AU643627B2 - Flexural pivot bearing - Google Patents

Flexural pivot bearing Download PDF

Info

Publication number
AU643627B2
AU643627B2 AU20914/92A AU2091492A AU643627B2 AU 643627 B2 AU643627 B2 AU 643627B2 AU 20914/92 A AU20914/92 A AU 20914/92A AU 2091492 A AU2091492 A AU 2091492A AU 643627 B2 AU643627 B2 AU 643627B2
Authority
AU
Australia
Prior art keywords
web
members
bar
pivot bearing
faces
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired
Application number
AU20914/92A
Other versions
AU2091492A (en
Inventor
Michael Joslin Buckingham
Frank Joachim Van Kann
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
WESTERN AUSTRALIA THE, University of
Rio Tinto Mining and Exploration Ltd
Original Assignee
University of Western Australia
RTZ Mining and Exploration Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by University of Western Australia, RTZ Mining and Exploration Ltd filed Critical University of Western Australia
Priority to AU20914/92A priority Critical patent/AU643627B2/en
Publication of AU2091492A publication Critical patent/AU2091492A/en
Application granted granted Critical
Publication of AU643627B2 publication Critical patent/AU643627B2/en
Anticipated expiration legal-status Critical
Expired legal-status Critical Current

Links

Landscapes

  • Containers, Films, And Cooling For Superconductive Devices (AREA)

