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#include <ReefAngel_Colors.h>
#include <ReefAngel_CustomColors.h>
#include <ReefAngel_Features.h>
#include <ReefAngel_Globals.h>
#include <ReefAngel_Wifi.h>
#include <Wire.h>
#include <OneWire.h>
#include <Time.h>
#include <DS1307RTC.h>
#include <ReefAngel_EEPROM.h>
#include <ReefAngel_NokiaLCD.h>
#include <ReefAngel_ATO.h>
#include <ReefAngel_Joystick.h>
#include <ReefAngel_LED.h>
#include <ReefAngel_TempSensor.h>
#include <ReefAngel_Relay.h>
#include <ReefAngel_PWM.h>
#include <ReefAngel_Timer.h>
#include <ReefAngel_Memory.h>
#include <ReefAngel.h>
void ConvertNumToString(char* string, int num, byte decimal)
{
char temptxt[3];
int Temp = num;
if (Temp==0xFFFF) Temp=0;
itoa(Temp/decimal,string,10);
if (decimal>1)
{
itoa(Temp%decimal,temptxt,10);
strcat(string, ".");
if (Temp%decimal<10 && decimal==100) strcat(string, "0");
strcat(string, temptxt);
}
}
void DrawCustomMain()
{
byte x = 6;
byte y = 2;
byte t;
ReefAngel.LCD.DrawDate(6, 2);
ReefAngel.LCD.Clear(COLOR_BLACK, 1, 11, 132, 11);
pingSerial();
x = 12;
y += MENU_START_ROW+1;
ReefAngel.LCD.DrawText(COLOR_BLUE, COLOR_WHITE, x, y+6, "Display pH");
char text[7];
ConvertNumToString(text, ReefAngel.Params.PH, 100);
ReefAngel.LCD.Clear(DefaultBGColor, x+16, y+65, x+65, y+16);
ReefAngel.LCD.DrawLargeText(PHColor, DefaultBGColor, x+75, y+18, text,
Font8x16);
pingSerial();
ConvertNumToString(text, ReefAngel.Params.Temp1, 10);
y += MENU_START_ROW*2;
x = 10;
ReefAngel.LCD.Clear(DefaultBGColor,x,y,x+(16*4),y+16);
pingSerial();
ReefAngel.LCD.DrawHugeNumbers(T1TempColor, DefaultBGColor, x, y, text);
pingSerial();
x += (16*4) + 8;
ReefAngel.LCD.DrawText(T2TempColor,DefaultBGColor,8,y+25,"Sump:");
ReefAngel.LCD.DrawSingleMonitor(ReefAngel.Params.Temp2, T2TempColor,
24, y+35, 10);
ReefAngel.LCD.DrawText(T3TempColor,DefaultBGColor,x+8,y+25,"LED:");
ReefAngel.LCD.DrawSingleMonitor(ReefAngel.Params.Temp3, T3TempColor,
x+24, y+35, 10);
//y += 39*2;
// x = 13;
byte TempRelay = ReefAngel.Relay.RelayData;
TempRelay &= ReefAngel.Relay.RelayMaskOff;
TempRelay |= ReefAngel.Relay.RelayMaskOn;
ReefAngel.LCD.DrawOutletBox(12, 92, TempRelay);
// #ifdef RelayExp
// draw 1st expansion relay
// TempRelay = ReefAngel.Relay.RelayDataE[0];
// TempRelay &= ReefAngel.Relay.RelayMaskOffE[0];
// TempRelay |= ReefAngel.Relay.RelayMaskOnE[0];
// ReefAngel.LCD.DrawOutletBox(12, 105, TempRelay);
//#endif RelayExp
}
void DrawCustomGraph()
{
}
//*********************************************************************************************************************************
//Start of PWM Expansion Code Header
// This is just how we are going to reference the PWM expansion ports within the code.
// You can change the labels if you would like, just as long as they are changed all throughout the code too.
