CN202057813U - Calibration device for calibrating time measurement precision of engineering seismograph - Google Patents

Calibration device for calibrating time measurement precision of engineering seismograph Download PDF

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CN202057813U
CN202057813U CN2011201584971U CN201120158497U CN202057813U CN 202057813 U CN202057813 U CN 202057813U CN 2011201584971 U CN2011201584971 U CN 2011201584971U CN 201120158497 U CN201120158497 U CN 201120158497U CN 202057813 U CN202057813 U CN 202057813U
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wave detector
support
iron plate
time difference
engineering
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王清玉
魏树满
赵楠
王孝起
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China Water Resources Beifang Investigation Design and Research Co Ltd
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China Water Resources Beifang Investigation Design and Research Co Ltd
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Abstract

The utility model discloses a calibration device for calibrating the time measurement precision of an engineering seismograph. The calibration device comprises a plurality of geophone supports, a seismic source support, a plurality of geophones, an iron plate for stimulating sound waves, an iron hammer and multiple-core cables, wherein the geophones are arranged on the plurality of geophone supports; the iron plate is arranged on the seismic source support; and the plurality of geophones are connected in parallel by the multiple-core cables. The iron hammer and the multiple-core cables are connected on a seismograph to be calibrated. The plurality of geophones arranged on the plurality of geophone supports and the iron plate arranged on the seismic source support are positioned on a straight line with the same height and same direction, and the plane of the iron plate is vertical to the arrangement direction of the geophones. The calibration device can ensure the uniformity of sound wave stimulating conditions and receiving conditions and further ensures the calibration for the time measurement accuracy of the engineering seismograph.

