Claims
- 1. A method of automatically calibrating an electronic distance meter (EDM), comprising the steps of:
deriving a pulse-per-second output signal from a satellite navigation receiver configured to receive satellite navigation signals from one or more orbiting navigation satellites whose signals are derived in part from an atomic time standard used in said satellite; controlling a reference oscillator by said pulse-per-second output signal and providing a reference frequency signal with a timing accuracy directly related to a timing accuracy of said atomic time standard; providing said reference frequency signal to a phase measurement device connected to an electronic distance meter (EDM) having a transmitter for launching an out-bound signal to a distant target and a receiver for receiving a reflected signal from said distant target; performing at said phase measurement device a time or phase measurement of the difference between said out-bound signal and said reflected signal using said reference frequency; whereby the EDM provides a distance-to-target measurement based on said time or phase measurement which is computed with an accuracy dependent on said timing accuracy of said atomic time standard.
- 2. The method of claim 1, further including:
positioning a theodolite with a telescope connected to an angle measurement instrument mechanism in a position to automatically locate said distant target and determine an elevation and an azimuth to said distant target, said theodolite including a servo actuator connected to mechanically manipulate the theodolite in azimuth and elevation; applying a target-position seed value related to said distant target to a navigation computer disposed within the satellite navigation receiver; prepositioning said theodolite responsive to a space vector to target signal from said navigation computer; automatically providing from the phase measurement device a target range measurement to said distance target; and automatically providing from said theodolite a vector angle measurement to said distant target.
- 3. The method of claim 1, further including:
positioning said satellite navigation receiver remotely from said reference oscillator and communicating via a radio link to said reference oscillator; and maintaining said receiver by a plurality of received navigation satellite transmissions.
- 4. A method of using reference signals from a satellite navigation receiver to automatically and precisely calibrate an electronic distance measurement instrument and to servo-drive a telescope in an electro-optical total station to allow a surveyor to find a space vector from said instrument to a distant target;
deriving at a satellite navigation receiver a precise reference pulse-per-second output signal derived from a radio transmission generated from an orbiting navigation satellite that is itself controlled by an atomic clock standard; stabilizing a local reference oscillator by a control signal derived from said pulse-per-second output signal to impart said atomic clock standard to said local reference oscillator whereby said local reference oscillator provides a precision reference frequency signal; applying said reference frequency signal to an electronic distance measurement instrument having a transmitter and a receiver, said transmitter sending an out-bound signal to a distant target and said receiver receiving a return in-bound signal from said target; measuring said out-bound and in-bound signals to determine the line-of-sight distance to said target; computing the position of said receiver and outputting a representative position estimate signal from which a space vector to target signal is determined; applying said space vector to target signal to direct said theodolite towards said target, whereby said theodolite generates theodolite measurements of elevation and azimuth of said target.
- 5. The method of claim 4, further including:
mounting a theodolite on an angle measurement instrument connected to a servo actuator; and computing said space vector to said target signal from a target position seed input; and applying said space vector to target signal to said servo actuator.
- 6. The method of claim 4, wherein:
the target location seed is computed from differential satellite position calculations relative to the electronic distance measurement instrument location.
- 7. A method of automatically calibrating an electronic distance meter (EDM), comprising the steps of:
deriving precise time information from an externally generated radio transmission that is itself controlled by an atomic clock at a remote location; correcting a local reference clock with the precise time information such that the accuracy of said atomic clock is imparted and the reference clock generates a reference time-based signal; and measuring a phase difference between an out-bound signal and a resulting in-bound signal reflecting from a distant surveyor target using said time-base signal; wherein, the step of measuring said time difference provides a time-of-flight measurement having an accuracy derived from said atomic clock and from which a similarly accurate distance-to-target measurement is computed.
