DE6B3KJ101KB4BE01J MURATA | Alldatasheet

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Product specifications in this catalog are as of Apr. 2024, and are subject to change or obsolescence without notice. Please consult the approval sheet before ordering.Please read rating and Cautions first. <Reference>Please kindly use our website. Please refer to the product information page for more information on ceramic capacitors.→ Ceramic capacitor product information Various data can be obtained directly from the product search.→ Product search (SMD) / Product search (Lead Type) Reference Specification Safety Standard Certified Lead Type Disc Ceramic Capacitors for Automotive (Powertrain/Safety) /Type KJ

  1. OPERATING VOLTAGE Do not apply a voltage to a safety standard certified product that exceeds the rated voltage as called out in the specifications. Applied voltage between the terminals of a safety standard certified product shall be less than or equal to the rated voltage (+10 %). When a safety standard certified product is used as a DC voltage product, the AC rated voltage value becomes the DC rated voltage value. (Example:AC250 V (r.m.s.) rated product can be used as DC250 V (+10 %) rated product.) If both AC rated voltage and DC rated voltage are specified, apply the voltage lower than the respective rated voltage. 1-1. When a safety standard certified product is used in a circuit connected to a commercial power supply, ensure that the applied commercial power supply voltage including fluctuation should be less than 10 % above its rated voltage. 1-2. When using a safety standard certified product as a DC rated product in circuits other than those connected to a commercial power supply. When AC voltage is superimposed on DC voltage, the zero-to-peak voltage shall not exceed the rated DC voltage. When AC voltage or pulse voltage is applied, the peak-to-peak voltage shall not exceed the rated DC voltage. Typical Voltage Applied to the DC Capacitor (E: Maximum possible applied voltage.) 1-3. Influence of over voltage Over voltage that is applied to the capacitor may result in an electrical short circuit caused by the breakdown of the internal dielectric layers. The time duration until breakdown depends on the applied voltage and the ambient temperature. 2. OPERATING TEMPERATURE AND SELF-GENERATED HEAT Keep the surface temperature of a capacitor below the upper limit of its rated operating temperature range. Be sure to take into account the heat generated by the capacitor itself. When the capacitor is used in a high-frequency current, pulse current or the like, it may have the self- generated heat due to dielectric-loss. Applied voltage should be the load such as self-generated heat is within 20 ℃ on the condition of atmosphere temperature 25 ℃. In case of Class 2 capacitors (Temp.Char. : B,E,F, etc.), applied voltage should be the load such as self-generated heat is within 20 °C on the condition of atmosphere temperature 25 °C. Since the self-heating is low in the Class 1 capacitors (Temp.Char.: SL etc.), the allowable power becomes extremely high compared to the Class 2 capacitors. However, when a load with self-heating of 20°C is applied at the rated voltage, the allowable power may be exceeded. Please confirm that there is no rising trend of the capacitor's surface temperature and that the surface temperature of the capacitor does not exceed the maximum operating temperature. Excessive generation of heat may cause deterioration of the characteristics and reliability of the capacitor. When measuring the self-heating temperature, be aware that accurate measurement may not be possible due to the following effects. ・ The heat generated by other parts ・ Air flow such as convection and cooling fans ・ Temperature sensor used for measuring surface temperature of capacitor In the case using a thermocouple, it is recommended that use a K thermocouple of Φ0.1mm with less heat capacity. EGD08N Reference only
  1. TEST CONDITION FOR WITHSTANDING VOLTAGE 3-1. TEST EQUIPMENT Test equipment for AC withstanding voltage should be used with the performance of the wave similar to 50/60 Hz sine wave. If the distorted sine wave or over load exceeding the specified voltage value is applied, the defective may be caused. 3-2. VOLTAGE APPLIED METHOD When the withstanding voltage is applied, capacitor’s lead or terminal should be firmly connected to the out-put of the withstanding voltage test equipment, and then the voltage should be raised from near zero to the test voltage. If the test voltage without the raise from near zero voltage would be applied directly to capacitor, test voltage should be applied with the *zero cross. At the end of the test time, the test voltage should be reduced to near zero, and then capacitor’s lead or terminal should be taken off the out-put of the withstanding voltage test equipment. If the test voltage without the raise from near zero voltage would be applied directly to capacitor, the surge voltage may arise, and therefore, the defective may be caused. *ZERO CROSS is the point where voltage sine wave pass 0 V. - See the right figure - 4. FAIL-SAFE Capacitors that are cracked by dropping or bending of the board may cause deterioration of the insulation resistance, and result in a short. If the circuit being used may cause an electrical shock, smoke or fire when a capacitor is shorted, be sure to install fail-safe functions, such as a fuse, to prevent secondary accidents. 5. OPERATING AND STORAGE ENVIRONMENT The insulating coating of capacitors does not form a perfect seal; therefore, do not use or store capacitors in a corrosive atmosphere, especially where chloride gas, sulfide gas, acid, alkali, salt or the like are present. And avoid exposure to moisture. Before cleaning, bonding, or molding this product, verify that these processes do not affect product quality by testing the performance of a cleaned, bonded or molded product in the intended equipment. Store the capacitors where the temperature and relative humidity do not exceed -10 to 40 ℃ and 15 to 85 %. Use capacitors within 6 months after delivered. Check the solderability after 6 months or more. 6. VIBRATION AND IMPACT Do not expose a capacitor or its leads to excessive shock or vibration during use. 6-1. Mechanical shock due to being dropped may cause damage or a crack in the dielectric material of the capacitor. Do not use a dropped capacitor because the quality and reliability may be deteriorated. 6-2. Excessive shock or vibration may cause to fatigue destruction of lead wires mounted on the circuit board. If necessary, take measures to hold a capacitor on the circuit boards by adhesive, molding resin or coating and other. Please confirm there is no influence of holding measures on the product with an intended equipment. EGD08N Reference only voltage sine wave zero cross
