For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

Similar documents
For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

V P N. Voltage transducer DVL 1000 = 1000 V

V P N. Voltage transducer DVM 4200 = 4200 V

V P N. Voltage transducer DVM 2000-B = 2000 V

Unipolar voltage - Current output 4-20 ma Ref: DVL 50-UI, DVL 150-UI, DVL 250-UI, DVL 500-UI, DVL 750-UI, DVL 1000-UI, DVL 1500-UI

Ref: HLSR 10-P/SP3, HLSR 20-P/SP3, HLSR 40-P/SP3, HLSR 50-P/SP3

= 1000 V. Voltage transducer DVC 1000-P V P N

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

Ref: HLSR 10-SM, HLSR 16-SM, HLSR 20-SM, HLSR 32-SM, HLSR 40-SM, HLSR 50-SM

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

Ref: HLSR 10-SM/SP33, HLSR 20-SM/SP33, HLSR 32-SM/SP33, HLSR 40-P/SP33, HLSR 50-SM/SP33

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of voltage: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

Ref: HO 50-S/SP33, HO 100-S/SP33, HO 150-S/SP33, HO 200-S/SP33, HO 250-S/SP33

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of voltage: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

HO 50-S/SP30, HO 100-S/SP30, HO 150-S/SP30, HO 200-S/SP30, HO 250-S/SP30 and HO 200-S/SP31

I PN. Ref: HO 50-S, HO 100-S, HO 150-S, HO 200-S, HO 240-S, HO 250-S

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

= 600 V. Voltage transducer DVM 600 V PN

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary circuit and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of voltage: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit.

Voltage transducer DVL 50

I Pr I P I OUT R L. Applications. Standards

For ultra-high precision measurement of current: DC, AC, pulsed..., with galvanic separation between primary and secondary. Applications.

I P. /dt. di p V S Applications. Standards 1) IEC : 2007; IEC : ) IEC : 2016; IEC : 2017

For ultra-high precision measurement of current: DC, AC, pulsed..., with galvanic separation between primary and secondary. Applications.

For the electronic measurement of voltage: DC, AC, pulsed..., with galvanic isolation between the primary and the secondary circuit.

For ultra-high precision measurement of current: DC, AC, pulsed..., with galvanic separation between primary and secondary. Applications.

For the electronic measurement of current: DC, AC, pulsed..., with galvanic isolation between the primary and the secondary circuit.

I P. /dt. di p V S+ Applications. Standards. 1) IEC ed1.0: 2007; IEC : ed1.0: 2012

For ultra-high precision measurement of current: DC, AC, pulsed..., with galvanic separation between primary and secondary. Applications.

Current Transducer CTSR 1-P = 1A

For ultra-high precision measurement of current: DC, AC, pulsed..., with galvanic separation between primary and secondary. Applications.

I P I OUT R L. Applications. Standards. N 52.D ; Page 1/8

High Performance Current Transducer ITL 900-T = A

For the electronic measurement of voltage: DC, AC, pulsed..., with galvanic isolation between the primary and the secondary circuit.

For ultra-high precision measurement of current: DC, AC, pulsed..., with galvanic separation between primary and secondary. Applications.

For the electronic measurement of voltage: DC, AC, pulsed..., with galvanic isolation between the primary and the secondary circuit.

High Performance Current Transducer IT 200-S ULTRASTAB = A. ε L

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY HAH3DR 1100-S07

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY HAH3DR 800-S03/SP2

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY HAH1DRW 300-S

I PM. Current Transducer ITZ 5000-SB FLEX ULTRASTAB = 5000 A

SPECIFICATION Item no.: T60404-N4646-X764

DS400ID. Specification highlights Symbol Unit Min Typ Max. Features. Applications: Linearity error maximum 1.5 ppm. MPS for particles accelerators

DM1200ID. Specification highlights Symbol Unit Min Typ Max. Applications: Features. Power measurement and power analysis

DS2000UBLA-10V. Features. Applications: 20 ppm linearity. MPS for particles accelerators. 15 ppm offset. Gradient amplifiers for MRI devices

DS200ID-CD100. Specification highlights Symbol Unit Min Typ Max. Features. Applications: Linearity error maximum 2 ppm. MPS for particles accelerators

DS2000ICLA. Specification highlights Symbol Unit Min Typ Max. Features. Applications: 1 ppm linearity. MPS for particles accelerators.

