CN108362439A - A kind of standardized centroid exemplar centroid position two-dimentional measuring device and measurement method - Google Patents

A kind of standardized centroid exemplar centroid position two-dimentional measuring device and measurement method Download PDF

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CN108362439A
CN108362439A CN201711101470.7A CN201711101470A CN108362439A CN 108362439 A CN108362439 A CN 108362439A CN 201711101470 A CN201711101470 A CN 201711101470A CN 108362439 A CN108362439 A CN 108362439A
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girder
exemplar
centroid
fulcrum pivot
counterweight
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CN108362439B (en
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张泽光
李楠
马晓苏
骆旭
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Beijing Changcheng Institute of Metrology and Measurement AVIC
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Beijing Changcheng Institute of Metrology and Measurement AVIC
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M1/00Testing static or dynamic balance of machines or structures
    • G01M1/12Static balancing; Determining position of centre of gravity
    • G01M1/122Determining position of centre of gravity

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  • Aviation & Aerospace Engineering (AREA)
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Abstract

The invention belongs to centroid measurement technology, it is related to a kind of standardized centroid exemplar centroid position two-dimentional measuring device and measurement method.The measuring device of the present invention include girder (1), 4 hold the column (2) of elevating mechanism, 4 sensors (3), 4 trim counterweight components (4), 2 V-blocks (5), 4 day pingbian knives (6), 4 fulcrum pivots (7) with knife, 4 fulcrum pivot boxes (10), 4 fulcrum pivots hold (11) and leveling base (9).The present invention measuring process be:Establish three-dimensional system of coordinate;Load;X-direction load measures;Calculate coordinate Δ L of the barycenter in X-direction of standardized centroid exemplar1;Y-direction load measures;Calculate the coordinate Δ L of the barycenter of standardized centroid exemplar in the Y direction2;Z-direction load measures;Calculate coordinate Δ L of the barycenter in Z-direction of standardized centroid exemplar3.The present invention is not necessarily to dismantle weighing sensor or load cell in periodic calibration, avoids because disassembling operations cause its position that can change;The contact surface for improving weighing sensor or load cell facilitates the position for determining its practical supporting point, improves accuracy of measurement.

Description

A kind of standardized centroid exemplar centroid position two-dimentional measuring device and measurement method
Technical field
The invention belongs to centroid measurement technology, it is related to a kind of standardized centroid exemplar centroid position two-dimentional measuring device and measurement Method.
Background technology
The measurement of barycenter is ubiquitous, such as the barycenter parameter such as aviation field advanced aircraft, airborne missile, engine It is accurate measure directly influence the gesture stability of aircraft, the hit rate of MISSILE LAUNCHING and transmitting after aspect, engine Vibration etc..The country's higher centroid measurement equipment of measurement accuracy is mostly based on multi-point support method at present, and the calibration method of use is more It traces to the source for a point parameter, wherein weighing sensor or force snesor pass through inspection after dismounting;The dimensional measurement part of measuring device Field calibration is carried out by using dimensional measurement instrument.Such point of parameter is traced to the source insufficient in the presence of several points:First, weighing sensor Or load cell needs to dismantle in periodic calibration, is reinstalled after periodic calibration, causes its position that can change; Secondly, the contact surface of weighing sensor or load cell is spherical surface, and the position of practical supporting point is difficult to determine, limits it Accuracy of measurement.
Invention content
The purpose of the present invention is:It is proposed a kind of standardized centroid exemplar centroid position two-dimentional measuring device and measurement method, nothing Weighing sensor or load cell need to be dismantled in periodic calibration, avoid causing its position that can change because of disassembling operations; The contact surface for improving weighing sensor or load cell facilitates the position for determining its practical supporting point, improves accuracy of measurement.
