Chat

Welcome to Flux

Treat Flux like your intern. Tell it what you'd like to build and it'll get to work. You can also ask it questions, brainstorm ideas, and teach it your preferences. Learn More

Explain this part
Write a part description
Describe each pin
Verify Part Details
Recommend similar parts
Check availability & lifecycle
https://cdn2.flux.ai/flux-comment-files/files/commentFileId-c0f4310c9e3255bbcfaa...

Image

Image

https://cdn2.flux.ai/flux-comment-files/files/commentFileId-c0f4310c9e3255bbcfaa2c57d968c32f7838fe9fe3fae47d844dfb9052548c90.jpeg?GoogleAccessId=graviton-mvp%40appspot.gserviceaccount.com&Expires=4872031734&Signature=kPo64hqGx6RLUZJfNdqtFFO5utx%2BwYqgeXuNS%2Fx4GRLkNzD25oyph2IXotzsRgM5FaXNBtKicsm4CVHIPOMwdcjw8%2Fh0CcaSKIYqSy0PD4lo1jcK87b7O8jibAkTIxwWaH2Q1V5Ih%2BjEtDJG9jR64AbO%2B42yh5D8kwCvrpVbMoqQUMx7GNeuTt7M9gFo42P3AoUoOKmfRYiumvIh8fBvg%2FuFr%2F8MuY%2B7IViNMfOwEKqdNDd1so1%2F3bO0ALQ6mrl46kEXnWeacxaOmY%2B5pqoALb82l5qzdfaYXyhBAExMDNr106YW%2BTUMpfsrzFLq2Uob1p0dqSRoW7jPlOv%2Fa3lRAg%3D%3D
2y
2
check the connections of my circuit