Description

643627 Regulation 3.2
AUSTRALIA
Patents Act 1952 COMPLETE SPECIFICATION FOR A STANDARD PATENT
(ORIGINAL)
o r Name of Applicant: Actual Inventor(s): THE UNIVERSITY OF WESTERN AUSTRALIA and RTZ MINING AND EXPLORATION LTD VAN KANN, Frank Joachim BUCKINGHAM, Michael Joslin DAVIES COLLISON CAVE, Patent Attorneys, 1 Little Collins Street, Melbourne, 3000.
r Address for Service: Invention Title: Flexural Pivot Bearing The following statement is a full description of this invention, including the best method of performing it known to me/us: 1 9208 10,gindaL 126,rtletI la- FLEXURAL PIVOT BEARING This invention relates to a novel flexural pivot bearing which has particular, though certainly not exclusive, application to gravity gradiometry.
The gravimeter is widely employed in geological surveying to measure the first derivatives of the earth's gravitational potential function the gravity field.
Because of the difficulty in distinguishing spatial variations of gravity from temporal fluctuations of the accelerations of a moving vehicle, these measurements can be made to sufficient precision for useful exploration only with land-based stationary instruments. This difficulty is in principle avoided by measurement of the 15 second derivatives of the potential gravity gradients but only limited success has been met to date in developing a satisfactory gradiometer instrument.
*Gravity gradiometry is thought especially appropriate to the location of geological structures bearing hydrocarbons, to geological mapping, and to locating high density sulphides and iron ore) and low density potash) mineral deposits.
Although it is not strictly correct to talk about the gradient of gravity, usage of the term has been 25 universally adopted and will be used herein also. More formally, the second derivatives of the gravitational potential are termed gradients of gravity and constitute the gravity gradient tensor with components gy adopting the convention of taking the Z-axis parallel to the local vertical. There are nine such components, only five of which are independent since the tensor is apparently symmetric and the potential is a scalar field obeying Laplace's equation.
The key elements of a gravity gradiometer are a pair of substantially identical spaced masses and the object is to measure differences between the gravitational force on the respective masses. Effectiveness requires 920807,gjnspe.009tzdiv.spe,I -2measurements of this difference when it approaches only one part in 1012 of normal gravity. Approaches to measuring gravity gradients have thus far fallen into two broad classes. The first of These entails differential modulation of a signal or parameter by the difference between the gravitationally induced accelerations of the two masses. The second technique involves direct measurement of the net gravitational acceleration of one mass relative to the other.
British patent publication 2022243 by Standard Oil Company discloses a gravity gradiometer in the first class. An element, described in the patent publication as a mass dipole but more properly termed a mass quadrupole, is mounted coaxially on one end of a 15 photoelastic modulator element positioned in the cavity of a ring laser tube to differentially modulate circular .polarization modes in response to application of a S torque. In a preferred form, two mass quadrupoles are mounted on opposite ends of the modulator element to balance rotational acceleration noise. A closely related development by the same inventor, Lautzenhiser, described in U.S. patent 4255969, employs actual mass dipoles in conjunction with respective photoelastic modulator elements.
25 Another modulation technique involves rotating a platform which is supporting suitable arrangements of mass pairs. Various instruments of this kind are summarised by Jekeli at 69 EOS (No. One of these, by Metzger, has been further developed and consists of electronically matched pairs of accelerometers on a rotating platform. The platform modulates the sum of opposing acceleration signals with a frequency twice its rotational frequency. These modulation systems call for extremely exacting uniformity in the rotation Lwi require the use of bearing, rotational drive and monitoring technology which is not yet of a standard to render the instruments practicably suitable on an appropriate scale 920807,gjnspe.009,rdiv.pe,2 -3for airborne or moving land-based measurements for geophysical resource exploration, as opposed to georetic surveying. The alternative of directly measuring gravity gradient components necessitates a very high degree of electronic, magnetic, thermal and vibration isolation to achieve the measurement accuracy needed. Machines thus far have had poor spatial resolution and a high noise level.
An instrument for measuring the diagonal components gxx, gyy and of the gravitational gradient tensor is described by van Kann et al in the publication IEEE Trans. Magn. MAG 21, 610 (1985) and further elaborated in the NERDDP End-Of-Grant Report (1986) on project no.
738. This instrument consists of a pair of accelerometers mounted with their sensitive axes in line.
The difference in displacement of the accelerometers is proportional to the component of the given tensor gradient and is sensed by the modulated inductance of a proximate superconducting coil.
The term "superconducting" is used herein, according to the normal convention, to denote a material which at least is superconducting below a characteristic critical temperature. A suitable such material is niobium, which has a critical temperature of about 9K.
25 Parent patent application 627820 (48185/90) discloses a gradiometer incorporating a mass quadrupole.
The pivotal flexural mounting for the mass quadrupole body may comprise a flexure bearing such as the commercially available Bendix pivot. It has been found, however, that this bearing is less than wholly satisfactory as it is constructed of several different metals secured together and this creates significant problems due to different thermal expansion coefficients and other parameter variations which become critical at the kind of accuracy desired in the present context.
The present invention therefore provides a flexural pivot bearing which is suitable as the aforementioned 920810,gjnspe.009,rtzdiv.sp,3 -4mounting but which also has wider application. More particularly, the flexural pivot bearing of the invention includes a pair of members with opposed close-spaced faces. These faces are joined by a web, of microscopic thickness, in a plane intersecting the faces. The members and the web are comprised of an integral body of substantially uniform material, and the members are adapted for pivoted mutual flexure about a pivot axis aligned along said web.
