Showing posts with label Stepper Motor. Show all posts
Showing posts with label Stepper Motor. Show all posts

Saturday, November 26, 2016

Arduino Interrupt Stepper Driver - CTC Mode

Introduction to the Problem

This tutorial will show how to drive a Pololu style stepper (A4988) driver using a timer interrupt. This method is non blocking, efficient, and as far as I know is pretty much what most 3D printer firmwares use.

The idea is this. A pololu style stepper driver (the kind that plugs into the RAMPS board) only requires two inputs from the Arduino. One is a direction pin. The other is a pulse train. One rising edge equals one step (or micro step, depending on how the set pins are wired). Most people when they first get going with steppers probably do one of two things. 1) They use some library that does all this for them (I don't know if one exists, but maybe it does) or 2) They just throw a digitalWrite in the loop() and pulse it that way. The problem with that is that it is dependent on the speed with which the loop runs. Enter Timer Interrupts

Interrupts - Conceptually

The timer interrupt is a low level feature of the ATmega family. It is not something that is provided by Arduino, and in fact functions such as millis() and delay() are based on them. I have always been a bit surprised that Arduino does not break timer interrupts out a little. They are really pretty easy to use but are very powerful. I am not going to go into great detail on the specifics of timer interrupts because there are other sources out there. The best of which is the ATmega datasheet.

The idea is this - the ATmega CPU is sitting there executing your code, pulling commands off of the stack. It does this in the same order each time. On another part of the chip there is this thing called a timer. It is counting up from 0 to some value over and over again incrementing at a set frequency. When it reaches the target value it sets a flag and goes back to 0. When that flag is set, the ATmega chip sees it and says, "it is time to execute a special piece of code. Drop everything and do it." What ever it was doing before goes back on the stack and what you put in the "interrupt service routine (ISR)" gets executed. Then it goes back to its normal business. We want to put our "pulse stepper driver" code in the ISR.

There are a couple of dangers with this, but I will just leave you with this. Keep the ISR short. Don't do any serial prints or heavy computations (floating point math) in there. Calculate those ahead of time and pull them in as compile time constants ideally.

Solving the Problem

Now I actually came up with 3 ways of solving this problem
  1. Using a fixed rate Timer Interrupt and only pulsing on some of the ISRs
  2. Using CTC mode and pulsing inside the ISR
  3. Using a special PWM mode 
This tutorial covers method 2. It uses Timer5 in Clear Timer on Compare (CTC) Mode. This allows you to call an interrupt at whatever frequency you want. If you're familiar with timer interrupts  the picture below might help. Again, I will not take the time to go into that much detail on that in this post. For now, I will point you to the ATMega datasheet which covers all of this stuff and THIS post by maxembedded.
CTC Mode - From ATMega Datasheet

Another important point is that I use direct port manipulation in the interrupt. I will not cover that here, but there are numerous examples online of how that works in addition to the ATMega datasheet. HERE is one example. I use direct port manipulation because it is much faster. As stated above, the ISR should execute as quickly as possible.

The Practical Stuff

Copy the code below. Wire it according to pins set in the code. Change the pulses per second calculation based on your setup (change it in the ISR Location calculation too). Set targSpeed in mm/s. Then set the Z_DIR_PIN and DirFlag based on the direction you want to drive. Test your code.

I hope this is helpful to someone. If it is, please let me know in the comments. If anyone that reads this has any insight into libraries available or other methods, comment those too. Good luck!

