1. A data recorder for writing data to a recording medium, the recorder comprising:
a buffer memory for temporarily storing data;
an optical head for emitting a laser beam against the recording medium, wherein the laser beam has a write level and a read level, the write level being used when data read from the buffer memory is recorded on the recording medium and the read level being used when data is read from the recording medium;
an interrupt control circuit for interrupting the writing of data when detecting a predetermined state;
an address memory connected to the buffer memory, wherein the address memory stores at least one of an address of the recording medium and an address of the buffer memory when the writing of data to the recording medium is interrupted, each address indicating a data location where the writing interruption occurred;
a synchronizing circuit for reading the data written to the recording medium prior to the writing interruption by emitting the read level laser beam against the recording medium, reading the data stored in the buffer memory, and synchronizing the written data and the stored data; and
a restart circuit for restarting the writing of data to the recording medium based on the address stored in the address memory, wherein the optical head switches the laser beam emitted against the recording medium from the read level to the write level a predetermined time before the time at which the restart circuit restarts the writing of data, wherein the predetermined time corresponds to a time required to increase the level of the laser beam from the read level to the write level.
2. The data recorder according to claim 1, further comprising a level memory for storing data representing the write level that exists when data writing is interrupted, wherein the level of the laser beam when writing is restarted is in accordance with the data stored in the level memory.
3. The data recorder according to claim 1, wherein the optical head switches the laser beam from the read level to the write level when any one of an address of the data read from the recording medium matches an address preceding the address stored in the address memory by a predetermined number of addresses.
4. The data recorder according to claim 1, wherein the predetermined time is in a range between several microseconds and several tens of microseconds.
5. The data recorder according to claim 1, wherein the predetermined time is set so that the data written to the recording medium is not rewritten.
6. The data recorder according to claim 1, further comprising a system clock generation circuit for generating an operational clock for the data recorder and the predetermined time is determined based on the number of pulses of the operational clock.
7. The data recorder according to claim 1, wherein the data recorder has plurality of recording speeds and the predetermined time is varied in accordance with changes in recording speed.
8. The data recorder according to claim 1, wherein the data recorder has plurality of recording speeds and the optical head switches the laser beam from the read level when any one of addresses of the data read from the recording medium and the buffer memory matches an address preceding the address stored in the address memory by a predetermined number of addresses, the predetermined number of addresses being varied in accordance with changes in recording speed.
9. A data recorder for writing data to a recording medium, the recorder comprising:
a buffer memory for temporarily storing data;
an optical head for emitting a laser beam against the recording medium when writing data to and reading data from the recording medium;
an interrupt control circuit for interrupting the writing of data when detecting a predetermined state;
an address memory connected to the buffer memory, wherein the address memory stores at least one of an address of the recording medium and an address of the buffer memory when the writing of data to the recording medium is interrupted, each address indicating a data location where the writing interruption occurred;
a synchronizing circuit for reading the data written to the recording medium prior to the writing interruption by emitting the laser beam against the recording medium, reading the data stored in the buffer memory, and synchronizing the written data and the stored data; and
a restart circuit for generating an instruction for restarting the writing of data to the recording medium based on the address stored in the address memory, wherein the restart circuit generates the instruction before the location of the data read from the recording medium by the synchronizing circuit reaches the interruption location, and the optical head emits the laser beam against the recording medium at a power level that is lower than a write power level for writing data in accordance with the instruction until the location of the recording medium reaches the interruption location.
10. The data recorder according to claim 9, wherein the optical head emits the laser beam against the recording medium at a first power level during the writing of data and at a second power level during the reading of data by the synchronizing circuit, the second power level being lower than the first power level, and wherein the restart circuit provides time for the laser beam to shift from the second power level to the first power level when generating the instruction for restarting the writing of data.
11. The data recorder according to claim 9, further comprising a level memory for storing data representing the power level of the laser beam when data writing is interrupted, wherein the power level of the laser beam is in accordance with the data stored in the level memory when writing is restarted.
