CN101710146A - Voltage measurement apparatus - Google Patents

Voltage measurement apparatus Download PDF

Info

Publication number
CN101710146A
CN101710146A CN200910155448A CN200910155448A CN101710146A CN 101710146 A CN101710146 A CN 101710146A CN 200910155448 A CN200910155448 A CN 200910155448A CN 200910155448 A CN200910155448 A CN 200910155448A CN 101710146 A CN101710146 A CN 101710146A
Authority
CN
China
Prior art keywords
resistance
contact
node
connect
adjustable
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.)
Granted
Application number
CN200910155448A
Other languages
Chinese (zh)
Other versions
CN101710146B (en
Inventor
骆晓英
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.)
Hangzhou Tianye Communication Equipment Co., Ltd.
Original Assignee
骆晓英
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 骆晓英 filed Critical 骆晓英
Priority to CN200910155448XA priority Critical patent/CN101710146B/en
Publication of CN101710146A publication Critical patent/CN101710146A/en
Application granted granted Critical
Publication of CN101710146B publication Critical patent/CN101710146B/en
Expired - Fee Related legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Abstract

The invention relates to a voltage measurement disk used for measuring direct current voltage, which comprises two stepping disks and a double slide wire disk, wherein two measurement disks in the voltage measurement apparatus are connected with a measurement slide wire through a lead wire. The invention enables the voltage measurement apparatus not to have deviation and thermo electrical potential when in measurement without switching by using a switch, obtains three ranges by changing the size of the working current and omits two auxiliary disks of the first stepping disk, wherein the minimum resolution reaches 0.1muV..

