Nova Patents
AU2005293553B2

Geodesic position determining system

Abstract

A plumb-line (1) can be aligned to a target point (A). Fitted on the plumb-line, and removable if required, an inclination sensor (2a) generates an inclination angle signal (a) linked to the plumb-line's angle of inclination (alpha ). An element to determine a position like a reflector (3) or a satellite signal antenna fits on the plumb-line. An independent claim is also included for a plumb-line system for use in a geodesic system for determining positions.

Term

Term ended

Expired 11 October 2025, 1 year ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

3 claims: 2 independent, 1 dependent

  1. 1
    Claims Geodesic positioning system for determining the position of a target point (A) comprising:• a range pole (1) that can be oriented toward the target point (A), • a tilt sensor (2a;2b;3c) arranged on the range pole (1), detachably where applicable, for generating a tilt angle signal (a) related to the tilt angle (a) of the range pole (1), • a positioning element (3;4), arranged on the range pole (1), • positioning means (8;12) able to capture the position (B) of the positioning element (3;4) as a function of the tilt angle signal (a), and • triggering means (5a;5b;5c) in signal communication with the tilt sensor (2) and with the positioning means (8;12), and adapted so that a trigger signal (b) issued to capture the current position (B) of the positioning element (3;4) is transmitted to the positioning means (8;12) as soon as the tilt angle signal (a) corresponds to a tilt angle (a) situated within a given tilt angle range (a max ), wherein: the triggering means (5a;5b;5c) are adapted so that the trigger signal (b) is associated with weighting information that is a function of the difference between the middle (ao) of the given tilt angle range (a ma x) and the tilt angle (a), and the positioning means are adapted so that: while the trigger signal (b) is applied, a multitude of current positions (B) of the positioning element (3;4) and the weighting information correlated in time with each of the positions (B) are acquired, and a weighted mean value of the acquired multitude of current positions (B) is formed in such a way that positions (B) measured closer to the middle (ao) of the given tilt angle range (a ma x) obtain a larger weight in the mean value than positions (B) meas ured further away from the middle (ao). 30 2. Geodesic positioning system of claim 1, characterized in that 2005293553 01 Mar 2011 the tilt angle (a) situated in the middle (cto) of the given tilt angle range (a max ) corresponds to an orientation of the range pole (1) where the position (B) of the positioning element (3;4) is essentially vertically above the target point (A). 5 3. Geodesic positioning system of either claim 1 or claim 2, characterized in that the range pole (1) and the positioning element (3;4) are provided with detachable, matched forced-centering pieces (6, 7) such that the positioning element (3;4) may be removed from range pole (1) and may be replaced by another positioning element (3;4). 4. Geodesic positioning system of one of claims 1 to 3, characterized in that • the positioning element is formed as a reflector (3) and • the positioning means are formed as a tachymeter (8) that is placed at a distance from the range pole (1), is provided with automatic target tracking, and is able to 5 point to the reflector (3) with a laser beam (15), and to determine the position (B) of the reflector (3). 5. Geodesic positioning system of claim 4, characterized by • a signal transmission device (9) associated with the range pole (1), for transmitting >0 via a wireless signal link at least a transmission signal (c) combined with the tilt angle signal (a) or the trigger signal (b), and • a signal receiving device (10) associated with the tachymeter (8) and in signal communication with it, for receiving the transmission signal (c). 25 6. Geodesic positioning system of claim 5, characterized in that • the trigger means (5a) are arranged at the range pole (1) and are in signal communication with the signal transmission device (9), and • the transmission signal (c) is combined with the trigger signal (b). 30 7. Geodesic positioning system of either claim 5 or 6, characterized in that the triggering means (5b) are integrated as a circuit or as an algorithm that can be processed by a remote-control unit (11), into said remote-control unit (11) that is 2005293553 01 Mar 2011 associated with the range pole (1), and is able to remote-control the tachymeter (8) via the signal transmission device (9) and the signal receiving device (10), with the aid of remote-control signals (g). 5 8. Geodesic positioning system of claim 5, characterized in that • the tilt sensor (2a, 2b) is in signal communication with the signal transmission device (9), • the transmission signal (c) is combined with the tilt angle signal (a), and • the triggering means (5a, 5b) are integrated into the tachymeter (8) as a circuit or as 0 an algorithm that can be processed by the tachymeter (8). 9. Geodesic positioning system of one of claims 1 to 3, characterized in that • the positioning element is formed as a satellite signal antenna (4) receiving satellite signals (d), and 5 · the positioning means are formed as a satellite signal evaluating unit (12) associated with the range pole (1), which is in signal communication with the satellite signal antenna (4) and is able to capture the position (B) of the satellite signal antenna (4) by evaluating the satellite signals (c) received. 0 10. Geodesic positioning system of claim 9, characterized in that the tilt sensor (2c) is in signal communication with the satellite signal evaluating unit (12), and the triggering means (5c) are integrated into the satellite signal evaluating unit (12) as a circuit or as an algorithm that can be processed by the satellite signal evaluating unit (12). 11. Geodesic positioning system of either claim 9 or 10, characterized in that the tilt sensor (2c) is arranged in a common housing (13) together with the satellite signal antenna (4). 30 12. Geodesic positioning system of one of claims 9 to 11, characterized by a correction data receiving unit (14) associated with the satellite signal evaluating unit (12) and in signal communication with it, for receiving correction signals (f), so 2005293553 01 Mar 2011 as to raise the accuracy of determination of position (B) of the satellite signal antenna (4). Geodesic positioning system of one of claims 5 to 12, characterized in that • the signal transmission device (9) is arranged on the range pole (1). 14. Geodesic positioning system of one of claims 7 to 13, characterized in that said remote-control unit (11) is arranged on the range pole (1). 0 15. Geodesic positioning system of one of claims 9 to 14, characterized in that • the satellite signals (d) are GPS, GLONASS, or Galileo satellite signals. 16. Geodesic positioning system of one of claims 9 to 15, characterized in that • the positioning means are formed as a satellite signal evaluating unit (12) arranged 5 on the range pole (1). 17. Geodesic positioning system of one of claims 12 to 16, characterized in that • the correction data receiving unit (14) associated with the satellite signal evaluating unit (12) and in signal communication with it is arranged on the range pole (1). Geodesic positioning system of one of claims 12 to 17, characterized in that • the correction signals (f) are R.TK signals or DGPS signals. PAP-50077-WO 051010 1/3 Fib. 1 Fib. 2 PAP-50077-WO 051010
  2. 2
    2/3 λ/. 9 γ/' PAP-50077-WO 051010
  3. 3
    3/3 Fib. 4 Fl B 5