Embodiment
Core of the present utility model is to provide a kind of calibration steps of phase measurement, solved circuit response time in prior art long, easily produce mechanical fault, serviceable life is short or cost is high, easily produce the problem of co-channel interference.
Below in conjunction with the accompanying drawing in the utility model embodiment, the technical scheme in the utility model embodiment is clearly and completely described, obviously, described embodiment is only the utility model part embodiment, rather than whole embodiment.Embodiment based in the utility model, those of ordinary skills are not making the every other embodiment obtaining under creative work prerequisite, all belong to the scope of the utility model protection.
Embodiment mono-
The present embodiment provides a kind of calibration steps of phase measurement, the method is that double light path sends the calibration steps that double light path receives, the method is utilized system constructing four tunnel light paths, the lightwave signal of launching by the second light wave emitter obtains the phase differential between two receiving traps after being received by two receiving traps; And after lightwave signal by the first light wave emitter transmitting receives by two receiving traps simultaneously, obtain comprising and between above-mentioned receiving trap, differ the comprehensive phase information differing with distance measuring signal; The error that above-mentioned both eliminate that above-mentioned all photoelectric devices are affected by environment after comparing, device otherness and the external factor such as aging are brought, has significantly promoted the degree of stability of stadimeter.
The calibration steps realization flow of the phase measurement that the present embodiment provides is as shown in Figure 1, specific as follows:
Step S
101the first light wave emitter is launched the first light wave, a described first light wave part is received by first receiving device after being turned back by measured target reflection, as outer optical path signal, described first light wave another part is received by the second receiving trap, as the first interior optical path signal of substrate reference, wherein, described the first lightwave signal is generated by the first high-frequency oscillation signal modulation;
Step S
102the second light wave emitter is launched the second light wave, a described second light wave part is received by first receiving device, as the second interior optical path signal, described second light wave another part is received by the second receiving trap, as the 3rd interior optical path signal, wherein, described the second lightwave signal is generated by the second high-frequency oscillation signal modulation;
Step S
103, to state first receiving device, with described the second receiving trap, the light wave successively receiving is carried out to phase bit comparison, the signal of substrate is eliminated in output.
Wherein, the outer light path light wave, the first interior light path light wave, the second interior light path light wave, the 3rd interior light path light wave and the mixed frequency signal that carry out phase bit comparison carry out the light wave after mixing, wherein to carry out the mixed frequency signal of mixing can be same high-frequency oscillation signal to four road light waves, also can be for frequency is identical, phase place is identical or have a high-frequency oscillation signal of fixed skew.
In the present embodiment, above-mentioned the first light wave and the second light wave are laser.
In the present embodiment, two high-frequency signals that the first light wave is modulated with the second light wave are that frequency is identical, and phase place is identical or have a high-frequency oscillation signal of fixed skew.
In the utility model embodiment, the first light wave emitter can first be launched the first light wave, thereby complete the generation of outer optical path signal and the first interior optical path signal, the second light wave emitter is launched the second light wave again, thereby complete the generation of the second interior optical path signal and the 3rd interior optical path signal; Also can first launch the second light wave by the second light wave emitter, thereby complete the generation of the second interior optical path signal and the 3rd interior optical path signal, the first light wave emitter can be launched the first light wave again, thereby completes the generation of outer optical path signal and the first interior optical path signal.
Wherein, first receiving device can first receive outer light path light wave, then receives the second interior light path light wave, and first receiving device also can first receive the second interior light path light wave, and then receives outer light path light wave; The second receiving trap can first receive the first interior light path light wave, then receives the 3rd interior light path light wave, and the second receiving trap also can first receive the 3rd interior light path light wave, and then receives the first interior light path light wave.
First receiving device in the present embodiment and the second receiving trap can have for photodiode, phototriode, APD, photomultiplier etc. the device of photoelectric converting function.
The present embodiment provides a kind of calibrating installation of phase measurement, and the calibrating installation of this phase measurement adopts two two close alignments of sending out, and as shown in Figure 2, for convenience of explanation, the present embodiment only provides the part relevant to the utility model embodiment to its structural principle.