Description

Voltage-measuring equipment
Technical field
The present invention relates to instrument that DC voltage is measured.
Background technology
For the voltage-measuring equipment that three measuring disk are arranged, telophragma generally adopts switch to switch, and so just produces the variation of contact resistance, brings restriction to resolution a few days ago.In order to overcome this problem, generally adopt big brush with the increase contact area, and adopt silver-carbon/carbon-copper composite material; The patent No. 200720109906.2,200720107582.9,200720107585.2 discloses has three three-range voltage-measuring equipments of measuring disk to solve the variation new method of switch contact resistance, its first step disc is made up of a measuring disk and two bracket panels, two measuring disk connect the back and are connected between two measurement terminals with slide wire disc, brush on the step disc switch is got rid of outside the measurement loop, do not exist switch to switch between the resistance on three measuring disk, just do not produce variation yet; Because first step disc has three layers, make switch and apparatus structure become complicated, increased the height of instrument simultaneously.
Summary of the invention
The objective of the invention is to design a kind of three range voltage-measuring equipments, telophragma does not switch by switch in the connection of three measuring disk, and two bracket panels of first step disc cancellation.
Technical scheme of the present invention is taked like this:
Electric current is anodal through the resistance on two step discs between node C, the B and one pair of slide wire discs, range selector K from voltage-measuring equipment 1.5V working power 1On the resistor network formed of resistance, through setting up resistance to 66 Ω resistance R 0, connect 0~12000 Ω adjustable resistance R again P1An end, adjustable resistance R P1Sliding contact connect 0~1000 Ω adjustable resistance R P2An end, adjustable resistance R P2Sliding contact connect 0~82 Ω adjustable resistance R P3An end, adjustable resistance R P3Sliding contact and adjustable resistance R P3, adjustable resistance R P2, adjustable resistance R P1The other end be connected in parallel on the working power negative pole, form voltage-measuring equipment work loop; It is characterized in that first step disc between node C, the B has only measuring disk I, it has 0,1,2 ... 22 totally 23 gears, connect one of 10 Ω resistance between each grade contact, second step disc is made up of measuring disk II and bracket panel II ', measuring disk II has 0,1,2 ... 10 totally 11 gears, the resistance that 11 11 Ω are arranged above, the 1st resistance R 1One end welds the 2nd resistance R 2One end, resistance R 2The other end welds the 3rd resistance R 3One end, resistance R 3The other end welds the 4th resistance R 4One end, resistance R 4The other end welds the 5th resistance R 5One end, resistance R 5The other end welds the 6th resistance R 6One end, resistance R 6The other end welds the 7th resistance R 7One end, resistance R 7The other end welds the 8th resistance R 8One end, resistance R 8The other end welds the 9th resistance R 9One end, resistance R 9The other end welds the 10th resistance R 10One end, resistance R 10The other end welds the 11st resistance R 11One end, the 11st resistance R 11The other end and the 1st resistance R 1The other end connect resistance R 1With resistance R 2Tie point be connected resistance R through 20 Ω resistance with the 1st contact 2With resistance R 3Tie point be connected resistance R through 12 Ω resistance with the 2nd contact 3With resistance R 4Tie point be connected resistance R through 6 Ω resistance with the 3rd contact 4With resistance R 5Tie point be connected resistance R through 2 Ω resistance with the 4th contact 5With resistance R 6Tie point be connected resistance R with the 5th contact 6With