The technical scheme is that:A kind of standardized centroid exemplar centroid position two-dimentional measuring device, it is characterised in that:It 2,4, the column V-block 5,4 of trim counterweight component 4,2 of sensor 3,4 of elevating mechanism is held with knife including girder 1,4 6,4, its pingbian knife, 10,4 fulcrum pivots of fulcrum pivot box of fulcrum pivot 7,4 hold 11 and leveling base 9;
Leveling base 9 is a platform for carrying leveling lower margin;Described 4 columns 2 that elevating mechanism is held with knife are distributed in The midpoint of one rectangle four edges, 2 bottom end of column that elevating mechanism is each held with knife are fixed by screws in the leveling bottom On seat 9, the top that the column 2 of elevating mechanism is each held with knife is fixed there are one native prefix component, and 11 are held for fixed pivot knife, The fulcrum pivot holds 11 and is fixed on adhesive in the groove of native prefix component, and 4 fulcrum pivots hold 11 and handed over for conllinear cross two-by-two Fork;
The girder 1, which is one, has cuboid shape, the open box of upper port, in 1 four side walls of girder Respectively there are one side knives 6 for middle and upper part, and a trim is hung by being bonded in the lifting lug at the top of trim counterweight component on each side knife 6 Counterweight component 4;
There are one knife boxes 10 below the middle and upper parts of 1 four side walls of girder, side knife 6, in knife box 10 there are one Fulcrum pivot 7, each fulcrum pivot 7 with it is corresponding with knife hold the fulcrum pivot on the column 2 of elevating mechanism and hold 11 match;
On the side of each column 2 for holding elevating mechanism with knife, towards the position of girder 1, there are one horizontal step surfaces 2a, four step surface 2a are coplanar;When knife, which holds elevating mechanism, is in unloading position, fulcrum pivot holds 11 sinkings, under 1 cassette bottom of girder Surface is bonded with step surface 2a, and fulcrum pivot holds 11 and is in discrete state with fulcrum pivot 7;It is in load position when knife holds elevating mechanism When setting, fulcrum pivot holds 11 risings, and bottom surface and the step surface 2a of girder 1 are detached from, and fulcrum pivot holds 11 and is in contact shape with fulcrum pivot 7 State;
The blade of the fulcrum pivot 7 of both sides is located at the vertical centre of girder 1 in the width direction and divides face equally girder 1 along its length Interior, the blade of the fulcrum pivot 7 of both sides is located at the vertical centre of girder 1 along its length and divides equally in face girder 1 in the width direction;It is main The blade of the fulcrum pivot 7 of both sides along its length of beam 1 is conllinear, and the blade of the fulcrum pivot 7 of both sides in the width direction of girder 1 is conllinear, The straight line where the blade of the fulcrum pivot 7 of both sides and girder 1 fulcrum pivot 7 of both sides in the width direction along its length of girder 1 Blade line orthogonal, which is known as blade orthogonal points;
The V-type on fixed two V-blocks 5 of upper surface 1 length direction of upper edge girder of 1 cassette bottom of girder, two V types blocks 5 The center of slot divides that face is coplanar equally, and the center of V-groove divides face and the vertical centre of girder 1 in the width direction equally, and to divide face equally coplanar, and two The equal length of the distance and standardized centroid exemplar of 5 outer end face of a V-block, two V-blocks 5 are relative to 1 cassette bottom upper surface of girder Center vertical line it is symmetrical, blade orthogonal points is located on the center vertical line of 1 cassette bottom upper surface of girder;
V-groove base angle=90 °~120 °, when standardized centroid exemplar is located in the V-groove of two V-blocks 5, standard matter The end face of heart exemplar and the outer end face of V-block 5 are coplanar;When knife, which holds elevating mechanism, is in loading position, standardized centroid exemplar Axis is located in following planes, which is straight line and girder of the girder 1 along its length where the blade of the fulcrum pivot 7 of both sides 1 in the width direction the fulcrum pivot 7 of both sides blade the plane that is determined of straight line;At this point, in the geometry of standardized centroid exemplar Heart point is located on the center vertical line of 1 cassette bottom upper surface of above-mentioned girder.
