PXIE-SMU5100 NI | Alldatasheet
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PXIe-SMU5100 BundleExpandable PXI bundle based on PXIe-4139 SMU, ±60 V, ±3 A DC, ±10 A Pulsed, 20 W DC, 100 fA SpecificationsPXIe-1083 and PXIe-4139 (20 W DC)
PXI SMU BundleIn the BoxPXIe-SMU5100 BundleBundle P/N: 867110-01 Recommended Software Table of ContentsThis document combines the PDFs of this bundle together. The page numbers in the table of contents correspond to the page number of PDF the component’s documentation begins.PXIe-1083 Specifications………………………………………………………………………….PXIe-4139 Specifications…………………………………………………………………………. Test WorkflowP/N: 788509-35 Test Workflow is a bundle of select NI software featuring engineering-specific tools that help test professionals accomplish anything from their day-to-day work to overcoming their most challenging obstacles.Test Workflow includes:•LabVIEW -a graphical programming environment engineers use to develop automated research, validation, and production test systems.•InstrumentStudio-an application software that provides an integrated approach to interactive PXI measurements.•TestStand-a test executive software that accelerates system development and deployment for engineers in validation and production.•And more NI Software! 316 PXIe-4139 (SMU) PXIe-1083(5-Slot PXIe Chassis) Accessories:•Thunderbolt cable•Power cable, US
This document contains specifications for the PXIe-1083 chassis. Electrical The following section provides information about the PXIe-1083 AC input and DC output. AC Input Input rating 100 VAC to 240 VAC, 50 Hz/60 Hz, 6 A to 3 A Operating voltage range1 90 VAC to 264 VAC Nominal input frequency 50 Hz/60 Hz Operating frequency range1 47 Hz to 63 Hz Efficiency 78% typical Over-current protection Internal fuse in line Main power disconnect The AC power cable provides main power disconnect. Do not position the equipment so that it is difficult to disconnect the power cord. The front-panel power switch causes the internal chassis power supply to provide DC power to the PXI Express backplane. Caution Disconnect power cord to completely remove power. © National Instruments 3 PXIe-1083 Specifications
DC output characteristics of the PXIe-1083. Maximum total available power for the PXIe-1083 is 293 W. The maximum combined power available on +3.3 V and +5 V is 180 W. The maximum power available for each Thunderbolt port is 15 W (5 V/3 A). Table 1. Backplane Slot Current Capacity Note PCI V(I/O) pins in Hybrid Peripheral Slots are connected to +5 V. temperature considerations at 58 W.
Module cooling Forced air circulation (positive pressurization) through one 150 CFM fan Module slot airflow direction Bottom of module to top of module Module intake Bottom of chassis Module exhaust Top, right side of chassis Slot cooling capacity 58 W; slot 6 supports 58 W cooling with high fan mode Power supply cooling Forced air circulation through integrated fans Power supply intake Front and left side chassis Power supply exhaust Rear of chassis Minimum chassis cooling clearances Above 44.45 mm (1.75 in.) Rear 44.45 mm (1.75 in.) Sides 44.45 mm (1.75 in.) Below Rack 44.45 mm (1.75 in.) Desktop 25.4 mm (1.00 in.) © National Instruments 5 PXIe-1083 Specifications
Maximum altitude 2,000 m (6,560 ft.), 800 mbar (at 25 °C ambient, high fan mode) Pollution Degree 2 Indoor use only. Operating Environment Ambient temperature range When all peripheral modules require ≤38 W cooling capacity per slot 0 °C to 50 °C (IEC 60068-2-1 and IEC 60068-2-2.)2 Meets MIL-PRF-28800F Class 3 low temperature limit and high temperature limit. When any peripheral module requires >38 W cooling capacity per slot 0 °C to 40 °C (IEC 60068-2-1 and IEC 60068-2-2.)2 Meets MIL-PRF-28800F Class 3 low temperature limit and MIL- PRF-28800F Class 4 high temperature limit. Relative humidity range 20% to 80%, noncondensing Storage Environment Ambient temperature range –40 °C to 71 °C (IEC-60068-2-1 and IEC-60068-2-2.)[3] Meets MIL- PRF-28800F Class 3 limits. Relative humidity range 10% to 95%, noncondensing ni.com6 PXIe-1083 Specifications
Operational shock 30 g peak, half-sine, 11 ms pulse (IEC-60068-2-27.)3 Meets MIL- PRF-28800F Class 2 limits. Operational random vibration 5 to 500 Hz, 0.3 grms Non-operating vibration 5 to 500 Hz, 2.4 grms (IEC 60068-2-64.)3 Non-operating test profile exceeds the requirements of MIL-PRF-28800F, Class 3. Acoustic Emissions Sound Pressure Level (at Operator Position) (Tested in accordance with ISO 7779. Meets MIL-PRF-28800F requirements.)
