Type 947C Polypropylene, DC Link Capacitors High Current, High Capacitance for Inverter Applications

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1 Type 947C series uses the most advanced metallized film technology for long life, high reliability in DC Link applications. This series delivers high capacitance, high voltage and high ripple current handling capabilities required for inverters used in wind, solar, fuel cell applications and more. Specifications Highlights - Non-polar dielectric - Dry, resin filled - High reliability and life expectancy - Replacement for aluminum electrolytic capacitors (lower capacitance, higher current) - High current to 100 Amps - Low ESR - Low Inductance Capacitance Range 110 to 1500 µf Capacitance Tolerance ±10% standard, ±5% optional Rated Voltage 800 to 1300 Vdc Operating Temperature Range -40 ºC to 85 ºC (ambient) Maximum rms Current see data tables Maximum rms Voltage 230 Vac Test Voltage between 25 ºC 150% rated DC voltage for 10 s Test Voltage between Terminals & 25 ºC 4 50/60 Hz for 60 s Life Test ºC, rated voltage Life Expectancy 200, ºC, rated voltage Reliability 100 FIT typical (medium size capacitor) Standards IEC 61071, IEC RoHS Compliant Dimensions Construction Details Case Material Aluminum with Black PVC Sleeve Resin Material Dry Resin UL94V-0 Terminal Material Tin Plated Brass 90.0 mm +2.0/-0.0 mm 90.0 Dmm90.0 mm ± /-0.0 or +2.0/-0.0 mm mm 90.0 Dmm ± /-0.0 or mm D ±1.0 or 2.0 mm Max Torque Max Torque 8.5 Nm 2.5 Nm Max Torque Nm Max Torque 8.5 Nm M6 M8 x x M5 mm x mm 4.0 mm Min Min M5 M6 x mm Min M6 x 10 mm Min mm mm 17.5 mm 45.0 S mm mm 45.0 S 15.0 mm S ± mm HH H ±1.0 ±2.0 mm mm ±2.0 mm ± mm H ±1.0 ±2.0 mm 16.0 H 16.0 Figure 2 1 Figure Figure Figure 23 Figure 3 Optional M12 x 1.75 THD Stud nd Hex Nut Provided All Shown with Optional M12 x 1.75 THD Stud Lock Washer and Hex Nut Provided All Shown with Optional M12 x 1.75 THD Stud Lock Washer and Hex Nut Provided

2 Part Numbering System 947C 361 K 801 C A M S NS Type Capacitance Tolerance Voltage Diameter D Height H Terminal Mounting Sleeving 947C 361 = 360 µf K = ±10 % 801 = 800 Vdc C = 90 mm T = 85 mm I = M5 Insert blank = no stud Specify NS 731 = 730 µf J = ±5 % 901 = 900 Vdc B = 85 mm A = 97 mm Threaded S = M12 Stud for Bare Can 152 = 1500 µf 102 = 1000 Vdc D = 116 mm B = 120 mm M = M8 Stud Threaded 112 = 1100 Vdc G = 140 mm Threaded 122 = 1200 Vdc C = 145 mm H = M6 Insert 132 = 1300 Vdc L = 165 mm Threaded Ratings D = 170 mm NOTE: Other ratings, sizes and performance specifications are available. Contact us. Rated Can Can Lead Current Cap. Voltage Diameter Height Spacing Case ΔT = 40 Typ Typ Thermal Resistance Part Number C Vr D H S Area Irms ESR ESL Θcc Θca Mass (µf) (Vdc) (mm) (mm) (mm) (mm²) (A) (mω) (nh) (ºC/W) (ºC/W) (kg) Fig 947C311K801BTHS C341K801CTMS C341K801CTIS C361K801CAMS C361K801CAIS C381K801BAHS C411K801CAMS C411K801CAIS C491K801CBMS C491K801CBIS C511K801BBHS C561K801CBMS C561K801CBIS C601K801CCMS C601K801CCIS C621K801DTHS C651K801BGHS C701K801CCMS C701K801CCIS C731K801CDMS C731K801CDIS C751K801DAHS C791K801BDHS C851K801CDMS C851K801CDIS C102K801DBHS C122K801DCHS C152K801DLHS C241K901BTHS