@copilot this is a 8051 microcontroller, I want to modify this circuit so that it connects to a pc via USB so that i can flash it's EEPROM
2y
To modify the circuit so that it can connect to a PC via USB to flash the EEPROM of the AT89S52 microcontroller, you'll need a USB-to-serial converter. One common solution is to use the FT232RL IC (USB to UART bridge). Here are the steps to modify your circuit:
Components Needed
  1. FT232RL USB to UART Converter Module
  2. USB Connector
  3. Capacitors (as required by the FT232RL datasheet)
  4. Optional: Pull-up resistors and diodes for USB data lines
Steps to Connect FT232RL to AT89S52
  1. Power Connections:
    • FT232RL:VCC to Vcc (5V power supply)
    • FT232RL:GND to GND
  2. USB Connections:
    • Connect the USB Data+ (D+) and Data- (D-) pins from your USB connector to the FT232RL module.
    • Connect the USB VCC and GND to the respective power lines.
  3. UART Connections:
    • Connect FT232RL:TXD to U1:P3.0_RXDRXD
    • Connect FT232RL:RXD to U1:P3.1_TXDTXD
  4. Reset and Programming Pins:
    • Typically handled by programming software (e.g., using FTProg for custom settings on FT232).
Updated Schematic Connections
  • Connect Vcc:1 to FT232RL:VCC
  • Connect GND:1 to FT232RL:GND and FT232RL:USB_GND
  • Connect FT232RL:TXD to U1:P3.0_RXDRXD
  • Connect FT232RL:RXD to U1:P3.1_TXDTXD
  • Connect FT232RL:DTR to U1:RST (handling through software)
  • USB connector: connect D+ and D- to corresponding pins on FT232RL.
Here's a concise list of connections:
  • Connect FT232RL:VCC to Vcc:1.
  • Connect FT232RL:GND to GND:1.
  • Connect FT232RL:TXD to U1:P3.0_RXDRXD.
  • Connect FT232RL:RXD to U1:P3.1_TXDTXD.
  • Connect FT232RL:DTR to U1:RST.
  • Connect USB Connector:D+ to FT232RL:D+.
  • Connect USB Connector:D- to FT232RL:D-.
  • Connect USB Connector:VCC to Vcc:1.
  • Connect USB Connector:GND to GND:1.
Note:
  • Ensure proper bypass capacitors (0.1µF) near power pins.
  • Optionally, add zener diodes for ESD protection on the USB lines.
Would you like to include any additional features, such as status LEDs or an on-board EEPROM writer circuit?
2y
can you make those connections for me?
2y
Certainly! Let's make the necessary connections step-by-step.
Updated Connections:
  1. FT232RL to Power Supply:
    • Connect Vcc:1 to FT232RL:VCC.
    • Connect GND:1 to FT232RL:GND.
  2. FT232RL to UART on AT89S52:
    • Connect FT232RL:TXD to U1:P3.0_RXDRXD.
    • Connect FT232RL:RXD to U1:P3.1_TXDTXD.
    • Connect FT232RL:DTR to U1:RST.
  3. USB Connector to FT232RL:
    • Connect USB Connector:D+ to FT232RL:D+.
    • Connect USB Connector:D- to FT232RL:D-.
    • Connect USB Connector:VCC to Vcc:1.
    • Connect USB Connector:GND to GND:1.
Here's the updated complete connection list for readability:
Project Nets:
  • New Connections:
    • Connect Vcc:1 to FT232RL:VCC.
    • Connect GND:1 to FT232RL:GND.
    • Connect FT232RL:TXD to U1:P3.0_RXDRXD.
    • Connect FT232RL:RXD to U1:P3.1_TXDTXD.
    • Connect FT232RL:DTR to U1:RST.
    • Connect USB Connector:D+ to FT232RL:D+.
    • Connect USB Connector:D- to FT232RL:D-.
    • Connect USB Connector:VCC to Vcc:1.
    • Connect USB Connector:GND to GND:1.
Remaining Component Connections (existing from your description):
  • Cand Crystal Connections:
    • Connect C2:P1 to Net 2.
    • Connect C2:P2 to GND.
    • Connect C1:P1 to Net 1.
    • Connect C1:P2 to GND.
    • Connect X2:P1 to Net 1.
    • Connect X2:P2 to Net 2.
  • Reset Circuit Components:
    • Connect C3:P1 to Net 4.
    • Connect C3:P2 to Net 3.
    • Connect R1:P1 to Net 4.
    • Connect SW1:P1 to Net 4.
    • Connect R1:P2 to GND.
    • Connect SW1:P2 to Net 3.
This should correctly integrate the USB-to-UART programming feature into your existing design. Could you double-check these connections on your schematic in the Flux editor? Feel free to ask if you need more details or modifications!
2y
this is a 8051 microcontroller, I want to modify this circuit so that it connects to a pc via USB so that i can flash it's EEPROM
2y
@copilot what I've built is supposed to be a 8051 circuit. Any improvements that you can suggest?
2y
Great start with building an 8051-based circuit! Here are some potential improvements and considerations:
  1. Decoupling Capacitor:
    • Add a decoupling capacitor (e.g., 100nF) between VCC and GND close to the microcontroller to filter out power supply noise.
  2. Proper Power Connections:
    • Ensure that Vcc and GND are properly connected.
  3. Crystals and Capacitors:
    • The typical setup for crystals involves two capacitors in the range of 22pF-33pF connected to ground. Make sure the values of capacitors C1C_1 and C2C_2 are appropriate for your crystal.
  4. Reset Circuit:
    • U1U_1: RSTRST should have a pull-up resistor (typically 10kΩ) connected, possibly with a capacitor (typically 10µF) in parallel to ground for proper reset behavior. SW1SW_1 seems to be acting as a reset switch.
  5. Oscillator Connections:
    • Your connections for the crystal and its associated capacitors look good.
  6. Unconnected Pins:
    • Verify whether you need pull-up resistors on any unused I/O pins to prevent floating inputs which can cause unstable operation.
  7. Programming Header:
    • If you plan on reprogramming your microcontroller frequently, consider adding a header for an ISP (In-System Programming) interface.
Suggested Connections
  1. Decoupling Capacitor:
    • Add a 100nF capacitor close to the VCC and GND pins of U1U_1.
  2. Reset Circuit:
    • Connect R1:2R_{1:2} to U1U_1:VCC (through a 10kΩ resistor).
    • Optionally, add a capacitor (e.g., 10µF) between U1U_1:RSTRST and GND.
Example Connections
  • Decoupling Capacitor:
    • Connect a 100nF capacitor between U1U_1:VCC and GND.
  • Pull-up Resistor on Reset:
    • Connect R1:2R_{1:2} to U1U_1:VCC.
Would you like to make any specific changes or ask about other parts/functions of your circuit?
2y
what I've built is supposed to be a 8051 circuit. Any improvements that you can suggest?
2y
@copilot check the connections of my circuit
2y
Certainly! Let's review the connections described in your project.
Component Connection Review
  1. Reset Circuit:
    • Connects to the reset pin (RST) of the microcontroller.
    • Members:
      • U1: RSTRST
      • R1: P1P1
      • C3: P1P1
      • SW1: P1P1
  2. Ground:
    • Members connected to ground:
      • R1: P2P2
      • C2: P2P2
      • C1: P2P2
      • U1: GNDGND
  3. External Access Enable (EA/VPP):
    • Connects to external access pin of the microcontroller with related components.
    • Members:
      • U1: EA~/VPP\tilde{EA}/VPP
      • C3: P2P2
      • SW1: P2P2
  4. XTAL2:
    • Crystal Oscillator connection.
    • Members:
      • X1: P1P1
      • C2: P1P1
      • U1: XTAL2XTAL2
  5. XTAL1:
    • Crystal Oscillator connection.
    • Members:
      • U1: XTAL1XTAL1
      • X1: P2P2
      • C1: P1P1
Additional Connections
  • Power:
    • Vcc to U1: VCCVCC
Overall Component Connections
  1. Reset Circuit Connections:
    • Connect U1:RSTU1: RST to R1:P1R1: P1, C3:P1C3: P1, and SW1:P1SW1: P1.
    • Connect U1:EA~/VPPU1: \tilde{EA}/VPP to C3:P2C3: P2 and SW1:P2SW1: P2.
  2. Crystal Oscillator Connections:
    • Connect U1:XTAL2U1: XTAL2 to X1:P1X1: P1 and C2:P1C2: P1.
    • Connect U1:XTAL1U1: XTAL1 to X1:P2X1: P2 and C1:P1C1: P1.
  3. Power Connections:
    • GND net connects to U1:GNDU1: GND, R1:P2R1: P2, C2:P2C2: P2, and C1:P2C1: P2.
    • Power connection to connect VCC to U1:VCCU1: VCC.
Ensure the connections are securely made and verify that all nets are correctly assigned to each designated pin. If you have any specific questions or modifications, let me know!
2y
3
can you connect all the pins of J3 to "pin 6", pin 7", pin 8", pin 9" of J1

