RCE5C1H101J0K1H03B_V01 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 Leaded MLCC for Automotive (Powertrain/Safety) RCE Series
- OPERATING VOLTAGE Do not apply a voltage to the capacitor that exceeds the rated voltage as called out in the specifications. 1-1. Applied voltage between the terminals of a capacitor shall be less than or equal to the rated voltage. (1) 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. (2) Abnormal voltages (surge voltage, static electricity, pulse voltage, etc.) shall not exceed the rated DC voltage. Typical Voltage Applied to the DC Capacitor (E: Maximum possible applied voltage.) 1-2. 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. Use a safety standard certified capacitor in a power supply input circuit (AC filter), as it is also necessary to consider the withstand voltage and impulse withstand voltage defined for each device. 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. In case of Class 2 capacitors (Temp.Char. : X7R,X7S,X8L, 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.: C0G,U2J,X8G, 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. 3. 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. EGLEDMNO03C Reference only DC Voltage DC+AC Voltage AC Voltage Pulse Voltage E E E E
- 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 5 to 40 °C and 20 to 70%. Use capacitors within 6 months. Use capacitors within 6 months after delivered. Check the solderability after 6 months or more. Due to moisture condensation caused by rapid humidity changes, or the photochemical change caused by direct sunlight on the terminal electrodes, the solderability and electrical performance may deteriorate. Do not store capacitors under direct sunlight or in high humidity conditions. 5. VIBRATION AND IMPACT Do not expose a capacitor or its leads to excessive shock or vibration during use. 5-1. 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. 5-2. 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. 6. 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. 6-1. Flow Soldering Soldering temperature : 260 ℃ max. Soldering time : 7.5 s max. Preheating temperature : 120 ℃ max. Preheating time : 60 s max. 6-2. Reflow Soldering Do not apply reflow soldering. 6-3. Soldering Iron Temperature of iron-tip : 350 ℃ max. Soldering iron wattage : 60 W max. Soldering time : 3.5 s max. EGLEDMNO03C Reference only 100 150 200 250 300 0 20 40 60 80 100 Time [s] Temp. [°C] Pre-heating Soldering [Standard Condition for Flow Soldering]
- BONDING AND RESIN MOLDING, RESIN COAT In case of bonding, molding or coating this product, verify that these processes do not affect the quality of capacitor by testing the performance of a bonded or molded 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 or molding resin may cause a outer coating resin cracking and/or ceramic element cracking of a capacitor in a temperature cycling. 8. TREATMENT AFTER BONDING AND RESIN MOLDING, RESIN COAT When the outer coating is hot (over 100 °C) 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. 9. 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). EGLEDMNO03C Reference only
- 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 lead wires. 2. 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 2 capacitors (Temp.Char. : X7R,X7S,X8L etc.) Class 2 capacitors 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 product specification. EGLEDMNO03C Reference only
- Application This product specification is applied to Leaded MLCC RCE series. 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. 2. Rating
- Part Number Configuration ex.) Series Temperature Rated Capacitance Capacitance Dimension Lead Individual Package Characteristics Voltage Tolerance (LxW) Style Specification
- Temperature Characteristics
- Rated Voltage
- Capacitance The first two digits denote significant figures ; the last digit denotes the multiplier of 10 in pF. If there is a decimal point, it is expressed by the capital letter “R”. In this case, all figures are significant digits. ex.) In case of . 10 × 104 = 100000 pF In case of 9R0 . 9.0 pF
- Capacitance Tolerance TEIKAKU Reference only RCE 5C 1H 104 J 2 K1 H03 B Temp. Temp. Range 5C C0G (EIA code) Code Rated voltage 1H DC50V 2A DC100V J +/-5% 104 Code Capacitance Tolerance C +/-0.25pF D +/-0.5pF
- Dimension (LxW) Please refer to [ Part number list ].
- Lead Style *Lead wire is "solder coated CP wire".
- Individual Specification Murata’s control code. Please refer to [ Part number list ].