The four pin one (J1) makes possible to supply the board and access to the output voltage easily. It has the following pin-out:

SPECIFICATION Item No.: T60404-P4640-X100

SPECIFICATION Item no.: T60404-N4646-X400

DL2000ID. Specification highlights Symbol Unit Min Typ Max. Features. Applications: 1 ppm linearity. MPS for particles accelerators.

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY HSW S01

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY DHAB S/157

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY DHAB S/124

DQ600ID. Specification highlights Symbol Unit Min Typ Max. Features. Applications: Linearity error maximum 1 ppm. MPS for particles accelerators

AUTOMOTIVE CURRENT TRANSDUCER HC2F100-SN CLIPS

Residual Current Monitoring Unit RCMU101SN-4P16C

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY HAH3DR 800-S0C

CMS2005 MagnetoResistive Current Sensor (I PN

Residual Current Monitoring Unit RCMU101SN-4P16

AUTOMOTIVE CURRENT TRANSDUCER HAH3DR 700-S00

DS10000ULFS-10V/10kA

SPECIFICATION Item no.: T60404-N4646-X762

SPECIFICATION Item No.: T60404-P4640-X102

AUTOMOTIVE CURRENT TRANSDUCER HAH3DR 700-S02

AUTOMOTIVE CURRENT TRANSDUCER OPEN LOOP TECHNOLOGY HAH1DR 200-S

SPECIFICATION Item no.: T60404-N4646-X663

SPECIFICATION Item no.: T60404-N4646-X651

SPECIFICATION Item no.: T60404-N4646-X662

AUTOMOTIVE CURRENT TRANSDUCERS OPEN LOOP TECHNOLOGY

CMS2050 MagnetoResistive Current Sensor (I PN

AUTOMOTIVE CURRENT TRANSDUCER HAH1DR 300-S

AUTOMOTIVE CURRENT TRANSDUCER HC6F600-S

AUTOMOTIVE CURRENT TRANSDUCER HC6H1000-S

AUTOMOTIVE CURRENT SENSOR HC6H500-S. Datasheet

AUTOMOTIVE CURRENT SENSOR HC6H300-S

CDS4025 MagnetoResistive Current Sensor (I PN

AUTOMOTIVE CURRENT TRANSDUCER HC6F700-S

HC2F100-SN CLIPS AUTOMOTIVE CURRENT TRANSDUCER HC2F100-SN CLIPS. Datasheet

SPECIFICATION Item no.: T60404-N4646-X410

Current transducer FHS 40-P/SP600

SPECIFICATION Item no.: T60404-N4646-X100

Transcription:

Current Transducer LF 2010-S/SPA0 I P N = 2000 A For the electronic measurement of current: DC, AC, pulsed..., with galvanic separation between the primary and the secondary circuit. Features Bipolar and insulated current measurement Current output Closed loop (compensated) current transducer Panel mounting. Special feature Connection to secondary circuit on Molex Mini-Fit Jr. 5566 - gold-plated pins Internal shield connected at U C. Advantages High accuracy Very low offset drift over temperature. Applications Windmill inverters Test and measurement AC variable speed and servo motor drives Static converters for DC motor drives Battery supplied applications Uninterruptible Power Supplies (UPS) Switched Mode Power Supplies (SMPS) Power supplies for welding applications. Standards IEC 61800-5-1: 2007 IEC 62109-1: 2010 IEC 61010-1: 2010 IEC 61800-1: 2004 IEC 61800-2: 2015 IEC 61800-3: 2011 UL 508: 2013. Application Domain Industrial. N 97.J9.69.0A0.0 Page 1/7

Absolute maximum ratings Parameter Symbol Unit Value Maximum supply voltage (working) ( 40 85 C) U C max V ±25.2 Maximum primary conductor temperature T B max C 100 Maximum steady state primary nominal current ( 40 85 C) I P N max A 2000 Stresses above these ratings may cause permanent damage. Exposure to absolute maximum ratings for extended periods may degrade reliability. UL 508: Ratings and assumptions of certification File # E189713 Volume: 2 Section: 9 Standards USR indicates investigation to the Standard for Industrial Control Equipment UL 508, Edition 17. CNR indicates investigation to the Canadian standard for Industrial Control Equipment CSA C22.2 No. 14-13, Edition 11. Ratings Parameter Symbol Unit Value Primary involved potential V AC/DC 1500 Ambient operating temperature T A C 85 Primary current I P A 2000 Secondary supply voltage U C V DC 0... ±24 Secondary current I S ma 0... 400 Conditions of acceptability When installed in the end-use equipment, with primary feedthrough potential involved of 1500 V AC/DC, consideration shall be given to the following: Marking 1 - These products must be mounted in a suitable end-use enclosure. 2 - The secondary pin terminals have not been evaluated for field wiring. 3 - Low voltage control circuit shall be supplied by an isolating source (such as transformer, optical isolator, limiting impedance or electro-mechanical relay). 4 - Based on the temperature test performed on all Series, the primary bar or conductor shall not exceed 100 C in the end use application. 5 - LF 2010-S Series shall be used in a pollution degree 2. Only those products bearing the UL or UR Mark should be considered to be Listed or Recognized and covered under UL s Follow-Up Service. Always look for the Mark on the product. Page 2/7