The bearing is preferably cut from a single mass of a superconducting material such as niobium.
The two members of the bearing may be a generally annular body and a second body within the annular body.
The invention will now be described in greater detail, by way of example only, with reference to the accompanying drawings in which: FIG 1 is a diagrammatic axial cross-section of a gravity gradiometer assembly supported on a gimballed mounting within a vacuum can for rotationally stabilised cryogenic operation; FIG 2 is an enlargement of part of FIG 1, showing the gradiometer assembly at actual size; FIG 3 is a cross-section on the line 3-3 in FIG 2; FIG 4 is an enlargement (5X magnification) of the 25 flexural pivot bearing by which each of the mutually orthogonal mass quadrupole bars is supported in the gradiometer assembly and which comprises an embodiment of the invention; FIG 5A is a still greater enlargement magnification) of the bearing in the region of the web; FIG 5B is a view similar to FIG 5A of an alternative pivot bearing according to another embodiment of the invention; FIG 6 is a more detailed axial cross-section of one of the coil/coil holder assemblies; FIG 7 and 8 are respective end elevations of the assembly shown in FIC 6; and 920807,gjnspe.009,rtzdiv.spe,4 FIG 9 is a schematic of the superconducting circuit for the gradiometer.
The illustrated apparatus 10 includes a gradiometer assembly 12 supported by a biaxial or triaxial gimballed suspension 14 within a vacuum can 16. Apparatus 10 forms a dewar probe which may be suspended inside a dewar (not shown) and immersed therein in liquid helium. The can 16 provides an evacuable enclosure which can thereby be maintained at or near liquid helium temperature for cryogenic operation of gradiometer assembly 12. A thermal shield 17 may be fitted about the gradiometer assembly to reduce radiative and gas conductive heat transfer between the gradiometer assembly and the vacuum can. The entire equipment including the dewar is readily capable of being 15 mounted in an aircraft or other moving vehicle.
S• Gradiometer assembly 12 in fact includes two substantially identical gradiometers, 20, 20' oriented to measure 9 xy and gy, components of the gravitational gradient tensor. The gradiometers 20, 20' are bolted above and below a central box structure 40 and each includes a pair of rectangular box enclosures 22, 23 e.g.
of niobium, arranged one inside the other and outer niobium side plates 60 forming a surrounding shield from electromagnetic radiation. Enclosures 22, 23 are 25 typically niobium and provide two further levels of allround electromagnetic shielding.
A solid bar 25 of superconducting material such as niobium is mounted on a bearing 21 within the inner enclosure 23 for fine pivotal flexure as a mass quadrupole about an axis 8 passing substantially through the centre of mass of the bar. The axes o' J1uxure of the two bars 25, 25' are coincident and the b&rs extend in horizontal planes, mutually orthogonally in the x and y directions. The provision of a pair of orthogonal quadrupole bars permits net elimination of common mode rotational accelerations rotational noise at each bar. The gradiometers can, of course, be oriented 920807,gjnspc.009,rtzdiv.spe,5 differently depending on the gradient components of interest.
Each gradiometer 20, 20' further includes an array of superconducting coils 30 which are mounted on holders 70 in turn supported by the outer enclosure 22. Coils are positioned in close proximity to quadrupole bar The dewar (not shown) would typically consist of an outer vacuum container, about 450 mm in diameter and 1.3 m high, and a 300 mm diameter inner well suspended from the mouth in the top of the outer shell by a fibreglass neck tube. The space between the inner well and the outer shell is permanently evacuated and typically fitted with thermal radiation shields surrounded by numerous layers of aluminised mylar 15 superinsulation. Vacuum can 16 is supported within the dewar from an aluminium top plate which is attached to the mouth of the dewar. The top plate and vacuum can are joined by a neck tube 13 through which the vacuum can is evacuated, for example, down to the range of 10-8 to 10-1 0 Torr. Gimballed suspension 14 is attached to a S. rigid 25 mm thick aluminium plate 15 which is bolted to the bottom flange 15a of the neck tube and also forms a lid for can 16.
Gimballed suspension 14 consists of three gimbal 25 rings 43, 44, 45 mounted on flexural pivots (not detailed) such as Bendix crossed-web pivots. Suspension 14 provides a triaxial rotational isolation for •gradiometer assembly 12 and further incorporates respective fibre optic rotation sensors (not shown) for the x and y axes and associated superconducting electromechanical diamagnetic actuators for active stabilisation in a servo circuit controlled by the rotation sensors.
Instead of fibre optic rotation sensors, an optical remote sensing arrangement may be employed, permitting the stabilisation to be physically separated and enable the utilisation of a room temperature gyroscope. In this arrangement (not shown), a collimated beam of light from 920807,gjnspL.009,rtzdiV.spe,6 -7a laser or luminescent diode attached rigidly to a room temperature gyroscopic inertial reference system is reflected by a plane mirror attached rigidly to the gradiometer assembly. Rotation of the gradiometer assembly about any axis orthogonal to the ght beam can then be sensed by measurement of the angle between the incident and reflected beams. This is accomplished by means of a position sensitive photo-detector mounted rigidly to the light source with its planar sensing surface normal to the beam "he detector actually measures the x and y coordinates of the position of the spot of light from the reflected beam and this is used to monitor the relative orientation of the gradiometer assembly. Isolation against mechanical vibration, is not 15 illustrated but may be provided in established ways.
Vibrations travelling along the external instrumentation leads to the dewar may be intercepted by the attachment of all cables near their mid-point to a massive lead block, itself suspended on a soft spring.
