• Microbit 40 Pin Connecto

    Microbit 40 Pin Connecto

    This surface-mount edge connector is designed specifically for the micro:bit. It's very slim and fully SMT. It also only has contacts on one side, just like the 'bit. This version is a Straight style where the micro:bit plugs-in perpendicular to the PCB.

    josephwheeler1

    2 years ago

    0 Uses

    0 Comments

    0 Stars


  • 5 Pin Pogo (male)

    5 Pin Pogo (male)

    Welcome to your new project. Imagine what you can build here.

    4 years ago

    0 Uses

    0 Comments

    0 Stars


  • Esquematico para 2 Pin Switch

    Esquematico para 2 Pin Switch

    Welcome to your new project. Imagine what you can build here.

    3 years ago

    0 Uses

    0 Comments

    0 Stars


  • XLR 3 PIN tester

    XLR 3 PIN tester

    Welcome to your new project. Imagine what you can build here.

    a year ago

    0 Uses

    0 Comments

    0 Stars


  • Arduino Mega 3pin PWM board

    Arduino Mega 3pin PWM board

    A board to use any PWM output with a 3 pin header

    3 years ago

    0 Uses

    16 Comments

    0 Stars


  • BHI160B Reference design

    BHI160B Reference design

    This project is a reference design for the BHI160B sensor featuring an I2C interface with QWIIC and pin headers. The design includes decoupling capacitors and pull-up resistors for signal integrity. It's powered by a 3.3V supply. #referenceDesign #project #sensor #accelerometer #BHI160B #referenceDesign #imu #stm #template #reference-design

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    2 years ago

    0 Uses

    15 Comments

    0 Stars


  • Arduino Uno/Bluno Shield Template h7dC

    Arduino Uno/Bluno Shield Template h7dC

    Template for a shield connected to an Arduino Uno/Bluno. Note, the pin out for this was designed specifically for a Bluno, but it should be pin compatible with an Arduino Uno

    0 Uses

    7 Comments

    0 Stars


  • Yummy Gray Esper Photo Analyser

    Yummy Gray Esper Photo Analyser

    Light Detection: The LDR detects the ambient light level. When it is dark, the resistance of the LDR is high, resulting in a higher voltage at the inverting input (pin 2) of the op-amp. Comparison: The op-amp compares the voltage at pin 2 with the reference voltage set at pin 3 by the potentiometer (R3). If the voltage at pin 2 is higher than the reference voltage at pin 3 (indicating darkness), the op-amp output goes high. Transistor Activation: The high output from the op-amp turns on the transistor (Q1) by providing base current through R4. Relay Activation: When Q1 is turned on, current flows through the relay coil, energizing it and closing the relay contacts. Lamp Operation: The closed relay contacts complete the AC circuit, allowing current to flow and turning on the lamp (LA1). Light Detection (Daytime): When it is light, the resistance of the LDR decreases, resulting in a lower voltage at pin 2 of the op-amp. If this voltage is lower than the reference voltage at pin 3, the op-amp output goes low, turning off Q1, de-energizing the relay, and turning off the lampWelcome to your new project. Imagine what you can build here.

    2 years ago

    0 Uses

    2 Comments

    0 Stars


  • K4B2G1646F-BYK0

    K4B2G1646F-BYK0

    The Samsung K4B2G1646F is a 2Gb DDR3L SDRAM memory component designed for high-speed performance, offering data rates up to 1866Mb/sec/pin. Available in a 96-ball FBGA package and organized as 128Mb x 16 I/Os x 8 banks, it is optimized for use in various applications requiring efficient data storage and retrieval. The device supports both 1.35V (DDR3L) and 1.5V (standard DDR3) power supplies, ensuring compatibility with a wide range of system requirements. Key features include an 8-bit pre-fetch architecture, programmable CAS latency, on-die termination (ODT), and internal self-calibration through the ZQ pin. The component also adheres to JEDEC standards and is compliant with RoHS, ensuring it is free of lead and halogen. Suitable for commercial and industrial temperature ranges, the K4B2G1646F offers robust performance for various demanding applications.