38 W Profile
Auto fan (up to 30 °C ambient) 33.7 dBA High fan 50.8 dBA
58 W Profile
Auto fan (up to 30 °C ambient) 54.7 dBA High fan 55.3 dBA Sound Power Level © National Instruments 7 PXIe-1083 Specifications
Auto fan (up to 30 °C ambient) 44.9 dBA High fan 60.3 dBA Auto fan (up to 30 °C ambient) 63.4 dBA High fan 64.2 dBA Note The protection provided by the PXIe-1083 can be impaired if it is used in a manner not described in this document. Safety Compliance Standards This product is designed to meet the requirements of the following electrical equipment safety standards for measurement, control, and laboratory use: ■ IEC 61010-1, EN 61010-1 ■ UL 61010-1, CSA C22.2 No. 61010-1 Note For safety certifications, refer to the product label or the Product Certifications and Declarations section. EMC Guidelines This product was tested and complies with the regulatory requirements and limits for electromagnetic compatibility (EMC) stated in the product specifications. These requirements and limits provide reasonable protection against harmful interference when the product is operated in the intended operational electromagnetic environment. ni.com8 PXIe-1083 Specifications
This product is intended for use in industrial locations. However, harmful interference may occur in some installations, when the product is connected to a peripheral device or test object, or if the product is used in residential areas. To minimize interference with radio and television reception and prevent unacceptable performance degradation, install and use this product in strict accordance with the instructions in the product documentation. Furthermore, any changes or modifications to the product not expressly approved by NI could void your authority to operate it under your local regulatory rules. EMC Notices Refer to the following notices for cables, accessories, and prevention measures necessary to ensure the specified EMC performance. Notice For EMC declarations and certifications, and additional information, refer to the Product Certifications and Declarations section. Notice Changes or modifications to the product not expressly approved by NI could void your authority to operate the product under your local regulatory rules. Notice Operate this product only with shielded cables and accessories. Electromagnetic Compatibility Standards This product meets the requirements of the following EMC standards for electrical equipment for measurement, control, and laboratory use: ■ EN 61326-1 (IEC 61326-1): Class A emissions; Basic immunity ■ EN 55011 (CISPR 11): Group 1, Class A emissions © National Instruments 9 PXIe-1083 Specifications
■ AS/NZS CISPR 11: Group 1, Class A emissions Note Group 1 equipment (per CISPR 11) is any industrial, scientific, or medical equipment that does not intentionally generate radio frequency energy for the treatment of material or inspection/analysis purposes. Note In Europe, Canada, Australia, and New Zealand (per CISPR 11) Class A equipment is intended for use in nonresidential locations. CE Compliance This product meets the essential requirements of applicable European Directives, as follows: ■ 2014/35/EU; Low-Voltage Directive (safety) ■ 2014/30/EU; Electromagnetic Compatibility Directive (EMC) ■ 2011/65/EU; Restriction of Hazardous Substances (RoHS) Product Certifications and Declarations Refer to the product Declaration of Conformity (DoC) for additional regulatory compliance information. To obtain product certifications and the DoC for NI products, visit ni.com/product-certifications, search by model number, and click the appropriate link. Environmental Management NI is committed to designing and manufacturing products in an environmentally responsible manner. NI recognizes that eliminating certain hazardous substances from our products is beneficial to the environment and to NI customers. For additional environmental information, refer to the Engineering a Healthy Planet web page at ni.com/environment. This page contains the environmental ni.com10 PXIe-1083 Specifications
regulations and directives with which NI complies, as well as other environmental information not included in this document. EU and UK Customers
- Waste Electrical and Electronic Equipment (WEEE)—At the end of the product life cycle, all NI products must be disposed of according to local laws and regulations. For more information about how to recycle NI products in your region, visit ni.com/ environment/weee. 电子信息产品污染控制管理办法(中国 RoHS)
- 5 40e 中国 RoHS— NI 符合中国电子信息产品中限制使用某些有害物 质指令(RoHS)。关于 NI 中国 RoHS 合规性信息,请登录 ni.com/environment/ rohs_china。(For information about China RoHS compliance, go to ni.com/ environment/rohs_china.) Backplane Size 3U-sized; 5 peripheral slots. Compliant with IEEE 1101.10 mechanical packaging. PXI Express Specification compliant. Accepts both PXI Express and CompactPCI (PICMG 2.0 R 3.0) 3U modules. Backplane bare-board material UL 94 V-0 Recognized Backplane connectors Conforms to IEC 917 and IEC 1076-4-101, UL 94 V-0 rated System Synchronization Clocks
10 MHz System Reference Clock: PXI_CLK10
© National Instruments 11 PXIe-1083 Specifications
Maximum slot-to-slot skew 250 ps Accuracy ±25 ppm max (guaranteed over the operating temperature range) Maximum jitter 5 ps RMS phase-jitter (10 Hz–1 MHz range) Duty-factor 45% to 55% Unloaded signal swing 3.3 V ±0.3 V Note For other specifications, refer to the PXI-1 Hardware Specification.