Each gradiometer 20, 20' is substantially identical and it is therefore now proposed to detail only the construction of gradiometer 20, with particular reference to Figures 2 and 3. As already mentioned, enclosures 22, 23 are of rectangular box-like configuration each made up 25 of an assembly of top, bottom, side and end plates. Inner enclosure 23 is a close fit within outer enclosure 22 but arranged to be slid in and out on removal of the bottom plate of outer enclosure 22. The inner enclosure is provided with multiple circular openings 24 which respectively receive coil holders 70, and on its bottom plate 23a, with a bush 26 for the flexure bearing 21 that supports bar Flexure bearing 21 is detailed in enlarged Figures 4 and 5A, 5B and is formed by electric discharge machining (EDM) an almost continuous cut 27 through bar 25 parallel to axis 8, save for a microscopically thin web 29 extending the width of the bar along axis 8 at the centre 920807,gjnspe.009,rtzdiv.spe,7 -8of mass of the bar. In the example of Figure 5A cut 27 defines a 2700 part-cylindrical core 28 provided with three tapped holes 28a at one end for attachment of the core to bush 26. The core may of course be supported at both ends, if desired or necessary.
Further tapped holes (not shown) are provided in the bar to contain small screws whose position can be moved to partly achieve mass balance of the bar about axis 8.
The radial portions 27a of cut 27 are deviated at their inner ends into right angle segments 27b which are aligned and separated by web 29. To either side of the web, the cut is bulged slightly at either side at 27c to lengthen the web and reduce its stiffness when acting as a pivot. Web 29 defines a micro-pivot some 0.030 mm 15 thick, 0.200 mm long and 30 mm "wide", the width of bar 25. Figure 5B shows an alternative cut to Figure It will be appreciated in particular from Figures 4 0 and 5A, 5B that core 28 and the adjacent inwardly projecting land 31 define a pair of members with opposed close-spaced regions 28b, 31b or 28b, 31b joined by web 29 in a plane extending the width of the bar. These members are adapted for pivotal mutual flexure about a pivot axis aligned along web 29. It will also be noted that members 28, 31 and the web are comprised of an 25 integral body of substantially uniform material, in this case niobium. More particularly, the quadrupole bar 25 is capable of fine pivotal flexure on micro-pivot web 29 between angular limits determined by contact between the opposed faces of the radial portions 27a of cut 27. This angular limit is about 3 degrees and in any event is about the amount which would give rise to inelastic deformation of the web.
The dimensions of bar 25 are selected as 30.00 mm square by 90.0 mm long, thereby producing a gradient sensor with a natural frequency of about 1 Hz in which the sensitivity to accelerations via elastic deformations of the bar and pivot web 29 are made relatively small.
920807,gjnspe,0G9,rtiv.spe,8 The mounting of each superconducting coil 30 is best seen in Figures 6 to 8. Each holder 70, a machined piece of niobium, is of circular cross-section and has an outer peripheral retaining flange 72. The holder further has a co-axial inner recess 71 for a fibreglass coil former 74.
The coil 30 is a pancake coil, a flat spiral wound on the exposed surface of former 74 and held in place by epoxy. The wire 80, necessarily superconducting and conveniently niobium with formvar insulation, enters the centre of the spiral via a diagonal entrance hole 76 in former 74, circulates the former several times and exits through a channel in the former. Holes 75 in former 74 are for temporarily clamping the assembly during winding.
Both wire ends pass through a hole 78 in holder 70 and then along various channels (not shown) machined in the outer faces enclosure 22 and through holes into enclosure S. Holders 70 are held in place in registered apertures 24 in the enclosures and are covered by one of the shield 20 plates 60, secured in place on the outer enclosure 22 by screws 73 or the like. Plates 60, of which there are four on the sides of each enclosure 22, shield the wires which run from coils 30 to enclosure 40. The inner end of each coil is substantially co-planar with the inner face 25 of the inner enclosure 23, in close proximity to a face of the bar The coils 30 are disposed with their axes in a common horizontal plane, three along each side and one at each end of the quadrupole bar. The side coils are arranged in opposed coaxial pairs, one pair with its axis co-planar with axis 8 and the others towards each end of quadrupole bar 25. The end coils 30a, 30b on one side are utilised as push coils for diamagnetically applying a rotational force to, and augmenting the torsional stiffness of, the superconducting bar in the respective rotational directions about axis 8. The two opposite coils 30c, 30d on the other side are utilised for 920807,gjnse,09,rtzdiv.spe,9 responding by modulation of their inductance to pivotal flexure of bar 25 arising from a gravitational gradient across the bar, the respective coils responding to flexure in the respective rotational directions about axis 8. The remaining four coils are also employed as sense coils, but for detecting translational movement of the bar in the x and y directions. The coils are substantially identical and may therefore be interchangeably employed as either push coils or sense coils, or both.
The push coils are required to provide feedback damping and to fine-tune the torsional resonant frequencies of the quadrupole bars to precisely match their response to common mode angular accelerations about 15 the axis 8.
It will be appreciated that quadrupole bars eo strictly need not be formed in solid superconducting material such as niobiam, so long as they include superconducting material for interaction with coils For example, each bar may be an aluminium mass lined with or treated to contain niobium at those parts of its surface which face the operational coils.
The eight coils of each set are wired in superconducting circuits as schematically depicted in 25 Figure 9 and detailed remarks concerning these circuits are set out hereinafter.
The superconducting wires 80 from the coils are fed .through machined channels in enclosure 22 to a superconducting joint interface 41 within enclosure The various required transformers are also housed within enclosure Further leads from this interface traverse feedthroughs 46 to the exterior of the assembly. The push coils are operated by employing heat switches to enable the insertion of controlled persistent currents while the means to detect inductance changes in the sense coils comprises one or more cryogenic SQUIDs (Superconducting 920801gjnspe009,rtdiv.spe,10 -11 Qu .turm Interference Devices) to sense differential motion. The heat switches and SQUIDs are housed within vacuum can 16. The switches and current source are typically under computer control.