  1. SOLDERING When soldering this product to a PCB/PWB, do not exceed the solder heat resistance specification of the capacitor. Subjecting this product to excessive heating could melt the internal junction solder and may result in thermal shocks that can crack the ceramic element. Please verify that the soldering process does not affect the quality of capacitors. 7-1. Flow Soldering Soldering temperature : 260 ℃ max. Soldering time : 7.5 s max. Preheating temperature : 120 ℃ max. Preheating time : 60 s max. 7-2. Reflow Soldering Do not apply reflow soldering. 7-3. Soldering Iron Temperature of iron-tip : 400 ℃ max. Soldering iron wattage : 50 W max. Soldering time : 3.5 s max. 8. BONDING, RESIN MOLDING AND COATING Before bonding, molding or coating this product, verify that these processes do not affect the quality of capacitor by testing the performance of the bonded, molded or coated product in the intended equipment. In case of the amount of applications, dryness / hardening conditions of adhesives and molding resins containing organic solvents (ethyl acetate, methyl ethyl ketone, toluene, etc.) are unsuitable, the outer coating resin of a capacitor is damaged by the organic solvents and it may result, worst case, in a short circuit. The variation in thickness of adhesive, molding resin or coating may cause a outer coating resin cracking and/or ceramic element cracking of a capacitor in a temperature cycling. 9. TREATMENT AFTER BONDING, RESIN MOLDING AND COATING When the outer coating is hot (over 100 ℃) after soldering, it becomes soft and fragile. So please be careful not to give it mechanical stress. Failure to follow the above cautions may result, worst case, in a short circuit and cause fuming or partial dispersion when the product is used. EGD08N Reference only [Standard Condition for Flow Soldering] 100 150 200 250 300 0 20 40 60 80 100 Time [s] Temp. [°C] Pre-heating Soldering
  1. LIMITATION OF APPLICATIONS The products listed in the specification(hereinafter the product(s) is called as the “Product(s)”) are designed and manufactured for applications specified in the specification. (hereinafter called as the “Specific Application”) We shall not warrant anything in connection with the Products including fitness, performance, adequateness, safety, or quality, in the case of applications listed in from (1) to (11) written at the end of this precautions, which may generally require high performance, function, quality, management of production or safety. Therefore, the Product shall be applied in compliance with the specific application. WE DISCLAIM ANY LOSS AND DAMAGES ARISING FROM OR IN CONNECTION WITH THE PRODUCTS INCLUDING BUT NOT LIMITED TO THE CASE SUCH LOSS AND DAMAGES CAUSED BY THE UNEXPECTED ACCIDENT, IN EVENT THAT (i) THE PRODUCT IS APPLIED FOR THE PURPOSE WHICH IS NOT SPECIFIED AS THE SPECIFIC APPLICATION FOR THE PRODUCT, AND/OR (ii) THE PRODUCT IS APPLIED FOR ANY FOLLOWING APPLICATION PURPOSES FROM (1) TO (11) (EXCEPT THAT SUCH APPLICATION PURPOSE IS UNAMBIGUOUSLY SPECIFIED AS SPECIFIC APPLICATION FOR THE PRODUCT IN OUR CATALOG SPECIFICATION FORMS, DATASHEETS, OR OTHER DOCUMENTS OFFICIALLY ISSUED BY US*) 1. Aircraft equipment 2. Aerospace equipment 3. Undersea equipment 4. Power plant control equipment 5. Medical equipment 6. Transportation equipment 7. Traffic control equipment 8. Disaster prevention/security equipment 9. Industrial data-processing equipment 10. Combustion/explosion control equipment 11. Equipment with complexity and/or required reliability equivalent to the applications listed in the above. For exploring information of the Products which will be compatible with the particular purpose other than those specified in the specification, please contact our sales offices, distribution agents, or trading companies with which you make a deal, or via our web contact form. Contact form: https://www.murata.com/contactform *We may design and manufacture particular Products for applications listed in (1) to (11). Provided that, in such case we shall unambiguously specify such Specific Application in the specification without any exception. Therefore, any other documents and/or performances, whether exist or non-exist, shall not be deemed as the evidence to imply that we accept the applications listed in (1) to (11). NOTICE 1. CLEANING (ULTRASONIC CLEANING) 1-1. Please evaluate the capacitor using actual cleaning equipment and conditions to confirm the quality, and select the solvent for cleaning. 1-2. Unsuitable cleaning may leave residual flux or other foreign substances, causing deterioration of electrical characteristics and the reliability of the capacitors. 1-3. To perform ultrasonic cleaning, observe the following conditions. Rinse bath capacity : Output of 20 watts per liter or less. Rinsing time : 5 min maximum. Do not vibrate the PCB/PWB directly. Excessive ultrasonic cleaning may lead to fatigue destruction of the terminals. EGD08N Reference only
  1. SOLDERING AND MOUNTING 2-1. Insert the lead wire into the PCB with a distance appropriate to the lead space. If the lead wires are inserted into different spacing holes, cracks may occur in the outer resin or the internal element. 2-2. When bending the lead wire, excessive force applied to the capacitor body may cause cracks in the outer resin or the internal element. Hold the lead wire closer to the capacitor body than the lead wire bending position with the fixture, then bend it. (See the right figure) 2-3. When cutting and clinching the lead wire, do not apply excessive force to the capacitor body. 2-4. When soldering, insert the lead wire into the PCB without mechanically stressing the lead wire. 3. CAPACITANCE CHANGE OF CAPACITORS
  • Class 1 capacitors Capacitance might change a little depending on a surrounding temperature or an applied voltage. Please contact us if you use for the strict time constant circuit.
  • Class 2 capacitors Class 2 capacitors like temperature characteristic B, E and F have an aging characteristic, whereby the capacitor continually decreases its capacitance slightly if the capacitor leaves for a long time. Moreover, capacitance might change greatly depending on a surrounding temperature or an applied voltage. So, it is not likely to be able to use for the time constant circuit. Please contact us if you need a detail information. 4. CHARACTERISTICS EVALUATION IN THE ACTUAL SYSTEM 4-1. Evaluate the capacitor in the actual system, to confirm that there is no problem with the performance and specification values in a finished product before using. 4-2. Since a voltage dependency and temperature dependency exists in the capacitance of Class 2 ceramic capacitors, the capacitance may change depending on the operating conditions in the actual system. Therefore, be sure to evaluate the various characteristics, such as the leakage current and noise absorptivity, which will affect the capacitance value of the capacitor. 4-3. In addition, voltages exceeding the predetermined surge may be applied to the capacitor by the inductance in the actual system. Evaluate the surge resistance in the actual system as required. 4-4. When using Class 2 ceramic capacitors in AC or pulse circuits, the capacitor itself vibrates at specific frequencies and noise may be generated. Moreover, when the mechanical vibration or shock is added to capacitor, noise may occur. NOTE 1. Please make sure that your product has been evaluated in view of your specifications with our product being mounted to your product. 2. You are requested not to use our product deviating from this specification. EGD08N Reference only