Description

Be used to demarcate the caliberating device of engineering seismograph time difference method
Technical field
The utility model relates to caliberating device, especially for the caliberating device of demarcating the engineering seismograph time difference method.
Background technology
At present, is each road consistance of judgement seismic instrument in the corresponding rules of implementing such as " Hydraulic and Hydro-Power Engineering physical prospecting rules " SL326-2005, " water power hydraulic engineering physical prospecting rules " DL/T5010-2005, " municipal engineering geophysical exploration standard " CJJ7-2007 and " power engineering physical prospecting technical regulation " DL/T5159-2002 to the demarcation emphasis of engineering seismology instrument, and stipulate that the phase differential between each road should should be less than 15% less than the difference of vibration between 1.5ms, each road, and corresponding requirement has been proposed for wave detector consistance, trigger switch precision.
Because it is little of 1m-2m that engineering seismology exploration and rock soil mass seismic event are tested its offset distance, big to tens of rice, even hundreds of rice, the engineering seismology instrument scaling method and the requirement of therefore above-mentioned relevant rules regulation can not be satisfied the requirement of test seismic wave parameter precision under the little offset distance.
For example implement the test of rock mass seismic event, suppose that trigger switch does not have time-delay, phase differential is 0.2ms between adjacent each road of seismic instrument, and then the 6th road and the first road seismic event maximum phase difference are 1.0ms, and meeting phase differential should be less than the requirement of 1.5ms.
Establish the test of rock mass seismic event again and survey segment length 6m, offset distance 1m, track pitch 1m, arrange 6 road wave detectors, consider that by medium rock mass velocity 4500m/s the 6th wave detector of hammer point distance is 6m, calculate as can be known the time that the 6th wave detector receive seismic event to should be 1.33ms.
The maximal phase potential difference is 0.2ms between the existing Yin Gedao, and then the 6th road actual reception is 2.53ms to the time of seismic event, and actual measurement rock mass seimic wave velocity is 2370m/s, and relative error is 47%.Obviously, be difficult to satisfy requirement of engineering.So can not satisfying, the method for the rules standard of prior art demarcates the engineering seismograph time difference method.
Summary of the invention
The purpose of this utility model is, a kind of caliberating device that is used to demarcate the engineering seismograph time difference method is provided, in the hope of guaranteeing the quality of engineering seismology ripple exploration.
For achieving the above object, the utility model adopts following technical scheme: a kind of caliberating device that is used to demarcate the engineering seismograph time difference method, comprise a plurality of wave detector supports, a focus support, be placed in many wave detectors on a plurality of wave detector supports, be placed in the iron plate of the excite sound waves on the focus support, iron hammer, make the polycore cable of a plurality of wave detector parallel connections, iron hammer and polycore cable are connected on the seismograph to be calibrated, the iron plate that is placed in many wave detectors on a plurality of wave detector supports and is placed on the focus support is positioned at sustained height, on the unidirectional straight line, the iron plate plane is perpendicular to the geophone arrangement direction.
Described wave detector support comprise base, perpendicular to the vertical rack of base, be inserted in the adjustment height on support top rule, be positioned at the horizontal hanging arm on rule top and be fixed on the erecting frame of the installation wave detector on the horizontal hanging arm.
The erecting frame of described installation wave detector is that opening dashes outer C jacket ring.
Described focus support comprise base, perpendicular to the vertical rack of base, be inserted in the adjustment height on support top rule, be positioned at the horizontal hanging arm on rule top, described iron plate is circular or square, is installed on the horizontal hanging arm.
The number of described wave detector support is identical with seismographic road number to be calibrated.
The number of described wave detector support is 6,12,24,48 or 96.
Distance between described two adjacent wave detector supports is 0.3m ~ 1.0m, and the distance on the focus support between the adjacent wave detector of iron plate central point distance also is 0.3m ~ 1.0m.
Distance between described two adjacent wave detector supports is that the distance between the adjacent wave detector of iron plate central point distance is 0.5m on the 0.5m focus support.
The beneficial effects of the utility model are: caliberating device of the present utility model can be guaranteed the consistance of sound wave shooting conditions, condition of acceptance, and then the demarcation of assurance engineering seismograph time difference method, improve the precision of engineering seismology exploration, the test of engineering rock soil mass seismic wave parameter, for engineering design, engineering foundation inspection of quality provide important underlying parameter.
Description of drawings
Fig. 1 is the structural representation that is used to demarcate the caliberating device timing signal of engineering seismograph time difference method of the present utility model.
Fig. 2 is the wave detector support synoptic diagram that is used to demarcate the caliberating device of engineering seismograph time difference method of the present utility model.
Fig. 3 is the focus support synoptic diagram that is used to demarcate the caliberating device of engineering seismograph time difference method of the present utility model.
Fig. 4 is the calibration curve of demarcation engineering seismograph time difference method of the present utility model.
Embodiment
Below in conjunction with the drawings and specific embodiments the utility model is described in further detail:
As shown in Figure 1, the caliberating device that is used to demarcate the engineering seismograph time difference method of the present utility model, comprise 6 wave detector supports 1,1 focus support 2, be placed in 6 wave detectors 4 on 6 wave detector supports 1, be placed in the iron plate of sending sound wave 8 on the focus support 2, iron hammer 5, make the polycore cable of 6 wave detector 4 parallel connections, iron hammer 5 and polycore cable 6 are connected on the seismograph to be calibrated 3, the iron plate 8 that is placed in 6 wave detectors 4 on 6 wave detector supports 1 and is placed on the focus support 2 is positioned at sustained height, on the unidirectional straight line, iron plate 6 planes are perpendicular to wave detector 4 orientations.