As the SQUID sensing system is very sensitive to extremely small changes in magnetic flux, all leads and components are shielded by closed superconducting shields, of fine niobium tubing. External fields are exponentially attenuated as they enter the enclosure provided by the shields: the geometry of the tubing is designed so that the earth's ambient magnetic field produces less than one flux quantum inside the shield.
The illustrated apparatus, operated cryogenically, is capable of measuring angular displacements of the S15 order of 10- 12 radians. It will be understood that materials other than niobium may be employed in the construction of the illustrated assembly. It is preferred ,owever that the materials chosen have similar coefficients of thermal expansion, and that at least wirns, wire shields and bar surfaces are formed in superconducting material. The enclosures, for good temperature control are desirably made in a iaterial which is a good conductor of heat to minimise temperature gradients across the gradiometer. The preferred material 25 for the gradiometer body (bars, enclosures, shields) is niobium.
The preferred circuitry for the gradiometer consists of five circuits of three different types. These are the MAIN READOUT (Figure 9A), the ACCELERATION MONITOR CIRCUITS (Figure 9B) and the PUSH CIRCUITS (Figure 9C).
There are two acceleration monitor circuits, for measuring accelerations in the x and y directions, and two push circuits, for the respective bars 25, Before describing the three circuit types some general notes are appropriate: 1. The apparatus can, in principle, be oriented to measure any of the off-diagonal components of the gravity 920P07gjnspe.009,rtzdiv.spe,I -12gradient tensor. Throughout the drawings, the figures all show a grad 4 ometer with the z axis parallel to the vertical. Figure 3, which shows the x axis parallel to the long axis of the bar, is the cross section of the lower coil enclosure as shown in Figure 2. That is, the x axis is parallel with the long axis of the bottom quadrupole bar 25 and the y axis is parallel with that of the top bar 2. In the circuits, the pancake coils used for sensing a superconducting surface of a bar are labelled according to their usage. Thus, PUSH 1 and PUSH 2 are push coils, X and Y are acceleration sense coils and 9+ and 8- are rotation sense coils.
3. The circuits consist of several elements. The output of each circuit is from a SQUID whose input is coupled to the rest of its circuit by means of a shielded toroidal air-cored transformer. Hence there are five .SQUIDS, one for each circuit.
4. The inductors are of two types: toroidal or flat spiral (pancake). All the coils which face a quadrupole bar surface are pancake coils. The remainder of the inductors are toroidal.
In the illustrated instrument, a "heat switch" consists of a heater in close thermal contact with a thin 25 superconducting tube which contains a loop of superconducting wire in good thermal contact with the tube but electrically insulated from it. The tube S• provides electromagnetic shielding for the loop which is a part of superconducting circuit. By activating the heater, a part of the loop may be heated to a temperature above its superconducting transition temperature. This non-superconducting part then becomes an electrical resistor which will dissipate any current passing through the loop and will allow the injection of a new current via the pump leads.
In general, the design of heat switch may be refined or replaced by some other method which allows the 920807,gjnspe.009,'tzdivspe,12 13dissipation and injection of currents in the superconducting circuits.
Although in principle, a gravity gradiometer is intrinsically insensitive to linear accelerations, in practice these accelerations may have an effect because of limitations in the achievable common mode acceleration rejection ratio and because of second order effects induced by elastic deformations of the micropivot web 29 and quadrupole bar 25, 25'. Consequently, accelerometers are required for the measureme it of accelerations so that the acceleration effects may be appropriately subtracted from the gradient signal and so that the accelerations may be recorded for any subsequent analysis of the data.
The motion of the quadrupole bar 25 or 25' as a result of the aforementioned elastic deformations may be used as an accelerometer, or separate accelerometers may 9*9* be mounted on board the gradiometer package to perform .this function. In any case, two accelerometers are used, each measuring the linear accelerations parallel to the long axis of a quadrupole bar. These are labelled X and Y according to the directions of these axes. The two acceleration monitor circuits (a representative one of which is shown in Figure 9B), also labelled X and Y, simply perform the function of providing acceleration 25 data for recording.
The two push circuits (one for each bar) are identical and only one is therefore shown in Figure 9C.
9999* 1 The following description for one applies equally to the other.
The push circuit loop carries a persistent current which can be adjusted and stored. The resulting magnetic flux in the loop means that the push coils act as magnetic springs thereby increasing the mechanical torsional resonant frequency of the quadrupole bar. This technique is used to match the torsional resonant frequencies of the two bars. The rejection of angular accelerations about the z axis depends on how well these 920807,gjnpe.009,rtzdiv.spe 13 -14frequencies are matched. Modulations of the current will result due to angular motion of the bar and these are sensed by coupling the push loop to a SQUID. This output can be used in feedback to servo control angular accelerations about the z axis.
The main readout circuit depicted in Figure 9A performs the function of combining the angular information from each of the responders together with the x and y acceleration information to provide a temperature compensated output signal proportional to the gravity gradient. There are five loops, in each of which the magnetic flux can be independently set and then locked.
These are: the 6 loop for the top bar, the 6 loop for the bottot bar; the X acceleration loop (bottom bar); the Y S* 15 acceleration loop (top bar); and finally a temperature sensing loop, into which the SQUID input transformer is coupled. Flux in the X,Y loops is trimmed so that the SQUID output is independent of these two accelerations.
Similarly the flux in each of the twc loops is set to 20 cancel the effects of rotational acceleration about the z-axis. The temperature loop flux is adjusted to make a first order cancellation of small temperature inhomogeneities in the gradiometer.
S..
*r 920807,gjnspe.009,rtdiv.spe,14

