Radar plant and measurement technique for determination of the orientation and the depth of buried objects
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
G01V-003/12
G01S-013/88
G01S-013/04
출원번호
US-0474567
(1999-12-29)
우선권정보
DK-0780/97 (1997-07-02)
발명자
/ 주소
Gregersen, Ole
Jensen, Ole Kiel
출원인 / 주소
Malaa Geoscience Forvaltning AB
대리인 / 주소
Klein, O'Neill & Singh, LLP
인용정보
피인용 횟수 :
34인용 특허 :
14
초록▼
A plant for generation of information indicative of the depth and the orientation of an object positioned below the surface of the ground is adapted to use electromagnetic radiation emitted from and received by an antenna system associated with the plant. The plant has a transmitter and a receiver f
A plant for generation of information indicative of the depth and the orientation of an object positioned below the surface of the ground is adapted to use electromagnetic radiation emitted from and received by an antenna system associated with the plant. The plant has a transmitter and a receiver for generation of the electromagnetic radiation in cooperation with the antenna system mentioned and for reception of the electromagnetic radiation reflected by the object in cooperation with the antenna system, respectively. The antenna system includes a plurality of individual antenna elements such as dipole antennas, having substantially linear polarization. The antenna elements are positioned in relation to the geometric center of the antenna system, with the various centers of the antenna element displaced in relation to the geometric center of the antenna system. The plant has a mechanism for rotating the antenna system and thus polarizing the electromagnetic field around or in relation to the geometric center of the antenna system.
대표청구항▼
A plant for generation of information indicative of the depth and the orientation of an object positioned below the surface of the ground is adapted to use electromagnetic radiation emitted from and received by an antenna system associated with the plant. The plant has a transmitter and a receiver f
A plant for generation of information indicative of the depth and the orientation of an object positioned below the surface of the ground is adapted to use electromagnetic radiation emitted from and received by an antenna system associated with the plant. The plant has a transmitter and a receiver for generation of the electromagnetic radiation in cooperation with the antenna system mentioned and for reception of the electromagnetic radiation reflected by the object in cooperation with the antenna system, respectively. The antenna system includes a plurality of individual antenna elements such as dipole antennas, having substantially linear polarization. The antenna elements are positioned in relation to the geometric center of the antenna system, with the various centers of the antenna element displaced in relation to the geometric center of the antenna system. The plant has a mechanism for rotating the antenna system and thus polarizing the electromagnetic field around or in relation to the geometric center of the antenna system. ctor mechanism and the one of the lower vertical-axis bounds. 2. The apparatus of claim 1, wherein the number of linear line segments has a value equal to 2a,where a ε{0, 1, 2, 3, . . . } and each one of the plurality of slope elements has a value selected from a group consisting of ±2band zero, where b ε{. . . , -2,-1, 0, 1, 2, . . . }. 3. The apparatus of claim 2, wherein a ratio between the largest and smallest values of the slope elements is equal to or less than 232. 4. The apparatus of claim 2, wherein the calculation mechanism includes a plurality of shift and inversion mechanisms having a shifter for shifting the signal to generate a shifted data signal having a sign and an inverter for inverting the sign of the shifted data signal as prescribed by the plurality of slope elements of the slope of each one of the plurality of linear line segments. 5. The apparatus of claim 4, wherein the selector mechanism includes a plurality of interconnected data signal multiplexers and a constant data multiplexer, the data signal multiplexers receive the signal in a selected configuration after processing by the shift and inversion mechanisms and the constant data multiplexer receives the lower vertical axis bounds of the plurality of linear line segments, and wherein the aggregation mechanism aggregates selected outputs from the data signal multiplexers and the constant data multiplexer to form the approximation of the sinusoidal amplitude. 6. The apparatus of claim 2, further comprising a signal generator for generating the signal. 7. The apparatus of claim 6, wherein the signal generator includes a frequency control unit for generating a multiple bit frequency control word; a phase accumulator for accumulating the frequency control word to provide an accumulator output word; a partitioner for partitioning the accumulator output word to a first control signal, a second control signal and a phase word; and an inverter for inverting the phase word when signaled by the second control signal, wherein output of the inverter includes the signal. 8. The apparatus of claim 7, further comprising a digital-to-analog converter for converting the approximation of the sinusoidal amplitude into an analog waveform and a low pass filter for filtering and buffering the analog signal. 