A kind of measurement method of standardized centroid exemplar centroid position, it is characterised in that:Use standard matter as described above The step of heart exemplar centroid position two-dimentional measuring device measures, measurement is as follows:
1, three-dimensional system of coordinate is established:Using above-mentioned blade orthogonal points as origin, with the fulcrum pivot of the both sides along its length of girder 1 Straight line where 7 blade is X-axis, and right is X-axis positive direction;With the blade institute of the fulcrum pivot 7 of both sides in the width direction of girder 1 Straight line be Y-axis, front be Y-axis positive direction;Determine that Z axis, top are Z axis positive direction according to right-hand rule;
2, it loads:Standardized centroid exemplar is placed in the V-groove of two V-blocks 5 on 1 bottom surface of girder, standardized centroid Exemplar end face and 5 outer end face of V-block are coplanar, then the geometric center point of standardized centroid exemplar is located on above-mentioned coordinate origin, Axis is overlapped with above-mentioned coordinate system X-axis;
3, X-direction load measures:The two-dimentional center mass measuring device for opening X-direction, makes 2, the column that elevating mechanism is held with knife In loading position, fulcrum pivot holds 11 and is in contact condition with fulcrum pivot 7, and the offset of girder 1 is measured by sensor 3, is passed through The gravitational moment for the torque compensation standardized centroid exemplar that trim counterweight 4 generates makes girder offset be 0;
4, coordinate Δ L of the barycenter in X-direction of standardized centroid exemplar is calculated1
Wherein, Δ L1:X-direction centroid position offset;W:Standardized centroid exemplar quality;m1:X on the right side of counterweight trimmer The quality of direction counterweight;m2:The quality of X-direction counterweight on the left of counterweight trimmer;L1:Measuring system crossbeam X-direction right arm is long; L2:Measuring system crossbeam X-direction left arm is long;
5, Y-direction load measures:The two-dimentional center mass measuring device for opening Y-direction, makes 2, the column that elevating mechanism is held with knife In loading position, fulcrum pivot holds 11 and is in contact condition with fulcrum pivot 7, and the offset of girder 1 is measured by sensor 3, is passed through The gravitational moment for the torque compensation standardized centroid exemplar that trim counterweight 4 generates makes girder offset be 0;
6, the coordinate Δ L of the barycenter of standardized centroid exemplar in the Y direction is calculated2
Wherein, Δ L2:Y-direction centroid position offset;W:Standardized centroid exemplar quality;m3:Counterweight trimmer Y-direction The quality of right side counterweight;m4:The quality of counterweight on the left of counterweight trimmer Y-direction;L3:Measuring system crossbeam Y-direction right arm is long; L4:Measuring system crossbeam Y-direction left arm is long;
7, Z-direction load measures:Standardized centroid exemplar is rotated by 90 ° along its axle center, at this point, the Z axis before rotation becomes revolving Y-axis after turning, it is new Y-axis to define postrotational Y-axis;The two-dimentional center mass measuring device for opening Y-direction makes band knife hold elevating mechanism Column 2 be located at loading position, fulcrum pivot holds 11 and be in contact condition with fulcrum pivot 7, passes through the inclined of the measurement girder 1 of sensor 3 The gravitational moment of shifting amount, the torque compensation standardized centroid exemplar generated by trim counterweight 4 makes girder offset be 0;
8, coordinate Δ L of the barycenter in Z-direction of standardized centroid exemplar is calculated3
Wherein, Δ L3:Z-direction centroid position offset;W:Standardized centroid exemplar quality;m5:Counterweight trimmer Z-direction The quality of right side counterweight;m6:The quality of counterweight on the left of counterweight trimmer Z-direction;L3:Measuring system crossbeam Z-direction right arm is long; L4:Measuring system crossbeam Z-direction left arm is long.
It is an advantage of the invention that:A kind of standardized centroid exemplar centroid position two-dimentional measuring device and measurement method are proposed, Without dismantling weighing sensor or load cell in periodic calibration, avoid because disassembling operations cause its position that can become Change;The contact surface for improving weighing sensor or load cell facilitates the position for determining its practical supporting point, improves survey Measure accuracy.
Description of the drawings
Fig. 1 is the structural schematic diagram of the present invention.In figure, direction is front in paper, and paper outside direction is rear, up and down side To constant.
Fig. 2 is the side view of Fig. 1.
Fig. 3 is the measuring principle schematic diagram of the present invention.