#define LEDPWM0 0
#define LEDPWM1 1
#define LEDPWM2 2
#define LEDPWM3 3
#define LEDPWM4 4
#define LEDPWM5 5
// Initial values to all 6 channels at startup. They will always be 0.
byte PWMChannel[]={
0,0,0,0,0,0};
//End of PWM Expansion Code Header
//*********************************************************************************************************************************
void setup()
{
ReefAngel.Init(); //Initialize controller
randomSeed(second());
// setTime(1313771580); // Unix time
// now();
// ReefAngel.RTC.set(now());
// Ports that are always on
ReefAngel.Relay.On(Port1);
ReefAngel.Relay.On(Port5);
ReefAngel.Relay.On(Port6);
ReefAngel.Relay.On(Port7);
ReefAngel.Relay.On(Port8);
}
void loop()
{
ReefAngel.ShowInterface();
// Specific functions
// ReefAngel.StandardLights(Port1,20,00,1,00);
ReefAngel.SingleATOLow(Port2);
ReefAngel.StandardLights(Port3,10,30,19,30);
ReefAngel.StandardLights(Port4,10,00,20,00);
// ReefAngel.StandardFan(Port8);
//ReefAngel.PWM.SetActinic(PWMSlope(10,0,20,00,15,100,60,ReefAngel.PWM.GetActinicValue()));
//ReefAngel.PWM.SetDaylight(PWMSlope(10,30,19,30,15,65,60,ReefAngel.PWM.GetDaylightValue()));
// Calculate your regular sunrise/sunset PWM value
PWMChannel[LEDPWM0]=PWMSlope(10,0,20,0,15,100,60,PWMChannel[LEDPWM0]);
PWMChannel[LEDPWM1]=PWMSlope(10,30,19,30,15,75,60,PWMChannel[LEDPWM1]);
//PWMChannel[LEDPWM2]=MoonPhase();
if (hour()>=20 || hour()<1)
{
PWMChannel[LEDPWM2]=MoonPhase();
}
else
{
PWMChannel[LEDPWM2]=0;
}
CheckCloud();
//PWMChannel[LEDPWM3]=PWMSlope(11,0,20,00,0,50,40,PWMChannel[LEDPWM3]);
//PWMChannel[LEDPWM4]=PWMSlope(11,0,21,30,0,50,40,PWMChannel[LEDPWM4]);
//PWMChannel[LEDPWM5]=PWMSlope(11,0,20,00,0,50,40,PWMChannel[LEDPWM5]);
PWMExpansion(LEDPWM0,int(2.55*PWMChannel[LEDPWM0]));
PWMExpansion(LEDPWM1,int(2.55*PWMChannel[LEDPWM1]));
PWMExpansion(LEDPWM2,int(2.55*PWMChannel[LEDPWM2]));
//PWMExpansion(LEDPWM3,int(2.55*PWMChannel[LEDPWM3]));
//PWMExpansion(LEDPWM4,int(2.55*PWMChannel[LEDPWM2]));
//PWMExpansion(LEDPWM5,int(2.55*PWMChannel[LEDPWM3]));
// ReefAngel.LCD.DrawText(0,255,75,120,PWMChannel[LEDPWM1]);
// ReefAngel.LCD.DrawText(0,255,35,120,PWMChannel[LEDPWM1]);
// ReefAngel.LCD.DrawText(0,255,65,120,PWMChannel[LEDPWM2]);
// ReefAngel.LCD.DrawText(0,255,95,120,PWMChannel[LEDPWM3]);
}
//*********************************************************************************************************************************
//Start of PWM slope function code designed for the PWM Expansion module
void PWMExpansion(byte cmd, byte data)
{
Wire.beginTransmission(8); // transmit to device #2
Wire.send('$'); // sends $
Wire.send('$'); // sends $
Wire.send('$'); // sends $
Wire.send(cmd); // sends a value
Wire.send(data); // sends 255
Wire.endTransmission(); // stop transmitting
}
//End of PWM slope function code designed for the PWM Expansion module
//*********************************************************************************************************************************
byte MoonPhase()
{
int m,d,y;
int yy,mm;
long K1,K2,K3,J,V;
byte PWMvalue;
m=month();
d=day();
y=year();
yy=y-((12-m)/10);
mm=m+9;
if (mm>=12) mm-=12;
K1=365.25*(yy+4712);
K2=30.6*mm+.5;
K3=int(int((yy/100)+49)*.75)-38;
J=K1+K2+d+59-K3;
V=(J-2451550.1)/0.29530588853;
V-=int(V/100)*100;
V=abs(V-50);
PWMvalue=4*abs(50-V); // 5.12=100% 4=~80%
//pinMode(lowATOPin,OUTPUT);
return (PWMvalue*100)/255;
}
//*********************************************************************************************************************************
// Random Cloud/Thunderstorm effects function
void CheckCloud()
{