-Matthew



/*
 * Drives stepper using a pololu stepper driver and timer interrupts
 * 
 * This example uses pinouts associated with RAMPS 1.4 z-axis
 * 
 * Last edited by Matthew 11/14/2016 Arduino 1.6.7
 *                projectsfromtech.blogspot.com
 * TRCCR1A/B               
 * COM1A = 0b00 - disconnect OCR
 * WGM1 = 0b0100 - Fast PWM with the top value at compare match
 * CS1  = 0b001 - no prescaling               
 * ICNC1 = ICES = 0b0 - doesn't apply
 * 
 * */

const byte Z_STEP_PIN    =     46;
const byte Z_DIR_PIN     =     48;
const byte Z_ENABLE_PIN  =     62;  //62

//Interrupt Variables
volatile uint16_t PulseOnISRNum = 0;
volatile uint16_t isrSincePulse = 0;

//============================================================================
void setup() {
  Serial.begin(115200);

  pinMode(Z_STEP_PIN, OUTPUT);
  pinMode(Z_ENABLE_PIN,OUTPUT);
  pinMode(Z_DIR_PIN, OUTPUT);

  //setup Timer1
  TCCR5A = 0b00000000;
  TCCR5B = 0b00001001;
  TIMSK5 |= 0b00000010;       //set for output compare interrupt
  sei();                      //enables interrups. Use cli() to turn them off
}

float targSpeed = 2.5;       // mm/s
float PPS = 0;               // Pulses Per Second
int8_t DirFlag = 1;          // Direction flag. Set this to keep track of location
int32_t Location = 0;        // nanometers (m*10^-9) scaled by 10^-6 to avoid floating point math in interrupt

long clk = micros();


//============================================================================
void loop() {
  //Set Direction
  digitalWrite(Z_DIR_PIN, LOW);     // Low is forward   (based on setup)
  DirFlag = 1;
//  digitalWrite(Z_DIR_PIN,HIGH);       // High is backward (based on setup)
//  DirFlag = -1;
  digitalWrite(Z_ENABLE_PIN , LOW);   // Active Low

  // Set Speed - these calculation are based on your harware setup
  //           - Mine are for 1/16 microstepping and an m5 threaded rod driving the stage
  //------------------------
  for(float ind = 0 ; ind <3.0 ; ind = ind+0.0005)
  {
  targSpeed = ind;            // mm/s
  PPS = targSpeed * 4000;     //Pulses/s
  OCR5A = 16000000/PPS - 1;   //equation from pg 146 in datasheet- removed factor of 2 b/c I am manually pulsing in an interrupt every time
  Serial.print("Speed (mm/s): ");
  Serial.print(targSpeed);
  Serial.print("  Loop Time (ms): ");
  Serial.print(micros()-clk);
  Serial.print("  Location (mm): ");
  Serial.println(Location/1000000.);
  clk=micros();
  // Input other code here! Stepper driver will run even if this code is blocking!


}}

//================================================================================




ISR(TIMER5_COMPA_vect) {
//    digitalWrite(46, HIGH);       // Driver only looks for rising edge
//    digitalWrite(46, LOW);        //  DigitalWrite executes in 16 us  
    //Generate Rising Edge
    PORTL =  PORTL |= 0b00001000;   //Direct Port manipulation executes in 450 ns  => 16x faster!
    PORTL =  PORTL &= 0b11110111;
    Location = Location + 250 * DirFlag ;  //Updates Location (based on 4000 Pulses/mm)
}
    

Saturday, March 1, 2014

Arduino Shift Register Stepper Motor Controller

This is my first "reader requested" post. A reader sent me an email asking me to do a post about controlling a stepper motor using a shift register, and here it is. In this post I will specifically discuss controlling a 28BYJ-48 stepper motor with a 74HC595 shift register, ULN2003, and Arduino.

First of all, I need to explain what a shift register is. Rather than doing that however, I will differ you to THIS page. It does an excellent job of introducing shift registers and provides some really easy to use sample Arduino code. My code is based off of the functions on that page. I will be using a 74HC595 shift register. I chose it because it is pretty common. I got mine off of eBay, but you can buy them at various vendors.

Second, I should point you to some information on the stepper motor I will be using. It is a 28BYJ-48 stepper motor. It is the same one I used in the two posts(Arduino Control and ATtiny Control). If you need it, those two pages have links to some good reference material.