The calibrating installation of a kind of phase measurement that the present embodiment provides, comprising:
The first light wave emitter 201, according to the first high-frequency oscillation signal modulation receiving, generate the first light wave, a part for the first light wave is emitted to measured target as outer optical path signal, and another part of the first light wave is as the first interior optical path signal transmitting of the substrate reference of phase compensation.
The second light wave emitter 202, according to the second high-frequency oscillation signal modulation receiving, generate the second light wave, a part for the second light wave is as the second interior optical path signal transmitting of the substrate reference of phase compensation, and another part of the second light wave is as the 3rd interior optical path signal transmitting of the substrate reference of phase compensation.
The first photoelectric conversion device 203, receives the outer light path light wave and the second interior light path light wave that by measured target reflection, are turned back, and the outer light path light wave being turned back by measured target reflection and the second interior light path light wave are carried out to opto-electronic conversion output.
The second photoelectric conversion device 204, receives the first interior light path light wave and the 3rd interior light path light wave, and the first interior light path light wave and the 3rd interior light path light wave are carried out to opto-electronic conversion output.
Phase detector 205, receives respectively the signal that the first photoelectric conversion device 203 and the second photoelectric conversion device 204 are exported, and Bing Jiang tetra-road signals carry out phase bit comparison, and the phase signal of substrate is eliminated in output.
In the present embodiment, the first light wave emitter 201 and the second light wave emitter 202 include driver, light-emitting device, wherein, light-emitting device is launched light wave under the driving of driver, this light-emitting device can be laser diode (Laser Diode, LD), light emitting diode (Light Emitting Diode, LED) or other luminescent device.In the present embodiment, the first light wave emitter 201 and the second light wave emitter 202 are laser light wave transmitting device, Emission Lasers.
In the present embodiment, the first interior light path light wave of the first light wave emitter 201 transmittings can directly be aimed at the second photoelectric conversion device 204, the first interior light path light wave is directly mapped in the second photoelectric conversion device 204, lens also can be set between the first light wave emitter 201 and the second photoelectric conversion device 204 to change light path, being convenient to the second photoelectric conversion device 204 receives, can also between the first interior light path light wave transmitting place and the second photoelectric conversion device 204, be connected transmission line, this transmission line is preferably optical fiber.
In the present embodiment, the second interior light path light wave of the second light wave emitter 202 transmittings can directly be aimed at the first photoelectric conversion device 203, the second interior light path light wave is directly mapped in the first photoelectric conversion device 203, lens also can be set between the second light wave emitter 202 and the first photoelectric conversion device 203 to change light path, being convenient to the first photoelectric conversion device 203 receives, can also between the second interior light path light wave transmitting place and the first photoelectric conversion device 203, be connected transmission line, this transmission line is preferably optical fiber.
In the present embodiment, the 3rd interior light path light wave of the second light wave emitter 202 transmittings can directly be aimed at the second photoelectric conversion device 204, the 3rd interior light path light wave is directly mapped in the second photoelectric conversion device 204, lens also can be set between the second light wave emitter 202 and the second photoelectric conversion device 204 to change light path, being convenient to the second photoelectric conversion device 204 receives, can also between the 3rd interior light path light wave transmitting place and the second photoelectric conversion device 204, be connected transmission line, this transmission line is preferably optical fiber.
In the present embodiment, the first photoelectric conversion device 203 and the second photoelectric conversion device 204 can be the photoelectric conversion devices such as photodiode, phototriode, APD, photomultiplier.
Embodiment bis-
The present embodiment provides a kind of calibrating installation of phase measurement, and the calibrating installation of this phase measurement adopts two two close alignments of sending out, and as shown in Figure 3, for convenience of explanation, the present embodiment only provides the part relevant to the present embodiment to its structural principle.
The calibrating installation of a kind of phase measurement that the present embodiment provides, comprising: oscillator 301, the first light wave emitter 302, the second light wave emitter 303, the first photoelectric conversion device 304, the second photoelectric conversion device 305, the first multiplying arrangement 306, frequency mixer 307, the second multiplying arrangement 308, phase detector 309.
