• Playground: LoSS - ST LoRa Data Logger

    Playground: LoSS - ST LoRa Data Logger

    The LoSS - ST LoRa Data Logger project is designed to collect and log data using LoRa connectivity. It includes interfaces for JTAG and UART communication. Key components include multiple capacitors, resistors, a crystal oscillator, and an NXP MCU. The device interacts with various sensors and transmits data periodically using LoRa technology. Interface elements include buttons and a display for user interaction.

    collinsemasi

    21 Comments

    1 Star


  • Wireless wearable glove

    Wireless wearable glove

    This project is a wireless wearable glove (smart glove) for sign language translation. It uses Arduino Nano - ATMega328P, Accelerometer - ADXL345 and a Bluetooth module HC -05 to transmit and display the signs on any compatible display device like a mobile phone or a LCD - LM016L. In this project, I have used a 5x8 LCD display - LM016L to display the test converted. (strings, numbers etc.)

    19 Comments

    1 Star


  • ESP32 Robot Controller

    ESP32 Robot Controller

    Control board for autonomous or radio-controlled robots. It has inputs to connect distance sensors and encoders for autonomous mode. It can be radio controlled by the ESP32 bluetooth or by connecting a Flysky RC controller receiver to the IBUS port. It also has 3 push buttons and you can connect some kind of display by I2C to visualize and select configuration modes. Forked from original project: https://www.flux.ai/jr98/esp32-robot-controller

    jharwinbarrozo

    18 Comments

    1 Star


  • Webcam & TouchKey Laptop PCB

    Webcam & TouchKey Laptop PCB

    This project involves designing a PCB for the lid assembly of an open-source laptop. The design integrates various sensors, including a microphone, camera, and ambient light sensor, ensuring precise alignment with the display glass. It features touch sensors to control LED lighting, spring-loaded contacts for touch-key interaction, and 3D-printed light diffusers for efficient lighting. Additionally, the PCB includes a power management system with status LEDs and a PFC for connecting to the external laptop PCB. The goal is to create a versatile, upgradeable, and user-friendly component for the laptop's lid. Specific parts of the project include 1. Microphone - Audio input capture 2. Ambient Light Sensor Module - Light intensity measurement 3. Camera - Video capture 4. LDO Regulators (3 TLV74 Series) - Voltage regulation for different components 5. Crystal - Clock generation 6. Touch Sensor Controller - Touch-key interaction 7. Flip-Flop - State keeping in logic circuits 8. LEDs (LTRBR37G Series) - Lighting indication 9. FPC Connector - Interface with main laptop PCB

    collinsemasi

    15 Comments

    1 Star


  • Ultrasonic Distance Meter Reference Design

    Ultrasonic Distance Meter Reference Design

    This circuit is an ultrasonic distance meter based on an ATTiny2313 microcontroller. It uses an HC-SR04 ultrasonic sensor to measure distance and displays the results on an OLED display. The power supply is constructed using a Boost converter (TPS613222A) and a 2-cell AA battery. Additionally, it also includes ISP for programming, RESET and START switches, and LED indicators. #project #Template #projectTemplate #ultrasonic #OLED #arduino #attiny2313 #TPS613222A #ISP #referenceDesign #simple-embedded #microchip #template #reference-design .

    vasy_skral

    &

    cherepanyadima

    13 Comments

    1 Star


  • AUIDO-Helper

    AUIDO-Helper

    This is a Kitchen Assistant Reference Design that runs on an ESP32 that connects to the network. The board has a microphone and bazer for communication and a display #referenceDesign #edge-computing #edgeComputing #espressif #template #esp32 #iot #i2s #reference-design

