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SFC37S25-7.5K303E-F SFC37S25-7.5K303E-F 9996 Cornell Dubilier Electronics (CDE) CAP ARRAY 7.5UF/25UF 370V RADIAL Radial, Can
SFC37S40-5K391E-F SFC37S40-5K391E-F 30564 Cornell Dubilier Electronics (CDE) CAP ARRAY 5UF/40UF 370V RADIAL Radial, Can
SFT44T50-5K391E-F SFT44T50-5K391E-F 8117 Cornell Dubilier Electronics (CDE) CAP ARRAY 5UF/50UF 440V RADIAL Radial, Can - 3 Lead
SFC37S30-5K391E-F SFC37S30-5K391E-F 14833 Cornell Dubilier Electronics (CDE) CAP ARRAY 5UF/30UF 370V RADIAL Radial, Can
SFC37S30-10K391E-F SFC37S30-10K391E-F 11150 Cornell Dubilier Electronics (CDE) CAP ARRAY 10UF/30UF 370V RADIAL Radial, Can
SFC37S30-15K391E-F SFC37S30-15K391E-F 10520 Cornell Dubilier Electronics (CDE) CAP ARRAY 15UF/30UF 370V RADIAL Radial, Can
SFC37S30-20K391E-F SFC37S30-20K391E-F 8606 Cornell Dubilier Electronics (CDE) CAP ARRAY 20UF/30UF 370V RADIAL Radial, Can
SFT44T45-10K391E-F SFT44T45-10K391E-F 38819 Cornell Dubilier Electronics (CDE) CAP ARRAY 10UF/45UF 440V RADIAL Radial, Can - 3 Lead
SFC37S25-10K303E-F SFC37S25-10K303E-F 6251 Cornell Dubilier Electronics (CDE) CAP ARRAY 10UF/25UF 370V RADIAL Radial, Can
SFC37S35-15K391E-F SFC37S35-15K391E-F 8249 Cornell Dubilier Electronics (CDE) CAP ARRAY 15UF/35UF 370V RADIAL Radial, Can
SFT37T50-5K291E-F SFT37T50-5K291E-F 39866 Cornell Dubilier Electronics (CDE) CAP ARRAY 5UF/50UF 370V RADIAL Radial, Can - 3 Lead
SFT44T45-15K391E-F SFT44T45-15K391E-F 20794 Cornell Dubilier Electronics (CDE) CAP ARRAY 15UF/45UF 440V RADIAL Radial, Can - 3 Lead
SFT44T35-7.5K291E-F SFT44T35-7.5K291E-F 32713 Cornell Dubilier Electronics (CDE) CAP ARRAY 7.5UF/35UF 440V RADIAL Radial, Can - 3 Lead
SFC37S20-7.5K303E-F SFC37S20-7.5K303E-F 11333 Cornell Dubilier Electronics (CDE) CAP ARRAY 7.5UF/20UF 370V RADIAL Radial, Can
SFT37T70-10K391E-F SFT37T70-10K391E-F 31442 Cornell Dubilier Electronics (CDE) CAP ARRAY 10UF/70UF 370V RADIAL Radial, Can - 3 Lead
SFC37S25-15K391E-F SFC37S25-15K391E-F 2227 Cornell Dubilier Electronics (CDE) CAP ARRAY 15UF/25UF 370V RADIAL Radial, Can
SFT44T45-5K291E-F SFT44T45-5K291E-F 10106 Cornell Dubilier Electronics (CDE) CAP ARRAY 5UF/45UF 440V RADIAL Radial, Can - 3 Lead
SFT37T60-7.5K291E-F SFT37T60-7.5K291E-F 15369 Cornell Dubilier Electronics (CDE) CAP ARRAY 7.5UF/60UF 370V RADIAL Radial, Can - 3 Lead
SFT44T40-7.5K291E-F SFT44T40-7.5K291E-F 20482 Cornell Dubilier Electronics (CDE) CAP ARRAY 7.5UF/40UF 440V RADIAL Radial, Can - 3 Lead
SFT44T40-15K391E-F SFT44T40-15K391E-F 23038 Cornell Dubilier Electronics (CDE) CAP ARRAY 15UF/40UF 440V RADIAL Radial, Can - 3 Lead

Capacitor Networks, Arrays

Capacitor Networks/Arrays are widely used in miniaturized, high-performance electronic devices, especially in consumer electronics, automotive electronics, and communication equipment.

 

1. ‌Definition and Basic Structure of Capacitor Networks or Arrays‌

‌Integrated Design‌: Capacitor Networks/Arrays are a combination of multiple capacitors in a single package, usually containing multiple capacitor units, whose parameters (such as capacitance and withstand voltage) may be the same or different.

‌Packaging Form‌: Common packages include SMD packages, which are suitable for high-density circuit board design, can reduce space occupation, and improve wiring efficiency.

 

2. ‌Functions and Application Scenarios of Capacitor Networks or Arrays‌

‌Circuit Decoupling and Filtering‌: Used in power management circuits, multiple capacitor units work together to effectively suppress high-frequency noise and stabilize voltage, especially suitable for digital circuits and high-speed signal processing scenarios.

‌Signal Coupling and Matching‌: In radio frequency (RF) and communication circuits, array capacitors are used to achieve signal coupling or impedance matching to improve signal integrity.

 

3. What are the ‌Technical Advantages of Capacitor Networks or Arrays?‌

‌Consistency and Reliability‌: Integrated packaging ensures parameter consistency of each capacitor unit and reduces performance fluctuations of discrete components due to process differences‌.

‌Simplified Design and Production‌: By reducing the number of discrete capacitors used, assembly complexity is reduced, and production yield is improved while facilitating automated mounting‌.

 

4. How to Choose Capacitor Networks or Arrays?‌

‌Capacitance Configuration‌: It is divided into symmetrical type (all units have the same capacitance) and asymmetrical type (capacitance difference configuration), which can be flexibly selected according to circuit requirements‌.

‌Withstand Voltage and Temperature Characteristics‌: It is necessary to select a model that meets industrial standards (such as AEC-Q200) in combination with the working environment (such as temperature range, and voltage fluctuation).