1.Application This product specification is applied to Safety Standard Certified Lead Type Disc Ceramic Capacitors Type KJ. The safety standard certification is obtained as Class X1, Y2. 1. Specific applications: ・Automotive powertrain/safety equipment: Products that can be used for automotive equipment related to running, turning, stopping, safety devices, etc., or equipment whose structure, equipment, and performance are legally required to meet technical standards for safety assurance or environmental protection. ・Automotive infotainment/comfort equipment: Products that can be used for automotive equipment such as car navigation systems and car audio systems that do not directly relate to human life and whose structure, equipment, and performance are not specifically required by law to meet technical standards for safety assurance or environmental protection. ・Medial Equipment [GHTF A/B/C] except for Implant Equipment: Products suitable for use in medical devices designated under the GHTF international classifications as Class A or Class B (the functions of which are not directly involved in protection of human life or property) or in medical devices other than implants designated under the GHTF international classifications as Class C (the malfunctioning of which is considered to pose a comparatively high risk to the human body). 2.Unsuitable Application: Applications listed in “Limitation of applications” in this product specification. Approval standard and certified number *Above Certified number may be changed on account of the revision of standards and the renewal of certification. 2.Rating 2-1.Operating temperature range -40 ~ 125°C 2-2.Rated Voltage X1: AC440 V(r.m.s.) Y2: AC300 V(r.m.s.) DC1,000 V 2-3.Part number configuration ex.) Series Temperature Certified Capacitance Capacitance Lead Package Characteristics Tolerance Style Specification