3 Rated Can Can Lead Current Cap. Voltage Diameter Height Spacing Case ΔT = 40 Typ Typ Thermal Resistance Part Number C Vr D H S Area Irms ESR ESL Θcc Θca Mass (µf) (Vdc) (mm) (mm) (mm) (mm²) (A) (mω) (nh) (ºC/W) (ºC/W) (kg) Fig 947C261K901CTMS C261K901CTIS C291K901BAHS C321K901CAMS C321K901CAIS C401K901BBHS C431K901CBMS C431K901CBIS C481K901DTHS C511K901BGHS C551K901CCMS C551K901CCIS C581K901DAHS C611K901BDHS C661K901CDMS C661K901CDIS C791K901DBHS C102K901DCHS C122K901DLHS C191K102BTHS C211K102CTMS C211K102CTIS C231K102CAMS C231K102CAIS C241K102BAHS C251K102CAMS C251K102CAIS C311K102CBMS C311K102CBIS C321K102BBHS C351K102CBMS C351K102CBIS C381K102DTHS C391K102CCMS C391K102CCIS C411K102BGHS C441K102CCMS C441K102CCIS C471K102DAHS C471K102CDMS C471K102CDIS C491K102BDHS

4 Rated Can Can Lead Current Cap. Voltage Diameter Height Spacing Case ΔT = 40 Typ Typ Thermal Resistance Part Number C Vr D H S Area Irms ESR ESL Θcc Θca Mass (µf) (Vdc) (mm) (mm) (mm) (mm²) (A) (mω) (nh) (ºC/W) (ºC/W) (kg) Fig 947C531K102CDMS C531K102CDIS C641K102DBHS C801K102DCHS C971K102DLHS C161K112BTHS C171K112CTMS C171K112CTIS C191K112BAHS C211K112CAMS C211K112CAIS C261K112BBHS C281K112CBMS C281K112CBIS C311K112DTHS C331K112BCHS C361K112CCMS C361K112CCIS C381K112DAHS C401K112BDHS C431K112CDMS C431K112CDIS C521K112DBHS C661K112DCHS C801K112DLHS C131K122BTHS C141K122CTIS C141K122CTIS C161K122BAHS C161K122CAMS C161K122CAIS C171K122CAMS C171K122CAIS C211K122CBMS C211K122CBIS C221K122BBHS C241K122CBMS C241K122CBIS C261K122DTHS C271K122CCMS C271K122CCIS C281K122BGHS

5 Rated Can Can Lead Current Cap. Voltage Diameter Height Spacing Case ΔT = 40 Typ Typ Thermal Resistance Part Number C Vr D H S Area Irms ESR ESL Θcc Θca Mass (µf) (Vdc) (mm) (mm) (mm) (mm²) (A) (mω) (nh) (ºC/W) (ºC/W) (kg) Fig 947C301K122CCMS C301K122CCIS C321K122DAHS C321K122CDMS C321K122CDIS C331K122BDHS C361K122CDMS C361K122CDIS C431K122DBHS C551K122DCHS C661K122DLHS C111K132BTHS C121K132CTMS C121K132CTIS C131K132BAHS C151K132CAMS C151K132CAIS C181K132BBHS C201K132CBMS C201K132CBIS C221K132DTHS C231K132BGHS C251K132CCMS C251K132CCIS C271K132DAHS C281K132BDHS C311K132CDMS C311K132CDIS C371K132DBHS C461K132DCHS C561K132DLHS Rated Current is for temperature rise of +40 ºC at 1 20 khz. 2. θcc is core-to-case thermal resistance at 0 10 khz. For higher frequency see Expected Lifetime Predictions. 3. θca is case-to-ambient thermal resistance for still air. For moving air see Expected Lifetime Predictions.