100 MHz System Reference Clock: PXIe_CLK100 and PXIe_SYNC100
Maximum slot-to-slot skew 100 ps Accuracy ±25 ppm max (guaranteed over the operating temperature range) Maximum jitter 3 ps RMS phase-jitter (10 Hz to 12 kHz range), 2 ps RMS phase-jitter (12 kHz to 20 MHz range) Duty-factor for PXIe_CLK100 45% to 55% Absolute differential voltage (When terminated with a 50 Ω load to 1.30 V or Thévenin equivalent) 400 mV to 1000 mV Note For other specifications, refer to the PXI-5 PXI Express Hardware Specification. ni.com12 PXIe-1083 Specifications
for installing the optional rack mount kits. Figure 1. PXIe-1083 Chassis Dimensions (Front)
Figure 2. PXIe-1083 Chassis Dimensions (Side) Figure 3. PXIe-1083 Chassis Dimensions (Bottom) 1 The operating range is guaranteed by design.
2 This product meets the requirements of the environmental standards for electrical
equipment for measurement, control, and laboratory use.
3 This product meets the requirements of the environmental standards for electrical
equipment for measurement, control, and laboratory use. © 2022 National Instruments Corporation.
These specifications apply to the PXIe-4139. Note In this document, the PXIe-4139 (40W) and PXIe-4139 (20W) are referred to inclusively as the PXIe-4139. The information in this document applies to all versions of the PXIe-4139 unless otherwise specified. To determine which version of the module you have, locate the device name in one of the following places: ■ In MAX—The PXIe-4139 (40W) shows NI PXIe-4139 (40W), and the PXIe-4139 (20W) shows as NI PXIe-4139. ■ Device front panel—The PXIe-4139 (40W) shows PXIe-4139 40W System SMU, and the PXIe-4139 (20W) shows NI PXIe-4139 Precision System SMU on the front panel. Definitions Warranted specifications describe the performance of a model under stated operating conditions and are covered by the model warranty. Characteristics describe values that are relevant to the use of the model under stated operating conditions but are not covered by the model warranty. ■ Typical specifications describe the performance met by a majority of models. ■ Nominal specifications describe an attribute that is based on design, conformance testing, or supplemental testing. ■ Measured specifications describe the measured performance of a representative model. Specifications are Warranted unless otherwise noted. © National Instruments 3 PXIe-4139 Specifications
Specifications are valid under the following conditions unless otherwise noted. Table 1. Current Source and Sink Ranges
Figure 1. Quadrant Diagram for PXIe-4139 (40W)
50 V, 10 A
50 V, –10 A
cycle limits for a particular operating point, refer to Pulsed Operation. Pulse Parameters and Optimizing Slew Rate using NI SourceAdapt.
Figure 2. Quadrant Diagram for PXIe-4139 (20W)
4 V, –3 A
6.6 V, 3 A
20 V, –10 A
50 V, –4 A
50 V, 10 A20 V, 10 A
200 W –200 W
Table 2. DC Sourcing & Sinking Power ambient temperature of >45 °C.
Table 3. Voltage Programming and Measurement Accuracy/Resolution Table 4. Current Programming and Measurement Accuracy/Resolution
10 Hz, peak
Figure 1. Voltage Measurement Noise vs. Measurement Aperture, Nominal
60 V Range
6 V Range
2 PLC
Frequency is set to 50 Hz or 60 Hz. Figure 1. Current Measurement Noise vs. Measurement Aperture, Nominal
3 A Range
1 A Range
Frequency is set to 50 Hz or 60 Hz.
Figure 1. Sinking Power vs. Ambient Temperature Derating capacity ≥58 W, ambient temperature derating does not apply. Table 5. Output Resistance Programming Accuracy
1 A 0 to ±5 Ω ±5 Ω to ±infinity
3 A 0 to ±500 mΩ ±500 mΩ to ±infinity
10 A , pulsing
Figure 6. Definition of Pulsing Terminology described by equations in Table 1.
Figure 7. Pulse On-time vs Pulse Current and Pulse Voltage Table 1. Additionally, Equation 6 solves for pulse on time, ton, in terms of On Time and Duty Cycle Parameters for the PXIe-4139 (40W).
