• 3V3 Regulator with LED

    3V3 Regulator with LED

    A simple fixed linear voltage regulator board that can provide 3.3V up to 1A output and could operate down to 1V input-to-output differential. #firstpcbFlux

    merott

    4 years ago

    0 Uses

    1 Comment

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    1 Comment

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    1 Comment

    1 Star


  • RES-1K-002

    RES-1K-002

    The Ariel AI Chip, a pioneering component in the field of artificial intelligence hardware, integrates advanced features designed to enhance computational efficiency and AI processing capabilities. This chip is distinguished by its utilization of a quad-core CPU with a clock speed of 2GHz, operating on a radical transistor architecture that promises significant improvements in speed and power efficiency. Key components that constitute the Ariel AI Chip include a DC power supply with a 5V output (DCPS-5V), NPN transistors (NPN-TRANS-001 and NPN-TRANS-002) that serve as the fundamental switching elements, precision resistors (RES-1K and RES-1K-002) each with a resistance of 1kΩ, and a capacitor (CAP-10UF) rated at 10μF to stabilize voltage and filter noise. This chip is designed for integration into systems requiring advanced AI capabilities, offering a comprehensive solution for developers looking to leverage machine learning and artificial intelligence in their applications. With its innovative architecture and component selection, the Ariel AI Chip stands out as a versatile and powerful tool for a wide range of AI applications, from embedded systems to more complex computational platforms.

    0 Uses

    1 Comment

    1 Star


  • L7805CV

    L7805CV

    Linear Voltage Regulator IC Positive 5V Fixed 1 Output 1.5A TO-220-3 #CommonPartsLibrary #IntegratedCircuit #PowerManagement #LinearRegulator #VoltageRegulator

    0 Uses

    1 Comment

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    1 Comment

    1 Star


  • Power shield for ESP32

    Power shield for ESP32

    This is a voltage/current monitoring board based on the ACS712. There are as many as three voltage monitoring chips, which makes the board versatile for a lot of projects #esp32 #ACS712 #IoT #monitoring

    3 years ago

    0 Uses

    1 Comment

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    1 Comment

    1 Star


  • USB-C Multimeter

    USB-C Multimeter

    USB Type - C Multimeter. Designed for 5V-1A to 20V-5A PD charging. Features a generic OLED to display stats. Passthrough for voltage negotiation signals.

    3 years ago

    0 Uses

    1 Comment

    1 Star


  • CH340N SerialUPDI Programmer

    CH340N SerialUPDI Programmer

    Simple UPDI programmer for tinyAVR, megaAVR and AVR-Dx microcontrollers with voltage selection switch (5V and 3.3V).

    4 years ago

    0 Uses

    1 Comment

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    4 years ago

    0 Uses

    1 Comment

    1 Star


  • ESP32-WROOM-32E Reference Design i83J

    ESP32-WROOM-32E Reference Design i83J

    This project is a reference design for an ESP32-WROOM-32E based device. It features USB-C for power and data transfer, onboard voltage regulation, and multiple peripheral connections. It also includes a CH340C for USB to serial conversion #referenceDesign #project #ESP32 #ESP32WROOM #RF #WIFI #MCU #referenceDesign #simple-embedded #espressif #template #reference-design

    2 years ago

    0 Uses

    1 Comment

    1 Star


  • 3V3 Regulator with LED - old

    3V3 Regulator with LED - old

    A simple fixed linear voltage regulator board that can provide 3.3V up to 1A output and could operate down to 1V input-to-output differential. #firstpcbFlux

    4 years ago

    0 Uses

    1 Comment

    1 Star


  • RT6150B-33-Reference-Design

    RT6150B-33-Reference-Design

    Typical Application Circuit for RT6150B-33GQW, 1 Positive Fixed Output 3.3V 800mA. Input voltage 6V max. With JST connectors(Vin and +3V3) and with block terminal connectors(Vin and +3V3) #project-template #voltageregulator #switchingregulator #BuckBoost #project

    +

    U

    3 years ago

    0 Uses

    1 Comment

    1 Star


  • MC33063A Step-Up Converter

    MC33063A Step-Up Converter

    High-level step-up converter project that uses the MC34063A family to boost an input supply to a regulated output voltage for general DC power conversion and evaluation.