Specific implementation mode
The present invention is described in further details below.Referring to Fig. 1 to Fig. 2, a kind of standardized centroid exemplar centroid position two Tie up measuring device, it is characterised in that:It includes that 1,42,4, column sensor 3,4 that elevating mechanism is held with knife of girder is matched 6,4, day pingbian knife, 10,4 fulcrum pivots of fulcrum pivot box of fulcrum pivot 7,4 of V-block 5,4 of flat counterweight component 4,2 hold 11 and adjust Flat bed 9;
Leveling base 9 is a platform for carrying leveling lower margin;Described 4 columns 2 that elevating mechanism is held with knife are distributed in The midpoint of one rectangle four edges, 2 bottom end of column that elevating mechanism is each held with knife are fixed by screws in the leveling bottom On seat 9, the top that the column 2 of elevating mechanism is each held with knife is fixed there are one native prefix component, and 11 are held for fixed pivot knife, The fulcrum pivot holds 11 and is fixed on adhesive in the groove of native prefix component, and 4 fulcrum pivots hold 11 and handed over for conllinear cross two-by-two Fork;
The girder 1, which is one, has cuboid shape, the open box of upper port, in 1 four side walls of girder Respectively there are one side knives 6 for middle and upper part, and a trim is hung by being bonded in the lifting lug at the top of trim counterweight component on each side knife 6 Counterweight component 4;
There are one knife boxes 10 below the middle and upper parts of 1 four side walls of girder, side knife 6, in knife box 10 there are one Fulcrum pivot 7, each fulcrum pivot 7 with it is corresponding with knife hold the fulcrum pivot on the column 2 of elevating mechanism and hold 11 match;
On the side of each column 2 for holding elevating mechanism with knife, towards the position of girder 1, there are one horizontal step surfaces 2a, four step surface 2a are coplanar;When knife, which holds elevating mechanism, is in unloading position, fulcrum pivot holds 11 sinkings, under 1 cassette bottom of girder Surface is bonded with step surface 2a, and fulcrum pivot holds 11 and is in discrete state with fulcrum pivot 7;It is in load position when knife holds elevating mechanism When setting, fulcrum pivot holds 11 risings, and bottom surface and the step surface 2a of girder 1 are detached from, and fulcrum pivot holds 11 and is in contact shape with fulcrum pivot 7 State;
The blade of the fulcrum pivot 7 of both sides is located at the vertical centre of girder 1 in the width direction and divides face equally girder 1 along its length Interior, the blade of the fulcrum pivot 7 of both sides is located at the vertical centre of girder 1 along its length and divides equally in face girder 1 in the width direction;It is main The blade of the fulcrum pivot 7 of both sides along its length of beam 1 is conllinear, and the blade of the fulcrum pivot 7 of both sides in the width direction of girder 1 is conllinear, The straight line where the blade of the fulcrum pivot 7 of both sides and girder 1 fulcrum pivot 7 of both sides in the width direction along its length of girder 1 Blade line orthogonal, which is known as blade orthogonal points;
The V-type on fixed two V-blocks 5 of upper surface 1 length direction of upper edge girder of 1 cassette bottom of girder, two V types blocks 5 The center of slot divides that face is coplanar equally, and the center of V-groove divides face and the vertical centre of girder 1 in the width direction equally, and to divide face equally coplanar, and two The equal length of the distance and standardized centroid exemplar of 5 outer end face of a V-block, two V-blocks 5 are relative to 1 cassette bottom upper surface of girder Center vertical line it is symmetrical, blade orthogonal points is located on the center vertical line of 1 cassette bottom upper surface of girder;
V-groove base angle=90 °~120 °, when standardized centroid exemplar is located in the V-groove of two V-blocks 5, standard matter The end face of heart exemplar and the outer end face of V-block 5 are coplanar;When knife, which holds elevating mechanism, is in loading position, standardized centroid exemplar Axis is located in following planes, which is straight line and girder of the girder 1 along its length where the blade of the fulcrum pivot 7 of both sides 1 in the width direction the fulcrum pivot 7 of both sides blade the plane that is determined of straight line;At this point, in the geometry of standardized centroid exemplar Heart point is located on the center vertical line of 1 cassette bottom upper surface of above-mentioned girder.