resistance R 7Tie point be connected resistance R with the 6th contact 7With resistance R 8Tie point be connected resistance R through 2 Ω resistance with the 7th contact 8With resistance R 9Tie point be connected resistance R through 6 Ω resistance with the 8th contact 9With resistance R 10Tie point be connected resistance R through 12 Ω resistance with the 9th contact 10With resistance R 11Tie point be circuit node A, node A is connected resistance R through 20 Ω resistance with the 10th contact 1With resistance R 11The point that connects is a Node B, and Node B is connected with the 0th contact through 30 Ω resistance, is the resistance of 10 0.5 Ω on the bracket panel II ' of second step disc, passes through 200 Ω resistance R between the brush of the second step disc measuring disk II and the brush of bracket panel II ' 12Connect, the 3rd dish is two slide wire discs, two slip thickness materials are identical, resistance all is 10 Ω, and wherein one is measurement slip III, and another root is auxiliary slip III ', the index dial of two slide wire discs divides 10 big lattice, the resistance of every big lattice correspondence is 1 Ω, and every big lattice divide 10 little lattice, and the brush on two slide wire resistances is with a slice metallic brush sheet; Bracket panel II ' the 10th contact and 2300 Ω resistance R 13End point in parallel be node C, node C connects voltage-measuring equipment working power positive pole, the brush of bracket panel II ' connects measuring disk I the 22nd contact and connects the 0th contact connected node A of measuring disk I, resistance R 13The other end connect to measure top " 0 " point of slip III, the end " 10 " of measuring slip III is o'clock through 90 Ω resistance R 14Back connecting circuit Node B; Node B connects DPTT double-pole triple throw range selector K 1K 1-2The normally closed contact of layer, K 1-2Layer * 0.1 range contact and * 1 range contact between by 43655 Ω setting resistance R N 3And 0~58 Ω adjustable resistance R P4Connect K 1-2Layer * 1 range contact and * 10 range contacts between by 4364 Ω setting resistance R N 2And 0~8 Ω adjustable resistance R P5Connect K 1-2Layer * 10 range contacts and DPTT double-pole triple throw range selector K 1K 1-1Set up resistance R N by 485 Ω between the normally closed contact of layer 1And 0~1 Ω adjustable resistance R P6Connect K 1-1The normally closed contact of layer connects standard cell EN negative pole, K 1-1Layer * 66 Ω resistance R are passed through in 10 range contacts 0And adjustable resistance R P1, R P2, R P3To the working power negative pole, K 1-1Layer * 10 range contact and K 1-1Layer * 1 range contact between by 1628 Ω resistance R aConnect K 1-1Layer * 1 range contact and K 1-1Layer * 0.1 range contact between by 16250 Ω resistance R bConnect, standard cell EN positive pole is through being connected to the double-point double-throw switch K of galvanometer G between two normally closed contacts 2With DPTT double-pole triple throw range selector K 1K 1-2Layer normally closed contact connects; Voltage-measuring equipment is used to connect measured " U X" two terminals, anodal terminal is connected with the brush of measuring disk I, the negative pole terminal is by galvanometric change-over switch K 2Be connected with auxiliary slip III '.
By above technical scheme, first step disc has saved two bracket panels, makes potential difference meter simple in structure, volume-diminished, also reduced production cost, in equalizing network, do not passed through switch on the circuit of three measuring disk connections simultaneously, so do not have variation and thermoelectric potential influence; The brush of first step disc and two slide wire discs switches and causes that change in resistance does not influence measurement numerical value, only influences the galvanometer damping, and compares brush with the resistance variations of whole equalizing network and switch and cause that change in resistance can ignore.