Figure 8. Duty Cycle vs Pulse Current and Pulse Voltage Table 1. Additionally, Equation 7 solves for pulse off time, toff, in terms of On Time and Duty Cycle Parameters for the PXIe-4139 (40W). Table 6. PXIe-4139 (40W) Pulse Level Limits
Specification Value Equation estimate the value. (Equation 1) If Ipulse ≤ 3 A tonMax = 167 s — Maximum pulse energy, EpulseMax[12] 0.4 J Epulse = Vpulse * Ipulse * ton , where Epulse < EpulseMax (Equation 2) Maximum duty cycle, DMax[13] Calculate using the equation or refer to Figure 2 to estimate the value. DMax = (3.68 A)2 − |Ibias|2 (Equation 3) Minimum pulse cycle time, tcycleMin 5 ms tcycle = ton + toff , where tcycle > tcycleMin (Equation 4) Maximum cycle average power, PCAMax[14] ≥58 W Slot Cooling Capacity Chassis 40 W PCA = Vpulse * Ipulse * ton + Vbias * Ibias * toff ton + toff , where PCA < PCAMax (Equation 5) <58 W Slot Cooling Capacity Chassis 10 W Note Software will not allow settings that violate these limiting equations and will generate an error. ni.com14 PXIe-4139 Specifications
Extended Range Pulsing for PXIe-4139 (20W)[15] Bias level limits Maximum voltage 60 V Maximum current 3 A Pulse level limits Maximum voltage 50 V Maximum current 10 A Maximum on time[16] 1 ms Minimum pulse cycle time 5 ms Energy 0.2 J Maximum cycle average power 10 W Maximum duty cycle 5% Transient Response and Settling Time Transient response <70 μs to recover within 0.1% of voltage range after a load current change from 10% to 90% of range, device configured for fast transient response, typical Maximum slew rate[17], [18] 0.7 A/μs Settling time[19] © National Instruments 15 PXIe-4139 Specifications
Device configured for local sense 100 μV per mA of output load change (measured between output channel terminals), typical Device configured for remote sense Load regulation effect included in voltage accuracy specifications Current, device configured for local or remote sense Load regulation effect included in current accuracy specifications Related reference ■ Voltage ■ Current Measurement and Update Timing Characteristics Available sample rates[23] (1.8 MS/s)/N where N = 1, 2, 3, … 224, nominal Sample rate accuracy Equal to PXIe_CLK100 accuracy, nominal Maximum measure rate to host 1.8 MS/s per channel, continuous, nominal Maximum source update rate[24] Sequence mode 100,000 updates/s (10 μs/update), nominal Timed output mode 80,000 updates/s (12.5 μs/update), nominal Input trigger to © National Instruments 17 PXIe-4139 Specifications
Source event delay 10 μs, nominal Source event jitter 1 μs, nominal Measure event jitter 1 μs, nominal Shutdown[25] 100 μs, typical Pulse mode timing and accuracy[26] Minimum pulse on time[27] PXIe-4139 (40W)[28] 10 μs, nominal PXIe-4139 (20W) 50 μs, nominal Minimum pulse off time[29] 50 μs, nominal Pulse on time or off time programming resolution 100 ns, nominal Pulse on time or off time programming accuracy ±5 μs, nominal Pulse on time or off time jitter 1 μs, nominal Remote Sense Voltage accuracy Add (3 ppm of voltage range + 11 µV) per volt of HI lead drop plus 1 µV per volt of lead drop per Ω of corresponding sense lead resistance to voltage accuracy specifications. Maximum sense lead resistance 100 Ω ni.com18 PXIe-4139 Specifications
3 V, characteristic
Note Exceeding the maximum lead drop per lead value may result in additional error. Examples of Calculating Accuracy Note Specifications listed in examples are for demonstration purposes only and do not necessarily reflect specifications for this device. Example 1: Calculating 5 °C Accuracy Calculate the accuracy of 900 nA output in the 1 µA range under the following conditions: ambient temperature 28 °C internal device temperature within Tcal ± 5 °C[] self-calibration within the last 24 hours. Solution Since the device internal temperature is within Tcal ± 5 °C and the ambient temperature is within 23 °C ± 5 °C, the appropriate accuracy specification is: 0.03% + 100 pA Calculate the accuracy using the following equation: Accuracy = 900 nA * 0.03 % + 100 pA = 270 pA + 100 pA = 370 pA © National Instruments 19 PXIe-4139 Specifications
Therefore, the actual output will be within 370 pA of 900 nA. Example 2: Calculating 1 °C Accuracy Calculate the accuracy of 900 nA output in the 1 µA range. Assume the same conditions as in Example 1, with the following differences: internal device temperature within Tcal ± 1 °C[] Solution Since the device internal temperature is within Tcal ± 1 °C and the ambient temperature is within 23 °C ± 5 °C, the appropriate accuracy specification is: 0.022% + 40 pA Calculate the accuracy using the following equation: Accuracy = 900 nA * 0.022 % + 40 pA = 238 pA Therefore, the actual output will be within 238 pA of 900 nA. Example 3: Calculating Remote Sense Accuracy Calculate the remote sense accuracy of 500 mV output in the 600 mV range. Assume the same conditions as in Example 2, with the following differences: HI path lead drop 3 V HI sense lead resistance 2 Ω LO path lead drop 2.5 V LO sense lead resistance 1.5 Ω Solution ni.com20 PXIe-4139 Specifications