    11 Comments

    1 Star


  • Arduino Uno learner's kit

    Arduino Uno learner's kit

    The Arduino Uno learner's kit with ESP32 is a versatile educational tool for beginners. It combines an Arduino Uno board with additional components like a 2-channel motor driver, 7-segment display, relay outputs, programmable LEDs, push buttons, and analog inputs. This kit enables learners to explore electronics, programming, robotics, home automation, and more. With the ESP32 module, Wi-Fi and Bluetooth connectivity are possible, expanding the range of projects. It's a comprehensive package that fosters creativity and knowledge in the exciting world of electronics and programming. #arduino #esp32

    rohitbangal

    10 Comments

    1 Star


  • nRF52810 Watch Template

    nRF52810 Watch Template

    This is a smart watch project based on E73-2G4M04S1A module with SoC nRF52810 on board. OLED display and coin battery #wearable #nRF52810 #E73 #Ebyte #BLE #referenceDesign

    grahulnath

    9 Comments

    1 Star


  • BLE Door and Window Sensor Reference Design

    BLE Door and Window Sensor Reference Design

    This project is a BLE door and window sensor design that uses a U-blox BMD-330-A-R for BLE communication, a reed switch as a sensor, a multi-color LED for status display, and is powered by VBAT. There's also a programming interface and reset switch included. #WiFi #BLE #MCU #ReferenceDesign #project #referenceDesign #simple-embedded #ublox #template #reference-design

    vasy_skral

    6 Comments

    1 Star


  • ESP32 Robot Controller | AI Design Review Tutorial [Example] 3o6U

    ESP32 Robot Controller | AI Design Review Tutorial [Example] 3o6U

    Spot the mistake! Learn how to use AI to conduct a design review on an ESP32-based control board. This project is ideal for autonomous or radio-controller robots featuring inputs for sensors, encoders, and a Flysky RC receiver, plus an I2C display for configuration.

    dmit

    5 Comments

    1 Star


  • Speedy AI Pendent

    Speedy AI Pendent

    Product Type: Wearable AI pendant Primary Function: Records audio, generates transcripts, and organizes information about daily interactions User Interaction: Input: Activation button Output: RGB LED ring, Bluetooth link to phone Key Features: Audio Recording: Activated by button press Transcription: Converts audio to text Sentiment Analysis: Embedded AI evaluates sentiment Information Management: Filters essential information and action items Technical Specifications Form Factor: Wearable pendant Display: RGB LED ring around the edge Sensors: 2 Microphones 1 Button Connectivity: Bluetooth for phone linkage Wi-Fi USB-C for charging Wireless Protocol: Wi-Fi, Bluetooth Battery Type: LiPo 2000 mAh Battery Life: 6 hours of continuous use Charging Method: USB-C Operating Voltage: 3.3V Operating Conditions: Temperature Range: -10°C to 70°C Humidity: 10 to 90% Software: Python for AI and processing Compliance: RoHS, FCC, CE Reliability: 20,000 hrs Life Cycle Expectancy: 10 years AI Capabilities Speech to Text Recognition: Converts audio input to written text Embedded AI Sentiment Analysis: Evaluates the mood or sentiment expressed in the text Essential Information Filtering: Identifies and segregates crucial data and actionable items Power Consumption and Efficiency Power consumption must align with battery capacity to ensure 6 hours of continuous operational use.

    ryanf

    5 Comments

    1 Star


  • Ripe Silver Flux Capacitor

    Ripe Silver Flux Capacitor

    @COPILOT Elimina piezas que tengan elementos metálicos en su estructura. El sistema cuenta con un sensor infrarrojo y uno inductivo, el primero detecta la presencia de una ficha en la zona y el segundo, identifica si una ficha contiene un elemento metálico. Si el sensor inductivo se activa se debe expulsar la ficha con el pistón, esta zona contabiliza el número de piezas rechazadas y las visualiza en un Display LCD

    jjjjjjjjj

    4 Comments

    1 Star


  • ESP32 Robot Controller | AI Design Review Tutorial [Example]

    ESP32 Robot Controller | AI Design Review Tutorial [Example]