The present embodiment is compared with embodiment mono-, and difference is, the calibrating installation of the phase measurement that the present embodiment provides also comprises oscillator 301, the first multiplying arrangement 306, frequency mixer 307 and the second multiplying arrangement 308.
By oscillator 301, produce synchronous the first high-frequency oscillation signal of same frequency and the second high-frequency oscillation signal.
The first high-frequency oscillation signal that the first light wave emitter 302 receives from oscillator 301, according to the first high-frequency oscillation signal modulated light wave, as the first light wave transmitting, a part for the first light wave is emitted to measured target as outer optical path signal, then after being reflected by measured target, turn back, the first photoelectric conversion device 304 receives the outer optical path signal returning, carry out output electrical signals after opto-electronic conversion, the electric signal that the electric signal of output is high frequency amplifies and exports through the first multiplying arrangement 306 again, the mixed frequency signal that frequency mixer 307 receives from the signal of the first multiplying arrangement 306 and oscillator 301 outputs carries out mixing, signal after output mixing, another part of the first light wave is received by the second photoelectric conversion device 305 as the interior optical path signal of reference first of eliminating substrate, carry out output electrical signals after opto-electronic conversion, the electric signal that the electric signal of output is high frequency amplifies and exports through the first multiplying arrangement 306 again, the mixed frequency signal that frequency mixer 307 receives from the signal of the first multiplying arrangement 306 and oscillator 301 outputs carries out mixing, the signal after output mixing.
The second high-frequency oscillation signal that the second light wave emitter 303 receives from oscillator 301, according to the second high-frequency oscillation signal modulated light wave, as the second light wave transmitting, a part for the second light wave is received by the first photoelectric conversion device 304 as the second interior light path light wave of eliminating substrate, carry out output electrical signals after opto-electronic conversion, the electric signal that the electric signal of output is high frequency amplifies and exports through the first multiplying arrangement 306 again, the mixed frequency signal that frequency mixer 307 receives from the signal of the first multiplying arrangement 306 and oscillator 301 outputs carries out mixing, signal after output mixing, another part of the second light wave is received by the second photoelectric conversion device 305 as the 3rd interior optical path signal of eliminating substrate reference, carry out output electrical signals after opto-electronic conversion, the electric signal that the electric signal of output is high frequency amplifies and exports through the first multiplying arrangement 306 again, the mixed frequency signal that frequency mixer 307 receives from the signal of the first multiplying arrangement 306 and oscillator 301 outputs carries out mixing, the signal after output mixing.
The last signal after four mixing of output, the signal after four mixing is low frequency signal, amplifies output entering the second multiplying arrangement 308, Output rusults is by phase detector 309 receptions go forward side by side line phase comparison, finally output phase difference signal.
In the present embodiment, frequency mixer 307 can have for photodiode, phototriode, APD, photomultiplier etc. the device of mixing function.
In the present embodiment, the first photoelectric conversion device 304 can be replaced by a receiving trap with frequency mixer 307, this receiving trap can be realized the function of the first photoelectric conversion device 304 and frequency mixer 307 simultaneously, the second photoelectric conversion device 305 also can be replaced by a receiving trap with frequency mixer 307, and this receiving trap can be realized the function of the second photoelectric conversion device 305 and frequency mixer 307 simultaneously.In the present embodiment, receiving trap can have for photodiode, phototriode, APD, photomultiplier etc. the device of photoelectric converting function.
In the present embodiment, the first multiplying arrangement 306 amplifies the high frequency electrical signal receiving, expensive, the second multiplying arrangement 308 amplifies the low frequency electric signal receiving, price is relatively low, if other device performances of circuit are good, the first multiplying arrangement 306 and the second multiplying arrangement 308 can omit, or omit one of them.
Embodiment tri-
The present embodiment provides a kind of calibrating installation of phase measurement, and the calibrating installation of this phase measurement adopts two two close alignments of sending out, and as shown in Figure 4, for convenience of explanation, the present embodiment only provides the part relevant to the present embodiment to its structural principle.