  • Series DE6 denotes class X1,Y2.
  • Temperature Characteristics Please confirm detailed specification on [Specification and test methods]. TEIKAKU Reference only Standard number * Certified number Rated voltage UL/cUL UL60384-14/CSA E60384-14 E37921 X1: AC440 V(r.m.s.) Y2: AC300 V(r.m.s.)ENEC (VDE) EN60384-14 IEC60384-14 40031217 B Individual Type Code Temperature Characteristics DE6 E3 KJ 472 M A3 B3 B E3 E
  • Certified Type This denotes safety certified type name Type KJ.
  • Capacitance The first two digits denote significant figures ; the last digit denotes the multiplier of 10 in pF. ex.) In case of . 47 × 102 = 4700 pF
  • Capacitance Tolerance Please refer to [ Part number list ].
  • Lead Style * Please refer to [ Part number list ]. Solder coated copper wire is applied for termination.
  • Package
  • Individual Specification Murata’s control code Please refer to Part number list . Note) Murata part numbers might be changed depending on Lead Style or any other changes. Therefore, please specify only the Certified Type (KJ) and capacitance of products in the parts list when it is required for applying safety standard of electric equipment. TEIKAKU A* Vertical crimp long type Reference only 472 Code Lead Style B* Vertical crimp short type N* Vertical crimp taping type Code Package A Ammo pack taping type B Bulk type

3.Marking Capacitance : 3 digit system Capacitance tolerance : Code Certified type : KJ Rated voltage mark : 300~ Class code : X1Y2 Manufacturing year : Letter code(The last digit of A.D. year.) Manufacturing month : Code ex.) YEAR MONTH 2022 12(December) * From January to September : “1” to “9”, October : “O” , November : “N” , December : “D” Company name code : (Made in Thailand) (Example) TEIKAKU Reference only *2D 472M KJ 300~ X1Y2

  1. Part number list Unit : mm DE6B3KJ101KA3BE01J B 100 ±10% 6.0 5.0 7.5 0.6 A3 250 DE6B3KJ151KA3BE01J B 150 ±10% 8.0 5.0 7.5 0.6 A3 250 DE6B3KJ221KA3BE01J B 220 ±10% 6.0 6.0 7.5 0.6 A3 250 DE6B3KJ331KA3BE01J B 330 ±10% 7.0 6.0 7.5 0.6 A3 250 DE6B3KJ471KA3BE01J B 470 ±10% 8.0 6.0 7.5 0.6 A3 250 DE6B3KJ681KA3BE01J B 680 ±10% 9.0 6.0 7.5 0.6 A3 250 DE6E3KJ102MA3B E 1000 ±20% 7.0 7.0 7.5 0.6 A3 250 DE6E3KJ152MA3B E 1500 ±20% 8.0 7.0 7.5 0.6 A3 250 DE6E3KJ222MA3B E 2200 ±20% 9.0 7.0 7.5 0.6 A3 250 DE6E3KJ332MA3B E 3300 ±20% 10.0 7.0 7.5 0.6 A3 250 DE6E3KJ472MA3B E 4700 ±20% 12.0 7.0 7.5 0.6 A3 200 PNLIST Reference only Customer Part Number Murata Part Number T.C. Cap. (pF) Cap. tol. Dimension (mm) Lead Style Pack qty. (pcs)D T F d Note) The mark ' * ' of Lead Style differ from lead spacing (F) and lead diameter (d). Please see the following list about details.

Unit : mm DE6B3KJ101KA4BE01J B 100 ±10% 6.0 5.0 10.0 0.6 A4 250 DE6B3KJ151KA4BE01J B 150 ±10% 8.0 5.0 10.0 0.6 A4 250 DE6B3KJ221KA4BE01J B 220 ±10% 6.0 6.0 10.0 0.6 A4 250 DE6B3KJ331KA4BE01J B 330 ±10% 7.0 6.0 10.0 0.6 A4 250 DE6B3KJ471KA4BE01J B 470 ±10% 8.0 6.0 10.0 0.6 A4 250 DE6B3KJ681KA4BE01J B 680 ±10% 9.0 6.0 10.0 0.6 A4 250 DE6E3KJ102MA4B E 1000 ±20% 7.0 7.0 10.0 0.6 A4 250 DE6E3KJ152MA4B E 1500 ±20% 8.0 7.0 10.0 0.6 A4 250 DE6E3KJ222MA4B E 2200 ±20% 9.0 7.0 10.0 0.6 A4 250 DE6E3KJ332MA4B E 3300 ±20% 10.0 7.0 10.0 0.6 A4 250 DE6E3KJ472MA4B E 4700 ±20% 12.0 7.0 10.0 0.6 A4 200 PNLIST Reference only Customer Part Number Murata Part Number T.C. Cap. (pF) Cap. tol. Dimension (mm) Lead Style Pack qty. (pcs)D T F d Note) The mark ' * ' of Lead Style differ from lead spacing (F) and lead diameter (d). Please see the following list about details.