    2 years ago

    0 Uses

    2 Comments

    0 Stars


  • TO-263-7 TabPin8

    TO-263-7 TabPin8

    TO-263-7 TabPin8 is a surface-mount package commonly used for electronic components. It has a body size of approximately 10.2 mm x 12.2 mm x 3.2 mm (L x W x H) with 7 pins and a tab pin configuration. Pin 1 is typically located in the lower left corner when viewed from the flat side, while the tab pin, labeled as Pin 8, is connected to the tab or heat sink of the package. The lead pitch between the other pins is typically 2.54 mm. The package is also known as D2PAK-7, DPAK-7, or DDPAK-7. #part #template

    a year ago

    0 Uses

    1 Comment

    0 Stars


  • LQFP-32_7x7mm_P0.8mm

    LQFP-32_7x7mm_P0.8mm

    LQFP-32 is a surface-mount package for integrated circuits (ICs) with 32 leads arranged in a 7x7 mm square grid. The lead pitch is 0.8 mm, and the body size is approximately 7.0 mm x 7.0 mm x 1.4 mm (L x W x H). LQFP-32 is commonly used for microcontrollers, digital signal processors, and other complex ICs that require a high pin count. It provides a low-profile solution that is well-suited for space-constrained applications. 32-LQFP #part #template

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • SOIC-20W_7.5x12.8mm_P1.27mm

    SOIC-20W_7.5x12.8mm_P1.27mm

    SOIC-20W is a 20-pin Small Outline Integrated Circuit (SOIC) package with a wide body size of approximately 7.5mm x 12.8mm and a standard lead pitch of 1.27mm. It has a lead count and pin configuration similar to a DIP-20 package, but with a smaller body size. The "W" in the package name refers to the wide body size. This package is commonly used for ICs such as microcontrollers and audio amplifiers. #part #template

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • DB125-3.81-4P-GN-S

    DB125-3.81-4P-GN-S

    Straight 4 pin Pitch 3.81mm Screw terminal block #screwblock #connector #commonPartsLibrary

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • oscilador 555

    oscilador 555

    copilot Entiendo que deseas diseñar un oscilador utilizando el chip 555. Aquí están algunos pasos que puedes seguir para hacer esto. Conecta el pin 1 (GND) del IC 555 a la terminal negativa de tu fuente de alimentación (0V). Conecta el pin 8 (VCC) del IC 555 a la terminal positiva de tu fuente de alimentación (11V). Conecta la resistencia de 10kΩ (R1) entre el pin 8 (VCC) y el pin 7 (DISCHARGE) del 555. Conecta tu potenciómetro de 100kΩ (R2) entre el pin 7 (DISCHARGE) y el pin 6 (THRESHOLD) del 555. Junta los pines 2 (TRIGGER) y 6 (THRESHOLD) juntos y conecta los pines unidos al lado negativo de tu condensador de 10nF (C). Conecta el lado positivo del condensador de 10nF (C) a VCC (el pin 8). Conecta el pin 4 (RESET) al VCC si no quieres usar la función de reset. De lo contrario, puedes conectar una señal de reset aquí. Conecta el pin 3 (OUTPUT) del 555 al terminal positivo de tu resistencia de 470Ω. Conecta el otro terminal de la resistencia a tierra. El condensador de 10uF debe estar conectado en paralelo a la alimentación (entre VCC y GND) para suavizar cualquier ruido en la fuente de alimentación de 11V. Te sugiero que experimentes con el valor del potenciómetro (R2) hasta que consigas el Duty Cycle deseado. Por lo general, es posible cambiar la frecuencia del pulso y ajustar el Duty Cycle utilizando este control. Si, después de realizar estas conexiones y ajustes, aún no puedes obtener el Duty Cycle deseado, podría ser indicativo de que los valores de resistencia y condensador que tienes no son adecuados para tu rango de frecuencia y Duty Cycle objetivo. Para que obtengamos un Duty Cycle del 75%, necesitamos usar el chip 555 en modo astable y debemos calcular los valores de R1 y R2 (resistencia total de carga y descarga respectivamente) que nos ayude a conseguir esto. El tiempo de alta (T_high) y el tiempo de baja del ciclo (T_low) de la oscilación salen determinados por R1, R2, y C (el condensador). Se pueden usar las siguientes fórmulas para calcularlos: T_high = 0.693 * (R1 + R2) * C T_low = 0.693 * R2 * C Duty cycle = ( T_high ) / ( T_high + T_low ) Para un Duty Cycle de 0.75: Estableceremos R1 como la resistencia de 10 kilohmios que se proporcionó. Con el potenciómetro de 100 kilohmios como R2, podemos variarlo para ajustar el Duty Cycle según necesitemos hasta que se llegue a la relación deseada. Considerando que el condensador C es el condensador de 10 nF que se proporcionó, anteriores declaraciones son bajo supuesto que el tiempo de operación (T = T_high + T_low) caiga en un rango aceptable. Para el esquemático: Conecta VCC de tu 555 al terminal positivo de tu fuente de voltaje de 11V y GND a tierra. Conecta los pines 2 (TRIGGER) y 6 (THRESHOLD) juntos y al lado negativo de tu condensador de 10nF. Conecta el lado positivo del condensador a VCC. Conecta el pin 3 (OUTPUT) al terminal positivo de tu resistencia de 470 ohmios. Conecta el otro terminal de la resistencia a tierra. Conecta tu resistencia de 10 kilohmios entre VCC y los pines 2 y 6 del 555. Finalmente, conecta tu potenciómetro entre los pines 2 y 6 y el pin 7 (DISCHARGE) del 555. El condensador de 10uF debería estar conectado en paralelo a la alimentación para suavizar cualquier ruido en la alimentación de 11V. Estas son mis suposiciones y pasos sugeridos pero recuerda variar el potenciómetro hasta conseguir el Duty Cycle deseado en caso de no conseguirlo de forma inmediata. Si por alguna razón no puedes conseguir el Duty Cycle de 75%, es posible que las resistencias y condensadores proporcionados no sean los adecuados para el rango de frecuencia y Duty Cycle deseados. En tal caso, puede que tengas que utilizar otros valores de componentes.