- 8. The method of claim 7, wherein:
the step of deriving includes the use of a global positioning system receiver and a navigation computer, and said externally generated radio transmission comprises transmissions from orbiting navigation satellites; the step of measuring said time or phase difference includes the use of an electronic distance meter; and the step of correcting includes sharing said local reference clock between said global positioning system receiver and said electronic distance meter.
- 9. The method of claim 8, wherein:
the step of measuring said phase difference includes observations of a plurality of phase differences observed by said electronic distance meter at a plurality of out-bound and in-bound signal frequencies.
- 10. The method of claim 8, further comprising the steps of:
automatically providing a target range measurement to a user at said distance target by said electronic distance meter; and automatically providing a vector angle measurement to said user to said distant target objected by a theodolite.
- 11. A surveying instrument, comprising:
a satellite navigation receiver with a pulse-per-second output derived from an atomic time standard used in a related orbiting navigation satellite; a reference oscillator controlled by said pulse-per-second output and providing a reference frequency with a timing accuracy directly related to a time accuracy of said atomic time standard; an electronic distance meter (EDM) having a transmitter for launching an out-bound signal to a distant target and a receiver for receiving a reflected signal from said distant target; and a phase measurement device connected to the reference oscillator, said EDM transmitter and said EDM receiver, said phase measurement device providing for a time or phase measurement of the difference between said out-bound signal and said reflected signal using said reference frequency; wherein, the EDM provides a distance-to-target measurement based on said time or phase measurement which is computed with an accuracy dependent on said timing accuracy of said atomic time standard.
- 12. The surveying instrument of claim 11, further comprising:
a theodolite with a telescope connected to an angle measurement instrument mechanism that together can automatically locate said distant target and determine an elevation and an azimuth to said distant target; a navigation computer disposed within the satellite navigation receiver and connected to receive a target-position seed value related to said distant target; and a servo actuator connected to mechanically manipulate the theodolite in azimuth and elevation; wherein, the navigation computer is connected to the servo actuator and provides a signal that will preposition the theodolite; and wherein, the phase measurement device automatically provides a target range measurement to a user at said distance target; and the theodolite automatically provides a vector angle measurement to said user to said distant target.
- 13. The surveying instrument of claim 11, wherein:
the satellite navigation receiver is remotely located and communicates via a radio link to the reference oscillator to be adjusted and maintained by a plurality of navigation satellite transmissions received by the satellite navigation receiver. 14. A surveying system, comprising: a satellite navigation receiver with a pulse-per-second output derived from an atomic time standard used in a related orbiting navigation satellite; a reference oscillator providing a precision reference frequency with a frequency offset that is related to satellite transmissions received by the satellite navigation receiver, said reference oscillator being connected to a clock which is connected to a navigation computer within the receiver and wherein said offset is determined and used later in software to correct for frequency errors; an electronic distance meter having an EDM transmitter for launching an out-bound signal to a distant target and an EDM receiver for receiving a reflected signal from said distant target; and a phase measurement device connected to the reference oscillator to receive said precision reference frequency and connected to both said EDM transmitter and EDM receiver to provide for a measurement of the difference in time between said out-bound signal and said reflected signal from which a distance-to-target measurement can be computed after using said determination of said frequency offset in software to correct for errors; wherein, said satellite transmissions provide a calibration signal to the phase measurement device that enables an automatic and continuous calibration in software of said distance-to-target measurement.
RELATED APPLICATION
[0001] This Application is a divisional of U.S. patent application Ser. No. 09/163,286, filed Sep. 28, 1998, which is a continuation-in-part (CIP) of an earlier filed U.S. patent application Ser. No. 09/122,265, filed Jul. 24, 1998, by both of the present inventors, Nicholas Charles Talbot and Michael V. McCusker.
Divisions (1)
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Number |
Date |
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| Parent |
09163286 |
Sep 1998 |
US |
| Child |
10153201 |
May 2002 |
US |
Continuation in Parts (1)
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Number |
Date |
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09122265 |
Jul 1998 |
US |
| Child |
09163286 |
Sep 1998 |
US |