// ------------------------------------------------------------
// Change the values below to customize your cloud/storm effect
// Frequency in days based on the day of the month - number 2 means every 2 days, for example (day 2,4,6 etc)
// For testing purposes, you can use 1 and cause the cloud to occur everyday
#define Clouds_Every_X_Days 1
// Percentage chance of a cloud happening today
// For testing purposes, you can use 100 and cause the cloud to have 100% chance of happening
#define Cloud_Chance_per_Day 100
// Minimum number of minutes for cloud duration
#define Min_Cloud_Duration 3
// Maximum number of minutes for the cloud duration. Don't use max duration of more than 255
#define Max_Cloud_Duration 10
// Minimum number of clouds that can happen per day
#define Min_Clouds_per_Day 1
// Maximum number of clouds that can happen per day
#define Max_Clouds_per_Day 5
// Only start the cloud effect after this setting
// In this example, start could after 11:30am
#define Start_Cloud_After NumMins(11,30)
// Always end the cloud effect before this setting
// In this example, end could before 8:00pm
#define End_Cloud_Before NumMins(18,30)
// Percentage chance of a lightning happen for every cloud
// For testing purposes, you can use 100 and cause the lightning to have 100% chance of happening
#define Lightning_Change_per_Cloud 100
// Channels used by the actinic LEDs on the PWM Expansion module
// These channels will not be dimmed when the cloud effect is triggered
// Number is a binary form. B001100 means channel 2 and 3 are used for actinics
#define Actinic_Channels B000001
// Channels used by the daylight LEDs on the PWM Expansion module
// These channels will be used for the spike when lightning effect is triggered
// Number is a binary form. B000011 means channel 0 and 1 are used for daylights
#define Daylight_Channels B000010
// Note: Make sure to choose correct values that will work within your PWMSLope settings.
// For example, in our case, we could have a max of 5 clouds per day and they could last for 50 minutes.
// Which could mean 250 minutes of clouds. We need to make sure the PWMSlope can accomodate 250 minutes of effects or unforseen resul could happen.
// Also, make sure that you can fit double those minutes between Start_Cloud_After and End_Cloud_Before.
// In our example, we have 510 minutes between Start_Cloud_After and End_Cloud_Before, so double the 250 minutes (or 500 minutes) can fit in that 510 minutes window.
// It's a tight fit, but it did.
//#define printdebug // Uncomment this for debug print on Serial Monitor window
#define forcecloudcalculation // Uncomment this to force the cloud calculation to happen in the boot process.
// Change the values above to customize your cloud/storm effect
// ------------------------------------------------------------
// Do not change anything below here
static byte cloudchance=255;
static byte cloudduration=0;
static int cloudstart=0;
static byte numclouds=0;
static byte lightningchance=0;
static byte cloudindex=0;
static byte lightningstatus=0;
static int LastNumMins=0;
// Every day at midnight, we check for chance of cloud happening today
if (hour()==0 && minute()==0 && second()==0) cloudchance=255;
#ifdef forcecloudcalculation
if (cloudchance==255)
#else
if (hour()==0 && minute()==0 && second()==1 && cloudchance==255)
#endif
{
//Pick a random number between 0 and 99
cloudchance=random(100);
// if picked number is greater than Cloud_Chance_per_Day, we will not have clouds today
if (cloudchance>Cloud_Chance_per_Day) cloudchance=0;
// Check if today is day for clouds.