- Package 3. Marking Temp. char. : Letter code : A (C0G Char.) Capacitance : Actual numbers (Less than 100pF) 3 digit numbers (100pF and over) Capacitance tolerance : Code Rated voltage : Letter code : 5 (DC50V. Except dimension code : 0,1) Letter code : 1 (DC100V. Except dimension code : 0,1) Company name code : Abbreviation : (Except dimension code : 0,1) (Ex.) Rated voltage Dimension code TEIKAKU A2 Straight type 2.5+/-0.8 Reference only Code Lead Style Lead spacing (mm) A Taping type of Ammo DB Straight taping type 2.5+0.4/-0.2 K1 Inside crimp type 5.0+/-0.8 M1 Inside crimp taping type 5.0+0.6/-0.2 Code Package B Bulk type DC50V DC100V 0,1 A 102J 104 J5A 223 J1A A 332J
- Part number list Unit : mm RCE5C1H100J0A2H03B C0G 50 10pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H120J0A2H03B C0G 50 12pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H150J0A2H03B C0G 50 15pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H180J0A2H03B C0G 50 18pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H220J0A2H03B C0G 50 22pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H270J0A2H03B C0G 50 27pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H330J0A2H03B C0G 50 33pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H390J0A2H03B C0G 50 39pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H470J0A2H03B C0G 50 47pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H560J0A2H03B C0G 50 56pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H680J0A2H03B C0G 50 68pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H820J0A2H03B C0G 50 82pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H101J0A2H03B C0G 50 100pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H121J0A2H03B C0G 50 120pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H151J0A2H03B C0G 50 150pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H181J0A2H03B C0G 50 180pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H221J0A2H03B C0G 50 220pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H271J0A2H03B C0G 50 270pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H331J0A2H03B C0G 50 330pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H391J0A2H03B C0G 50 390pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H471J0A2H03B C0G 50 470pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H561J0A2H03B C0G 50 560pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H681J0A2H03B C0G 50 680pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H821J0A2H03B C0G 50 820pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H102J0A2H03B C0G 50 1000pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H122J0A2H03B C0G 50 1200pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H152J0A2H03B C0G 50 1500pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H182J0A2H03B C0G 50 1800pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H222J0A2H03B C0G 50 2200pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H272J0A2H03B C0G 50 2700pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H332J0A2H03B C0G 50 3300pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T
Unit : mm RCE5C1H392J0A2H03B C0G 50 3900pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C1H472J1A2H03B C0G 50 4700pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H562J1A2H03B C0G 50 5600pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H682J1A2H03B C0G 50 6800pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H822J1A2H03B C0G 50 8200pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H103J1A2H03B C0G 50 10000pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H123J1A2H03B C0G 50 12000pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H153J1A2H03B C0G 50 15000pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H183J1A2H03B C0G 50 18000pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H223J1A2H03B C0G 50 22000pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C1H273J2A2H03B C0G 50 27000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C1H333J2A2H03B C0G 50 33000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C1H393J2A2H03B C0G 50 39000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C1H473J2A2H03B