Unit : mm DE6B3KJ101KB3BE01J B 100 ±10% 6.0 5.0 7.5 0.6 B3 500 DE6B3KJ151KB3BE01J B 150 ±10% 8.0 5.0 7.5 0.6 B3 500 DE6B3KJ221KB3BE01J B 220 ±10% 6.0 6.0 7.5 0.6 B3 500 DE6B3KJ331KB3BE01J B 330 ±10% 7.0 6.0 7.5 0.6 B3 500 DE6B3KJ471KB3BE01J B 470 ±10% 8.0 6.0 7.5 0.6 B3 500 DE6B3KJ681KB3BE01J B 680 ±10% 9.0 6.0 7.5 0.6 B3 500 DE6E3KJ102MB3B E 1000 ±20% 7.0 7.0 7.5 0.6 B3 500 DE6E3KJ152MB3B E 1500 ±20% 8.0 7.0 7.5 0.6 B3 500 DE6E3KJ222MB3B E 2200 ±20% 9.0 7.0 7.5 0.6 B3 500 DE6E3KJ332MB3B E 3300 ±20% 10.0 7.0 7.5 0.6 B3 500 DE6E3KJ472MB3B E 4700 ±20% 12.0 7.0 7.5 0.6 B3 250 PNLIST Reference only Customer Part Number Murata Part Number T.C. Cap. (pF) Cap. tol. Dimension (mm) Lead Style Pack qty. (pcs)D T F d Note) The mark ' * ' of Lead Style differ from lead spacing (F) and lead diameter (d). Please see the following list about details.

Unit : mm DE6B3KJ101KB4BE01J B 100 ±10% 6.0 5.0 10.0 0.6 B4 500 DE6B3KJ151KB4BE01J B 150 ±10% 8.0 5.0 10.0 0.6 B4 500 DE6B3KJ221KB4BE01J B 220 ±10% 6.0 6.0 10.0 0.6 B4 500 DE6B3KJ331KB4BE01J B 330 ±10% 7.0 6.0 10.0 0.6 B4 500 DE6B3KJ471KB4BE01J B 470 ±10% 8.0 6.0 10.0 0.6 B4 500 DE6B3KJ681KB4BE01J B 680 ±10% 9.0 6.0 10.0 0.6 B4 500 DE6E3KJ102MB4B E 1000 ±20% 7.0 7.0 10.0 0.6 B4 500 DE6E3KJ152MB4B E 1500 ±20% 8.0 7.0 10.0 0.6 B4 500 DE6E3KJ222MB4B E 2200 ±20% 9.0 7.0 10.0 0.6 B4 500 DE6E3KJ332MB4B E 3300 ±20% 10.0 7.0 10.0 0.6 B4 500 DE6E3KJ472MB4B E 4700 ±20% 12.0 7.0 10.0 0.6 B4 250 PNLIST Reference only Customer Part Number Murata Part Number T.C. Cap. (pF) Cap. tol. Dimension (mm) Lead Style Pack qty. (pcs)D T F d Note) The mark ' * ' of Lead Style differ from lead spacing (F) and lead diameter (d). Please see the following list about details.

Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. Cap. (pF) Cap. tol. Dimension (mm) Lead Style Pack qty. (pcs)D T F d P Note) The mark ' * ' of Lead Style differ from lead spacing (F) , lead diameter (d) and pitch of compoment (P). Please see the following list or taping specification about details.

Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. Cap. (pF) Cap. tol. Dimension (mm) Lead Style Pack qty. (pcs)D T F d P Note) The mark ' * ' of Lead Style differ from lead spacing (F) , lead diameter (d) and pitch of compoment (P). Please see the following list or taping specification about details.

  1. Specification No. Specification Test Method (Compliant Standard:AEC-Q200, Ref. Standard:JIS C 5101(all parts), IEC60384(all parts))

1 Appearance and dimensions No marked defect on appearance

form. Please refer to [Part number list] on dimensions. The capacitor should be inspected by naked eyes for visible evidence of defect. Dimensions should be measured with slide calipers. 2 To be easily legible. The capacitor should be inspected by naked eyes. 3 Within specified tolerance. The capacitance should be measured at 20 °C with 1±0.1 kHz and 4 Dissipation Factor (D.F.) DF≦0.025 The dissipation factor should be measured at 20 °C with 1±0.1 kHz 5 Insulation Resistance (I.R.) 10,000 MΩ min. The insulation resistance should be measured with DC500±50 V within 60±5 s of charging. The voltage should be applied to the capacitor through a resistor of 1 MΩ. Between lead wires No failure. The capacitor should not be damaged when AC2,600 V(r.m.s.) <50/60 Hz> is applied between the lead wires for 60 s. Terminal To External Resin No failure. First, the terminals of the capacitor should be connected together. Then, a metal foil should be closely wrapped around the body of the capacitor to the distance of about 3 to 4 mm from each terminal. Then, the capacitor should be inserted into a container filled with metal balls of about 1 mm diameter. Finally, AC2,600 V(r.m.s.) <50/60 Hz> is applied for 60 s between the capacitor lead wires and metal balls. Char. B : Within ±10 % Char. E : Within +20/-55 % (Temp. range : -25 to 85°C) The capacitance measurement should be made at each step specified in Table. Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placedat *room condition for 24±2 h before initial measurements.