Third, like in the other cases, I will be using a ULN2003 to drive the stepper. This is pretty common with this board. However, this time I just wired it up on my breadboard rather than using the control board that came with my stepper. I did this because I intended to solder together a whole control board. In the end, I decided I didn't have a need for it at the moment and just left it breadboarded. I can always solder it later.


Now, wiring this project has a few more wires than some of my others, so I threw out all the stops and made a Fritzing schematic. When you look at it, wiring is not terribly complicated; the wires just get crossed easily.



So here is what is going on. The Arduino is controlling the shift register like described in the link I provided above. The shift register outputs are fed into the ULN2003. The ULN2003 acts as a switch and allows the stepper to draw the current that it needs to operate.

One thing you may wish to change, in this diagram I have the stepper being driven by the 5V from the Arduino. It may be wise to drive it from an external 5V source if you are doing more than one. Also, the colors on the stepper (or even the order of the wires) can vary from vendor to vendor. Basically, if the stepper just sits there and grinds against itself, switch the wires.

Another thing that confused me for a little while, the ULN2003 sinks current (as opposed to sourcing current). That is, it allows the output to be a path to ground if the input is HIGH. If you wire the stepper like shown above it should work. The trouble comes when people like me want to test it with an LED before connecting the stepper. I connected the positive end to the ULN2003 and the negative to ground. Eventually, I realized my mistake and switched it. Long story short, to test with an LED, put the "negative" end on the ULN2003 output and the "positive" on 5V.

Here is my setup for this project. The sketch I used is an adaption of one of the sketches from my previous posts. Basically, where there was a digitalWrite I put a setRegisterPin. A potentiometer controls the speed. Get my code HERE

The motor did not turn very quickly (around 10 seconds a revolution), I suppose I shouldn't have expected much more considering all the delays the shift register puts into the system, but if you ever needed to control a large number of stepper motors on only a few pins maybe this would be an option. If you do plan on that, you might note that the ULN2003 only has 7 inputs/outputs, so be sure to get the right number of parts.



Also, it  appears that this sketch could very easily be wrapped into a library. Perhaps the stepper library could be edited to utilize a shift register. Regardless, that is beyond the scope of this post. I leave that to the reader (though feel free to tell us about it in comments).

Hopefully this is useful to someone. If anyone else has suggestions for posts, let me know. The reader requested label is looking pretty lonely.

-Matthew



Sunday, January 19, 2014

Stepper Motors and ATtiny: 28BYJ-48, ULN2003, and ATtiny85

Today I will be taking some time to briefly revisit stepper motors. Recently I have been trying to map out the boundaries of my ATtiny capabilities, and it occurred to me that I have never gotten my stepper motor working with one. Eager to fix that I broke out my ATtiny85 and my 28BYJ-48 Stepper motor and went to town.

First things first, I already did a post on the 28BYJ-48 with a ULN2003 motor controller for the Arduino (HERE) and won't repeat the information listed there. If you are having trouble getting the motor to work on an ATtiny85/45, I recommend you go back and check out my other post. It has lots of useful links and tips.

If you need instructions on getting the ATtiny running with the Arduino IDE, check out my ATtiny label. For this post I will be using the Arduino Tiny core from Google Code. It runs on Arduino 1.5. For the programmer I will be using a USBtinyISP with my ATtiny85/45 programming adapter.

This really turned out to be pretty straight forward. Using the same Small_Stepper.ino example from my last post, I changed the pins to the correct values and everything worked (get my ATtiny sketch HERE). The motor turned nicely. One note about wiring, you can't actually wire this stepper the way that you define it. There are comments about this in my sketch, but for those that don't download the sketch, reverse the 2 middle wires. If you don't reverse the 2 middle wires the motor will not turn in reverse. If you want a longer explanation as to why and a complicated fix, go to THIS forum post. I just reversed the wires.