9. The apparatus of claim 8, wherein the first control signal is received by the digital-to-analog converter and includes a value of zero when the sign of the approximation of the sinusoid amplitude is positive and a value of one when the sign of the approximation of the sinusoid amplitude is negative. 10. The apparatus of claim 9, wherein the second control signal has a value of zero when the given phase angle is in the first quadrant and a third quadrant of the sinusoid function and a value of one when the given phase angle is in a second and a fourth quadrant of the sinusoid function. 11. The apparatus of claim 7, wherein a combination of the calculation mechanism and the selector mechanism are divided into a sine generation module for generating a sine output data based on the signal and a cosine generation module for generating a cosine output data based on the signal. 12. The apparatus of claim 11, further comprising a first multiplexer for multiplexing the sine output data and the cosine output data to generate a sine waveform responsive to the first and second control signals and a third control signal derived from the signal and a second multiplexer for multiplexing the sine output data and the cosine output data to generate a cosine waveform responsive to the first, second, and third control signals. 13. In a phase-to-sinusoid-amplitude converter, a method of determining an approximation of a sinusoidal amplitude for a prescribed phase angle from a signal representing a quadrant of a sinusoid function defined by a plurality of linear line segments of substantially equal length, each linear line segment being defined by: a lower horizontal-axis bound; a lower vertical-axis bound; and a slope represented as a sum of a plurality of slope elements, the method comprising: (f) evaluating a set of values for each one of the plurality of linear line segments as a product of (i) a horizontal displacement representing a difference between the prescribed phase angle and the lower horizontal-axis bound and (ii) each one of the plurality of slope elements; and (g) aggregating a selected set of values determined in step (a) and a selected one of the lower vertical-axis bounds for a selected linear line segment to form the approximation of the sinusoidal amplitude for the prescribed phase angle. 14. The method of claim 13, wherein the number of linear line segments has a value equal to 2a,where a ε{0, 1, 2, 3, . . . } and each one of the plurality of slope elements has a value selected from a group consisting of ±2band zero, where b ε{. . . , -2,-1, 0, 1, 2, . . . }. 15. The method of claim 14, wherein the step of evaluating includes shifting the signal to generate a shifted data signal having a sign and inverting the sign of the shifted data signal as prescribed by the plurality of slope elements of the slope of each one of the plurality of linear line segments. 16. A computer readable medium having stored thereon computer-executable instructions for determining an approximation of a sinusoidal amplitude for a prescribed phase angle from a signal representing a quadrant of a sinusoid function defined by a plurality of linear line segments of substantially equal length, each linear line segment being defined by: a lower horizontal-axis bound; a lower vertical-axis bound; and a slope represented as a sum of a plurality of slope elements, the computer-executable instructions comprising the steps for: (a) step for evaluating a set of values for each one of the plurality of linear line segments as a product of (i) a horizontal displacement representing a difference between the prescribed phase angle and the lower horizontal-axis bound and (ii) each one of the plurality of slope elements; and (b) step for aggregating a selected set of values determined in step (a) and a selected one of the lower vertical-axis bounds for a selected linear line segment to form the approximation of the sinusoidal amplitude for the prescribed phase angle. 17. The computer readable medium of claim 16, wherein the number of linear line segments has a value equal to 2a,where a ε{0, 1, 2, 3, . . . } and each one of the plurality of slope elements has a value selected from a group consisting of ±2band zero, where b ε{. . . -2,-1, 0, 1, 2, . . . }. 18. The computer readable medium of claim 17, wherein the step for evaluating includes a step for shifting the signal to generate a shifted data signal having a sign and a step for inverting the sign of the shifted data signal as prescribed by the plurality of slope elements of the slope of each one of the plurality of linear line segments. 19. An apparatus comprising: (a) means for generating a signal approximating a quadrant of a sinusoid function defined by a plurality of linear line segments of substantially equal length, each linear line segment being defined by: a lower horizontal-axis bound; a lower vertical-axis bound; and a slope represented as a sum of a plurality of slope elements; (b) generator means receiving the signal for generating a set of outputs for each one of the plurality of linear line segments as a product of a horizontal displacement representing a difference between the given phase angle and the lower horizontal-axis bound and each one of the plurality of slope elements; (c) selector means for selecting one of the set of outputs from the generator means and one of the lower vertical-axis bounds based on a selected one of the plurality of linear line segments; (d) means for evaluating an approximation of a sinusoidal amplitude as an aggregate of the sele
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