8 Solderability Lead wire should be soldered with

uniform coating on the axial direction over 3/4 of the circumferential direction. Should be placed into steam aging for 8 h ±15 min. After the steam aging, the lead wire of a capacitor should be dipped into a solution rosin ethanol (25% rosin in weight propotion) and then into molten solder for 5+0/-0.5 sec. The depth of immersion is up to about 1.5 to 2.0 mm from the root of lead wires. Temp. of solder : 245±5 °C(Sn-3Ag-0.5Cu) * "room condition" Temperature : 15 to 35 °C, Relative humidity : 45 to 75 %, Atmospheric pressure : 86 to 106kPa ESKJ01K

7 Temperature characteristic

6 Dielectric

No. Specification Test Method (Compliant Standard:AEC-Q200, Ref. Standard:JIS C 5101(all parts), IEC60384(all parts)) Appearance No marked defect. Capacitance change Within ±10 % I.R. 1,000 MΩ min. Dielectric strength Per item 6 Appearance No marked defect. Capacitance change Within ±10 % I.R. 1,000 MΩ min. Dielectric strength Per item 6 Appearance No marked defect. Capacitance Within the specified tolerance. Dissipation Factor (D.F.) DF≦0.025 Appearance No marked defect. Capacitance Within the specified tolerance. Dissipation Factor (D.F.) DF≦0.05 I.R. 10,000 MΩ min. * "room condition" Temperature : 15 to 35 °C, Relative humidity : 45 to 75 %, Atmospheric pressure : 86 to 106kPa ESKJ01K Reference only Test Item

9 Resistance to

(Non-preheat) As shown in figure, the lead wires should be immersed in solder of 260±5 °C up to 1.5 to 2.0 mm from the root of terminal for 10±1 s. Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h before initial measurements. Post-treatment : Capacitor should be stored for 1 to 2 h at *room condition.

12 Mechanical

Solder the capacitor and gum up the body to the test jig (glass epoxy board) by resin (adhesive). Three shocks in each direction should be applied along 3 mutually perpendicular axes to and from of the test specimen (18 shocks). The specified test pulse should be Half-sine and should have a duration : 0.5ms, peak value : 100 g and velocity change : 4.7 m/s.

10 Resistance to

(On-preheat) First the capacitor should be stored at 120+0/-5 °C for 60+0/-5 s. Then, as in figure, the lead wires should be immersed solder of 260+0/-5 °C up to 1.5 to 2.0 mm from the root of terminal for 7.5+0/-1 s. Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h before initial measurements. Post-treatment : Capacitor should be stored for 1 to 2 h at *room condition.

11 Vibration Solder the capacitor and gum up the body to the test jig (glass epoxy

board) by resin (adhesive). The capacitor should be firmly soldered to the supporting lead wire, 1.5 mm in total amplitude, with about 20 minutes rate of vibration change from 10 Hz to 2,000 Hz and back to 10 Hz. This motion should be applied for 12 times in each 3 mutually perpendicular directions (total of 36 times). The acceleration is 5 g max.. resin (adhesive) resin (adhesive)

No. Specification Test Method (Compliant Standard:AEC-Q200, Ref. Standard:JIS C 5101(all parts), IEC60384(all parts)) Appearance No marked defect. Capacitance change Char. B : Within ±10 % Char. E : Within ±15 % Dissipation Factor (D.F.) DF≦0.05 I.R. 3,000 MΩ min. Dielectric strength Per item 6 Appearance No marked defect. Capacitance change Char. B : Within ±10 % Char. E : Within ±15 % Dissipation Factor (D.F.) DF≦0.05 I.R. 3,000 MΩ min. Appearance No marked defect. Capacitance change Within ±20 % I.R. 3,000 MΩ min. Dielectric strength Per item 6

16 The capacitor flame discontinue as

follows. The capacitor should be subjected to applied flame for 15 s. and then removed for 15 s until 5 cycles are completed. (in mm) * "room condition" Temperature : 15 to 35 °C, Relative humidity : 45 to 75 %, Atmospheric pressure : 86 to 106kPa ESKJ01K Reference only Test Item

13 Humidity

(Under steady state) Set the capacitor for 1,000±12 h at 85±3 °C in 80 to 85 % relative humidity. Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h before initial measurements. Post-treatment : Capacitor should be stored for 1 to 2 h at *room condition. Flame test

14 Humidity

Apply the rated voltage for 1,000±12 h at 85±3 °C in 80 to 85 % relative humidity Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h before initial measurements. Post-treatment : Capacitor should be stored for 1 to 2 h at *room condition.