C0G 50 47000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C1H563J2A2H03B C0G 50 56000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C1H683J2A2H03B C0G 50 68000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C1H823J2A2H03B C0G 50 82000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C2A100J0A2H03B C0G 100 10pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A120J0A2H03B C0G 100 12pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A150J0A2H03B C0G 100 15pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A180J0A2H03B C0G 100 18pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A220J0A2H03B C0G 100 22pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A270J0A2H03B C0G 100 27pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A330J0A2H03B C0G 100 33pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A390J0A2H03B C0G 100 39pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A470J0A2H03B C0G 100 47pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A560J0A2H03B C0G 100 56pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A680J0A2H03B C0G 100 68pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A820J0A2H03B C0G 100 82pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A101J0A2H03B C0G 100 100pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T
Unit : mm RCE5C2A121J0A2H03B C0G 100 120pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A151J0A2H03B C0G 100 150pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A181J0A2H03B C0G 100 180pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A221J0A2H03B C0G 100 220pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A271J0A2H03B C0G 100 270pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A331J0A2H03B C0G 100 330pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A391J0A2H03B C0G 100 390pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A471J0A2H03B C0G 100 470pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A561J0A2H03B C0G 100 560pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A681J0A2H03B C0G 100 680pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A821J0A2H03B C0G 100 820pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A102J0A2H03B C0G 100 1000pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A122J0A2H03B C0G 100 1200pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A152J0A2H03B C0G 100 1500pF ±5% 3.6 3.5 - 2.5 2.5 0A2 500 RCE5C2A182J1A2H03B C0G 100 1800pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C2A222J1A2H03B C0G 100 2200pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C2A272J1A2H03B C0G 100 2700pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C2A332J1A2H03B C0G 100 3300pF ±5% 4.0 3.5 - 2.5 2.5 1A2 500 RCE5C2A392J2A2H03B C0G 100 3900pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C2A472J2A2H03B C0G 100 4700pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C2A562J2A2H03B C0G 100 5600pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C2A682J2A2H03B C0G 100 6800pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C2A822J2A2H03B C0G 100 8200pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 RCE5C2A103J2A2H03B C0G 100 10000pF ±5% 5.5 4.0 - 2.5 3.15 2A2 500 PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T H/H0
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T H/H0
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T H/H0
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T H/H0
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T H/H0
Unit : mm PNLIST Reference only Customer Part Number Murata Part Number T.C. DC Rated Volt. (V) Cap. Cap. Tol. Dimension (mm) Dimension (LxW) Lead Style Pack qty. (pcs)L W W1 F T H/H0
