Claims
- 1. A laser scanning system comprising:
a system housing having at least one scanning window and at least one service port integral thereto, wherein at least one omnidirectional scanning beam is projected through said scanning window; at least one scan module insert that is removably disposed within the system housing through said service port; wherein said at least one scan module includes:
at least one laser diode that produces laser light; a rotating scanning element that redirects laser light incident thereon to produce one or more scanning laser beams; an electric motor that rotates the rotating scanning element; at least one photodetector that detects light incident thereon and produces an electrical signal whose amplitude is proportional to the intensity of such detected light; and analog signal processing circuitry that conditions the electrical signal produced by the photodetector.
- 2. The laser scanning system of claim 1, wherein said analog signal processing circuitry amplifies the electrical signal produced by the photodetector.
- 3. The laser scanning system of claim 1, wherein said analog signal processing circuitry filters out unwanted noise in the electrical signal produced by the photodetector.
- 4. The laser scanning system of claim 1, wherein said at least one scan module insert further includes at least one component selected from the group consisting of:
at least one light collecting optical element, corresponding to the at least one photodetector, that collects returning light (i.e., light from the scanning beam which has been reflected and/or scattered by a bar code label being read) and focuses such returning light onto the corresponding photodetector; at least one beam folding mirror that redirects he scanning laser beam produced by the rotating scanning element through said scanning window, and redirects returning light back toward the rotating scanning element from which it originated.
- 4. The laser scanning system of claim 1, wherein said at least one scan module insert further includes at least one light collecting optical element, corresponding to the at least one photodetector, that collects returning light (i.e., light from the scanning beam which has been reflected and/or scattered by a bar code label being read) and focuses such returning light onto the corresponding photodetector.
- 5. The laser scanning system of claim 1, wherein said at least one scan module insert further includes at least one beam folding mirror that redirects the scanning laser beam produced by the rotating scanning element through said scanning window, and redirects returning light back toward the rotating scanning element from which it originated.
- 6. The laser scanning system of claim 1, wherein said at least one scan module insert further includes at least one component selected from the group consisting of:
at least one light collecting optical element, corresponding to the at least one photodetector, that collects returning light (i.e., light from the scanning beam which has been reflected and/or scattered by a bar code label being read) and focuses such returning light onto the corresponding photodetector; at least one beam folding mirror that redirects the scanning laser beam produced by the rotating scanning element through said scanning window, and redirects returning light back toward the rotating scanning element from which it originated. analog-to-digital signal conversion circuitry that converts the analog electric signals produced by the analog signal processing circuitry into digital data signals; bar code detection circuitry that forms a digitized representation (e.g., a sequence of binary bit values) of a bar code label being read from signals derived from the output of the analog signal processing circuitry; bar code digitization circuitry that converts the digitized representation of the bar code symbol being read produced by said bar code detection circuitry into a corresponding digital word value; bar code symbol decode circuitry that decodes the digital word value of the bar code label symbol being read produced by said bar code digitization circuitry to generate character data string values associated therewith; interface circuitry for formatting one of said digitized representation and said digital word value of the bar code label symbol into a specific output format; interface circuitry for converting the character data string values of a bar code label into a format suitable for transmission over a communication link to an external host system; circuitry for communicating the character data string values over a communication link to an external host system; circuitry for storing the character data string values in persistent memory for subsequent communication to an external host system; laser drive circuitry that supplies current to the at least one laser diode and controls the output optical power levels of the at least one laser diode; motor drive circuitry supplies power to the motor that rotates the rotating scanning element; a system controller that performs system control operations; and power supply circuitry, operably coupled to an external power supply, that provides a regulated supply of electrical power to electrical components of the system.
- 7. The laser scanner of claim 1, wherein said scan module insert includes two laser diodes and two corresponding photodetectors disposed on opposite sides of said rotating scanning element, in addition to analog signal processing circuitry that conditions the electrical signal produced by the two photodetectors.
- 8. The laser scanner of claim 4, wherein said scan module insert includes:
two laser sources and two corresponding photodetectors disposed on opposite sides of said rotating scanning element, in addition to analog signal processing circuitry that conditions the electrical signal produced by the two photodetectors; and two light collecting optical element corresponding to the two photodetectors disposed on opposite sides of said rotating scanning element.
- 9. The laser scanner of claim 1, wherein said scan module insert passes through said service port and is fixably disposed such that the exterior surface of the scan module insert is flush with the exterior surface of the system housing that is adjacent said service port.
- 10. The laser scanner of claim 1, wherein said system housing and scan module insert include a mating mechanism that enables the scan module insert to be fixably mated and unmated to the system housing such that the scan module insert is disposed within the system housing and that also enables spatial registration of optical components mounted within the scan module insert to optical components mounted within the system housing.