Insulation coordination Parameter Symbol Unit Value Comment RMS voltage for AC insulation test, 50 Hz, 1 min U d kv 6 Impulse withstand voltage 1.2/50 μs Û W kv 23.2 According to IEC 61800-5-1 Partial discharge test voltage (q m < 10 pc) U t kv 1.65 Test carried out with a non insulated bar and completely filling the primary hole. According to IEC 61800-5-1 Insulation resistance R INS MΩ 200 measured at 500 V DC Comparative tracking index CTI - 600 Rated insulation RMS voltage, reinforced insulation Rated insulation RMS voltage, basic insulation U b V 1000 U b V 3600 According to IEC 61800-5-1 CAT III, PD2, (table value) Case material - - V0 According to UL 94 Clearance and creepage See dimensions drawing on page 7 Environmental and mechanical characteristics Parameter Symbol Unit Min Typ Max Comment Ambient operating temperature T A C 40 85 Ambient storage temperature T S C 50 90 Mass m g 1500 Page 3/7

Electrical data At T A = 25 C, ±U C = ±24 V, R M = 1 Ω, unless otherwise noted. Lines with a * in the conditions column apply over the 40 85 C ambient temperature range. Parameter Symbol Unit Min Typ Max Conditions Primary nominal RMS current I P N A 2000 * Primary current, measuring range I P M A 4500 4500 * With ±U C = ±22.8 V; T A = 85 C; R M = 1 Ω For other conditions, see figure 1 Measuring resistance R M Ω 0 * Max value of R M is given in figure 1 Secondary nominal RMS current I S N A 0.4 * Resistance of secondary winding R S Ω 18.6 R S (T A ) = R S (1 + 0.004 (T A + temp 25)) Estimated temperature increase @ I P N is temp = 15 C Secondary current I S A 0.90 0.90 * Number of secondary turns N S 5000 Theoretical sensitivity G th ma/a 0.2 Supply voltage U C V ±14.25 ±25.2 * Current consumption @ I P N = 0 I C ma 42 48 ±U C = ±15 V ±U C = ±24 V Offset current, referred to primary I O A 1 1 Temperature variation of I O, referred to primary Magnetic offset current after 3 I P N referred to primary I O T A 1 1 * I O M A ±1 Sensitivity error ε G % 0.15 0.15 * Linearity error ε L % of I P N 0.1 0.1 * Overall accuracy at I P N X G % of I P N 0.2 0.3 0.2 0.3 * 25 70 85 C 40 85 C Output RMS noise current, referred to primary ma 90 1 Hz to 20 khz (see figure 4) Reaction time @ 10 % of I P N t ra µs < 0.5 0 to 1 ka, 200 A/µs Step response time to 90 % of I P N t r µs < 0.5 0 to 1 ka, 200 A/µs Frequency bandwidth BW khz 150 3 db, small signal bandwidth Definition of typical, minimum and maximum values Minimum and maximum values for specified limiting and safety conditions have to be understood as such as well as values shown in typical graphs. On the other hand, measured values are part of a statistical distribution that can be specified by an interval with upper and lower limits and a probability for measured values to lie within this interval. Unless otherwise stated (e.g. 100 % tested ), the LEM definition for such intervals designated with min and max is that the probability for values of samples to lie in this interval is 99.73 %. For a normal (Gaussian) distribution, this corresponds to an interval between 3 sigma and +3 sigma. If typical values are not obviously mean or average values, those values are defined to delimit intervals with a probability of 68.27 %, corresponding to an interval between sigma and +sigma for a normal distribution. Typical, maximal and minimal values are determined during the initial characterization of the product. Page 4/7