if ((day()%Clouds_Every_X_Days)!=0) cloudchance=0;
// If we have cloud today
#ifdef printdebug
Serial.print("Cloud Chance: ");
Serial.println(cloudchance,DEC);
#endif
if (cloudchance)
{
// pick a random number for number of clouds between Min_Clouds_per_Day and Max_Clouds_per_Day
numclouds=random(Min_Clouds_per_Day,Max_Clouds_per_Day);
// pick the time that the first cloud will start
// the range is calculated between Start_Cloud_After and the even distribuition of clouds on this day.
cloudstart=random(Start_Cloud_After,Start_Cloud_After+((End_Cloud_Before-Start_Cloud_After)/(numclouds*2)));
// pick a random number for the cloud duration of first cloud.
cloudduration=random(Min_Cloud_Duration,Max_Cloud_Duration);
//Pick a random number between 0 and 99
lightningchance=random(100);
// if picked number is greater than Lightning_Change_per_Cloud, we will not have lightning today
if (lightningchance>Lightning_Change_per_Cloud) lightningchance=0;
#ifdef printdebug
Serial.print("Num of Clouds: ");
Serial.println(numclouds,DEC);
Serial.print("Cloud Start: ");
Serial.println(cloudstart,DEC);
Serial.print("Cloud Start Range: ");
Serial.print(Start_Cloud_After,DEC);
Serial.print(" - ");
Serial.println(Start_Cloud_After+((End_Cloud_Before-Start_Cloud_After)/(numclouds*2)),DEC);
Serial.print("Cloud Duration: ");
Serial.println(cloudduration,DEC);
Serial.print("Lightning Chance: ");
Serial.println(lightningchance,DEC);
Serial.print("Lightning at: ");
Serial.println(cloudstart+(cloudduration/2),DEC);
time_t t=cloudstart;
t*=60;
t+=1311551999;
setTime(t); // Unix time
now();
ReefAngel.RTC.set(now());
LastNumMins=NumMins(hour(),minute());
Serial.print("NumMins: ");
Serial.println(LastNumMins,DEC);
#endif
}
}
// Now that we have all the parameters for the cloud, let's create the effect
if (cloudchance)
{
//is it time for cloud yet?
if (NumMins(hour(),minute())>=cloudstart && NumMins(hour(),minute())<(cloudstart+cloudduration))
{
// let's go through all channels to pick which ones will be dimmed
for (int a=0;a<6;a++)
{
if (bitRead(Actinic_Channels,a)==0)
{
// this will slope down the channel from the current PWM to 0 within 3minutes.
// then it will stay at 0 for the duration of the cycle
// and finally slope up from 0 to PWM value within 3 minutes
// it is basically an inversed slope
PWMChannel[a]-=PWMSlope(cloudstart/60,cloudstart%60,(cloudstart+cloudduration)/60,(cloudstart+cloudduration)%60,0,PWMChannel[a],3,PWMChannel[a]);
#ifdef printdebug
if (second()==0)
{
Serial.print("Dimming Channel ");
Serial.print(a,DEC);
Serial.print(" - ");
Serial.print(PWMChannel[a],DEC);
Serial.println("%");
}
if (lightningchance && (NumMins(hour(),minute())==(cloudstart+(cloudduration/2))) && second()>5)
{
adjustTime(((cloudduration/2)*60)-6);
Serial.print("Adjusting time to: ");
Serial.println(now());
}
#endif
}
}
if (lightningchance && (NumMins(hour(),minute())==(cloudstart+(cloudduration/2))) && second()<5)
{
#ifdef printdebug
Serial.println("Lightning...");
#endif
for (int b=0;b<6;b++)
{
if (bitRead(Daylight_Channels,b)==1)
{
if (random(100)<20) lightningstatus=1;
else lightningstatus=0;
if (lightningstatus) PWMChannel[b]=100;
else PWMChannel[b]=0;
//delay(10);
#ifdef printdebug
Serial.print(b,DEC);
Serial.print(" - ");
Serial.println(PWMChannel[b],DEC);
#endif
}
else
{
PWMChannel[b]=20;
}
}
}
#ifdef printdebug
if ((NumMins(hour(),minute())!=(cloudstart+(cloudduration/2))) && second()==0)
{
adjustTime(((cloudduration/2)*60)-1);
Serial.print("Adjusting time to: ");
Serial.println(now());
}
if (second()==0) delay(1000);
#endif
}
if (NumMins(hour(),minute())>(cloudstart+cloudduration))
{
cloudindex++;
if (cloudindex < numclouds)
{
cloudstart=random(Start_Cloud_After+(((End_Cloud_Before-Start_Cloud_After)/(numclouds*2))*cloudindex*2),(Start_Cloud_After+(((End_Cloud_Before-Start_Cloud_After)/(numclouds*2))*cloudindex*2))+((End_Cloud_Before-Start_Cloud_After)/(numclouds*2)));
// pick a random number for the cloud duration of first cloud.