6 Expected Lifetime Predictions To use the Expected Lifetime curves calculate Va Vr and core temperature T. Start by estimating: Applied dc voltage Va Ripple Current I Ripple Frequency f Ambient Temperature Ta Airflow speed v Units: A=m² T, Ta & Tc= C C=µF θ, θca & θcc = C/W ESR=mW v=m/s f=khz Va &Vr=Vdc I=A NOTE: The temperature rise in the 947C is I²(ESR) times the thermal resistance θ. The ESR is mainly the metal resistance; the metal resistance is the 10 khz ESR. The dielectric resistance needs to be considered for operation below 10kHz. 1. Start with the 10kHz ESR from the ratings table. If frequency is less than 10kHz, use the following equation: ESR /(10C) /(fC). 2. Compute total thermal resistance θ as the sum of core-to-case thermal resistance θcc and case-to-ambient thermal resistance θca. Both are in the Ratings table but θca is for still air. For moving air use the capacitor surface area A and airflow speed v to calculate θca = 1 [A(5+17(v+0.1)0.66)]. Please note that the θcc for all designs built to figures 1 and 2; θcc is for 10 khz or less. For frequency > 10 khz multiply θcc by [1+(f 10)/100], e.g., for 75 khz multiply θcc by Compute Va Vr and the core temperature T. T = Ta + I²(ESR)θ 4. Look up estimated lifetime from the Expected Lifetime curves. 5. If you want a longer expected lifetime, choose a capacitor with higher voltage rating or consider using multiple capacitors in The expected lifetime predictions assume no exposure to overvoltage transients. Expected lifetime can be calculated for varying exposure to overvoltage transients. As an illustration at 50 C the expected lifetime is 100,000 h with the 24-hour Va Vr profile below: Va / Vr Duration ms minutes hours hours hours For applications with more severe 24-hour profiles, contact us. 6

7 Typical Performance Curves 380 µf 1000 V ESR vs Frequency and Temperature 380 µf 1000 V Rated Ripple Current, Still Air, 5 kh Life C 45 C 55 C ESR (mω) C 65 C 45 C 25 C Rated Ripple Current (A) C 85 C C -20 C C µf 900 V ESR vs Frequency and Temperature 480 µf 900 V Rated Ripple Current, Still Air, 5 kh Life C 45 C 55 C ESR (mω) C 65 C 45 C 25 C Rated Ripple Current (A) C 85 C C C -40 C µf 800 V ESR vs Frequency and Temperature 620 µf 800 V Rated Ripple Current, Still Air, 5 kh Life C 45 C 55 C C ESR (mω) C 65 C 45 C 25 C Rated Ripple Current (A) C 1 0 C C -40 C

8 8 Notice and Disclaimer: All product drawings, descriptions, specifications, statements, information and data (collectively, the Information ) in this datasheet or other publication are subject to change. The customer is responsible for checking, confirming and verifying the extent to which the Information contained in this datasheet or other publication is applicable to an order at the time the order is placed. All Information given herein is believed to be accurate and reliable, but it is presented without any guarantee, warranty, representation or responsibility of any kind, expressed or implied. Statements of suitability for certain applications are based on the knowledge that the Cornell Dubilier company providing such statements ( Cornell Dubilier ) has of operating conditions that such Cornell Dubilier company regards as typical for such applications, but are not intended to constitute any guarantee, warranty or representation regarding any such matter and Cornell Dubilier specifically and expressly disclaims any guarantee, warranty or representation concerning the suitability for a specific customer application, use, storage, transportation, or operating environment. The Information is intended for use only by customers who have the requisite experience and capability to determine the correct products for their application. Any technical advice inferred from this Information or otherwise provided by Cornell Dubilier with reference to the use of any Cornell Dubilier products is given gratis (unless otherwise specified by Cornell Dubilier), and Cornell Dubilier assumes no obligation or liability for the advice given or results obtained. Although Cornell Dubilier strives to apply the most stringent quality and safety standards regarding the design and manufacturing of its products, in light of the current state of the art, isolated component failures may still occur. Accordingly, customer applications which require a high degree of reliability or safety should employ suitable designs or other safeguards (such as installation of protective circuitry or redundancies or other appropriate protective measures) in order to ensure that the failure of an electrical component does not result in a risk of personal injury or property damage. Although all product-related warnings, cautions and notes must be observed, the customer should not assume that all safety measures are indicated in such warnings, cautions and notes, or that other safety measures may not be required.

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