ELX1022 EATON | Alldatasheet

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Technical content

Description

Eaton supercapacitors are high reliability, high power, ultra-high capacitance energy storage devices utilizing electric double layer capacitor (EDLC) construction combined with proprietary materials and processes. This combination of advanced technologies allows Eaton to offer a wide variety of capacitor solutions tailored to applications for backup power, pulse power and hybrid power systems. They can be applied as the sole energy storage or in combination with batteries to optimize cost, life time and run time. System requirements can range from a few microwatts to megawatts. All products feature low ESR for high power density with environmentally friendly materials for a green power solution. Eaton supercapacitors are maintenance-free with design lifetimes up to 20 years* and operating temperatures down to -40 °C and up to +85 °C. Features and benefits

  • Low leakage current, low self discharge
  • Large capacitance for high energy density
  • Ultra-low ESR for high power density

Applications

  • Pulse Power
  • Water and gas meters
  • Battery assist for peak power
  • Especially Lithium Thionyl
  • IoT sensors
  • Long duration, low power discharges
  • RTC
  • Memory backup
  • Bridging or hold-up power Environmental compliance Pb HALOGEN HFFREE *Supercapacitor lifetimes vary based on charge voltage and temperature. See Eaton’s application guidelines or contact your local Eaton sales representative for more information on lifetime estimates

www.eaton.com/electronics Ratings Capacitance 0.47 F to 5.0 F Working voltage8 3.9 V Surge voltage8 5.0 V Capacitance tolerance -10% to +30% (+20 °C) Operating temperature range -40 °C to +65 °C Extended operating temperature range -40 °C to +85 °C Specifications Capacitance1 (F) Vertical part number Horizontal part number Maximum initial ESR1 (Ω) Peak current5 (A) Nominal leakage current2 (µA) Peak power4 (W) Stored energy3 (mWh) Short circuit current6 (A) Repeated short circuit current will permanently damage the leads. Performance Parameter Capacitance change (% of initial value) ESR (% of maximum initial value) Lifetime: (3.9 V; 2 years @ +65 °C, 5,000 hours @ +85 °C) ≤ 30% ≤ 200% Charge/discharge cycles7: (500,000 at +20 °C) ≤ 30% ≤ 200% Storage: Low and high temperature (1000 hours @ -40 °C and +85 °C) ≤ 30% ≤ 200% 1. Capacitance, Equivalent series resistance (ESR) and leakage current are measured according to IEC62391-1 2. Leakage current at +20 °C after 72 hour charge and hold. 3. Stored energy (mWh) = 0.5 x V 2 x C 3600 4. Peak power (W) = V 2 4 x ESR 5. Pulse current for 1 second from full rate voltage to half voltage.(A) = 0.5 x V x C (1 + ESR x C) 6. Short circuit current is for safety information only. Do not use as operating current. 7. Cycling between rated voltage and half voltage, 3 second rest at +20 °C. 8. Voltage testing and verification of product under end application conditions is recommended Safety and certifications Environmental compliance RoHS, REACH, lead free, halogen free Warnings Do not overvolatgae, do not reverse polarity Shipping No restrictions, per UN3499 with all cells <10 watt-hours x1000

www.eaton.com/electronics Part numbering system P HVL –3R9 V 15 5 -R Type Family code Voltage (V) R = decimal Configuration Capacitance (μF) Value Multiplier Standard product P = Pack HVL= Product family 3R9 = 3.9 V V= Vertical H= Horizontal Example 155= 15 x 105 μF or 1.5 F Packaging information

  • Standard packaging: Bulk, 100 parts per bag Part marking
  • Manufacturer
  • Capacitance value (F)
  • Working voltage (V)
  • Family code or part number
  • Polarity mark B C P C A A D E P B C P F C A A D'F Positive lead Positive lead Vertical part number Horizontal part number A B C d’ D D’ E E’ F P Typical mass (g) Tolerances Maximum ± 0.02 Minimum ± 0.5 Note: Longer lead is positive Vertical Horizontal

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Cleveland, OH 44122 United States Eaton.com/electronics © 2021 Eaton All Rights Reserved Printed in USA Publication No. ELX1022 BU-ELX21023 February 2021 PHVL Supercapacitors Cylindrical packs Technical Data ELX1022 Effective February 2021 Life Support Policy: Eaton does not authorize the use of any of its products for use in life support devices or systems without the express written approval of an officer of the Company. Life support systems are devices which support or sustain life, and whose failure to perform, when properly used in accordance with instructions for use provided in the labeling, can be reasonably expected to result in significant injury to the user. Eaton reserves the right, without notice, to change design or construction of any products and to discontinue or limit distribution of any products. Eaton also reserves the right to change or update, without notice, any technical information contained in this bulletin. Temperature Time Tsmin Tsmax Tstyp Tp tp First Wave Second Wave Preheat area Cool down area Wave solder profile Eaton is a registered trademark. All other trademarks are property of their respective owners. Follow us on social media to get the latest product and support information. Profile feature Standard SnPb solder Lead (Pb) free solder Preheat and soak • Temperature max. (Tsmax) 100 °C 100 °C

  • Time max. 60 seconds 60 seconds D preheat to max Temperature 160 °C max. 160 °C max. Peak temperature (TP)* 220 °C – 260 °C 250 °C – 260 °C Time at peak temperature (tp) 10 seconds max 5 seconds max each wave 10 seconds max 5 seconds max each wave Ramp-down rate ~ 2 K/s min ~3.5 K/s typ ~5 K/s max ~ 2 K/s min ~3.5 K/s typ ~5 K/s max Time 25 °C to 25 °C 4 minutes 4 minutes Manual solder +350 °C (4-5 seconds by soldering iron), generally manual/hand soldering is not recommended Cleaning/Washing Avoid cleaning of circuit boards, however if the circuit board must be cleaned use static or ultrasonic immersion in a standard circuit board cleaning fluid for no more than 5 minutes and a maximum temperature of +60 °C. Afterwards thoroughly rinse and dry the circuit boards. In general, treat supercapacitors in the same manner you would an aluminum electrolytic capacitor.