Description of drawings
Fig. 1 is a principle of the invention circuit.
In Fig. 1, the measuring disk I of 22 * 10 Ω, expression measuring disk I is made up of the resistance of 22 10 Ω; In like manner, the bracket panel II ' of 10 * 0.5 Ω, expression bracket panel II ' is made up of the resistance of 10 0.5 Ω, and resistance R in the resistance ring network of expression measuring disk II is arranged in the resistance ring network of measuring disk II " 10 * 11 Ω " 1~resistance R 10Ten resistances all are 11 Ω.
Embodiment
In Fig. 1, measuring disk II is 11 the 11 end to end resistance rings of Ω between node A and Node B, when measuring disk II puts " 5 " or puts " 6 ", the brush of measuring disk II is to being that 5 11 Ω resistance are in parallel with 6 11 Ω resistance between the Node B, back in parallel resistance is 30 Ω to the maximum, other contact of measuring disk II all is connected to 30 Ω to the resistance value between the Node B and is as the criterion, and corresponding point directly are connected on the 5th, 6 contacts and the resistance ring; When measuring disk II put " 4 " or puts " 7 ", the brush of measuring disk II was to being that 4 11 Ω resistance are in parallel with 7 11 Ω resistance between the Node B, and back in parallel resistance is 28 Ω, so the 4th, 7 contacts are connected with corresponding point on the resistance ring through 2 Ω resistance; When measuring disk II put " 3 " or puts " 8 ", the brush of measuring disk II was to being that 3 11 Ω resistance are in parallel with 8 11 Ω resistance between the Node B, and back in parallel resistance is 24 Ω, so the 3rd, 8 contacts are connected with corresponding point on the resistance ring through 6 Ω resistance; When measuring disk II put " 2 " or puts " 9 ", the brush of measuring disk II was to being that 2 11 Ω resistance are in parallel with 9 11 Ω resistance between the Node B, and back in parallel resistance is 18 Ω, so the 2nd, 9 contacts are connected with corresponding point on the resistance ring through 12 Ω resistance; When measuring disk II set or when putting " 10 ", the brush of measuring disk II is to being that 1 11 Ω resistance is in parallel with 10 11 Ω resistance between the Node B, and back in parallel resistance is 10 Ω, so the 1st, 10 contacts are connected with corresponding point on the resistance ring through 20 Ω resistance; When measuring disk II reset, the 0th contact of measuring disk II is between the Node B being the connections of 30 Ω resistance.
The brush of the brush of the measuring disk II of second step disc and bracket panel II ' is synchronous, and during the second step disc reset, the brush of bracket panel II ' is that two resistance that are both 230 Ω are in parallel with resistance value between the Node B, is 115 Ω therefore.
During the second step disc set, the calculating of resistance value need be carried out triangle-star conversion between the brush of bracket panel II ' and the Node B, establishes resistance (R 2+ R 3+ ... + R 9+ R 10) and resistance R 11The both sides resistance is equivalent to resistance r 1, resistance R 11With resistance R 1The both sides resistance is equivalent to resistance r 1' resistance (R 2+ R 3+ ... + R 9+ R 10) and resistance R 1The both sides resistance is equivalent to resistance r 1", be equivalent to resistance r 1, r 1', r 1" intersection point is Q 1:
R then 1=(R 2+ R 3+ ... + R 9+ R 10) * R 11/ (R 1+ R 2+ ... + R 10+ R 11)=9 * 11 * 11/11 * 11 Ω=9 Ω
r 1’=R 1×R 11/(R 1+R 2+…+R 10+R 11)=11×11/11×11Ω=1Ω
r 1”=(R 2+R 3+…+R 9+R 10)×R 1/(R 1+R 2+…+R 10+R 11)=9×11×11/11×11Ω=9Ω
Resistance value equals (220 Ω+r between the brush of bracket panel II ' and the Node B 1) * (200 Ω+20 Ω+r 1")/(2 * 229) Ω+r 1'=229 Ω/2+1 Ω=114.5 Ω+1 Ω=115.5 Ω