    4 months ago

    0 Uses

    0 Comments

    1 Star


  • Realistic Brown Battle Mech

    Realistic Brown Battle Mech

    Nice — you can do a clean pulse + latch using a single quad Schmitt-NAND chip: 74HC132 (or 74LVC132 for 3.3 V systems). The HC132 contains four 2-input NAND gates with Schmitt inputs so you can both clean a noisy SYN480R DATA line and build an SR latch (NAND SR is active-LOW) inside one package. Only a few passives and a driver transistor are needed. Below is a ready-to-build recipe (parts, wiring, explanation, tuning tips, and an ASCII schematic) — no extra logic ICs required. Parts (per latch) 1 × 74HC132 (quad 2-input NAND with Schmitt inputs). If your system is 3.3 V use 74LVC132 / 74HC132 rated for 3.3 V. Rin = 47 kΩ (input series) Cfilter = 10 nF (input RC to ground) — tweak for debounce/clean time Rpulldown = 100 kΩ (pull-down at input node, optional) Rpullup = 100 kΩ (pull-up for active-LOW R input so reset is idle HIGH) Rbase = 10 kΩ, Q = 2N2222 (NPN) or small N-MOSFET (2N7002) to drive your load Diode for relay flyback (1N4001) if you drive a coil Optional small cap 0.1 µF decoupling at VCC of IC Concept / how it works (short) Use Gate1 (G1) of 74HC132 as a Schmitt inverter by tying its two inputs together and feeding a small RC filter from SYN480R.DATA. This removes HF noise and provides a clean logic transition. Because it's a NAND with tied inputs its function becomes an inverter with Schmitt behavior. Use G2 & G3 as the cross-coupled NAND pair forming an SR latch (active-LOW inputs S̄ and R̄). A low on S̄ sets Q = HIGH. A low on R̄ resets Q = LOW. Wire the cleaned/inverted output of G1 to S̄. A valid received pulse (DATA high) produces a clean LOW on S̄ (because G1 inverts), setting the latch reliably even if the pulse is brief. R̄ is your reset input (pushbutton, HT12D VT, MCU line, etc.) — idle pulled HIGH. Q drives an NPN/MOSFET to switch your load (relay, LED, etc.). Recommended wiring (pin mapping, assume one chip; use datasheet pin numbers) I’ll refer to the 4 gates as G1, G2, G3, G4. Use G4 optionally for additional conditioning or to build a toggler later. SYN480R.DATA --- Rin (47k) ---+--- Node A ---||--- Cfilter (10nF) --- GND | Rpulldown (100k) --- GND (optional, keeps node low) Node A -> both inputs of G1 (tie inputs A and B of Gate1 together) G1 output -> S̄ (S_bar) (input1 of Gate2) Gate2 (G2): inputs = S̄ and Q̄ -> output = Q Gate3 (G3): inputs = R̄ and Q -> output = Q̄ R̄ --- Rpullup (100k) --- VCC (reset is idle HIGH; pull low to reset) (optional) R̄ can be wired to a reset pushbutton to GND or to an MCU pin Q -> Rbase (10k) -> base of 2N2222 (emitter GND; collector to one side of relay coil) Other side of relay coil -> +V (appropriate coil voltage) Diode across coil If you prefer MOSFET low side switching: Q -> gate resistor 100Ω -> gate of 2N7002 2N7002 source -> GND ; drain -> relay coil low side

    10 months ago

    0 Uses

    0 Comments

    1 Star


  • Boost converter for 3.3 volt

    Boost converter for 3.3 volt

    A Buck converter that can be power by Li-ion Battery and output 3.3 volt and 500mA Power by the TPS63051YFFR and the same package as a In the same as a Package as a standard dafruit buck converter. input Voltage Range : 3.3 v to 5.5 v

    10 months ago

    0 Uses

    0 Comments

    1 Star


  • test part template

    test part template

    A simple voltage divider to showcase how to make parts. A voltage divider is a simple circuit which turns a large voltage into a smaller one. Using just two series resistors and an input voltage, we can create an output voltage that is a fraction of the input. Voltage dividers are one of the most fundamental circuits in electronics.

    +

    U

    2 years ago

    0 Uses

    0 Comments

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    0 Comments

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    0 Comments

    1 Star


  • LM248D

    LM248D

    The LM248 and LM348 quad operational amplifiers, manufactured by STMicroelectronics, incorporate four independent, high-gain internally-compensated, low-power operational amplifiers designed to provide identical functional characteristics to those of the renowned UA741 operational amplifier. These components stand out for their low supply current of 0.53 mA per amplifier and class AB output stage, ensuring no crossover distortion, which makes them highly suitable for applications demanding multiple UA741 type amplifiers and where amplifier matching or high packaging density is required. Furthermore, the LM248 and LM348 offer superior features such as low input offset voltage (1 mV), low input bias current (30 nA), and a gain bandwidth product of 1.3 MHz. They also boast excellent isolation between amplifiers (120 dB) and overload protection for inputs and outputs, enhancing their reliability and performance in various operational environments. The operational temperature ranges are from -40 °C to 105 °C for the LM248 and 0 °C to 70 °C for the LM348, catering to a broad spectrum of industrial applications. Additionally, these components are pin-compatible with LM124, LM224, LM324, further extending their applicability in electronic circuit designs.

    2 years ago

    0 Uses

    0 Comments

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    0 Comments

    1 Star


  • [Example] Simulation of AC to DC Converter

    [Example] Simulation of AC to DC Converter

    A simulated circuit that demonstrates how diodes in a bridge configuration convert an AC voltage to DC voltage.

    5 years ago

    0 Uses

    0 Comments

    1 Star


  • ESP32-WROOM-32UE Reference Design

    ESP32-WROOM-32UE Reference Design

    This project is a reference design for an ESP32-WROOM-32UE based device. It features USB-C for power and data transfer, onboard voltage regulation, and multiple peripheral connections. It also includes a CH340C for USB to serial conversion #referenceDesign #project #ESP32 #ESP32WROOM #RF #WIFI #MCU #referenceDesign #simple-embedded #espressif #template #reference-design

    2 years ago

    0 Uses

    0 Comments

    1 Star


  • Walkie-Talkie circuit

    Walkie-Talkie circuit

    A simple walkie-talkie circuit running off an Arduino Nano. Utilizes a BJT to amplify the microphone voltage and transmits the radio signal through a nRF24L01 series Transceiver.

    2 years ago

    0 Uses

    0 Comments

    1 Star


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