Example: Stepper small_stepper(STEPS, 0, 2, 1, 3);    implies that you connect ATtiny pins 0, 2, 1, and 3 to pins IN1, IN2, IN3, and IN4 respectively. For this motor you should  connect ATtiny pins 0, 1, 2, and 3 to pins IN1, IN2, IN3, and IN4 respectively.


Since that was so easy, I decided to do something else as well. I made a stepper version of the Knob example. Some readers may know that such an example already exists in the Arduino IDE, but I wasn't happy with the way it worked with my motor. My sketch works a little differently. As you can see from the video below, as I turn the knob, the speed of the stepper changes. If you want the sketch, you can get it HERE.


There you have it. Controlling a stepper motor with an ATtiny85 is not only possible, it is easy. If you run into problems or use this post to great success, let me know. I hope this post turns out to be somewhat useful.

-Matthew

Thursday, May 30, 2013

Stepper Motors and Arduino: 28BYJ-48 with ULN2003

Today I will be exploring the world of stepper motors. I recently purchased a 28BYJ-48 stepper motor with a ULN2003 controller. They are available from a host of vendors for a few dollars and seem to be pretty popular in the Arduino community.

Getting started, there are several links you might find useful.

  • Basic information on the motor and controller as well as a sample sketch using the standard Stepper library.
  • The Stepper Library- This is the library that is included with the Arduino IDE. This library is set up to run a stepper without a gearbox, so it would have to be modified.
  • Stepper2.ino- This sketch includes a full set of functions that can be used to run the 28BYJ-48. It is discussed on THIS page, but it appears that the plans to convert it into a "real" library were never implemented. 
  • Custom Stepper Library- This library can be used to control a variety of steppers, but the default settings are for the 28BYJ-48
First I just wanted to get the stepper turning. I found THIS forum thread with some basic code to get it running. HERE is the code. It is very basic and does work. If you read THESE notes and still didn't understand how steppers work. This sketch might clear it up for you. Below is a video of the sketch working. 

Note how it is wired. You don't want to power the stepper from the Arduino. It can pull 90mA which is a lot for your little Arduino. I used my nifty breadboard power supply that I picked up for a few dollars on Ebay. Power goes to the left 2 male pins on the ULN2003 breakout (marked - + 5-12V). The jumper on the right just switches power to the motor. Removing it opens the circuit between the + power supply and the motor. Other than that, just use some female-female jumpers to connect the inputs to the whatever pins you are using on the Arduino. I am using an Arduino Mega 2560 with an Arduino sensor shield v4, so this is very easy to do. For those that don't know, the ULN2003 is just a little Darlington Array that allows us to switch power from an external source on and off rather than using the Arduino's on board power supply.

Next I decided that I would try the Arduino Stepper library first. While Stepper2 looks promising, I wanted something actively supported. Luckily THIS wiki provides code for using the standard library. HERE it is again, saved for posterity. I will note that 4096 steps resulted in 2 revolutions. Also, at the default steps/revolution 300 appeared to be a good maximum speed. 400 would not run at all. When I changed the steps/revolution to 2048, 10 worked well as a max. Another useful thing to know, the clockwise and counter-clockwise directions are defined when looking at the motor from the back (the side with the label). That is, from the perspective I used in the video above it will be backwards. 

If it is not working try some of the things below. If those don't help, Google the problem. If all else fails, comment, and I will see what I can do.
  • Reduce the speed. These motors only turn so fast before they bind up and stop moving.
  • Check the motor's temperature. The top speed of mine seemed to depend a bit on how warm it was.
  • Check wiring. Make sure your Arduino is hooked up correctly and you have defined the right pins in your code.
  • Check the jumper on the ULN2003 control board. It must be in place (bridging the right two pins).
Well that's about all I have at the moment. I have not dug into the other two stepper libraries I listed. I just wanted to do an intro so I could add stepper motors to my robo-arsenal. If I do any projects with them I will post about it.

-Matthew