When second step disc is put " 2 ", the calculating of resistance value between the brush of bracket panel II ' and the Node B: establish resistance (R 3+ R 4+ ... + R 9+ R 10) and resistance R 11The both sides resistance is equivalent to resistance r 2, resistance R 11With resistance (R 1+ R 2) the both sides resistance is equivalent to resistance r 2' resistance (R 3+ R 4+ ... + R 9+ R 10) and resistance (R 1+ R 2) the both sides resistance is equivalent to resistance r 2", be equivalent to resistance r 2, r 2', r 2" intersection point is Q 2:
R then 2=8 Ω r 2'=2 Ω r 2"=16 Ω
Resistance value equals (220 Ω+r between the brush of bracket panel II ' and the Node B 2) * (200 Ω+12 Ω+r 2")/
(2×228)Ω+r 2’=228Ω/2+2Ω=114Ω+2Ω=116Ω。
In like manner, when second step disc was put " 3 ", resistance value was 116.5 Ω between the brush of bracket panel II ' and the Node B,
When second step disc was put " 4 ", resistance value was 117 Ω between the brush of bracket panel II ' and the Node B,
When second step disc was put " 5 ", resistance value was 117.5 Ω between the brush of bracket panel II ' and the Node B,
……
When second step disc was put " 10 ", resistance value was 120 Ω between the brush of bracket panel II ' and the Node B.
Increase by 0.5 Ω because measuring disk II is connected the every stepping in back with measuring disk I, so the every stepping of bracket panel II ' reduces by 0.5 Ω, it is constant that circuit is always hindered.
Node C is 120 Ω through two step discs to the resistance of Node B, node C process slide wire disc is 2400 Ω to the resistance of Node B, is 2.1mA when voltage-measuring equipment is made current standard, when * 10 ranges, electric current is 2mA on the 120 Ω resistance, and electric current is 0.1mA on the 2400 Ω resistance; According to triangle-star conversion, I is to equivalent resistance r for bracket panel II ' brush process measuring disk n, r n', r n" intersection point Q n(n=1,2,3 ... 9) resistance and bracket panel II ' brush are through 200 Ω resistance R 12To intersection point Q nResistance equate, so flow through measuring disk I and 200 Ω resistance R 12Electric current respectively be 1mA; When measuring disk II puts " 10 ", bracket panel II ' brush through measuring disk I to the resistance of node A and bracket panel II ' brush through 200 Ω resistance R 12Resistance to node A all equals 220 Ω, so flow through measuring disk I and 200 Ω resistance R 12Electric current also respectively be 1mA.
For ten one the 11 Ω end to end resistance rings of measuring disk II between node A and Node B, resistance R during measuring disk II set 1To be all 11 Ω resistance in parallel with 10 resistances, when * 10 ranges, flows through resistance R 11Electric current be 1/11mA, the voltage U between node A and the Node B AB=1/11 * 11mV=1mV; Resistance (R when measuring disk II puts " 2 " 1+ R 2) to be all 11 Ω resistance in parallel with 9 resistances, flows through resistance R 11Electric current be 2/11mA, the voltage U between node A and the Node B AB=2/11 * 11mV=2mV; When in like manner, measuring disk II puts " n " (n=1,2,3 ... 10) voltage U between resistance nodes A and the Node B AB=n mV; During measuring disk II reset, electric current is without resistance R 11, U AB=0mV.Measuring disk I, measuring disk II, measure slip III all during reset, U ABOn 10mV voltage equal to measure 0 voltage of order of slip III to B, so measure and the node A equipotential of slip III at 0.
Working power with the electromotive force of No. 1 battery when 1.4V is following, electric current is stable inadequately, and the electromotive force of new battery reaches 1.65V, all can adjust to standard state to the voltage-measuring equipment working current for realizing supply voltage at 1.4V~1.65V, during * 10 ranges, seal in 66 Ω resistance R 0, regulate adjustable resistance R P1, adjustable resistance R P2, adjustable resistance R P3The work loop of making always hinders the work loop and always hinders between 666~786 Ω, and the electromotive force of standard cell EN is set up resistance EN by 485 Ω between 