@copilot can you connect all the pins of J3 to "pin 6", pin 7", pin 8", pin 9" of J1
2y
Sure, we can connect the pins as follows:
  • Connect J3:Pin_1 to J1:Pin_6
  • Connect J3:Pin_2 to J1:Pin_7
  • Connect J3:Pin_3 to J1:Pin_8
  • Connect J3:Pin_4 to J1:Pin_9
This will effectively map all the pins from J3 to the specified pins on J1.
2y
@copilot can you connect all the pins of J5 to "pin 6", pin 7", pin 8", pin 9" of J1
2y
Sure, here are the connections:
  • Connect J5:Pin_1 to J1:Pin_6
  • Connect J5:Pin_2 to J1:Pin_7
  • Connect J5:Pin_3 to J1:Pin_8
  • Connect J5:Pin_4 to J1:Pin_9
This will connect all the pins of J5 to the specified pins of J1.
2y
@copilot can you connect pin 1,2,3 and 4 of J5 to "pin 6", pin 7", pin 8", pin 9" of J1
2y
Sure, let's map the pins as follows:
  • Connect J5:Pin_1 to J1:Pin_6
  • Connect J5:Pin_2 to J1:Pin_7
  • Connect J5:Pin_3 to J1:Pin_8
  • Connect J5:Pin_4 to J1:Pin_9
This achieves the desired connections between J5 and J1.
2y
7
can you connect all the pins of J1 and J2 with terminals named "Pin "