Since the device internal temperature is within Tcal ± 1 °C and the ambient temperature is within 23 °C ± 5 °C, the appropriate accuracy specification is: 0.016% + 30 μV Since the device is using remote sense, use the remote sense accuracy specification: Add (3 ppm of voltage range + 11 µV) per volt of HI lead drop plus 1 µV per volt of lead drop per Ω of corresponding sense lead resistance to voltage accuracy specifications. Calculate the remote sense accuracy using the following equation: Accuracy = 500 mV * 0.016 % + 30μV+ 600 mV * 3ppm + 11μV 1Vof lead drop * 3V + 1μV V * Ω* 3V * 2 Ω +1μV = 80 μV + 30 μV + 12.8μV * 3 + 6μV + 3.8 μV = 158.2 μV Therefore, the actual output will be within 158.2 µV of 500 mV. Example 4: Calculating Accuracy with Temperature Coefficient Calculate the accuracy of 900 nA output in the 1 µA range. Assume the same conditions as in Example 2, with the following differences: ambient temperature 15 °C Solution Since the device internal temperature is within Tcal ± 1 °C, the appropriate accuracy specification is: 0.022% + 40 pA © National Instruments 21 PXIe-4139 Specifications
Since the ambient temperature falls outside of 23 °C ± 5 °C, use the following temperature coefficient per degree Celsius outside the 23 °C ± 5 °C range: 0.0006% + 4 pA Calculate the accuracy using the following equation: TemperatureVariation = 23°C − 5 °C − 15°C = 3°C Accuracy = 900 nA * 0.022 % + 40 pA+ 900 nA * 0.0006 % + 4pA 1°C * 3°C = 238 pA + 28.2 pA = 266.2 pA Therefore, the actual output will be within 266.2 pA of 900 nA. Examples of Determining Extended Range Pulse Parameters and Optimizing Slew Rate using NI SourceAdapt Note Specifications listed in examples are for demonstration purposes only and do not necessarily reflect specifications for this device. Example 1: Determining Extended Range Pulse On Time and Duty Cycle Parameters for the PXIe-4139 (40W) Determine the extended range pulsing parameters, assuming the following operating point. Output function Pulse Current ni.com22 PXIe-4139 Specifications
Pulse voltage limit, Vpulse 40 V Pulse current level, Ipulse 6 A Bias voltage limit, Vbias 0.1 V Bias current level, Ibias 0 A Pulse on time, ton 1.5 ms Chassis' slot cooling capacity ≥58 W Solution Begin by calculating the pulse power using the following equation. Pulse power = Vpulse * Ipulse = 40 V * 6 A = 240 W For PXIe-4139 (40W), refer to the following figures to identify next steps. First, verify the the region of operation using Figure 1, which shows 240 W is in the extended range pulsing region. Next, refer to Figure 1, which shows the maximum pulse on time, ton, is limited by the maximum pulse energy, EpulseMax. Use the pulse energy equation (Equation 2) from Table 1 to calculate the maximum pulse on time, tonMax(Equation 6). tonMax = EpulseMax Vpulse * Ipulse Eq.6 = 0.4 J
40 V* 6 A
=1.67 ms Next, refer to Figure 2, which shows the maximum duty cycle, D, is limited by the cycle average power, PCA.If the required pulse on time is 1.5 ms and the module is installed in a chassis with slot cooling capacity ≥58 W, use the cycle average power equation (Equation 5) from Table 1 to calculate the minimum pulse off time, toffMin(Equation 7). toffMin = PCA * ton − Vpulse * Ipulse * ton PCA − Vbias * Ibias Eq.7 © National Instruments 23 PXIe-4139 Specifications
= 40 W * 1.5 ms− 40 V * 6 A * 1.5 ms 40 W−0.1 V * 0 A =7.5 ms Finally, verify that the pulse cycle time, tcycle, is greater than or equal to the minimum pulse cycle time, tcycleMin (5 ms). To calculate the pulse cycle time, use the following equation: tcycle = ton + toff (Eq. 4) = 1.5 ms + 7.5 ms =9 ms In this case, the pulse cycle time meets the minimum pulse cycle time specification. Therefore, a 40 V, 6 A pulse with an on time of 1.5 ms and a pulse off time of 7.5 ms is supported, since it fulfills the following criteria: ■ Greater than the minimum pulse on time of 10 μs ■ Equal to the minimum pulse off time of 7.5 ms to meet maximum cycle average power ■ Greater than the minimum pulse cycle time of 5 ms Example 2: Determining Extended Range Pulse On Time and Duty Cycle Parameters for the PXIe-4139 (20W) Determine the extended range pulsing parameters, assuming the following operating point. Output function Pulse Current Pulse voltage limit, Vpulse 40 V Pulse current level, Ipulse 6 A Bias voltage limit, Vbias 0.1 V Bias current level, Ibias 0 A Pulse on time, ton 1.5 ms ni.com24 PXIe-4139 Specifications