- Specification No. Specification Test Method (Compliant Standard:AEC-Q200) 2 High Appearance No defects or abnormalities Sit the capacitor for 1000±12h at 150±3°C. Let sit for 24±2h at Temperature Capacitance Within ±3% or ±0.3pF *room condition, then measure. Exposure Change (Whichever is larger) (Storage) Q 30pF ≦ C : Q ≧ 350 10pF ≦ C < 30pF : Q ≧ 275+5C/2 10pF > C : Q ≧ 200+10C C : Nominal Capacitance (pF) I.R. More than 1,000MΩ or 50 MΩ・μF (Whichever is smaller) 3 Temperature Appearance No defects or abnormalities Perform the 1000 cycles according to the four heat treatments Cycling Capacitance Within ±5% or ±0.5pF listed in the following table. Let sit for 24±2 h at *room condition, Change (Whichever is larger) then measure. Q 30pF ≦ C : Q ≧ 350 10pF ≦ C < 30pF : Q ≧ 275+5C/2 10pF > C : Q ≧ 200+10C C : Nominal Capacitance (pF) I.R. 1,000MΩ or 50MΩ・µF min. (Whichever is smaller) 4 Moisture Appearance No defects or abnormalities Apply the 24h heat (25 to 65°C) and humidity (80 to 98%) Resistance Capacitance Within ±5% or ± 0.5pF treatment shown below, 10 consecutive times. Change (Whichever is larger) Let sit for 24±2 h at *room condition, then measure. Q 30pF ≦ C : Q ≧ 200 30pF > C : Q ≧ 100+10C/3 C : Nominal Capacitance (pF) I.R. 500MΩ or 25MΩ・µF min. (Whichever is smaller) 5 Biased Appearance No defects or abnormalities Apply the rated voltage and DC1.3+0.2/-0V (add 100k Ω resistor) Humidity Capacitance Within ±5% or ± 0.5pF at 85±3°C and 80 to 85% humidity for 1,000±12h. Change (Whichever is larger) Remove and let sit for 24±2 h at *room condition, then measure. Q 30pF ≦ C : Q ≧ 200 The charge/discharge current is less than 50mA. 30pF > C : Q ≧ 100+10C/3 C : Nominal Capacitance (pF) I.R. 500MΩ or 25MΩ・µF min. (Whichever is smaller) 6 Operational Appearance No defects or abnormalities Apply 200% of the rated voltage for 1000±12h at 125±3°C. Life Capacitance Within ±3% or ±0.3pF Let sit for 24±2 h at *room condition, then measure. Change (Whichever is larger) The charge/discharge current is less than 50mA. Q 30pF ≦ C : Q ≧ 350 10pF ≦ C < 30pF : Q ≧ 275+5C/2 10pF > C : Q ≧ 200+10C C : Nominal Capacitance (pF) I.R. 1,000MΩ or 50MΩ・µF min. (Whichever is smaller) * “room condition” Temperature : 15 to 3 5°C, Relative humidity : 45 to 75%, Atmosphere pressure : 86 to 106kPa ESRCE02D Reference only Test Item Pre-and Post-Stress Electrical Test
No. Specification Test Method (Compliant Standard:AEC-Q200) 7 No defects or abnormalities. Visual inspection. 8 Within the specified dimensions. Using calipers and micrometers. 9 To be easily legible. Visual inspection. 10 Resistance Appearance No defects or abnormalities. Per MIL-STD-202 Method 215. to Solvents Capacitance Within the specified tolerance. Solvent 1 : 1 part (by volume) of isopropyl alcohol Q 30pF ≦ C : Q ≧ 1,000 3 parts (by volume) of mineral spirits 30pF > C : Q ≧ 400+20C Solvent 2 : Terpene defluxer Solvent 3 : 42 parts (by volume) of water C : Nominal Capacitance (pF) 1part (by volume) of propylene glycol I.R. More than 10,000MΩ or 500 MΩ・μF monomethyl ether (Whichever is smaller) 1 part (by volume) of monoethanolamine 11 Mechanical Appearance No defects or abnormalities. Three shocks in each direction should be applied along 3 Shock Capacitance Within the specified tolerance. mutually perpendicular axes of the test specimen (18 shocks). Q 30pF ≦ C : Q ≧ 1,000 The specified test pulse should be Half-sine and should have a 30pF > C : Q ≧ 400+20C duration : 0.5ms, peak value : 1500G and velocity change : 4.7m/s. C : Nominal Capacitance (pF) 12 Vibration Appearance No defects or abnormalities. The capacitor should be subjected to a simple harmonic motion Capacitance Within the specified tolerance. having a total amplitude of 1.5mm, the frequency being varied Q 30pF ≦ C : Q ≧ 1,000 uniformly between the approximate limits of 10 and 2,000Hz. 30pF > C : Q ≧ 400+20C The frequency range, from 10 to 2000Hz and return to 10Hz, should be traversed in approximately 20 min. This motion C : Nominal Capacitance (pF) should be applied for 12 items in each 3 mutually perpendicular directions (total of 36 times). 