Typical performance characteristics R M max (Ω) 80 70 22.8 V & 85 C 60 14.25 V & 85 C 50 40 30 20 10 0 1000 1500 2000 2500 3000 3500 4000 4500 5000 I P (A) 0 15 Input 400 A/div Output 80 ma/div 30 45 Time (µs) Figure 1: Maximum measuring resistance Figure 2: Typical step response (0 to 2 ka, 400 A/µs) U C min 0.6 V R M max = N S R I S max P -80-85 10 0 Device: LF2010-test-Config-(Cint,-Cpzc)-=-(0,-5) e no (dbv RMS/Hz 1/2 ) -90-95 -100-105 -110-115 -120-125 -130 10 0 10 1 10 2 10 3 10 4 10 5 10 6 f c (Hz) (A RMS) 10-1 10-2 10-3 10-4 10-5 10 0 10 1 10 2 10 3 10 4 10 5 10 6 f c (Hz) Figure 3: Typical output noise voltage spectral density e no with R M = 100 Ω Figure 4: Typical total output RMS noise current with R M = 100 Ω (primary referred) To calculate the noise in a frequency band f1 to f2, the formula is: (f1 to f2) = (f2) 2 (f1) 2 with (f) read from figure 4 (typical, RMS value). Example: What is the noise from 1 to 10 6 Hz? Figure 4 gives (1 Hz) = 0.2 ma and (10 6 Hz) = 400 ma. The output RMS noise current is therefore: (400 10 3 ) 2 (0.2 10 3 ) 2 = 400 ma referred to primary Page 5/7

Typical performance characteristics continued Gain (db) 6 3 0-3 -6-9 -12-15 -18-21 -24 0.01 0.1 1 10 100 1000 Frequency (khz) Phase ( ) 90 45 0-45 -90 0.01 0.1 1 10 100 1000 Frequency (khz) Figure 5: Typical frequency response, small signal bandwidth Performance parameters definition Sensitivity and linearity To measure sensitivity and linearity, the primary current (DC) is cycled from 0 to I P M, then to I P M and back to 0 (equally spaced I P M /10 steps). The sensitivity G is defined as the slope of the linear regression line for a cycle between ±I P M. The linearity error ε L is the maximum positive or negative difference between the measured points and the linear regression line, expressed in % of the maximum measured value. Magnetic offset The magnetic offset I O M is the change of offset after a given current has been applied to the input. It is included in the linearity error as long as the transducer remains in its measuring range. Electrical offset The electrical offset current I O E is the residual output current when the input current is zero. Overall accuracy The overall accuracy X G is the error at ±I P N, relative to the rated value I P M. It includes all errors mentioned above. Response and reaction times The response time t r and the reaction time t ra are shown in the next figure. Both slightly depend on the primary current di/dt. They are measured at nominal current. 100 % 90 % I P 10 % t r I S t ra t Figure 6: Response time t r and reaction time t ra Page 6/7

Dimensions (in mm) d Cl d Cp Connection I P I S R M 0 V +U C U C U C Mechanical characteristics General tolerance Transducer fastening Vertical position ±0.5 mm 4 slotted holes 6.5 mm 4 M6 steel screws Recommended fastening torque 5.5 N m (±10 %) Primary through-hole 57 mm Or 60 mm 20 mm Transducer fastening Horizontal position 4 slotted holes 6.5 mm 4 M6 steel screws Recommended fastening torque 5.5 N m (±10 %) Connection of secondary Molex Mini-Fit Jr. 5566 Gold-plated pins Remarks I S is positive when I P flows in the direction of arrow. The secondary cables also have to be routed together all the way. Installation of the transducer is to be done without primary current or secondary voltage present. Maximum temperature of primary conductor: see page 2. Installation of the transducer must be done unless otherwise specified on the datasheet, according to LEM Transducer Generic Mounting Rules. Please refer to LEM document N ANE120504 available on our Web site: Products/Product Documentation. Safety This transducer must be used in limited-energy secondary circuits according to IEC 61010-1. This transducer must be used in electric/electronic equipment with respect to applicable standards and safety requirements in accordance with the manufacturer s operating instructions. Caution, risk of electrical shock When operating the transducer, certain parts of the module can carry hazardous voltage (e.g. primary connection, power supply). Ignoring this warning can lead to injury and/or cause serious damage. This transducer is a build-in device, whose conducting parts must be inaccessible after installation. A protective housing or additional shield could be used. Main supply must be able to be disconnected. Page 7/7