- 11. The laser scanner of claim 10, wherein said mating mechanism comprises an interlocking flange structure with screw holes, posts and screws.
- 12. The laser scanner of claim 1, wherein a first electrical interconnect is integral to the system housing and is operably coupled to electric components integral thereto, and a second electrical interconnect is integral to the scan module insert and is operably coupled to electrical components integral, wherein the first and second electrical interconnects are releasably coupled together to provide electric connection between the electrical components operably coupled thereto.
- 13. The laser scanner of claim 13, wherein said first electrical interconnect and second electrical interconnect are fixably mounted to the system housing and scan module insert, respectively, in a manner that provides for spatial registration and electrical connection between the two interconnects when the scan module insert is mated to system housing.
- 14. The laser scanning system of claim 1, wherein said rotating scanning element comprises a rotating polygonal mirror.
- 15. The laser scanning system of claim 1, wherein said rotating scanning element comprises a rotating multi-faceted holographic disk.
- 16. The laser scanning system of claim 1,
wherein the system housing includes two scanning windows and two corresponding service ports integral thereto; and further comprising two scan module insert that are removably disposed within the system housing through a corresponding service port; wherein each said scan module includes:
at least one laser diode that produces laser light; a rotating scanning element that redirects laser light incident thereon to produce one or more scanning laser beams; an electric motor that rotates the rotating scanning element; at least one photodetector that detects light incident thereon and produces an electrical signal whose amplitude is proportional to the intensity of such detected light; and analog signal processing circuitry that conditions the electrical signal produced by the photodetector.
- 17. The laser scanner of claim 16, wherein components of one of said two scan module inserts contributes to production of an omnidirectional laser scanning beam projected through one of the two scanning windows, while components of the other of said two scan module inserts contributes to production of an omnidirectional laser scanning beam projected through the other one of the two scanning windows.
- 18. A method of reconfiguring or repairing a laser scanning system, the method comprising the steps of:
providing a system housing having at least one scanning window and at least one service port integral thereto, wherein at least one omnidirectional scanning beam is projected through said scanning window through operation of a first scan module insert, wherein said first scan module insert is removably disposed within the system housing through said service port, and wherein said first scan module insert includes:
at least one laser diode that produces laser light; a rotating scanning element that redirects laser light incident thereon to produce one or more scanning laser beams; an electric motor that rotates the rotating scanning element; at least one photodetector that detects light incident thereon and produces an electrical signal whose amplitude is proportional to the intensity of such detected light; and analog signal processing circuitry that conditions the electrical signal produced by the photodetector. providing a second scan module insert, wherein said second scan module insert includes:
at least one laser diode that produces laser light; a rotating scanning element that redirects laser light incident thereon to produce one or more scanning laser beams; an electric motor that rotates the rotating scanning element; at least one photodetector that detects light incident thereon and produces an electrical signal whose amplitude is proportional to the intensity of such detected light; and analog signal processing circuitry that conditions the electrical signal produced by the photodetector. removing said first scan module insert from said system housing by passing said first scan module insert through said service port; and removably installing said second scan module into the system housing through said service port.
- 19. The method of claim 18, wherein said first and second scan module inserts have different configurations.
- 20. The method of claim 18, wherein said first and second scan module inserts each further include at least one component selected from the group consisting of:
at least one light collecting optical element, corresponding to the at least one photodetector, that collects returning light (i.e., light from the scanning beam which has been reflected and/or scattered by a bar code label being read) and focuses such returning light onto the corresponding photodetector; and at least one beam folding mirror that redirects he scanning laser beam produced by the rotating scanning element through said scanning window, and redirects returning light back toward the rotating scanning element from which it originated.
- 21. The method of claim 18, wherein said first and second scan module inserts each further include at least one light collecting optical element, corresponding to the at least one photodetector, that collects returning light (i.e., light from the scanning beam which has been reflected and/or scattered by a bar code label being read) and focuses such returning light onto the corresponding photodetector.
- 22. The method of claim 18, wherein said first and second scan module inserts each further include at least one beam folding mirror that redirects the scanning laser beam produced by the rotating scanning element through said scanning window, and redirects returning light back toward the rotating scanning element from which it originated.