13-1 Resistance Appearance No defects or abnormalities. The lead wires should be immersed in the melted solder 1.5 to to Capacitance Within ±2.5% or ±0.25pF 2.0mm from the root of terminal at 260±5°C for 10±1 seconds. Soldering Change (Whichever is larger) Heat Dielectric No defects. • Post-treatment (Non- Strength Capacitor should be stored for 24±2 hours at *room condition. Preheat) (Between terminals) 13-2 Resistance Appearance No defects or abnormalities. First the capacitor should be stored at 120+0/-5°C for 60+0/-5 seconds. to Capacitance Within ±2.5% or ±0.25pF Then, the lead wires should be immersed in the melted solder Soldering Change (Whichever is larger) 1.5 to 2.0mm from the root of terminal at 260±5°C for 7.5+0/-1 seconds. Heat Dielectric No defects (On- Strength • Post-treatment Preheat) (Between Capacitor should be stored for 24±2 hours at *room condition. terminals) 13-3 Resistance Appearance No defects or abnormalities. Test condition to Capacitance Within ±2.5% or ±0.25pF Termperature of iron-tip : 350±10°C Soldering Change (Whichever is larger) Soldering time : 3.5±0.5 seconds Heat Dielectric No defects Soldering position (soldering Strength Straight Lead : 1.5 to 2.0mm from the root of terminal. iron method) (Between Crimp Lead : 1.5 to 2.0mm from the end of lead bend. terminals)
- Post-treatment Capacitor should be stored for 24±2 hours at *room condition. 14 Thermal Appearance No defects or abnormalities. Perform the 300 cycles according to the two heat treatments listed Shock Capacitance Within ±5% or ±0.5pF in the following table (Maximum transfer time is 20s.). Let sit for Change (Whichever is larger) 24±2 h at *room condition, then measure. Q 30pF ≦ C : Q ≧ 350 10pF ≦ C < 30pF : Q ≧ 275+5C/2 10pF > C : Q ≧ 200+10C C : Nominal Capacitance (pF) I.R. 1,000MΩ or 50MΩ・µF min. (Whichever is smaller) * “room condition” Temperature : 15 to 3 5°C, Relative humidity : 45 to 75%, Atmosphere pressure : 86 to 106kPa ESRCE02D Marking Reference only Test Item External Visual Physical Dimension
No. Test Method (Compliant Standard:AEC-Q200)
15 ESD Appearance Per AEC-Q200-002
Q I.R. 16 Solderability Should be placed into steam aging for 8h±15 min. The terminal of capacitor is dipped into a solution of rosin ethanol (25% rosin in weight propotion). Immerse in solder solution for 2±0.5 seconds. In both cases the depth of dipping is up to about 1.5 to 2mm from the terminal body. Temp. of solder : 245±5°C (Sn-3.0Ag-0.5Cu) Characte- Capacitance The capacitance, Q should be measured at 25°C at the frequency rization Q and voltage shown in the table. I.R. Between 10,000MΩ or 500MΩ・µF min. The insulation resistance should be measured with a DC voltage Terminals (Whichever is smaller) not exceeding the rated voltage at 25 °C within 2 min. of charging. Dielectric Between No defects or abnormalities. The capacitor should not be damaged when DC voltage of 300% Strength Terminals of the rated voltage is applied between the terminations for 1 to 5 seconds. (Charge/Discharge current ≦ 50mA.) No defects or abnormalities. The capacitor is placed in a container with metal balls of 1mm diameter so that each terminal, short-circuit is kept approximately 2mm from the balls, and 250% of the rated DC voltage is impressed for 1 to 5 seconds between capacitor terminals and metal balls. (Charge/Discharge current ≦ 50mA.)
18 Terminal Tensile As in the figure, fix the capacitor body, apply the force gradually
Strength Strength to each lead in the radial direction of the capacitor until reaching 10N and then keep the force applied for 10±1 seconds. Bending Each lead wire should be subjected to a force of 2.5N and then Strength be bent 90° at the point of egress in one direction. Each wire is then returned to the original position and bent 90° in the opposite direction at the rate of one bend per 2 to 3 seconds. 19 Within the specified Tolerance The capacitance change should be measured after 5min. at 25°C to 125°C : 0±30ppm/°C each specified temperature step. -55°C to 25°C : 0+30/-72ppm/°C The temperature coefficient is determind using the capacitance measured in step 3 as a reference. When cycling the temperature sequentially from step 1 through 5 (-55°C to 125°C) the capacitance should be within the specified tolerance for the temperature coefficient and capacitance change as Table A. The capacitance drift is caluculated by dividing the differences betweeen the maximum and minimum measured values in the step 1, 3 and 5 by the capacitance value in step 3. * “room condition” Temperature : 15 to 3 5°C, Relative humidity : 45 to 75%, Atmosphere pressure : 86 to 106kPa ESRCE02D Within the specified tolerance. Reference only Test Item Specification No defects or abnormalities. 