15 Life Impulse voltage

Each individual capacitor should be subjected to a 5 kV impulses for three times or more. Then the capacitors are applied to life test. The capacitors are placed in a circulating air oven for a period of 1,000 The air in the oven is maintained at a temperature of 125+2/-0 °C, and relative humidity of 50 % max.. Throughout the test, the capacitors are subjected to a AC510 V(r.m.s.) <50/60 Hz> alternating voltage of mains frequency, except that once each hour the voltage is increased Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h before initial measurements. Post-treatment : Capacitor should be stored for 1 to 2 h at *room condition. Cycle Time 1 to 4 30 s max. 5 60 s max. Front time (T1) = 1.7 μs=1.67T Time to half-value (T2) = 50 μs

No. Specification Test Method (Compliant Standard:AEC-Q200, Ref. Standard:JIS C 5101(all parts), IEC60384(all parts)) Tensile Lead wire should not cut off. Capacitor should not be broken. As shown in the figure at right, fix the body of the capacitor and apply a tensile weight gradually to each lead wire in the radial direction of the capacitor up to 10 N, and keep it for 10±1 s. Bending Each lead wire should be subjected to 5 N of weight and bent 90° at the point of egress, in one direction, then returned to its original position, and bent 90° in the opposite direction at the rate of one bend in 2 to 3 s. 18 The cheese-cloth should not be on fire. The capacitors should be individually wrapped in at least one but more than two complete layers of cheese-cloth. The capacitor should be subjected to 20 discharges. The interval between successive discharges should be 5 s. The UAc should be maintained for 2 min after the last discharge. C1,2 : 1 μF±10 %, C3 : 0.033 μF± 5% 10 kV L1 to L4 : 1.5 mH±20 % 16A Rod core choke R : 100 Ω±2 %, Ct : 3 μF±5 % 10 kV UAc : UR ±5 % UR : Rated working voltage Cx : Capacitor under test F : Fuse, Rated 10 A Ut : Voltage applied to Ct

19 The burning time should not be

exceeded the time 30 s. The tissue paper should not ignite. The capacitor under test should be held in the flame in the position which best promotes burning. Time of exposure to flame is for 30 s. Length of flame : 12±1 mm Gas burner : Length 35 mm min. Inside Dia. 0.5±0.1 mm Outside Dia. 0.9 mm max. Gas : Butane gas Purity 95 % min. * "room condition" Temperature : 15 to 35 °C, Relative humidity : 45 to 75 %, Atmospheric pressure : 86 to 106kPa ESKJ01K Passive flammability Reference only Test Item

17 Robustness of

200±5 mm 45° Flame About 8mm Capacitor Gas burner About 10 mm thick board Tissue

No. Specification Test Method (Compliant Standard:AEC-Q200, Ref. Standard:JIS C 5101(all parts), IEC60384(all parts)) Appearance No marked defect. Capacitance change Char. B : Within ±10 % Char. E : Within ±20 % Dissipation Factor (D.F.) DF≦0.05 I.R. 3,000 MΩ min. Dielectric strength Per item 6 Capacitance change Within ±20 % Dissipation Factor (D.F.) DF≦0.05 I.R. 1,000 MΩ min. Appearance No marked defect except color change of outer coating. Capacitance change Char. B : Within ±10 % Char. E : Within ±20 % Dissipation Factor (D.F.) DF≦0.05 I.R. 3,000 MΩ min. Appearance No marked defect. Capacitance change Char. B : Within ±10 % Char. E : Within ±20 % Dissipation Factor (D.F.) DF≦0.05 I.R. 3,000 MΩ min. Appearance No marked defect. Capacitance change Char. B : Within ±10 % Char. E : Within ±15 % Dissipation Factor (D.F.) DF≦0.05 I.R. 3,000 MΩ min. * "room condition" Temperature : 15 to 35 °C, Relative humidity : 45 to 75 %, Atmospheric pressure : 86 to 106kPa ESKJ01K Reference only Test Item

20 Temperature

The capacitor should be subjected to 1,000 temperature cycles. Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h. Post-treatment : Capacitor should be stored for 24±2 h at *room condition.

21 High

(Storage) Sit the capacitor for 1,000±12 h at 150±3 °C. Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h. Post-treatment : Capacitor should be stored for 24±2 h at *room condition. 22 Thermal Shock The capacitor should be subjected to 300 cycles. Pre-treatment: Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h. Post-treatment: Capacitor should be stored for 24±2 h at *room condition.

23 Resistance to

Per MIL-STD-202 Method 215 Solvent 1 : 1 part (by volume) of isopropyl alcohol 3 parts (by volume) of mineral spirits Solvent 2 : Terpene defluxer Solvent 3 : 42 parts (by volume) of water 1part (by volume) of propylene glycol monomethyl ether 1 part (by volume) of monoethanolamine

24 Biased

Apply DC1.3+0.2/-0 V (add 100 kΩ resistor) at 85±3 °C and 80 to 85 % humidity for 1,000±12 h. The charge/discharge current is less than 50 mA. Pre-treatment : Capacitor should be stored at 125±3 °C for 1 h, then placed at *room condition for 24±2 h. Post-treatment : Capacitor should be stored for 24±2 h at *room condition. Step Temperature(C) Time(min) 1 -55+0/-3 30 2 125+3/-0 30 Step Temperature(C) Time(min) 1 -55+0/-3 30 2 Room temp. 3 3 125+3/-0 30 4 Room temp. 3

No. Specification Test Method (Compliant Standard:AEC-Q200, Ref. Standard:JIS C 5101(all parts), IEC60384(all parts)) Appearance No marked defect. Capacitance change Char. B : Within ±10 % Char. E : Within ±20 % Dissipation Factor (D.F.) DF≦0.05 I.R. 3,000 MΩ min. * "room condition" Temperature : 15 to 35 °C, Relative humidity : 45 to 75 %, Atmospheric pressure : 86 to 106kPa ESKJ01K Reference only Test Item

25 Resistance Apply the 24 h heat (25 to 65 °C) and humidity (80 to 98 %) treatment

shown below, 10 consecutive times. Post-treatment: Capacitor should be stored for 24±2 h at *room condition.