1.0188~1.0196V 1, calibration 0~1 Ω adjustable resistance R P6Make working current equal 2.1mA; During * 1 range, seal in 1628 Ω fixed resistance R again a, regulate adjustable resistance R P1, adjustable resistance R P2, adjustable resistance R P3Make the total resistance in work loop between 6660~7858 Ω, set up resistance R N by 4364 Ω 2, calibration adjustable resistance R P5Make working current equal 0.21mA, during * 0.1 range, seal in 16250 Ω fixed resistance R again b, regulate adjustable resistance R P1, regulate adjustable resistance R P2, adjustable resistance R P3The work loop is always hindered between 66600~78580 Ω, set up resistance R N by 43655 Ω 3, calibration adjustable resistance R P4Make working current equal 0.021mA.
At * 10 ranges, during the working current standardization, first step disc is put n 1, second step disc puts n 2, the 3rd dish puts n 3(n 3Represent big lattice indicating value) " U at this moment x" two measure that voltage is between terminal:
U x=1×10n 1+1×10+n 2/11×11-0.1×90-0.1×1×(10-n 3)(mV)
=10n 1+10+n 2-9-1+0.1n 3(mV)
=10n 1+n 2+0.1n 3(mV)
When * 1 range, sealed in 1628 Ω resistance R a in the circuit, the setting resistance R N corresponding with standard cell RN is 4364 Ω, regulates adjustable resistance R P5, working current becomes 0.21mA during standardization; At this moment first step disc is put n 1, second step disc puts n 2, the 3rd dish puts n 3(n 3Represent big lattice indicating value) " U at this moment x" two measure that voltage is between terminal:
U X=n 1+0.1n 2+0.01n 3(mv)
When * 0.1 range, 16250 Ω resistance R have been sealed in the circuit again b, the setting resistance R N corresponding with standard cell RN is 43655 Ω, regulates adjustable resistance R P5, working current becomes 0.021mA during standardization; The indicating value of three dishes is expressed as:
U X=0.1n 1+0.01n 2+0.001n 3(mv)
The standard operation electric current is to determine like this: 200mv standard signal voltage is pressed polarity and voltage-measuring equipment " U x" two measure terminal and connect voltage-measuring equipment range switch K 1Put " * 10 " range, it is identical with the standard signal magnitude of voltage that each coils total indicating value, double-point double-throw switch K 2Throw to the left side, regulate adjustable resistance R P1, adjustable resistance R P2And adjustable resistance R P3, make galvanometer G nulling; Again with double-point double-throw switch K 2Throw to the right, regulate adjustable resistance R P6, make galvanometer G nulling, at this moment adjustable resistance R P6Locking; Again range switch K 1Put " * 1 " range, 20mV standard signal voltage is pressed polarity and voltage-measuring equipment " U x" two measure terminal and connect, it is identical with the standard signal magnitude of voltage that each coils total indicating value, double-point double-throw switch K 2Throw to the left side, regulate adjustable resistance R P1, adjustable resistance R P2And adjustable resistance R P3, make galvanometer G nulling; Again with double-point double-throw switch K 2Throw to the right, regulate adjustable resistance R P5, make galvanometer G nulling, at this moment adjustable resistance R P5Locking; Again range switch K 1Put " * 0.1 " range, 2mV standard signal voltage is pressed polarity and voltage-measuring equipment " U x" two measure terminal and connect, it is identical with the standard signal magnitude of voltage that each coils total indicating value, double-point double-throw switch K 2Throw to the left side, regulate adjustable resistance R P1, adjustable resistance R P2And adjustable resistance R P3, make galvanometer G nulling; Again with double-point double-throw switch K 2Throw to the right, regulate adjustable resistance R P4, make galvanometer G nulling, at this moment adjustable resistance R P4Locking; When using from now on, voltage-measuring equipment is standard according to this.