30pF > C : Q ≧ 400+20C 30pF ≦ C : Q ≧ 1,000 30pF > C : Q ≧ 400+20C C : Nominal Capacitance (pF) More than 10,000MΩ or 500 MΩ・µF (Whichever is smaller) Lead wire should be soldered with uniform coating on the axial direction over 95% of the circumferential direction. No defects or abnormalities. Within the specified tolerance. 30pF ≦ C : Q ≧ 1,000 Characteristics C : Nominal Capacitance (pF) Terminal To External Resin Termination not to be broken or loosened. Termination not to be broken or loosened. Capacitance Temperature F
- Packing specification ・Bulk type (Packing style code : 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. JKBCRPE02A Reference only 340 max. 125 max. 270 max. Partition Unit : mm Plastic bag
・Ammo pack taping type (Packing style code : A) A crease is made every 25 pitches, and the tape with capacitors is packed zigzag into a case. When body of the capacitor is piled on other body under it. The size of packing case and packing way EKTRPE01 Reference only Position of label 51 max. 340 max. 240 max. Unit : mm Base tape Capacitor Hold down tape Hold down tape upper
- Taping specification 7-1. Dimension of capacitors on tape Straight taping type < Lead Style : DB > Pitch of component 12.7mm / Lead spacing 2.5mm Unit : mm Item Code Dimensions Remarks Pitch of component P 12.7+/-1.0 Pitch of sprocket hole P0 12.7+/-0.2 Lead spacing F 2.5+0.4/-0.2 Length from hole center to lead P1 5.1+/-0.7 Deviation along tape, left or right defect 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/-0.5 Deviation of tape width direction Protrusion length ℓ 0.5 max. Diameter of sprocket hole ΦD0 4.0+/-0.1 Lead diameter Φd 0.5+/-0.05 Total tape thickness t1 0.6+/-0.3 Total thickness of tape and lead wire t2 1.5 max. Δh1 Δh2 Portion to cut in case of defect L 11.0+0/-1.0 Hold down tape width W0 9.5 min. Hold down tape position W2 1.5+/-1.5 Coating extension on lead e 1.5 max. ETP1DB02A Reference only Length from hole center to component center P2 6.35+/-1.3 Deviation of progress direction Lead distance between reference and bottom plane H 16.0+/-0.5 They include hold down tape thickness Deviation across tape 1.0 max. P2 P ΦD0 L W H △h1 △h2 Marking F e Φd
Inside crimp taping type < Lead Style : M1 > Pitch of component 12.7mm / Lead spacing 5.0mm Unit : mm Item Code Dimensions Remarks Pitch of component P 12.7+/-1.0 Pitch of sprocket hole P0 12.7+/-0.2 Lead spacing F 5.0+0.6/-0.2 Length from hole center to lead P1 3.85+/-0.7 Deviation along tape, left or right defect 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/-0.5 Deviation of tape width direction Protrusion length ℓ 0.5 max. Diameter of sprocket hole ΦD0 4.0+/-0.1 Lead diameter Φd 0.5+/-0.05 Total tape thickness t1 0.6+/-0.3 Total thickness of tape and lead wire t2 1.5 max. Δh1 Δh2 Portion to cut in case of defect L 11.0+0/-1.0 Hold down tape width W0 9.5 min. Hold down tape position W2 1.5+/-1.5 Coating extension on lead e ETP1M101A Reference only Length from hole center to component center P2 6.35+/-1.3 Deviation of progress direction Up to the end of crimp Lead distance between reference and bottom plane H0 16.0+/-0.5 They include hold down tape thickness Deviation across tape 2.0 max. (Dimension code : W) 1.0 max. (except as above) P2 P L ΦD0 W Δh1 Marking Δh2 ΔSt1 W2F e Φd
7-2. Splicing way of tape 1) Adhesive force of tape is over 3N at test condition as below. 2) Splicing of tape (a) When base tape is spliced
- Base tape shall be spliced by cellophane tape. (Total tape thickness shall be less than 1.05mm.) (b) When hold down tape is spliced
- Hold down tape shall be spliced with overlapping. (Total tape thickness shall be less than 1.05mm.) (c) When both tape are spliced
- Base tape and hold down tape shall 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. ETP2R01A 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 30 Hold down tape Base tapeProgress direction in production line Unit : mm