- 23. The method of claim 18, wherein said first and second scan module inserts each further include at least one component selected from the group consisting of:
at least one light collecting optical element, corresponding to the at least one photodetector, that collects returning light (i.e., light from the scanning beam which has been reflected and/or scattered by a bar code label being read) and focuses such returning light onto the corresponding photodetector; at least one beam folding mirror that redirects the scanning laser beam produced by the rotating scanning element through said scanning window, and redirects returning light back toward the rotating scanning element from which it originated. analog-to-digital signal conversion circuitry that converts the analog electric signals produced by the analog signal processing circuitry into digital data signals; bar code detection circuitry that forms a digitized representation (e.g., a sequence of binary bit values) of a bar code label being read from signals derived from the output of the analog signal processing circuitry; bar code digitization circuitry that converts the digitized representation of the bar code symbol being read produced by said bar code detection circuitry into a corresponding digital word value; bar code symbol decode circuitry that decodes the digital word value of the bar code label symbol being read produced by said bar code digitization circuitry to generate character data string values associated therewith; interface circuitry for formatting one of said digitized representation and said digital word value of the bar code label symbol into a specific output format; interface circuitry for converting the character data string values of a bar code label into a format suitable for transmission over a communication link to an external host system; circuitry for communicating the character data string values over a communication link to an external host system; circuitry for storing the character data string values in persistent memory for subsequent communication to an external host system; laser drive circuitry that supplies current to the at least one laser diode and controls the output optical power levels of the at least one laser diode; motor drive circuitry supplies power to the motor that rotates the rotating scanning element; a system controller that performs system control operations; and power supply circuitry, operably coupled to an external power supply, that provides a regulated supply of electrical power to electrical components of the system.
- 24. The method of claim 18, wherein said first and second scan module inserts each further include two laser diodes and two corresponding photodetectors disposed on opposite sides of said rotating scanning element, in addition to analog signal processing circuitry that conditions the electrical signal produced by the two photodetectors.
- 25. The method of claim 21, wherein said first and second scan module inserts each further include:
two laser sources and two corresponding photodetectors disposed on opposite sides of said rotating scanning element, in addition to analog signal processing circuitry that conditions the electrical signal produced by the two photodetectors; and two light collecting optical element corresponding to the two photodetectors disposed on opposite sides of said rotating scanning element.
- 26. The method of claim 18, wherein said first and second scan module inserts, when mated to the system housing, are each fixably disposed such that the exterior surface of the scan module insert is flush with the exterior surface of the system housing that is adjacent said service port.
- 28. The method of claim 18, wherein said first and second scan module inserts and the system housing include a mating mechanism that enables the respective scan module insert to be fixably mated and unmated to the system housing such that the respective scan module insert is disposed within the system housing and that also enables spatial registration of optical components mounted within the respective scan module insert to optical components mounted within the system housing.
- 29. The method of claim 28, wherein said mating mechanism comprises an interlocking flange structure with screw holes, posts and screws.
- 30. The method of claim 18, wherein a first electrical interconnect is integral to the system housing and is operably coupled to electric components integral thereto, and a second electrical interconnect is integral to each respective scan module insert and is operably coupled to electrical components integral thereto, wherein the first and second electrical interconnects are releasably coupled together to provide electric connection between the electrical components operably coupled thereto.
- 31. The method of claim 30, wherein said first electrical interconnect and second electrical interconnect are fixably mounted to the system housing and respective scan module insert, respectively, in a manner that provides for spatial registration and electrical connection between the two interconnects when the respective scan module insert is mated to system housing.
- 32. The method of claim 18, wherein said rotating scanning element comprises a rotating polygonal mirror.
- 33. The method of claim 18, wherein said rotating scanning element comprises a rotating multi-faceted holographic disk.
- 34. The method of claim 18,
wherein the system housing includes two scanning windows and two corresponding service ports integral thereto; and further comprising the step of providing two scan module insert that are removably disposed within the system housing through a corresponding service port; wherein each said scan module includes:
at least one laser diode that produces laser light; a rotating scanning element that redirects laser light incident thereon to produce one or more scanning laser beams; an electric motor that rotates the rotating scanning element; at least one photodetector that detects light incident thereon and produces an electrical signal whose amplitude is proportional to the intensity of such detected light; and analog signal processing circuitry that conditions the electrical signal produced by the photodetector.
- 35. The method of 34, wherein components of one of said two scan module inserts contributes to production of an omnidirectional laser scanning beam projected through one of the two scanning windows, while components of the other of said two scan module inserts contributes to production of an omnidirectional laser scanning beam projected through the other one of the two scanning windows.
RELATED CASES
[0001] The present application is a Continuation-in-Part (CIP) of: U.S. application Ser. No. 10/045,577 (Attorney Docket No. 108-120USA000), filed on Jan. 11, 2002 and U.S. application Ser. No. 10/045,605 (Attorney Docket No. 108-152USA000), filed on Jan. 11, 2002. Each said patent application is assigned to and commonly owned by Metrologic Instruments, Inc. of Blackwood, N.J., and is incorporated herein by reference in its entirety.
Continuation in Parts (2)
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Number |
Date |
Country |
| Parent |
10045577 |
Jan 2002 |
US |
| Child |
10138936 |
May 2002 |
US |
| Parent |
10045605 |
Jan 2002 |
US |
| Child |
10138936 |
May 2002 |
US |