12. The data recorder according to claim 9, further comprising a power source for supplying the optical head with power to generate the laser beam, wherein the power source is activated simultaneously with the generation of the instruction.
13. A data recorder for writing data to a recording medium, the recorder comprising:
a buffer memory for temporarily storing data;
an optical head for emitting a laser beam against the recording medium when writing data to and reading data from the recording medium;
a power source for supplying the optical head with power to generate the laser beam;
an interrupt control circuit for interrupting the writing of data when detecting a predetermined state;
an address memory connected to the buffer memory, wherein the address memory stores at least one of an address of the recording medium and an address of the buffer memory when the writing of data to the recording medium is interrupted, each address indicating a data location where the writing interruption occurred;
a synchronizing circuit for reading the data written to the recording medium prior to the writing interruption by emitting the laser beam against the recording medium, reading the data stored in the buffer memory, and synchronizing the written data and the stored data; and
a restart circuit for restarting the writing of data to the recording medium based on the address stored in the address memory, wherein the power source is activated a predetermined time before the time at which writing is restarted, wherein the predetermined time corresponds to a time required to increase a level of the laser beam to a power level sufficient to write data.
14. The data recorder according to claim 13, further comprising a level memory for storing data representing the power level of the laser beam when data writing is interrupted, wherein the power level of the laser beam is in accordance with the data stored in the level memory when writing is restarted.
15. The data recorder according to claim 13, wherein the power source is activated when any one of an address of the data read from the recording medium by the synchronizing circuit and an address of the data read from the buffer memory by the synchronizing circuit matches an address preceding the address stored in the address memory by a predetermined number of addresses.
16. The data recorder according to claim 13, wherein the predetermined time is several microseconds to several tens of microseconds.
17. A method for writing data to a recording medium, the method comprising:
temporarily storing data in a buffer memory;
writing data to the recording medium by emitting a laser beam against the recording medium at a write level that is in accordance with data read from the buffer memory;
interrupting the writing of data when detecting a predetermined state;
storing at least one of an address of the recording medium and an address of the buffer memory when the writing of data to the recording medium is interrupted, each address indicating a data location where the interruption occurred;
reading the data written to the recording medium prior to the writing interruption by emitting a read level laser beam against the recording medium and reading the data stored in the buffer memory;
synchronizing the written data and the stored data;
restarting the writing of data to the recording medium based on the address stored in the address memory; and
shifting the laser beam emitted against the recording medium from the read level to the write level a predetermined time before the time at which the writing of data is restarted, wherein the predetermined time corresponds to a time required to increase the level of the laser beam from the read level to the write level.
18. The method according to claim 17, wherein the predetermined time is several microseconds to several tens of microseconds.
19. A method for writing data to a recording medium, the method comprising:
temporarily storing data in a buffer memory;
writing data to the recording medium by emitting a laser beam against the recording medium in accordance with the data stored in the buffer memory;
interrupting the writing of data when detecting a predetermined state;
storing at least one of an address of the recording medium and an address of the buffer memory when the writing of data to the recording medium is interrupted, each address indicating a data location where the interruption occurred;
reading the data written to the recording medium prior to the writing interruption by emitting the laser beam against the recording medium and reading the data stored in the buffer memory;
synchronizing the written data and the stored data;
generating an instruction for restarting the writing of data to the recording medium based on the address stored in the address memory, wherein writing is restarted before the location of the data read from the recording medium in the reading step reaches the interruption location; and
emitting the laser beam against the recording medium at a power level that is lower than a write power level for writing data in accordance with the instruction until the location of the recording medium reaches the interruption location.
20. A method for writing data to a recording medium, the method comprising:
temporarily storing data in a buffer memory;
writing data on the recording medium by emitting a laser beam against the recording medium in accordance with the data stored in the buffer memory;
interrupting the writing of data when detecting a predetermined state;
storing at least one of an address of the recording medium and an address of the buffer memory when the writing of data to the recording medium is interrupted, each address indicating a data location where the writing interruption occurred;
reading the data written to the recording medium prior to the writing interruption by emitting the laser beam against the recording medium and reading the data stored in the buffer memory;
synchronizing the written data and the stored data;
generating an instruction for restarting the writing of data to the recording medium based on the address stored in the address memory; and
activating a power source for generating power of the laser beam a predetermined time before the time at which the writing of data is restarted, wherein the predetermined time corresponds to a time required to increase a level of the laser beam to a power level sufficient to write data.