A kind of measurement method of standardized centroid exemplar centroid position, it is characterised in that:Use standard matter as described above The step of heart exemplar centroid position two-dimentional measuring device measures, measurement is as follows:
1, three-dimensional system of coordinate is established:Using above-mentioned blade orthogonal points as origin, with the fulcrum pivot of the both sides along its length of girder 1 Straight line where 7 blade is X-axis, and right is X-axis positive direction;With the blade institute of the fulcrum pivot 7 of both sides in the width direction of girder 1 Straight line be Y-axis, front be Y-axis positive direction;Determine that Z axis, top are Z axis positive direction according to right-hand rule;
2, it loads:Standardized centroid exemplar is placed in the V-groove of two V-blocks 5 on 1 bottom surface of girder, standardized centroid Exemplar end face and 5 outer end face of V-block are coplanar, then the geometric center point of standardized centroid exemplar is located on above-mentioned coordinate origin, Axis is overlapped with above-mentioned coordinate system X-axis;
3, X-direction load measures:The two-dimentional center mass measuring device for opening X-direction, makes 2, the column that elevating mechanism is held with knife In loading position, fulcrum pivot holds 11 and is in contact condition with fulcrum pivot 7, and the offset of girder 1 is measured by sensor 3, is passed through The gravitational moment for the torque compensation standardized centroid exemplar that trim counterweight 4 generates makes girder offset be 0;
4, coordinate Δ L of the barycenter in X-direction of standardized centroid exemplar is calculated1
Wherein, Δ L1:X-direction centroid position offset;W:Standardized centroid exemplar quality;m1:X on the right side of counterweight trimmer The quality of direction counterweight;m2:The quality of X-direction counterweight on the left of counterweight trimmer;L1:Measuring system crossbeam X-direction right arm is long; L2:Measuring system crossbeam X-direction left arm is long;
5, Y-direction load measures:The two-dimentional center mass measuring device for opening Y-direction, makes 2, the column that elevating mechanism is held with knife In loading position, fulcrum pivot holds 11 and is in contact condition with fulcrum pivot 7, and the offset of girder 1 is measured by sensor 3, is passed through The gravitational moment for the torque compensation standardized centroid exemplar that trim counterweight 4 generates makes girder offset be 0;
6, the coordinate Δ L of the barycenter of standardized centroid exemplar in the Y direction is calculated2
Wherein, Δ L2:Y-direction centroid position offset;W:Standardized centroid exemplar quality;m3:Counterweight trimmer Y-direction The quality of right side counterweight;m4:The quality of counterweight on the left of counterweight trimmer Y-direction;L3:Measuring system crossbeam Y-direction right arm is long; L4:Measuring system crossbeam Y-direction left arm is long;
7, Z-direction load measures:Standardized centroid exemplar is rotated by 90 ° along its axle center, at this point, the Z axis before rotation becomes revolving Y-axis after turning, it is new Y-axis to define postrotational Y-axis;The two-dimentional center mass measuring device for opening Y-direction makes band knife hold elevating mechanism Column 2 be located at loading position, fulcrum pivot holds 11 and be in contact condition with fulcrum pivot 7, passes through the inclined of the measurement girder 1 of sensor 3 The gravitational moment of shifting amount, the torque compensation standardized centroid exemplar generated by trim counterweight 4 makes girder offset be 0;
8, coordinate Δ L of the barycenter in Z-direction of standardized centroid exemplar is calculated3
Wherein, Δ L3:Z-direction centroid position offset;W:Standardized centroid exemplar quality;m5:Counterweight trimmer Z-direction The quality of right side counterweight;m6:The quality of counterweight on the left of counterweight trimmer Z-direction;L3:Measuring system crossbeam Z-direction right arm is long; L4:Measuring system crossbeam Z-direction left arm is long.