As shown in Figure 2, described wave detector support 1 comprise base 11, perpendicular to the vertical rack 12 of base, be inserted in the adjustment height on support 12 tops rule 9, be positioned at the horizontal hanging arm 13 on rule 9 tops and be fixed on the erecting frame 7 of the installation wave detector 4 on the horizontal hanging arm 13.The erecting frame 7 that wave detector 4 is installed described in this example is that opening is towards outer C jacket ring.
As shown in Figure 3, described focus support 2 comprise base 21, perpendicular to the vertical rack 22 of base, be inserted in the adjustment height on support 22 tops rule 29, be positioned at the horizontal hanging arm 23 on rule 29 tops, described iron plate 8 is circular, is installed on the horizontal hanging arm 23.
In this example, seismograph 3 to be calibrated is 6 roads, so need 6 wave detector supports 1 and 6 wave detectors 4, that is to say that the number of described wave detector support 1 is identical with the road number of seismograph to be calibrated 3, the number of wave detector support 1 is 6 usually, 12,24,48 or 96.
Distance between two adjacent wave detector supports 1 is 0.3m ~ 1.0m, is preferably 0.5m, and the distance that focus support ⑵ goes up between the adjacent wave detector of iron plate central point distance also be 0.3m ~ 1.0m, also preferred 0.5m.
A kind of scaling method of engineering seismograph time difference method may further comprise the steps:
(1) n wave detector is placed in respectively in the erecting frame of n wave detector support;
(2) regulate the wave detector support, make n wave detector on sustained height, and its minimum altitude should guarantee that the air direct wave is a Mintrop wave;
(3) put the wave detector support by equidistant L, and make n wave detector on same straight line and the direction unanimity;
(4) on the focus support iron plate of hanging oneself, the iron plate plane is perpendicular to the geophone arrangement direction, and the adjacent phone spacing of iron plate central point distance also is L, and remains on same straight line with a said n wave detector;
(5) polycore cable and the iron hammer in parallel with n wave detector is connected on the seismograph to be calibrated, vertically knocks the center of iron plate with iron hammer along the direction of geophone arrangement, excite sound waves reads each wave detector sound wave t hourage 1,t 2,t 3, ,t n, measure the temperature T of air, precision to 0.5 simultaneously
Figure 2011201584971100002DEST_PATH_IMAGE001
;
(6) calculate the judgement calibration result:
A. air-borne sound wave velocity measured value
S is ordinate, is horizontal ordinate with each wave detector sound wave t hourage with range finding, draws " time-range finding " curve, or obtains regression beeline equation between s and the t with statistical method:
Figure 343199DEST_PATH_IMAGE002
A, b are regression coefficient to be asked in the formula;
The slope of T-X curve or regression coefficient b are air-borne sound wave velocity measured value v 1
B. air-borne sound wave velocity calculated value
The air-borne sound wave velocity is calculated as follows:
Figure 2011201584971100002DEST_PATH_IMAGE003
In the formula
Figure 982163DEST_PATH_IMAGE004
Be air-borne sound wave velocity calculated value, m/s; T is the temperature of air,
Figure 381921DEST_PATH_IMAGE001
C. the error of air-borne sound wave velocity
Air-borne sound wave velocity measured value
Figure 2011201584971100002DEST_PATH_IMAGE005
With air-borne sound wave velocity calculated value
Figure 713807DEST_PATH_IMAGE004
Between relative error
Figure 111291DEST_PATH_IMAGE006
Be calculated as follows:
Calculate
Figure 463381DEST_PATH_IMAGE006
Be not more than ± 0.5%, be meeting the demands of the engineering seismograph time difference method demarcated, calculating
Figure 604512DEST_PATH_IMAGE006
Greater than ± 0.5%, be not meeting the demands of the engineering seismograph time difference method demarcated.
The number n of described wave detector support is identical with seismographic road number to be calibrated, and spacing L is 0.3m ~ 1.0m.
So that to demarcate 6 road seismographs be example the scaling method of said apparatus is elaborated below:
1. 6 wave detectors 4 are placed in respectively in 6 wave detector holder device C type rings 7;
2. regulate wave detector support rule 9) make 6 wave detectors 4 on sustained height, and its minimum altitude should guarantee that the air direct wave is a Mintrop wave;
3. equidistantly put wave detector support 1 by 0.5m, and make 6 wave detectors 4 on same straight line and the direction unanimity;
4. at focus support 5 round iron plate 8 of hanging oneself, the iron plate plane is perpendicular to the geophone arrangement direction, first wave detector 0.5m of iron plate central point distance, and remain on same straight line with above-mentioned 6 wave detectors;
5. vertically knock the center of iron plate, excite sound waves with adz-eye hammer along the direction of geophone arrangement;
6. read each wave detector sound wave t hourage 1=1.43 ,t 2=2.89 ,t 3=4.32 ,t 4=5.76, t 5=7.27, t 6=8.68ms measures temperature T=22.0 of air simultaneously
Figure 164807DEST_PATH_IMAGE001
⑴ air-borne sound wave velocity measured value
S is ordinate, is horizontal ordinate with each wave detector sound wave t hourage with range finding, draw " time-range finding " curve, the slope of T-X curve is air-borne sound wave velocity measured value v 1See Fig. 4 " calibration curve ".
Or obtain regression beeline equation between s and the t with statistical method:
Figure 500235DEST_PATH_IMAGE008
Can try to achieve air-borne sound wave velocity measured value v by " calibration curve " or formula ⑴ 1=344.3m/s.
⑵ air-borne sound wave velocity calculated value
The air-borne sound wave velocity is calculated as follows:
T=22.0 among the formula ⑵
Figure 520330DEST_PATH_IMAGE001
, then calculate =344.5m/s.
⑶ the error of air-borne sound wave velocity
Air-borne sound wave velocity measured value With air-borne sound wave velocity calculated value Between relative error
Figure 421716DEST_PATH_IMAGE006
Be calculated as follows:
Figure 458068DEST_PATH_IMAGE007
Through type ⑶ calculates
Figure 633834DEST_PATH_IMAGE006
=0.058%.Meet the demands.
Above-described example only is used to illustrate technological thought of the present utility model and characteristics, its purpose is to make those skilled in the art can understand content of the present utility model and implements according to this, can not only limit claim of the present utility model with this example, be equal variation or the modification that spirit that all the utility model disclose is done, still drop in the claim of the present utility model.