Chassis' slot cooling capacity ≥58 W Solution Begin by calculating the pulse power using the following equation. Pulse power = Vpulse * Ipulse = 40 V * 6 A =240 W Since the pulse power of 240 W is within the 500 W region of Figure 2, the maximum configurable on time is 400 μs and maximum duty cycle is 2%. For example, if the required pulse on time is 100 μs, and the required pulse cycle time is 10 ms, calculate the pulse off time and verify the duty cycle using the following equations. toff = tcycle − ton = 10 ms− 100μs = 9.9 ms Duty cycle = ton tcycle * 100% = 1 % Therefore, a pulse with an on time of 100 μs and 1% duty cycle would be supported, since it fulfills the following criteria: ■ Greater than the minimum pulse on time of 50 μs ■ Less than the maximum pulse on time of 400 μs and duty cycle of 2% ■ Greater than the minimum pulse cycle time of 5 ms Example 3: Using NI SourceAdapt to Increase the Slew Rate of the Pulse Determine the appropriate operating parameters and custom transient response settings, assuming the following example parameters. © National Instruments 25 PXIe-4139 Specifications
with minimum rise times and no overshoots or oscillations. Figure 11. 10 μs Pulse Output with Load, Fast Transient Response
overshoot ringing frequency, see Fc in Figure 3, and set the pole-zero ratio to be greater than 1. For reference, the pole frequency and zero frequency are derived by the following equations. Pole frequency = Compensation frequency *Pole‐zero ratio Zero frequency =Compensation frequency Pole‐zero ratio These settings can be accessed through the Transient Response set to Custom: Voltage or Current. Trigger Characteristics Input triggers Types Start, Source, Sequence Advance, Measure, Pulse; Shutdown Sources (PXI trigger lines <0...7>) Polarity Configurable Minimum pulse width 100 ns, nominal Destinations[33] (PXI trigger lines <0...7>) Polarity Active high (not configurable) Pulse width >200 ns, typical Output triggers (events) ni.com28 PXIe-4139 Specifications
Types Source Complete, Sequence Iteration Complete, Sequence Engine Done, Measure Complete, Pulse Complete, Ready for Pulse Destinations (PXI trigger lines <0...7>) Polarity Configurable Pulse width Configurable between 250 ns and 1.6 μs, nominal Protection Output channel protection Overcurrent or overvoltage Automatic shutdown, output disconnect relay opens Overtemperature Automatic shutdown, output disconnect relay opens Safety Voltage and Current Notice The protection provided by the PXIe-4139 can be impaired if it is used in a manner not described in the user documentation. Warning Take precautions to avoid electrical shock when operating this product at hazardous voltages. Caution Isolation voltage ratings apply to the voltage measured between any channel pin and the chassis ground. When operating channels in series or floating on top of external voltage references, ensure that no terminal exceeds this rating. © National Instruments 29 PXIe-4139 Specifications
Attention Les tensions nominales d'isolation s'appliquent à la tension mesurée entre n'importe quelle broche de voie et la masse du châssis. Lors de l'utilisation de voies en série ou flottantes en plus des références de tension externes, assurez-vous qu'aucun terminal ne dépasse cette valeur nominale. DC voltage ±60 V Channel-to-earth ground isolation Continuous 150 VDC, CAT I Withstand 1,000 V RMS, verified by a 5 s withstand Caution Do not connect the PXIe-4139 to signals or use for measurements within Measurement Categories II, III, or IV. Attention Ne connectez pas le PXIe-4139 à des signaux et ne l'utilisez pas pour effectuer des mesures dans les catégories de mesure II, III ou IV. Measurement Category I is for measurements performed on circuits not directly connected to the electrical distribution system referred to as MAINS voltage. MAINS is a hazardous live electrical supply system that powers equipment. This category is for measurements of voltages from specially protected secondary circuits. Such voltage measurements include signal levels, special equipment, limited-energy parts of equipment, circuits powered by regulated low-voltage sources, and electronics. Note Measurement Categories CAT I and CAT O are equivalent. These test and measurement circuits are for other circuits not intended for direct connection to the MAINS building installations of Measurement Categories CAT II, CAT III, or CAT IV. ni.com30 PXIe-4139 Specifications