    Spot the mistake! Learn how to use AI to conduct a design review on an ESP32-based control board. This project is ideal for autonomous or radio-controller robots featuring inputs for sensors, encoders, and a Flysky RC receiver, plus an I2C display for configuration.

    jrvc18

    1 Comment

    1 Star


  • ESP32 Robot Controller | AI Design Review Tutorial [Example]

    ESP32 Robot Controller | AI Design Review Tutorial [Example]

    Spot the mistake! Learn how to use AI to conduct a design review on an ESP32-based control board. This project is ideal for autonomous or radio-controller robots featuring inputs for sensors, encoders, and a Flysky RC receiver, plus an I2C display for configuration.

    rodrigoutn

    1 Comment

    1 Star


  • ESP32 Robot Controller | AI Design Review Tutorial [Example]

    ESP32 Robot Controller | AI Design Review Tutorial [Example]

    Spot the mistake! Learn how to use AI to conduct a design review on an ESP32-based control board. This project is ideal for autonomous or radio-controller robots featuring inputs for sensors, encoders, and a Flysky RC receiver, plus an I2C display for configuration.

    dulee

    1 Comment

    1 Star


  • WiFi RF-ID lock reference design vnb3

    WiFi RF-ID lock reference design vnb3

    This project is a WiFi RF-ID Lock, which uses a Espressif ESP-8684 microcontroller for WiFi connectivity and a Handson Technology RC522 for RF-ID functionality. It also includes an OLED display and user control via a switch. A step-up power converter ensures consistent 3.3V power. #WiFi #MCU #ReferenceDesign #project #ESP8684 #lock #OLED #referenceDesign #simple-embedded #espressif #template #reference-design

    bytransistor

    1 Comment

    1 Star


  • Personal-Dosimeter

    Personal-Dosimeter

    Small personal dosimeter based on SBM-21 Geiger tube with OLED display.

    aleksey

    1 Comment

    1 Star


  • CheckIt_mini

    CheckIt_mini

    CheckIt is a daily habit tool. When you complete a habit, flip a switch, then an LED lights up. Future work will include wiring the 24pin FPC port to the Pico which causes an e-paper screen to display a message when a switch is flipped. This PCB runs using a Raspberry Pi Pico and has plans to be battery powered similar to a digital alarm clock.

    ryanleontini

    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.

    xibinx

    1 Comment

    1 Star


  • Breadboard Wrist Watch

    Breadboard Wrist Watch

    A fun project making a geeky wristwatch, using the QDSP-6064 bubble LED display.

    jonhanson

    1 Comment

    1 Star


  • FJ Compass Module (2nd Attempt) (messed up for testing)

    FJ Compass Module (2nd Attempt) (messed up for testing)

    USB-C Digital Compass Module with STM32, HMC5883L, TM1637 Display, and Enhanced Power Protection (JLCPCB-Ready)

    1 Star


  • Voluntary Lavender T-800

    Voluntary Lavender T-800

    Low-Power MCU-Based SPI TFT Display Board with Advanced Power Management and Protection

    simon26

    1 Star


  • ESP32 Robot Controller | AI Design Review Tutorial [Example] fukm

    ESP32 Robot Controller | AI Design Review Tutorial [Example] fukm

    Spot the mistake! Learn how to use AI to conduct a design review on an ESP32-based control board. This project is ideal for autonomous or radio-controller robots featuring inputs for sensors, encoders, and a Flysky RC receiver, plus an I2C display for configuration.

    eduartx25

    1 Star


  • Brainstorm a new project with AI [Example]