Claims (8)

1. caliberating device that is used to demarcate the engineering seismograph time difference method, it is characterized in that, comprise a plurality of wave detector support ⑴, a focus support ⑵, be placed in many wave detector ⑷ on a plurality of wave detector support ⑴, be placed in the iron plate ⑻ of the excite sound waves on the focus support ⑵, iron hammer ⑸, make many wave detectors (4) polycore cable ⑹ in parallel, iron hammer ⑸ and polycore cable ⑹ are connected on the seismograph to be calibrated (3), the iron plate ⑻ that is placed in many wave detector ⑷ on a plurality of wave detector support ⑴ and is placed on the focus support ⑵ is positioned at sustained height, on the unidirectional straight line, iron plate (6) plane is perpendicular to the orientation of wave detector (4).
2. the caliberating device that is used to demarcate the engineering seismograph time difference method according to claim 1, it is characterized in that, described wave detector support ⑴ comprise base (11), perpendicular to the vertical rack (12) of base, be inserted in the adjustment height on support (12) top rule ⑼, be positioned at the horizontal hanging arm (13) on rule ⑼ top and be fixed on the erecting frame (7) of the installation wave detector ⑷ on the horizontal hanging arm (13).
3. the caliberating device that is used to demarcate the engineering seismograph time difference method according to claim 2 is characterized in that, the erecting frame (7) of described installation wave detector ⑷ is that opening is towards outer C jacket ring.
4. the caliberating device that is used to demarcate the engineering seismograph time difference method according to claim 1, it is characterized in that, described focus support ⑵ comprise base (21), perpendicular to the vertical rack (22) of base, be inserted in the adjustment height on support (22) top rule (29), be positioned at the horizontal hanging arm (23) on rule (29) top, described iron plate ⑻ is circular or square, is installed on the horizontal hanging arm (23).
5. the caliberating device that is used to demarcate the engineering seismograph time difference method according to claim 1 is characterized in that, the number of described wave detector support ⑴ is identical with the road number of seismograph (3) to be calibrated.
6. the caliberating device that is used to demarcate the engineering seismograph time difference method according to claim 5 is characterized in that, the number of described wave detector support ⑴ is 6,12,24,48 or 96.
7. the caliberating device that is used to demarcate the engineering seismograph time difference method according to claim 1, it is characterized in that, distance between described two adjacent wave detector support ⑴ is 0.3m ~ 1.0m, and the distance that focus support ⑵ goes up between the adjacent wave detector of iron plate central point distance also is 0.3m ~ 1.0m.
8. the caliberating device that is used to demarcate the engineering seismograph time difference method according to claim 7, it is characterized in that, distance between described two adjacent wave detector support ⑴ is 0.5m, and the distance that focus support ⑵ goes up between the adjacent wave detector of iron plate central point distance is 0.5 meter.
CN2011201584971U 2011-05-18 2011-05-18 Calibration device for calibrating time measurement precision of engineering seismograph Expired - Lifetime CN202057813U (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102298165A (en) * 2011-05-18 2011-12-28 中水北方勘测设计研究有限责任公司 Calibration apparatus used for calibrating engineering seismograph time measuring precision and calibration method thereof

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102298165A (en) * 2011-05-18 2011-12-28 中水北方勘测设计研究有限责任公司 Calibration apparatus used for calibrating engineering seismograph time measuring precision and calibration method thereof
CN102298165B (en) * 2011-05-18 2013-03-13 中水北方勘测设计研究有限责任公司 Calibration apparatus used for calibrating engineering seismograph time measuring precision and calibration method thereof

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