Claims (1)

1. voltage-measuring equipment, electric current is anodal through the resistance on two step discs between node C, the B and one pair of slide wire discs, range selector K from voltage-measuring equipment 1.5V working power 1On the resistor network formed of resistance, through setting up resistance to 66 Ω resistance R 0, connect 0~12000 Ω adjustable resistance R again P1An end, adjustable resistance R P1Sliding contact connect 0~1000 Ω adjustable resistance R P2An end, adjustable resistance R P2Sliding contact connect 0~82 Ω adjustable resistance R P3An end, adjustable resistance R P3Sliding contact and adjustable resistance R P3, adjustable resistance R P2, adjustable resistance R P1The other end be connected in parallel on the working power negative pole, form voltage-measuring equipment work loop; It is characterized in that first step disc between node C, the B has only measuring disk I, it has 0,1,2 ... 22 totally 23 gears, connect one of 10 Ω resistance between each grade contact, second step disc is made up of measuring disk II and bracket panel II ', measuring disk II has 0,1,2 ... 10 totally 11 gears, the resistance that 11 11 Ω are arranged above, the 1st resistance R 1One end welds the 2nd resistance R 2One end, resistance R 2The other end welds the 3rd resistance R 3One end, resistance R 3The other end welds the 4th resistance R 4One end, resistance R 4The other end welds the 5th resistance R 5One end, resistance R 5The other end welds the 6th resistance R 6One end, resistance R 6The other end welds the 7th resistance R 7One end, resistance R 7The other end welds the 8th resistance R 8One end, resistance R 8The other end welds the 9th resistance R 9One end, resistance R 9The other end welds the 10th resistance R 10One end, resistance R 10The other end welds the 11st resistance R 11One end, the 11st resistance R 11The other end and the 1st resistance R 1The other end connect resistance R 1With resistance R 2Tie point be connected resistance R through 20 Ω resistance with the 1st contact 2With resistance R 3Tie point be connected resistance R through 12 Ω resistance with the 2nd contact 3With resistance R 4Tie point be connected resistance R through 6 Ω resistance with the 3rd contact 4With resistance R 5Tie point be connected resistance R through 2 Ω resistance with the 4th contact 5With resistance R 6Tie point be connected resistance R with the 5th contact 6With resistance R 7Tie point be connected resistance R with the 6th contact 7With resistance R 8Tie point be connected resistance R through 2 Ω resistance with the 7th contact 8With resistance R 9Tie point be connected resistance R through 6 Ω resistance with the 8th contact 9With resistance R 10Tie point be connected resistance R through 12 Ω resistance with the 9th contact 10With resistance R 11Tie point be circuit node A, node A is connected resistance R through 20 Ω resistance with the 10th contact 1With resistance R 11The point that connects is a Node B, and Node B is connected with the 0th contact through 30 Ω resistance, is the resistance of 10 0.5 Ω on the bracket panel II ' of second step disc, passes through 200 Ω resistance R between the brush of the second step disc measuring disk II and the brush of bracket panel II ' 12Connect, the 3rd dish is two slide wire discs, two slip thickness materials are identical, resistance all is 10 Ω, and wherein one is measurement slip III, and another root is auxiliary slip III ', the index dial of two slide wire discs divides 10 big lattice, the resistance of every big lattice correspondence is 1 Ω, and every big lattice divide 10 little lattice, and the brush on two slide wire resistances is with a slice metallic brush sheet; Bracket panel II ' the 10th contact and 2300 Ω resistance R 13End point in parallel be node C, node C connects voltage-measuring equipment working power positive pole, the brush of bracket panel II ' connects measuring disk I the 22nd contact and connects the 0th contact connected node A of measuring disk I, resistance R 13The other end connect to measure top " 0 " point of slip III, the end " 10 " of measuring slip III is o'clock through 90 Ω resistance R 14Back connecting circuit Node B; Node B connects DPTT double-pole triple throw range selector K 1K 1-2The normally closed contact of layer, K 1-2Layer * 0.1 range contact and * 1 range contact between by 43655 Ω setting resistance R N 3And 0~58 Ω adjustable resistance R P4Connect K 1-2Layer * 1 range contact and * 10 range contacts between by 4364 Ω setting resistance R N 2And 0~8 Ω adjustable resistance R P5Connect K 1-2Layer * 10 range contacts and DPTT double-pole triple throw range selector K 1K 1-1Set up resistance R N by 485 Ω between the normally closed contact of layer 1And 0~1 Ω adjustable resistance R P6Connect K 1-1The normally closed contact of layer connects standard cell EN negative pole, K 1-1Layer * 66 Ω resistance R are passed through in 10 range contacts 0And adjustable resistance R P1, R P2, R P3To the working power negative pole, K 1-1Layer * 10 range contact and K 1-1Layer * 1 range contact between by 1628 Ω resistance R aConnect K 1-1Layer * 1 range contact and K 1-1Layer * 0.1 range contact between by 16250 Ω resistance R bConnect, standard cell EN positive pole is through being connected to the double-point double-throw switch K of galvanometer G between two normally closed contacts 2With DPTT double-pole triple throw range selector K 1K 1-2Layer normally closed contact connects; Voltage-measuring equipment is used to connect measured " U X" two terminals, anodal terminal is connected with the brush of measuring disk I, the negative pole terminal is by galvanometric change-over switch K 2Be connected with auxiliary slip III '.
CN200910155448XA 2009-12-14 2009-12-14 Voltage measurement apparatus Expired - Fee Related CN101710146B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN200910155448XA CN101710146B (en) 2009-12-14 2009-12-14 Voltage measurement apparatus