    Brainstorm a new project with AI [Example]

    make this for me now # Device Summary & Specification Sheet ## 1. Overview A rugged, Arduino-Uno-and-Raspberry-Pi-style single-board micro-PC featuring: - Smartphone-class CPU (Snapdragon 990) - USB-C Power Delivery + 4×AA alkaline backup + ambient-light harvester - On-board Arduino-Uno-compatible ATmega328P - External NVMe SSD via USB3 bridge & optional Thunderbolt 3 eGPU support - 5× USB 3.0 ports, HDMI in/out, Gigabit Ethernet & SFP fiber, Wi-Fi, Bluetooth, LoRa - 0.96″ OLED status display, 3.5 mm audio jack with codec --- ## 2. Key Specifications | Category | Specification | |--------------------|-------------------------------------------------------------------------------| | CPU | Snapdragon 990, octa-core up to 2.84 GHz | | Memory | 6 GB LPDDR4x DRAM | | Storage Interface | PCIe Gen3 ×4 → M.2 NVMe + USB 3.1 Gen1 bridge | | MCU | ATmega328P (Arduino-Uno-compatible) | | Power Input | USB-C PD up to 20 V/5 A; 4×AA alkaline backup; ambient-light photodiode boost | | Power Rails | 12 V, 5 V, 3.3 V, 1.8 V, 1.2 V via buck/buck-boost regulators | | USB Hub | 5× USB 3.0 downstream ports | | Display | 0.96″ 128×64 OLED via I²C/SPI | | Networking | 1 × Gigabit RJ45; 1 × SFP fiber; Wi-Fi 802.11ac + Bluetooth; LoRa SX1276 | | Video I/O | HDMI 2.0 input (RX) & output (TX) | | Audio | 3.5 mm jack + TLV320AIC3101 codec; Bluetooth audio | | Form Factor | Raspberry Pi–style header + Arduino-Uno shield headers; 4× standoff mounts | --- ## 3. Complete Parts List | Part | Function | Qty | |------------------------------------------------------------------------------------------------|-----------------------------------------------|-----| | [Snapdragon 990](https://www.flux.ai/search?type=components&q=Snapdragon%20990) | Main application CPU | 1 | | [LPDDR4x DRAM](https://www.flux.ai/search?type=components&q=LPDDR4x%20DRAM) | System memory | 1 | | [eMMC 64GB](https://www.flux.ai/search?type=components&q=eMMC%2064GB) | On-board storage | 1 | | [M.2 NVMe Connector](https://www.flux.ai/search?type=components&q=M.2%20NVMe%20Connector) | External SSD interface | 1 | | [JMS583](https://www.flux.ai/search?type=components&q=JMS583) | PCIe→USB 3.1 bridge for NVMe | 1 | | [Titan Ridge](https://www.flux.ai/search?type=components&q=Titan%20Ridge) | Thunderbolt 3/eGPU controller | 1 | | [STUSB4500](https://www.flux.ai/search?type=components&q=STUSB4500) | USB-C Power-Delivery controller | 1 | | [LTC4412](https://www.flux.ai/search?type=components&q=LTC4412) | Ideal-diode OR-ing | 1 | | [LTC3108](https://www.flux.ai/search?type=components&q=LTC3108) | Ambient-light (solar) energy harvester | 1 | | [Battery Holder 4×AA](https://www.flux.ai/search?type=components&q=Battery%20Holder%204xAA) | Alkaline backup power | 1 | | [TPS53318](https://www.flux.ai/search?type=components&q=TPS53318) | 6 V→5 V synchronous buck regulator | 1 | | [MCP1700-3302E/TO](https://www.flux.ai/search?type=components&q=MCP1700-3302E/TO) | 6 V→3.3 V LDO | 1 | | [TPS63060](https://www.flux.ai/search?type=components&q=TPS63060) | Buck-boost for 12 V rail (eGPU power) | 1 | | [ATmega328P](https://www.flux.ai/search?type=components&q=ATmega328P) | Arduino-Uno microcontroller | 1 | | [ESP32-WROOM-32](https://www.flux.ai/search?type=components&q=ESP32-WROOM-32) | Wi-Fi + Bluetooth co-processor | 1 | | [SX1276](https://www.flux.ai/search?type=components&q=SX1276) | LoRa transceiver | 1 | | [TUSB8041](https://www.flux.ai/search?type=components&q=TUSB8041) | 5-port USB 3.0 hub IC | 1 | | [Ethernet PHY](https://www.flux.ai/search?type=components&q=Ethernet%20PHY) | Gigabit Ethernet physical transceiver | 1 | | [SFP Cage](https://www.flux.ai/search?type=components&q=SFP%20Cage) | Fiber-optic SFP module connector | 1 | | [TDA19978](https://www.flux.ai/search?type=components&q=TDA19978) | HDMI 2.0 receiver (input) | 1 | | [TFP410](https://www.flux.ai/search?type=components&q=TFP410) | HDMI 2.0 transmitter (output) | 1 | | [TLV320AIC3101](https://www.flux.ai/search?type=components&q=TLV320AIC3101) | Audio codec for 3.5 mm jack & Bluetooth audio | 1 | | [Audio Jack 3.5mm](https://www.flux.ai/search?type=components&q=Audio%20Jack%203.5mm) | Headphone/mic port | 1 | | [SSD1306 OLED](https://www.flux.ai/search?type=components&q=SSD1306%20OLED) | Status display | 1 | --- ## 4. High-Level Design & Implementation Steps 1. **Schematic Creation** - Section off blocks: CPU + memory, power-supply, NVMe/USB bridge, MCU, wireless, USB hub, video, audio, I/O headers. - Place all parts from the list and wire per respective datasheet reference circuits. 2. **Power System** - Implement USB-C PD with STUSB4500 → buck/buck-boost & LDO rails. - Add LTC4412 to OR-ing battery pack into 6 V bus. - Include LTC3108 harvest input to 6 V bus (no recharge to AA). - Add decoupling & bulk caps per regulator datasheets; PTC fuses & ESD diodes on inputs. 3. **SoC & High-Speed Interfaces** - Break out Snapdragon 990 BGA with DDR4 routing (point-to-point). - Route PCIe Gen3 lanes to M.2 slot via JMS583 and to Titan Ridge for TB/eGPU. - Follow high-speed layout guidelines: impedance, length matching, EMI filters. 4. **MCU & Expansion Headers** - Place ATmega328P with UNO-style 2.54 mm headers; add ISP 6-pin, I²C pull-ups, reset circuit. 5. **Connectivity Blocks** - USB hub: TUSB8041 + ESD + chokes → five USB-A 3.0 ports. - Ethernet: RJ45 + magnetics + PHY; SFP cage + PHY/SFP interface. - Wireless: ESP32 module pad + SX1276 + antenna matching; program pads. 6. **Video & Audio** - HDMI RX (TDA19978) & TX (TFP410) blocks with TMDS ESD & termination. - Audio codec + 3.5 mm jack; route differential audio lines; add ESD. 7. **Display & Indicators** - SSD1306 OLED on I²C; add pull-ups & backlight power if needed. - LEDs for power, charge, status. 8. **PCB Layout & Mechanical** - Follow Raspberry Pi 2×20 header footprint & UNO shield hole pattern. - Add reinforcement for rugged use; standoffs at corners. - Define 4-layer stackup: • Top: signal • L2: GND • L3: PWR • Bottom: signal 9. **DRC/ERC Reviews** - Run ERC for decoupling, pull-ups, power nets. - Run DRC for high-speed clearance, differential pairs, via aspect ratios. 10. **Fabrication & Testing** - Export Gerbers, IPC-2581, BOM. - Prototype assembly; verify power sequencing, rails, interfaces. - Functional tests: USB-C PD negotiation, NVMe throughput, eGPU over TB3, wireless comm, audio, OLED. --- This spec sheet and part list should guide your Flux schematic and PCB layout workflow through to fabrication and validation. Let me know if you’d like to deep-dive into any specific block or review datasheet details next!