@copilot can you connect all the pins of J1 and J2 with terminals named "Pin "
2y
To connect all the pins of J1 and J2 with terminals named "Pin", you can follow the connections as shown below. Note that J1 has 20 pins and J2 has 20 pins:
Connections:
  1. Connect J1:Pin_1 to J2:Pin_1
  2. Connect J1:Pin_2 to J2:Pin_2
  3. Connect J1:Pin_3 to J2:Pin_3
  4. Connect J1:Pin_4 to J2:Pin_4
  5. Connect J1:Pin_5 to J2:Pin_5
  6. Connect J1:Pin_6 to J2:Pin_6
  7. Connect J1:Pin_7 to J2:Pin_7
  8. Connect J1:Pin_8 to J2:Pin_8
  9. Connect J1:Pin_9 to J2:Pin_9
  10. Connect J1:Pin_10 to J2:Pin_10
  11. Connect J1:Pin_11 to J2:Pin_11
  12. Connect J1:Pin_12 to J2:Pin_12
  13. Connect J1:Pin_13 to J2:Pin_13
  14. Connect J1:Pin_14 to J2:Pin_14
  15. Connect J1:Pin_15 to J2:Pin_15
  16. Connect J1:Pin_16 to J2:Pin_16
  17. Connect J1:Pin_17 to J2:Pin_17
  18. Connect J1:Pin_18 to J2:Pin_18
  19. Connect J1:Pin_19 to J2:Pin_19
  20. Connect J1:Pin_20 to J2:Pin_20
These connections will create a parallel connection for each pin between J1 and J2. Let me know if you need further assistance!
2y
6
SCK
U1
Not Recommended for New Designs
Pin 8 (P1.7)
Pin 14 (P3.5)
Pin 12 (P3.2)
Pin 6 (P1.5)
MOSI
Pin 12 (P3.3)
Pin 1 (P1.0)
Pin 5 (P1.4)
Pin 10 (P3.0)
Pin 4 (P1.3)
VCC
GND
Pin 15 (P3.6)
Pin 13 (P3.4)
RESET
Pin 3 (P1.2)
MISO
Pin 2 (P1.1)
Pin 11 (P3.1)
Pin 9 (RST)
Pin 7 (P1.6)
VCC
J2
C4
Capacitance
33pF
C1
Capacitance
33pF
J3
J1
R2
Resistance
8200 Ω
VCC
X1
X2
Frequency
11.0592MHz
J4
C3
Capacitance
10uF
SW2
R1
Resistance
500 Ω
VCC
VCC
J5
C2
Capacitance
20pF
C5
Capacitance
20pF

No files yet

Documents

    Documents are markdown text files which describe project goals, capture details, or even simulation outputs.

    Assets

    circuit

    circuit

    circuitThumbnail

    Universal Development Board for 8051, PIC, ATmega, STM8 [8-bit microcontrollers]

    Universal Development Board for 8051, PIC, ATmega, STM8 [8-bit microcontrollers] thumbnail
    8051 microcontroller setup circuit. (connects reset switch and crystal oscillator circuitry to the 8051). Flash ROM using the 4 pins given for SPI communication protocol.

    Properties

    Properties describe core aspects of the project.

    Pricing & Availability

    Distributor

    Qty 1

    Arrow

    $2.53

    Digi-Key

    $4.64–$5.97

    LCSC

    $7.72

    Mouser

    $5.06

    Verical

    $2.23–$3.25

    Controls