The calibrating installation of a kind of phase measurement that the present embodiment provides, comprising: oscillator 401, the first light wave emitter 402, the second light wave emitter 403, first receiving device 404, the second receiving trap 405, multiplying arrangement 406, phase detector 407.
The present embodiment is compared with embodiment bis-, difference is, the calibrating installation of the phase measurement that the present embodiment provides only adopts a multiplying arrangement 406, adopt the first photoelectric conversion device 304 and frequency mixer 307 in first receiving device 404 alternate figures 3, adopt the second receiving trap 405 to substitute the second photoelectric conversion device 305 and frequency mixer 307.
First receiving device 404, for receiving respectively outer light path light wave and the second interior light path light wave being turned back by measured target reflection, carries out opto-electronic conversion, carries out mixing respectively, and export the signal after two-way mixing with mixed frequency signal.
The second receiving trap 405, for receiving respectively the first interior light path light wave and the 3rd interior light path light wave, carries out opto-electronic conversion, carries out mixing respectively, and export the signal after two-way mixing with mixed frequency signal.
Embodiment tetra-
The present embodiment provides a kind of calibrating installation of phase measurement, and the calibrating installation of this phase measurement adopts two two close alignments of sending out, and as shown in Figure 5, for convenience of explanation, the present embodiment only provides the part relevant to the present embodiment to its structural principle.
The calibrating installation of a kind of phase measurement that the present embodiment provides, comprise: phaselocked loop (Phase Locked Loop, PLL) circuit 501, the first light wave emitter 502, the second light wave emitter 503, the first photoelectric conversion device 504, the second photoelectric conversion device 505, frequency mixer 506, phase detector 507.
The present embodiment is compared with embodiment tri-, and difference is, the calibrating installation of the phase measurement that the present embodiment provides adopts phaselocked loop (Phase Locked Loop, PLL) circuit 501 as oscillator, and has omitted multiplying arrangement.
Embodiment five
The present embodiment provides a kind of calibrating installation of phase measurement, and the calibrating installation of this phase measurement adopts two two close alignments of sending out, and as shown in Figure 6, for convenience of explanation, the present embodiment only provides the part relevant to the present embodiment to its structural principle.
The calibrating installation of a kind of phase measurement that the present embodiment provides, comprise: Direct Digital Frequency Synthesizers (Direct Digital Frequency Synthesizer, DDS) circuit 601, the first light wave emitter 602, the second light wave emitter 603, the first photoelectric conversion device 604, the second photoelectric conversion device 605, multiplying arrangement 606, frequency mixer 607, phase detector 608.
The present embodiment is compared with embodiment tetra-, difference is, the calibrating installation of the phase measurement that the present embodiment provides adopts Direct Digital Frequency Synthesizers (Direct Digital Frequency Synthesizer, DDS) circuit 601 as oscillator, and has adopted multiplying arrangement 606.
Embodiment six
The present embodiment provides a kind of calibrating installation of phase measurement, and the calibrating installation of this phase measurement adopts two two close alignments of sending out, and as shown in Figure 7, for convenience of explanation, the present embodiment only provides the part relevant to the present embodiment to its structural principle.
The calibrating installation of a kind of phase measurement that the present embodiment provides, comprising: oscillator 701, control circuit 702, the first light wave emitter 703, the second light wave emitter 704, first receiving device 705, the second receiving trap 706, multiplying arrangement 707, phase detector 708.
The present embodiment is compared with embodiment five, difference is, the calibrating installation of the phase measurement that the present embodiment provides is provided with control circuit 702, for controlling the shooting sequence of the first light wave and the second light wave, and adopt the first photoelectric conversion device 604 and frequency mixer 608 in first receiving device 705 alternate figures 6, adopt the second receiving trap 706 to substitute the second photoelectric conversion device 605 and frequency mixer 608.
In the present embodiment, adopt control circuit 702 can control switch or the switching of inside and outside light path, to control the shooting sequence of the first light wave and the second light wave.
In the present embodiment, control circuit 702 adopts laser diode, and the time interval of switching can reach nanosecond rank.
In the present embodiment, control circuit 702 can be analog switch, mos field effect transistor (Metal Oxide Semiconductor Field Effect Transistor, MOS FET) or relay etc.