Claims (4)

1. A flexural pivot bearing comprising a pair of members with opposed close-spaced faces, which faces are joined by a web, of microscopic thickness, in a plane intersecting the faces, wherein said members and said web are comprised of an integral body of substantially uniform smatrial, and said members are adapted for pivoted mutual flexure about a pivot axis aligned along said web.
2. A ilexural pivot bearing according to claim 1, wherein said bearing is cut from a single mass of a superconducting material. te:
3. A flexural pivot bearing according to claim 1 or 2,
4*SS wherein said two members of the bearing are a generally C. annular body and a second body within the an-.ular body. 20 4. A flexural pivot bearing substantially as Shereinbefore described with reference to Figures 4, and 5B of the accompanying drawings. Dated this 10th day of August, 1992 25 THE UNIVERSITY OF WESTERN AUSTRALIA and RTZ MINING AND EXPLORATION LTD s By their Patent Attorneys Davies Collison Cave 920807,gjnspc.09,rtziv.;pe, 16 ABSTRACT A flexural pivot bearing includes a pair of members with opposed close-spaced faces which are joined by a web of microscopic thickness, in a plane intersecting the faces. These members and the web are comprised of an integral body (27) of substantially uniform material, and the members are adapted for pivoted mutual flexure about a pivot axis aligned along the web. *r 920810&jnspe.009rtzdv.spC, 16
AU20914/92A 1988-12-20 1992-08-10 Flexural pivot bearing Expired AU643627B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU20914/92A AU643627B2 (en) 1988-12-20 1992-08-10 Flexural pivot bearing