The present invention measuring principle be:Device has 4 columns that elevating mechanism is held with knife, the blade two of 4 fulcrum pivots Two is conllinear, and the line orthogonal where two conllinear fulcrum pivot blades can realize the two of X-axis and Y-axis respectively according to principle of moment balance Centroid position is tieed up to measure.Double measurement is carried out by rotating standardized centroid exemplar, the three-dimensional matter of standardized centroid exemplar can be obtained Heart position.It is the centroid position measuring principle schematic diagram of Y direction, centroid position is as shown in figure 3, with above-mentioned measurement referring to Fig. 3 Method establishes coordinate system, then Δ L2As for the centroid position of barycenter master body in the coordinate of Y-axis, W is standardized centroid exemplar matter Amount;m3For the quality of counterweight on the right side of counterweight trimmer Y-direction;m4For the quality of counterweight on the left of counterweight trimmer Y-direction; L3 It is long for measuring system crossbeam Y-direction right arm;L4It is long for measuring system crossbeam Y-direction left arm, then the barycenter position of barycenter master body The coordinate set in Y-axis isSimilarly, center mass measuring device is opened in the measurement of X-direction, can be obtained Coordinate of the centroid position of barycenter master body in X-axis;It is rotated by 90 ° centered on standardized centroid exemplar axle center, opens barycenter and survey Device is measured in the measurement of Y direction, coordinate of the centroid position in Z axis of barycenter master body can be obtained.
Embodiment
It is used with knife hold the column 2 of elevating mechanism, sensor 3, trim counterweight component 4, V-block 5, day pingbian knife 6, It is finished parts that fulcrum pivot 7, fulcrum pivot box 10 and fulcrum pivot, which hold 11,.V-groove base angle=120 °.Girder 1X axis positive direction brachiums L1=1150mm, X-axis negative direction brachium L2=1150mm;Y-axis positive direction brachium L1=650mm, Y-axis negative direction brachium L2= 650mm.The size of standardized centroid exemplar is:Long 1000mm, radius 180mm;The quality W=800000g of standardized centroid exemplar.
The step of measurement, is as follows:
1, three-dimensional system of coordinate is established:Using the blade orthogonal points of fulcrum pivot 7 as origin, with the both sides along its length of girder 1 Straight line where the blade of fulcrum pivot 7 is X-axis, and right is X-axis positive direction;With the fulcrum pivot 7 of both sides in the width direction of girder 1 Straight line where blade is Y-axis, and front is Y-axis positive direction;Determine that Z axis, top are Z axis positive direction according to right-hand rule;
2, it loads:Standardized centroid exemplar is placed in the V-groove of two V-blocks 5 on 1 bottom surface of girder, standardized centroid Exemplar end face and 5 outer end face of V-block are coplanar, then the geometric center point of standardized centroid exemplar is located on above-mentioned coordinate origin, Axis is overlapped with above-mentioned coordinate system X-axis;
3, X-direction load measures:The two-dimentional center mass measuring device for opening X-direction, makes 2, the column that elevating mechanism is held with knife In loading position, fulcrum pivot holds 11 and is in contact condition with fulcrum pivot 7, and the offset of girder 1 is measured by sensor 3, is passed through The gravitational moment for the torque compensation standardized centroid exemplar that trim counterweight 4 generates makes girder offset be 0, and in trim counterweight 4, right side is matched Flat counterweight m1For 3g, left side trim counterweight m2For 0g;
4, coordinate Δ L of the barycenter in X-direction of standardized centroid exemplar is calculated1
5, Y-direction load measures:The two-dimentional center mass measuring device for opening Y-direction, makes 2, the column that elevating mechanism is held with knife In loading position, fulcrum pivot holds 11 and is in contact condition with fulcrum pivot 7, and the offset of girder 1 is measured by sensor 3, is passed through The gravitational moment for the torque compensation standardized centroid exemplar that trim counterweight 4 generates makes girder offset be 0, and in trim counterweight 4, right side is matched Flat counterweight m3For 0g, left side trim counterweight m4For 1g;
6, the coordinate Δ L of the barycenter of standardized centroid exemplar in the Y direction is calculated2
7, Z-direction load measures:Standardized centroid exemplar is rotated by 90 ° counterclockwise along its axle center, at this point, the Z axis before rotation Become postrotational Y-axis, it is new Y-axis to define postrotational Y-axis;The two-dimentional center mass measuring device for opening Y-direction makes band knife hold liter The column 2 of descending mechanism is located at loading position, and fulcrum pivot holds 11 and is in contact condition with fulcrum pivot 7, and girder is measured by sensor 3 The gravitational moment of 1 offset, the torque compensation standardized centroid exemplar generated by trim counterweight 4 makes girder offset be 0, trim In counterweight 4, right side trim counterweight m5For 2g, left side trim counterweight m6For 0g;