DC current range ±3 A ±10 A, pulse only Guard Output Characteristics Cable guard Output impedance 2 kΩ, nominal Offset voltage 1 mV, typical Calibration Interval Recommended calibration interval 1 year Power Requirement PXI Express power requirement PXIe-4139 (40W) 3.0 A from the 3.3 V rail and 6.0 A from the 12 V rail PXIe-4139 (20W) 2.5 A from the 3.3 V rail and 2.2 A from the 12 V rail Physical Dimensions 3U, one-slot, PXI Express/CompactPCI Express module Weight © National Instruments 31 PXIe-4139 Specifications
PXIe-4139 (40W) 427 g (15.1 oz) PXIe-4139 (20W) 419 g (14.8 oz) Front panel connectors 5.08 mm (8 position) Environmental Guidelines Notice This product is intended for use in indoor applications only. Notice Cover all empty slots using filler panels. Environmental Characteristics Temperature Operating 0 °C to 55 °C Storage -40 °C to 71 °C Humidity Operating 10% to 90%, noncondensing Storage 5% to 95%, noncondensing Pollution Degree 2 Maximum altitude 2,000 m (800 mbar) (at 25 °C ambient temperature) Shock and Vibration ni.com32 PXIe-4139 Specifications
Operating vibration 5 Hz to 500 Hz, 0.3 g RMS Non-operating vibration 5 Hz to 500 Hz, 2.4 g RMS Operating shock 30 g, half-sine, 11 ms pulse Environmental Standards This product meets the requirements of the following environmental standards for electrical equipment. ■ IEC 60068-2-1 Cold ■ IEC 60068-2-2 Dry heat ■ IEC 60068-2-78 Damp heat (steady state) ■ IEC 60068-2-64 Random operating vibration ■ IEC 60068-2-27 Operating shock Note To verify marine approval certification for a product, refer to the product label or visit ni.com/certification and search for the certificate. Safety Compliance Standards This product is designed to meet the requirements of the following electrical equipment safety standards for measurement, control, and laboratory use: ■ IEC 61010-1, EN 61010-1 ■ UL 61010-1, CSA C22.2 No. 61010-1 Note For safety certifications, refer to the product label or the Product Certifications and Declarations section. © National Instruments 33 PXIe-4139 Specifications
Electromagnetic Compatibility This product meets the requirements of the following EMC standards for electrical equipment for measurement, control, and laboratory use: ■ EN 61326-1 (IEC 61326-1): Class A emissions; Basic immunity ■ EN 55011 (CISPR 11): Group 1, Class A emissions ■ AS/NZS CISPR 11: Group 1, Class A emissions Note Group 1 equipment (per CISPR 11) is any industrial, scientific, or medical equipment that does not intentionally generate radio frequency energy for the treatment of material or inspection/analysis purposes. Note For EMC declarations, certifications, and additional information, refer to the Product Certifications and Declarations section. Environmental Management NI is committed to designing and manufacturing products in an environmentally responsible manner. NI recognizes that eliminating certain hazardous substances from our products is beneficial to the environment and to NI customers. For additional environmental information, refer to the Engineering a Healthy Planet web page at ni.com/environment. This page contains the environmental regulations and directives with which NI complies, as well as other environmental information not included in this document. EU and UK Customers
- Waste Electrical and Electronic Equipment (WEEE)—At the end of the product life cycle, all NI products must be disposed of according to local laws and regulations. For more information about how to recycle NI products in your region, visit ni.com/ environment/weee. ni.com34 PXIe-4139 Specifications
电子信息产品污染控制管理办法(中国 RoHS)
- 5 40e 中国 RoHS— NI 符合中国电子信息产品中限制使用某些有害物 质指令(RoHS)。关于 NI 中国 RoHS 合规性信息,请登录 ni.com/environment/ rohs_china。(For information about China RoHS compliance, go to ni.com/ environment/rohs_china.) Product Certifications and Declarations Refer to the product Declaration of Conformity (DoC) for additional regulatory compliance information. To obtain product certifications and the DoC for NI products, visit ni.com/product-certifications, search by model number, and click the appropriate link. NI Services Visit ni.com/support to find support resources including documentation, downloads, and troubleshooting and application development self-help such as tutorials and examples. Visit ni.com/services to learn about NI service offerings such as calibration options, repair, and replacement. Visit ni.com/register to register your NI product. Product registration facilitates technical support and ensures that you receive important information updates from NI. NI corporate headquarters is located at 11500 N Mopac Expwy, Austin, TX, 78759-3504, USA.
