spatial coordinate measurement system of claim 17, wherein the coordinate measurement machine comprises an articulated arm.
26. The spatial coordinate measurement system of claim 17, wherein the device configured to provide information is configured to provide information over a two wire data communications protocol.
27. The spatial coordinate measurement system of claim 26, wherein the two wire data communications protocol also provides power.
28. The spatial coordinate system of claim 27, wherein the two wire data communications protocol comprises only a power wire and a ground wire.
29. The spatial coordinate measurement system of claim 17, wherein the non-modifiable information comprises a laser etched serial number.
30. A method for calibrating a coordinate measurement machine comprising:
attaching a singular probe to the coordinate measurement machine to form an end of the coordinate measurement machine;
detecting the singular probe attached to the end of the coordinate measurement machine;
acquiring non-modifiable calibration information related to the singular probe from the singular probe at the end of the coordinate measurement machine; and
calibrating the singular probe to the coordinate measurement machine using at least part of the acquired non-modifiable calibration information.
31. The method of claim 30, wherein detecting the probe further comprises providing a presence detection sensor to indicate that probe is mounted onto the coordinate measurement machine.
32. The method of claim 30, wherein acquiring calibration information related to the probe further comprises providing a solid-state memory device configured to provide calibration information.
33. The method of claim 30, wherein acquiring calibration information related to the probe further comprises acquiring a machine readable serial number uniquely identifying the probe.
34. The method of claim 30, wherein acquiring calibration information related the probe further comprises acquiring nominal data relating to the physical characteristics of the coordinate the probe.
35. The method of claim 34, wherein acquiring calibration information related the probe further comprises acquiring nominal data relating to the physical characteristics of the coordinate the probe using a machine readable serial number uniquely identifying the probe.
36. The method of claim 30, wherein acquiring calibration information related the probe further comprises acquiring temperature of the probe.
37. The method of claim 30, wherein calibrating the probe to the coordinate measurement machine further comprises providing translation from the end of the probe to the tip of the probe.
38. The method of claim 30, further comprising the step of transmitting information from the probe to the coordinate measurement machine over a two wire data communications protocol.
39. The method of claim 38, wherein the two wire data communications protocol also provides power.
40. The method of claim 39, wherein the two wire communications protocol comprises only a power wire and a ground wire.
41. The method of claim 30, wherein the non-modifiable calibration information comprises a laser etched serial number.