8, coordinate Δ L of the barycenter in Z-direction of standardized centroid exemplar is calculated3

Claims (2)

1. a kind of standardized centroid exemplar centroid position two-dimentional measuring device, it is characterised in that:It include girder (1), 4 band knives hold The column (2) of elevating mechanism, 4 sensors (3), 4 trim counterweight components (4), 2 V-blocks (5), 4 day pingbian knives (6), 4 fulcrum pivots (7), 4 fulcrum pivot boxes (10), 4 fulcrum pivots hold (11) and leveling base (9);
Leveling base (9) is a platform for carrying leveling lower margin;Described 4 columns (2) that elevating mechanism is held with knife are distributed in The midpoint of one rectangle four edges, column (2) bottom end that elevating mechanism is each held with knife are fixed by screws in the leveling On pedestal (9), the top that the column (2) of elevating mechanism is each held with knife is fixed there are one native prefix component, and fixed pivot is used for Knife is held (11), and the fulcrum pivot holds (11) and is fixed on adhesive in the groove of native prefix component, and it is two that 4 fulcrum pivots, which hold (11), Two conllinear right-angled intersections;
The girder (1), which is one, has cuboid shape, the open box of upper port, in (1) four side wall of girder Respectively there are one side knives (6) for middle and upper part, and one is hung by being bonded in the lifting lug at the top of trim counterweight component on each side knife (6) Trim counterweight component (4);
There are one knife boxes (10) below the middle and upper part of (1) four side wall of girder, side knife (6), have in knife box (10) One fulcrum pivot (7), each fulcrum pivot (7) are held the fulcrum pivot on the column (2) of elevating mechanism with knife and are held (11) with corresponding It matches;
On the side of each column (2) for holding elevating mechanism with knife, towards the position of girder (1), there are one horizontal step surfaces (2a), four step surfaces (2a) are coplanar;When knife, which holds elevating mechanism, is in unloading position, fulcrum pivot holds (11) sinking, girder (1) The lower surface of cassette bottom is bonded with step surface (2a), and fulcrum pivot holds (11) and is in discrete state with fulcrum pivot (7);When knife holds elevator When structure is in loading position, fulcrum pivot holds (11) rising, and bottom surface and the step surface (2a) of girder (1) are detached from, and fulcrum pivot is held (11) It is in contact condition with fulcrum pivot (7);
The blade of the fulcrum pivot (7) of both sides is located at the vertical centre of girder (1) in the width direction and divides equally girder (1) along its length In face, it is flat that the blade of girder (1) fulcrum pivot (7) of both sides in the width direction is located at the vertical centre of girder (1) along its length In facet;The blade of girder (1) fulcrum pivot (7) of both sides along its length is conllinear, the fulcrum of girder (1) both sides in the width direction The blade of knife (7) is conllinear, girder (1) along its length the straight line where the blade of the fulcrum pivot (7) of both sides and girder (1) along width Spend the blade of the fulcrum pivot (7) of direction both sides line orthogonal, which is known as blade orthogonal points;
On fixed two V-blocks (5) of upper surface upper edge girder (1) length direction of girder (1) cassette bottom, two V-blocks (5) The center of V-groove divides that face is coplanar equally, and face is divided at the center of V-groove equally, and with the vertical centre of girder (1) in the width direction to divide face equally total Face, the equal length of the distance and standardized centroid exemplar of two V-block (5) outer end faces, two V-blocks (5) are relative to girder (1) The center vertical line of cassette bottom upper surface is symmetrical, and blade orthogonal points is located on the center vertical line of girder (1) cassette bottom upper surface;
V-groove base angle=90 °~120 °, when standardized centroid exemplar is located in the V-groove of two V-blocks (5), standardized centroid The end face of exemplar and the outer end face of V-block (5) are coplanar;When knife, which holds elevating mechanism, is in loading position, standardized centroid exemplar Axis is located in following planes, the plane be girder (1) along its length the straight line where the blade of the fulcrum pivot (7) of both sides with Girder (1) in the width direction the fulcrum pivot (7) of both sides blade the plane that is determined of straight line;At this point, standardized centroid exemplar Geometric center point be located on the center vertical line of above-mentioned girder (1) cassette bottom upper surface.