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN200910155448XA CN101710146B (en) 2009-12-14 2009-12-14 Voltage measurement apparatus

Publications (2)

Publication Number Publication Date
CN101710146A true CN101710146A (en) 2010-05-19
CN101710146B CN101710146B (en) 2011-08-24

Family

ID=42402943

Family Applications (1)

Application Number Title Priority Date Filing Date
CN200910155448XA Expired - Fee Related CN101710146B (en) 2009-12-14 2009-12-14 Voltage measurement apparatus

Country Status (1)

Country Link
CN (1) CN101710146B (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103777051A (en) * 2011-12-30 2014-05-07 孙笑声 Voltage measuring instrument
RU2805131C1 (en) * 2021-03-30 2023-10-11 Федеральное государственное бюджетное учреждение "Главный научный метрологический центр" Министерства обороны Российской Федерации Method for transmitting unit of alternating electrical voltage from reference converter to calibrators and voltmeters for a number of frequencies

Family Cites Families (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2478966A (en) * 1948-03-29 1949-08-16 Weston Electrical Instr Corp Dual purpose voltmeter range attenuator
US3284709A (en) * 1962-01-17 1966-11-08 American Gage & Mach Precision voltmeter using selectable series connected, digitally related resistors which are calibrated to read the value of input signal
US3781679A (en) * 1973-02-05 1973-12-25 T Matsumoto Logarithmic recording system
US4143317A (en) * 1976-09-27 1979-03-06 Outboard Marine Corporation Multiple range peak reading voltmeter
CN1425923A (en) * 2001-12-08 2003-06-25 骆乃光 Multiple measuring range DC potential difference meter
CN201035067Y (en) * 2007-04-03 2008-03-12 张春雷 Three range portable potential difference meter
CN201017004Y (en) * 2007-04-03 2008-02-06 方勇 Three-range potentiometer
CN201035085Y (en) * 2007-05-29 2008-03-12 张春雷 Voltage measurement device with High distinguishability
CN201054007Y (en) * 2007-05-29 2008-04-30 方李 Voltage measuring instrument with multiple ranges
CN201681113U (en) * 2009-12-14 2010-12-22 骆晓英 Voltage measuring apparatus

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103777051A (en) * 2011-12-30 2014-05-07 孙笑声 Voltage measuring instrument
RU2805131C1 (en) * 2021-03-30 2023-10-11 Федеральное государственное бюджетное учреждение "Главный научный метрологический центр" Министерства обороны Российской Федерации Method for transmitting unit of alternating electrical voltage from reference converter to calibrators and voltmeters for a number of frequencies

Also Published As

Publication number Publication date
CN101710146B (en) 2011-08-24

Similar Documents

Publication Publication Date Title
CN202443049U (en) Voltage measuring instrument with three measuring ranges
CN103760397A (en) Two-measuring range voltage measuring instrument
CN201555882U (en) Multi-range voltage measuring device
CN101710145B (en) Multi-range voltage measuring device
CN101710144B (en) Voltage measurement apparatus
CN201681113U (en) Voltage measuring apparatus
CN101710146B (en) Voltage measurement apparatus
CN201555878U (en) Multi-range voltage measuring instrument
CN201035086Y (en) Voltage measurement instrument
CN201681114U (en) Voltage measuring instrument
CN101710140B (en) Two-range potential difference meter
CN201555877U (en) Four-range voltage measuring instrument
CN201689124U (en) Two-range potentiometer
CN201555876U (en) Potential difference meter with three measuring discs
CN103777049A (en) Voltage measuring instrument
CN202443050U (en) Voltage measuring instrument with two measuring ranges
CN201681111U (en) Direct current potential difference meter with two measuring ranges
CN101710142B (en) Two-range direct current potential difference meter
CN101354410A (en) DC potential difference meter using slide wire tray
CN101710141B (en) Potential difference meter with three measuring panels
CN201681112U (en) Three-range potential difference meter
CN101718805B (en) Multi-range voltage-measuring instrument
CN101726645B (en) Three-range potential difference meter
CN101710143B (en) Four-range voltage measuring meter
CN101710139B (en) Two-range portable potential difference meter

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant
ASS Succession or assignment of patent right

Owner name: HANGZHOU TIANYE COMMUNICATION EQUIPMENT CO., LTD.

Free format text: FORMER OWNER: LUO XIAOYING

Effective date: 20120524

C41 Transfer of patent application or patent right or utility model
COR Change of bibliographic data

Free format text: CORRECT: ADDRESS; FROM: 311404 HANGZHOU, ZHEJIANG PROVINCE TO: 311401 HANGZHOU, ZHEJIANG PROVINCE

TR01 Transfer of patent right

Effective date of registration: 20120524

Address after: 311401 Zhejiang province Fuyang City Fuchun Street Yingbin Road No. 221

Patentee after: Hangzhou Tianye Communication Equipment Co., Ltd.

Address before: Hangzhou City, Zhejiang province 311404 Fuyang Dayuan bamboo incense shop

Patentee before: Luo Xiaoying

CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20110824

Termination date: 20171214

CF01 Termination of patent right due to non-payment of annual fee