    risk4444

    &

    melinda_scarlet285093
    izzeddinizzeddin
    dobei

    1 Star


  • Ultrasonic Distance Meter Reference Design

    Ultrasonic Distance Meter Reference Design

    This circuit is an ultrasonic distance meter based on an ATTiny2313 microcontroller. It uses an HC-SR04 ultrasonic sensor to measure distance and displays the results on an OLED display. The power supply is constructed using a Boost converter (TPS613222A) and a 2-cell AA battery. Additionally, it also includes ISP for programming, RESET and START switches, and LED indicators. #project #Template #projectTemplate #ultrasonic #OLED #arduino #attiny2313 #TPS613222A #ISP #referenceDesign #simple-embedded #microchip #template #reference-design

    andresroa

    1 Star


  • WiFi RF-ID lock reference design g7u8 eb3f

    WiFi RF-ID lock reference design g7u8 eb3f

    This project is a WiFi RF-ID Lock, which uses a Espressif ESP-8684 microcontroller for WiFi connectivity and a Handson Technology RC522 for RF-ID functionality. It also includes an OLED display and user control via a switch. A step-up power converter ensures consistent 3.3V power. #WiFi #MCU #ReferenceDesign #project #ESP8684 #lock #OLED #referenceDesign #simple-embedded #espressif #template #reference-design

    andresroa

    1 Star


  • Adorable Blue Tractor Beam

    Adorable Blue Tractor Beam

    se solicita que diseñe el circuito para una máquina expendedora, como medio de ingreso, la máquina expendedora tendrá un colector de monedas de ocho posiciones, el cual puede recibir desde una moneda hasta ocho monedas simultaneas. Se adjuntan imágenes con fines ilustrativos Identificar cuántas monedas se reciben poder para otorgar el producto necesario, tener un contador por cada una de las bebidas y errores que se presenten con valores 00 – 99, una identificación visual del evento que sucede, de ser necesario debe ser posible la vuelta a cero de todos los contadores. Los valores a tener en cuenta son:  0 monedas Nada  2 monedas Agua  3 monedas Jugo  5 monedas Gaseosa  Otra cantidad de monedas Error Equipo a utilizar  Para diagrama y prueba del circuito https://circuitverse.org/simulator o Compuerta AND o Compuerta OR o Compuerta NOT o SPLITTER o INPUT o OUTPUT o MULTIPLEXER o FLIP FLOP o BUTTON o LED o DISPLAY 7 SEGMENT o SUBCIRCUIT o No está permitido utilizar integrados, si son necesarios se crearán con compuertas AND, OR Y NOT

    hendrick-6

    1 Star


  • ESP32 Robot Controller | AI Design Review Tutorial [Example]

    ESP32 Robot Controller | AI Design Review Tutorial [Example]

    Spot the mistake! Learn how to use AI to conduct a design review on an ESP32-based control board. This project is ideal for autonomous or radio-controller robots featuring inputs for sensors, encoders, and a Flysky RC receiver, plus an I2C display for configuration.

    verastegui

    1 Star


  • ESP32 Robot Controller | AI Design Review Tutorial [Example]

    ESP32 Robot Controller | AI Design Review Tutorial [Example]

    Spot the mistake! Learn how to use AI to conduct a design review on an ESP32-based control board. This project is ideal for autonomous or radio-controller robots featuring inputs for sensors, encoders, and a Flysky RC receiver, plus an I2C display for configuration.

    thanospi

    1 Star


  • GPS Breakout - NEO-M9N, Chip Antenna (Qwiic)

    GPS Breakout - NEO-M9N, Chip Antenna (Qwiic)