2. a kind of measurement method of standardized centroid exemplar centroid position, it is characterised in that:Use standard as described in claim 1 The step of barycenter exemplar centroid position two-dimentional measuring device measures, measurement is as follows:
2.1, three-dimensional system of coordinate is established:
Using above-mentioned blade orthogonal points as origin, with the straight line where girder (1) the along its length blade of the fulcrum pivot (7) of both sides For X-axis, right is X-axis positive direction;With the straight line where girder (1) the in the width direction blade of the fulcrum pivot (7) of both sides for Y Axis, front are Y-axis positive direction;Determine that Z axis, top are Z axis positive direction according to right-hand rule;
2.2, it loads:Standardized centroid exemplar is placed in the V-groove of two V-blocks (5) on girder (1) bottom surface, standard matter Heart exemplar end face and V-block (5) outer end face are coplanar, then the geometric center point of standardized centroid exemplar is located at above-mentioned coordinate origin On, axis is overlapped with above-mentioned coordinate system X-axis;
2.3, X-direction load measures:The two-dimentional center mass measuring device for opening X-direction, makes column (2) position that elevating mechanism is held with knife In loading position, fulcrum pivot holds (11) and is in contact condition with fulcrum pivot (7), and the offset of girder (1) is measured by sensor (3) The gravitational moment of amount, the torque compensation standardized centroid exemplar generated by trim counterweight (4) makes girder offset be 0;
2.4, coordinate Δ L of the barycenter in X-direction of standardized centroid exemplar is calculated1
Wherein, Δ L1:X-direction centroid position offset;W:Standardized centroid exemplar quality;m1:X-direction on the right side of counterweight trimmer The quality of counterweight;m2:The quality of X-direction counterweight on the left of counterweight trimmer;L1:Measuring system crossbeam X-direction right arm is long;L2:It surveys Amount system crossbeam X-direction left arm is long;
2.5, Y-direction load measures:The two-dimentional center mass measuring device for opening Y-direction, makes column (2) position that elevating mechanism is held with knife In loading position, fulcrum pivot holds (11) and is in contact condition with fulcrum pivot (7), and the offset of girder (1) is measured by sensor (3) The gravitational moment of amount, the torque compensation standardized centroid exemplar generated by trim counterweight (4) makes girder offset be 0;
2.6, the coordinate Δ L of the barycenter of standardized centroid exemplar in the Y direction is calculated2
Wherein, Δ L2:Y-direction centroid position offset;W:Standardized centroid exemplar quality;m3:On the right side of counterweight trimmer Y-direction The quality of counterweight;m4:The quality of counterweight on the left of counterweight trimmer Y-direction;L3:Measuring system crossbeam Y-direction right arm is long;L4:It surveys Amount system crossbeam Y-direction left arm is long;
2.7, Z-direction load measures:Standardized centroid exemplar is rotated by 90 ° along its axle center, at this point, the Z axis before rotation becomes rotating Y-axis afterwards, it is new Y-axis to define postrotational Y-axis;The two-dimentional center mass measuring device for opening Y-direction, makes to hold elevating mechanism with knife Column (2) is located at loading position, and fulcrum pivot holds (11) and is in contact condition with fulcrum pivot (7), and girder is measured by sensor (3) (1) gravitational moment of offset, the torque compensation standardized centroid exemplar generated by trim counterweight (4) makes girder offset be 0;
2.8, coordinate Δ L of the barycenter in Z-direction of standardized centroid exemplar is calculated3
Wherein, Δ L3:Z-direction centroid position offset;W:Standardized centroid exemplar quality;m5:On the right side of counterweight trimmer Z-direction The quality of counterweight;m6:The quality of counterweight on the left of counterweight trimmer Z-direction;L3:Measuring system crossbeam Z-direction right arm is long;L4:It surveys Amount system crossbeam Z-direction left arm is long.
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