21. The method according to claim 20, wherein the predetermined time is several microseconds to several tens of microseconds.
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 manufacturing a holding element in an edge area of a molded body, wherein the molded body is of a brittle material inserted into a molding tool, wherein a material well in the edge area of the molded body is formed by the molding tool, the material well is at least partially filled by a plastic material, and then the molded body with the holding element formed on is taken out of the molding tool, the molded body (30) is maintained in the molding tool by a clamping element (40.3), a section of the material well is delimited by the clamping element (40.3), and a sealing element (20) is placed on the molded body (30) in a transition area between the material well and the clamping element (40.3), the method comprising:
placing the plastic material into the material well and setting the plastic material during an extrusion process;
partially displacing the sealing element (20) into the area of the material well; and
one of following removal of the molded body (30) from the mold maintaining the sealing element (20) on the molded body and after the holding element (10) has been formed on then partially removing the sealing element (20).
2. The method in accordance with claim 1, wherein an adhesive tape is glued as the sealing element (20) to the molded body (10).
3. The method in accordance with claim 2, wherein the sealing element (20) has at least one of an elastically deformable and plastically deformable effective layer, which is deformed by the clamping element (40.3).
4. The method in accordance with claim 3, wherein the effective layer has a Shore hardness in a range between 40 and 80, preferably 50 to 70, Shore A.
5. The method in accordance with claim 4, wherein the material well is filled with a fiberglass-reinforced duromeric material.
6. The method in accordance with claim 5, wherein a thickness of the material of the sealing element (20) is in a range of 0.1 mm to 0.5 mm, preferably of 0.2 mm to 0.4 mm.
7. The method in accordance with claim 6, wherein a width of the sealing element (20) in a direction of a connecting plane of the sealing element (20) with the molded body (30) is selected to be within a range of 10 mm to 25 mm, preferably of 12 mm to 18 mm.
8. The method in accordance with claim 7, wherein the sealing element (20) has a temperature resistance greater than 160\xb0 C.
9. The method in accordance with claim 8, wherein a distance of the sealing element (20) from an edge of the molded body (30) is selected to be in a range between 0 and 10 mm, preferably between 1 mm and mm.
10. The method in accordance with claim 9, wherein sealing element (20) extends around the molded body (30).
11. The method in accordance with claim 10 wherein the molded body has a holding element.
12. The method in accordance with claim 1, wherein the sealing element (20) has at least one of an elastically deformable and plastically deformable effective layer, which is deformed by the clamping element (40.3).
13. The method in accordance with claim 12, wherein the effective layer has a Shore hardness in a range between 40 and 80, preferably 50 to 70, Shore A.
14. The method in accordance with claim 1, wherein the material well is filled with a fiberglass-reinforced duromeric material.
15. The method in accordance with claim 1, wherein a thickness of the material of the sealing element (20) is in a range of 0.1 mm to 0.5 mm, preferably of 0.2 mm to 0.4 mm.
16. The method in accordance with claim 1, wherein a width of the sealing element (20) in a direction of a connecting plane of the sealing element (20) with the molded body (30) is selected to be within a range of 10 mm to 25 mm, preferably of 12 mm to 18 mm.
17. The method in accordance with claim 1, wherein the sealing element (20) has a temperature resistance greater than 160\xb0 C.
18. The method in accordance with claim 1, wherein a distance of the sealing element (20) from an edge of the molded body (30) is selected to be in a range between 0 and 10 mm, preferably between 1 mm and 5 mm.
19. The method in accordance with claim 1, wherein the sealing element (20) extends around the molded body (30).
20. The method in accordance with claim 1 wherein the molded body has a holding element.