Embodiment seven
Figure 8 shows that the circuit structure diagram of the calibrating installation of the phase measurement that the present embodiment provides.Driver 801 drives respectively the first light wave emitter 802, the second light wave emitter 803 transmitting light waves according to high-frequency oscillation signal.
First light wave emitter 802 transmitting the first light waves, the first light wave is emitted to by measured target through lens 804 parts, as outer optical path signal, first light wave another part reflexes to the second receiving trap 806 by catoptron 805, by the second receiving trap 806, received, as the first interior optical path signal, the second receiving trap 806 carries out opto-electronic conversion by the first interior optical path signal and mixed frequency signal, mixing output, through multiplying arrangement 807, amplify, export to phase detector 808, the outer optical path signal returning is assembled to first receiving device 810 by optical mirror slip 809, first receiving device 810 carries out opto-electronic conversion by the outer optical path signal returning and mixed frequency signal again, mixing output, through multiplying arrangement 807, amplify, export to phase detector 808.
Second light wave emitter 803 transmitting the second light waves, a part for the second light wave is emitted to first receiving device 810, as the second interior optical path signal, first receiving device 810 carries out opto-electronic conversion by the second interior optical path signal and mixed frequency signal, mixing output, through multiplying arrangement 807, amplify, export to phase detector 808, another part of the second light wave is emitted to the second receiving trap 806, as the 3rd interior optical path signal, the second receiving trap 806 carries out opto-electronic conversion by the 3rd interior optical path signal and mixed frequency signal, mixing output, through multiplying arrangement 807, amplify, export to phase detector 808.
Phase detector 808 carries out phase bit comparison by the signal receiving for four times and finally exports, wherein adopt a biasing circuit 811 to be connected with the negative pole of first receiving device 810, the second receiving trap 806 respectively, be used to first receiving device 810 and the second receiving trap 806 that base current is provided.
In the present embodiment, between the second light wave emitter 803 and first receiving device 810, the second receiving trap 806, can be provided with lens to change light path, be convenient to first receiving device 810, the second receiving trap 806 receptions; Also can between the second light wave emitter 803 and first receiving device 810, the second receiving trap 806, be connected transmission line, this transmission line is preferably optical fiber.
In the present embodiment, adopt two calibrations that two calibrating installations of receiving can be applied to distance measuring equipment of sending out, comprise the calibration of continous way phase laser distance device, pulsed phase laser distance device, combine and link together, the error that causes distance measuring equipment circuit to produce for environmental factors such as compensation of phase errors with known distance measuring equipment.
In the present embodiment, two two calibrating installations of receiving can be applied to adopt in the distance measuring equipment of PLL circuit, also can be applied to adopt twin crystal to shake in the distance measuring equipment of refreshing mixing, also can be applied to adopt in the distance measuring equipment of DDS circuit.
The calibration steps of a kind of phase measurement that the utility model provides and device, in employing two-way emitter switches respectively, outer optical path signal, optical path signal and outer optical path signal in receiving respectively separately by two signal receiving devices again, interior light path and outer optical path signal carry out opto-electronic conversion, mixing, amplify and phase demodulation, thereby output is eliminated the signal of substrate and has been avoided environmental change in circuit, to introduce uncertain phase noise, and in being controlled by control circuit, thereby outer light path is switched the stable object that realizes phase error compensation and calibration at a high speed, reduced the impact of environmental factor on range error, improved the measuring accuracy of laser ranging, increased the range finding degree of stability of system, reduced the performance requirement of system to components and parts, thereby lowered the cost of system, strengthened the application of laser ranging in every profession and trade.
Above-mentioned explanation to the disclosed embodiments, makes professional and technical personnel in the field can realize or use the utility model.To the multiple modification of these embodiment, will be apparent for those skilled in the art, General Principle as defined herein can, in the situation that not departing from spirit or scope of the present utility model, realize in other embodiments.Therefore, the utility model will can not be restricted to these embodiment shown in this article, but will meet the widest scope consistent with principle disclosed herein and features of novelty.