    NEO-M9N GPS Breakout with on-board chip antenna is a high quality GPS board with equally impressive configuration options. The NEO-M9N module is a 92-channel u-blox M9 engine GNSS receiver, meaning it can receive signals from the GPS, GLONASS, Galileo, and BeiDou constellations witn ~1.5 meter accuracy. This breakout supports concurrent reception of four GNSS. This maximizes position accuracy in challenging conditions, increasing precision and decreases lock time; and thanks to the onboard rechargeable battery, you'll have backup power enabling the GPS to get a hot lock within seconds! Additionally, this u-blox receiver supports I2C (u-blox calls this Display Data Channel) which made it perfect for the Qwiic compatibility so we don't have to use up our precious UART ports. Utilizing our handy Qwiic system, no soldering is required to connect it to the rest of your system. However, we still have broken out 0.1"-spaced pins in case you prefer to use a breadboard.

    jecstronic

    1 Star


  • E-ink Smart Thermostat Max

    E-ink Smart Thermostat Max

    Smart Thermostat design using an ESP32 module for WiFi connectivity and a BME680 sensor for environmental monitoring. The user interface includes an E-ink display and an encoder for settings adjustment. Power: USB and Battery Movement sensor

    vasy_skral

    1 Star


  • Kitchen Assistant Reference Design

    Kitchen Assistant Reference Design

    This is a Kitchen Assistant Reference Design that runs on an ESP32 that connects to the network. The board has a microphone and bazer for communication and a display #referenceDesign #edge-computing #edgeComputing #espressif #template #esp32 #iot #i2s #reference-design

    vasyl

    1 Star


  • Breadboard Wrist Watch

    Breadboard Wrist Watch

    A fun project making a geeky wristwatch, using the QDSP-6064 bubble LED display.

    oblakely325

    1 Star


  • ATtiny85 TinyCharger

    ATtiny85 TinyCharger

    TinyCharger is an ATtiny25/45/85-based, single-cell Li-ion battery charger with selectable charging current limit (100mA - 1000mA) and an OLED display for monitoring.

    jecstronic

    1 Star


  • display

    display

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

    oscar999ml


  • display

    display

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

    easwar


  • Tesla Roadster - Vehicle Display System (VDS)

    Tesla Roadster - Vehicle Display System (VDS)

    Tesla Roadster open-sourced schematics for the vehicle display system: https://service.tesla.com/docs/Public/Roadster/Roadster_Schematics/Vehicle-Display-System.zip

    adriangispert

    24 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] qcw8

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] qcw8

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    kushal12345

    21 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    chmok

    13 Comments


  • Display Module(robotic arm)

    Display Module(robotic arm)

    This is a display module board to control the robot manipulator, it has an MSP2807 TFT display and 4 buttons to configure the controller

    vasyl

    13 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] o2V6

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] o2V6

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    robomatix

    9 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    jaya3246

    7 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    wilberg

    7 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] (comments) 3ef9

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] (comments) 3ef9

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot:

    &

    nico

    7 Comments


  • Digispark Microphone Sinewave Display

    Digispark Microphone Sinewave Display

    Real-time sinewave display using Digispark and microphone input. Visualize sound waves in real-time. #RealTimeVisualization #Digispark #Microphone #Sinewave #AudioVisualization

    princess

    6 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] 3LGq

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] 3LGq

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    qorai

    5 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] s1x6

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example] s1x6

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    mmganiger05

    5 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    raymondamem

    5 Comments


  • Adafruit SPI TFT LCD Display Touch ILI9341

    Adafruit SPI TFT LCD Display Touch ILI9341

    Adafruit 2.8 Inch ILI9341 240x320 SPI TFT LCD Display Touch Panel SPI Serial Port Module #display #lcd

    epiphyllum

    4 Comments


  • Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Tesla Vehicle Display System | AI Cost Optimization Tutorial [Example]

    Learn how to optimize your project for cost with this Vehicle Display System project that was open sourced from the Tesla Roadster. Optimizing your BOM for cost can take forever to research component alternatives and understand the supply chain. Learn how to optimize for cost in seconds with Flux Copilot.

    prashkh

    3 Comments