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • Arduino Uno/Bluno Shield Template

    Arduino Uno/Bluno Shield Template

    Template for a shield connected to an Arduino Uno/Bluno. Note, the pin out for this was designed specifically for a Bluno, but it should be pin compatible with an Arduino Uno

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • Arduino Uno/Bluno Shield Template

    Arduino Uno/Bluno Shield Template

    Template for a shield connected to an Arduino Uno/Bluno. Note, the pin out for this was designed specifically for a Bluno, but it should be pin compatible with an Arduino Uno

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • BHI160B Reference design

    BHI160B Reference design

    This project is a reference design for the BHI160B sensor featuring an I2C interface with QWIIC and pin headers. The design includes decoupling capacitors and pull-up resistors for signal integrity. It's powered by a 3.3V supply. #referenceDesign #project #sensor #accelerometer #BHI160B #referenceDesign #imu #stm #template #reference-design

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • Arduino Uno/Bluno Shield Template

    Arduino Uno/Bluno Shield Template

    Template for a shield connected to an Arduino Uno/Bluno. Note, the pin out for this was designed specifically for a Bluno, but it should be pin compatible with an Arduino Uno

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • (BUG)Triple-Axis Accelerometer

    (BUG)Triple-Axis Accelerometer

    The LIS3DH is a very popular low power triple-axis accelerometer. It's low-cost, but has just about every 'extra' you'd want in an accelerometer. This sensor communicates over I2C or SPI (our library code supports both) so you can share it with a bunch of other sensors on the same I2C bus. There's an address selection pin so you can have two accelerometers share an I2C bus.

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    5 years ago

    0 Uses

    1 Comment

    0 Stars


  • RPi TDC

    RPi TDC

    Time-to-Digital converter plug-on module (shield) for Raspberry Pi B+. The board utilizes a TDC7200 (TI) with a time resolution of ~50ps. The Start/Stop inputs to the TDC can be configured with JP2 from either external signals or coming from the RPi's GPIO5 pin in case a timing signal is present at this pin from another plug-on board on the same RPi. Start and Stop signals can be configured from different signals (coming from the input connectors) or the same source (setting "common" on JP3) either supplied from the Start input connector or GPIO5. Read-out of the TDC chip is done through the RPi's SPI bus.

    4 years ago

    0 Uses

    1 Comment

    0 Stars


  • PanelModule D-SUB25

    PanelModule D-SUB25

    Panel module for connecting D-SUB 25 via pin socket 02x13 #connector #D-SUB #25

    3 years ago

    0 Uses

    1 Comment

    0 Stars


  • Thermocouple Amplifier AD8495  5ba4

    Thermocouple Amplifier AD8495 5ba4

    The AD8495 K-type thermocouple amplifier from Analog Devices is so easy to use, we documented the whole thing on the back of the tiny PCB. Power the board with 3-18VDC and measure the output voltage on the OUT pin. You can easily convert the voltage to temperature with the following equation: Temperature = (Vout - 1.25) / 0.005 V. So for example, if the voltage is 1.5VDC, the temperature is (1.5 - 1.25) / 0.005 = 50°C with terminal block connections

    2 years ago

    0 Uses

    1 Comment

    0 Stars


  • Connector 01x04 Horizontal

    Connector 01x04 Horizontal

    Through hole straight pin header, 1x04, 4 pin, 4-pin, horizontal, angled, 2.54mm pitch, 6mm pin lenght single row

    0 Uses

    1 Comment

    0 Stars


  • Connector 01x22 6bH6

    Connector 01x22 6bH6

    Generic Connector Single Row 01x22 22 pin 22-pin

    4 years ago

    0 Uses

    1 Comment

    0 Stars


  • Connector 01x05 1DG7

    Connector 01x05 1DG7

    Generic Connector Single Row 01x05 5 pin 5-pin

    4 years ago

    0 Uses

    1 Comment

    0 Stars


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