1 The ambient temperature of a PXI system is defined as the temperature at the
chassis fan inlet (air intake). © National Instruments 35 PXIe-4139 Specifications
2 For increased capability, NI recommends installing the PXIe-4139 (40W) in a chassis
with slot cooling capacity ≥58 W. 3 The PXIe-4139 does not support configurations involving voltage > |42.4 V| when Sequence Step Delta Time Enabled is set to True. 4 Power limit defined by voltage measured between HI and LO terminals. 5 Accuracy is specified for no load output configurations. Refer to Load Regulation and Remote Sense sections for additional accuracy derating and conditions.
6 Tcal is the internal device temperature recorded by the PXIe-4139 at the
completion of the last self-calibration.
7 Tcal is the internal device temperature recorded by the PXIe-4139 at the
completion of the last self-calibration.
8 Tcal is the internal device temperature recorded by the PXIe-4139 at the
completion of the last self-calibration.
9 For example, given a continuous pulsin load, if the largest dynamic step in power
that the load sources/sinks is from 5 W to 15 W, then the maximum SMU power step is 10 W. Thus, the minimum dynamic load pulse cycle time is 250 μs. 10 Extended range pulses fall outside DC range limits for either current or power. In- range pulses fall within DC range limits and are not subject to extended range pulsing limitations. Extended range pulsing is enabled by setting the Output Function to Pulse Voltage or Pulse Current.
11 Pulse on time is measured from the start of the leading edge to the start of the
trailing edge. See Figure 1. 12 Refer to Figure 1 to estimate the value and determine the limiting equation. 13 Refer to Figure 2 to estimate the value and determine the limiting equation. If D≥100%, consider switching Output Function from Pulse mode to DC mode. ni.com36 PXIe-4139 Specifications
14 Refer to Figure 2 to estimate the value and determine the limiting equation. 15 Extended range pulses fall outside DC range limits for either current or power. In- range pulses fall within DC range limits and are not subject to extended range pulsing limitations. Extended range pulsing is enabled by configuring the Output Function to Pulse Voltage or Pulse Current.
16 Pulse on time is measured from the start of the leading edge to the start of the
trailing edge. See Figure 1.
17 Optimize transient response, overshoot, and slew rate with NI SourceAdapt by
adjusting the Transient Response.
18 To improve the slew rate, see Examples of Determining Extended Range Pulse
Parameters and Optimizing Slew Rate using NI SourceAdapt. 19 Measured as the time to settle to within 0.1% of step amplitude, device configured for fast transient response. 20 Current limit set to ≥50 μA and ≥50% of the selected current limit range. 21 Current limit set to ≥20 μA and ≥20% of selected current limit range. 22 Voltage limit set to ≥2 V, resistive load set to 1 V/selected current range.
23 When sourcing while measuring, both the Source Delay and Aperture Time affect
the sampling rate. When taking a measure record, only the Aperture Time affects the sampling rate.
24 As the source delay is adjusted or if advanced sequencing is used, maximum
source rates vary. Timed output mode is enabled in Sequence Mode by setting the Sequence Step Delta Time Enabled to True. Additional timing limitations apply when operating in pulse mode (Output Function is set to Pulse Voltage or Pulse Current). 25 Time from PXI Trigger sent until SMU output goes to high impedance. © National Instruments 37 PXIe-4139 Specifications
26 Pulse mode is enabled when the Output Function is set to Pulse Voltage or Pulse
Current. This mode enables access to extended range pulsing capabilities. For PXIe-4139 (20W), shorter minimum on times for in-range pulses can be achieved using Sequence mode or Timed Output mode with the Output Function set to Voltage or Current.
27 Pulse on time is measured from the start of the leading edge to the start of the
trailing edge. See Figure 1.
28 Optimize transient response, overshoot, and slew rate with NI SourceAdapt by
adjusting the Transient Response. 29 Pulses fall inside DC limits.Pulse o ff time is measured from the start of the trailing edge to the start of a subsequent leading edge.
30 Tcal is the internal device temperature recorded by the PXIe-4139 at the
completion of the last self-calibration. 31 Visit ni.com for more information about NI SourceAdapt Next-Generation SMU Technology.
32 Pulse widths and logic levels are compliant with PXI Express Hardware
Specification Revision 1.0 ECN 1. 33 Input triggers can be re-exported. ni.com38 PXIe-4139 Specifications © 2022 National Instruments Corporation.