  1. Packing specification ・Bulk type (Package : B) The size of packing case and packing way The number of packing = *1 Packing quantity × *2 n *1 : Please refer to [Part number list]. *2 : Standard n = 20 (bag) Note) The outer package and the number of outer packing be changed by the order getting amount. EKBCDE02A Reference only 340 max. 125 max. 270 max. Partition Unit : mm Plastic bag

・Ammo pack taping type (Package : A) ・The tape with capacitors is packed zigzag into a case. ・When body of the capacitor is piled on other body under it. ・There should be 3 pitches and over without capacitors in leader and trailer. The size of packing case and packing way EKTDE10A Reference only Position of label 60 max. 340 max. 240 max. Unit : mm Base tape Capacitor Hold down tape Hold down tape upper

  1. Taping specification 7-1. Dimension of capacitors on tape Vertical crimp taping type < Lead Style : N3 > Pitch of component 15.0 mm / Lead spacing 7.5 mm Unit : mm Item Code Dimensions Remarks Pitch of component P 15.0+/-2.0 Pitch of sprocket hole P0 15.0+/-0.3 Lead spacing F 7.5+/-1.0 Length from hole center to component center P2 7.5+/-1.5 Length from hole center to lead P1 3.75+/-1.0 Body diameter D Deviation along tape, left or right ΔS 0+/-2.0 They include deviation by lead bend. Carrier tape width W 18.0+/-0.5 Position of sprocket hole W1 9.0+/-0.5 Deviation of tape width direction Protrusion length ℓ +0.5~-1.0 Diameter of sprocket hole ΦD0 4.0+/-0.1 Lead diameter Φd 0.60+/-0.05 Total tape thickness t1 0.6+/-0.3 Total thickness of tape and lead wire t2 1.5 max. Deviation across tape, front Δh1 Deviation across tape, rear Δh2 Portion to cut in case of defect L 11.0+0/-1.0 Hold down tape width W0 11.5 min. Hold down tape position W2 1.5+/-1.5 Coating extension on lead e Body thickness T ETP1N301B Reference only Deviation of progress direction Please refer to [Part number list ]. Lead distance between reference and bottom planes H0 18.0+2.0/-0 They include hold down tape thickness. 2.0 max. Up to the end of crimp Please refer to [Part number list ].

Vertical crimp taping type < Lead Style : N4 > Pitch of component 25.4 mm / Lead spacing 10.0 mm Unit : mm Item Code Dimensions Remarks Pitch of component P 25.4+/-2.0 Pitch of sprocket hole P0 12.7+/-0.3 Lead spacing F 10.0+/-1.0 Length from hole center to lead P1 7.7+/-1.5 Body diameter D Deviation along tape, left or right ΔS 0+/-2.0 They include deviation by lead bend. Carrier tape width W 18.0+/-0.5 Position of sprocket hole W1 9.0+/-0.5 Deviation of tape width direction Protrusion length ℓ +0.5~-1.0 Diameter of sprocket hole ΦD0 4.0+/-0.1 Lead diameter Φd 0.60+/-0.05 Total tape thickness t1 0.6+/-0.3 Total thickness of tape and lead wire t2 1.5 max. Deviation across tape, front Δh1 Deviation across tape, rear Δh2 Portion to cut in case of defect L 11.0+0/-1.0 Hold down tape width W0 11.5 min. Hold down tape position W2 1.5+/-1.5 Coating extension on lead e Body thickness T ETP1N401B Reference only Please refer to [Part number list ]. Lead distance between reference and bottom planes H0 18.0+2.0/-0 They include hold down tape thickness. 2.0 max. Up to the end of crimp Please refer to [Part number list ].

7-2. Splicing way of tape 1) Adhesive force of tape is over 3 N at test condition as below. 2) Splicing of tape a) When base tape is spliced

  • Base tape should be spliced by cellophane tape. (Total tape thickness should be less than 1.05 mm.) b) When hold down tape is spliced
  • Hold down tape should be spliced with overlapping. (Total tape thickness should be less than 1.05 mm.) c) When both tape are spliced
  • Base tape and hold down tape should be spliced with splicing tape. 3) Missing components
  • There should be no consecutive missing of more than three components.
  • The number of missing components should be not more than 0.5 % of total components that should be present in a Ammo pack. ETP2D03 Reference only W Hold down tape Base tape Unit : mm Progress direction in production line Hold down tape Base tape Cellophane tapeAbout 30 to 50No lifting for the direction of progressing 20 to 60 Hold down tape Base tapeProgress direction in production line Unit : mm