cloudduration=random(Min_Cloud_Duration,Max_Cloud_Duration);
//Pick a random number between 0 and 99
lightningchance=random(100);
// if picked number is greater than Lightning_Change_per_Cloud, we will not have lightning today
if (lightningchance>Lightning_Change_per_Cloud) lightningchance=0;
#ifdef printdebug
Serial.print("Cloud Start: ");
Serial.println(cloudstart,DEC);
Serial.print("Cloud Start Range: ");
Serial.print(Start_Cloud_After+(((End_Cloud_Before-Start_Cloud_After)/(numclouds*2))*cloudindex*2),DEC);
Serial.print(" - ");
Serial.println((Start_Cloud_After+(((End_Cloud_Before-Start_Cloud_After)/(numclouds*2))*cloudindex*2))+((End_Cloud_Before-Start_Cloud_After)/(numclouds*2)),DEC);
Serial.print("Cloud Duration: ");
Serial.println(cloudduration,DEC);
Serial.print("Lightning Chance: ");
Serial.println(lightningchance,DEC);
Serial.print("Lightning at: ");
Serial.println(cloudstart+(cloudduration/2),DEC);
time_t t=cloudstart;
t*=60;
t+=1311551999;
setTime(t); // Unix time
now();
ReefAngel.RTC.set(now());
LastNumMins=NumMins(hour(),minute());
Serial.print("NumMins: ");
Serial.println(LastNumMins,DEC);
#endif
}
}
}
if (LastNumMins!=NumMins(hour(),minute()))
{
LastNumMins=NumMins(hour(),minute());
ReefAngel.LCD.Clear(255,0,115,132,132);
ReefAngel.LCD.DrawText(0,255,5,115,"C");
ReefAngel.LCD.DrawText(0,255,11,115,"00:00");
ReefAngel.LCD.DrawText(0,255,45,115,"L");
ReefAngel.LCD.DrawText(0,255,51,115,"00:00");
if (cloudchance && (NumMins(hour(),minute())<cloudstart))
{
int x=0;
if ((cloudstart/60)>=10) x=11; else x=17;
ReefAngel.LCD.DrawText(0,255,x,115,(cloudstart/60));
if ((cloudstart%60)>=10) x=29; else x=35;
ReefAngel.LCD.DrawText(0,255,x,115,(cloudstart%60));
}
//ReefAngel.LCD.DrawText(0,255,35,120,cloudstart);
ReefAngel.LCD.DrawText(0,255,90,115,cloudduration);
ReefAngel.LCD.DrawText(0,255,110,115,PWMChannel[LEDPWM1]);
if (lightningchance)
{
int x=0;
if (((cloudstart+(cloudduration/2))/60)>=10) x=51; else x=57;
ReefAngel.LCD.DrawText(0,255,x,115,((cloudstart+(cloudduration/2))/60));
if (((cloudstart+(cloudduration/2))%60)>=10) x=69; else x=75;
ReefAngel.LCD.DrawText(0,255,x,115,((cloudstart+(cloudduration/2))%60));
}
#ifdef printdebug
Serial.print("NumMins: ");
Serial.println(LastNumMins,DEC);
#endif
}
}