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
AUPJ2034 1988-12-20
AU20914/92A AU643627B2 (en) 1988-12-20 1992-08-10 Flexural pivot bearing

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
AU48185/90A Division AU627820B2 (en) 1988-12-20 1989-12-20 Gravity gradiometer

Publications (2)

Publication Number Publication Date
AU2091492A AU2091492A (en) 1992-10-15
AU643627B2 true AU643627B2 (en) 1993-11-18

Family

ID=3710205

Family Applications (1)

Application Number Title Priority Date Filing Date
AU20914/92A Expired AU643627B2 (en) 1988-12-20 1992-08-10 Flexural pivot bearing

Country Status (1)

Country Link
AU (1) AU643627B2 (en)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113016728B (en) * 2021-02-04 2023-01-13 张晓霞 Easily-operated separation device capable of positioning lead block of shrimp cage

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3564921A (en) * 1968-02-02 1971-02-23 Hughes Aircraft Co Torsionally resonant gravity gradient sensor
US4841772A (en) * 1987-12-03 1989-06-27 University Of Maryland, College Park Three-axis superconducting gravity gradiometer
US4953834A (en) * 1987-01-20 1990-09-04 Litef Gmbh Pendulum with bending spring joint

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3564921A (en) * 1968-02-02 1971-02-23 Hughes Aircraft Co Torsionally resonant gravity gradient sensor
US4953834A (en) * 1987-01-20 1990-09-04 Litef Gmbh Pendulum with bending spring joint
US4841772A (en) * 1987-12-03 1989-06-27 University Of Maryland, College Park Three-axis superconducting gravity gradiometer

Also Published As

Publication number Publication date
AU2091492A (en) 1992-10-15

Similar Documents

Publication Publication Date Title
US5804722A (en) Gravity gradiometer
US5505555A (en) Flexural pivot bearing
EP0451171B1 (en) Gravity gradiometer
Moody et al. Three-axis superconducting gravity gradiometer for sensitive gravity experiments
US4841772A (en) Three-axis superconducting gravity gradiometer
US7975544B2 (en) Gravity gradiometer
CA2612860C (en) Gravity gradiometer
JP4212125B2 (en) Guaranteed mass support system
Tariq et al. The linear variable differential transformer (LVDT) position sensor for gravitational wave interferometer low-frequency controls
US6494091B2 (en) Apparatus for measuring a gravitational attraction of the earth
US8789415B2 (en) Gravity gradiometer
Foley et al. Geophysical exploration using magnetic gradiometry based on HTS SQUIDs
CA2465994C (en) Apparatus for the measurement of gravitational gradients
US6079267A (en) Method and apparatus for measuring gravitational acceleration utilizing a high temperature superconducting bearing
AU643627B2 (en) Flexural pivot bearing
CA2259044C (en) Flexural pivot bearing
JP2877507B2 (en) Gravity gradiometer
Dittus et al. A new experimental baseline for testing the weak equivalence principle at the Bremen drop tower
Kim et al. Development of SQUID detection technology for a superconducting gravimeter
En A transportable high-precision absolute atomic gravimeter
Parke Null test of the gravitational inverse square law and the development of a superconducting six-axis accelerometer
RU2043644C1 (en) Gravity gradiometer
Moody et al. Preliminary tests of a newly developed superconducting gravity gradiometer
Canavan et al. Low temperature performance of a superconducting angular accelerometer
RU2049338C1 (en) Superconducting high-temperature accelerometer