this tutorial is very neat.
Mine is like this :
While the one from sparkfun is like this:
Anyway their circuit are almost the same.(The blue one's better for safty )
So the codes are functional for those two different coloured board.
BMP085 Pin | Pin Function |
VCC | Power (1.8V-3.6V) |
GND | Ground |
EOC | End of conversion output |
XCLR | Master Clear (low-active) |
SCL | Serial Clock I/O |
SDA |
Serial Data I/O |
BMP085 Pin | Arduino Pin |
VCC | 3.3V |
GND | GND |
SCL | A5 |
SDA | A4 |
For now, we're going to ignore XCLR and EOC, it's safe to just leave them unconnected.
For more info, YOU DO NEED : https://www.sparkfun.com/tutorials/253
You may need to download all the codes here here, (of one .ino arduino IDE file)
here's the codes:
1 /* BMP085 Extended Example Code 2 by: Jim Lindblom 3 SparkFun Electronics 4 date: 1/18/11 5 updated: 2/26/13 6 license: CC BY-SA v3.0 - http://creativecommons.org/licenses/by-sa/3.0/ 7 8 Get pressure and temperature from the BMP085 and calculate 9 altitude. Serial.print it out at 9600 baud to serial monitor. 10 11 Update (7/19/11): I've heard folks may be encountering issues 12 with this code, who're running an Arduino at 8MHz. If you're 13 using an Arduino Pro 3.3V/8MHz, or the like, you may need to 14 increase some of the delays in the bmp085ReadUP and 15 bmp085ReadUT functions. 16 */ 17 18 #include <Wire.h> 19 20 #define BMP085_ADDRESS 0x77 // I2C address of BMP085 21 22 const unsigned char OSS = 0; // Oversampling Setting 23 24 // Calibration values 25 int ac1; 26 int ac2; 27 int ac3; 28 unsigned int ac4; 29 unsigned int ac5; 30 unsigned int ac6; 31 int b1; 32 int b2; 33 int mb; 34 int mc; 35 int md; 36 37 // b5 is calculated in bmp085GetTemperature(...), this variable is also used in bmp085GetPressure(...) 38 // so ...Temperature(...) must be called before ...Pressure(...). 39 long b5; 40 41 short temperature; 42 long pressure; 43 44 // Use these for altitude conversions 45 const float p0 = 101325; // Pressure at sea level (Pa) 46 float altitude; 47 48 void setup() 49 { 50 Serial.begin(9600); 51 Wire.begin(); 52 bmp085Calibration(); 53 } 54 55 void loop() 56 { 57 temperature = bmp085GetTemperature(bmp085ReadUT()); 58 pressure = bmp085GetPressure(bmp085ReadUP()); 59 altitude = (float)44330 * (1 - pow(((float) pressure/p0), 0.190295)); 60 61 Serial.print("Temperature: "); 62 Serial.print(temperature, DEC); 63 Serial.println(" *0.1 deg C"); 64 Serial.print("Pressure: "); 65 Serial.print(pressure, DEC); 66 Serial.println(" Pa"); 67 Serial.print("Altitude: "); 68 Serial.print(altitude, 2); 69 Serial.println(" m"); 70 Serial.println(); 71 72 delay(1000); 73 } 74 75 // Stores all of the bmp085's calibration values into global variables 76 // Calibration values are required to calculate temp and pressure 77 // This function should be called at the beginning of the program 78 void bmp085Calibration() 79 { 80 ac1 = bmp085ReadInt(0xAA); 81 ac2 = bmp085ReadInt(0xAC); 82 ac3 = bmp085ReadInt(0xAE); 83 ac4 = bmp085ReadInt(0xB0); 84 ac5 = bmp085ReadInt(0xB2); 85 ac6 = bmp085ReadInt(0xB4); 86 b1 = bmp085ReadInt(0xB6); 87 b2 = bmp085ReadInt(0xB8); 88 mb = bmp085ReadInt(0xBA); 89 mc = bmp085ReadInt(0xBC); 90 md = bmp085ReadInt(0xBE); 91 } 92 93 // Calculate temperature given ut. 94 // Value returned will be in units of 0.1 deg C 95 short bmp085GetTemperature(unsigned int ut) 96 { 97 long x1, x2; 98 99 x1 = (((long)ut - (long)ac6)*(long)ac5) >> 15; 100 x2 = ((long)mc << 11)/(x1 + md); 101 b5 = x1 + x2; 102 103 return ((b5 + 8)>>4); 104 } 105 106 // Calculate pressure given up 107 // calibration values must be known 108 // b5 is also required so bmp085GetTemperature(...) must be called first. 109 // Value returned will be pressure in units of Pa. 110 long bmp085GetPressure(unsigned long up) 111 { 112 long x1, x2, x3, b3, b6, p; 113 unsigned long b4, b7; 114 115 b6 = b5 - 4000; 116 // Calculate B3 117 x1 = (b2 * (b6 * b6)>>12)>>11; 118 x2 = (ac2 * b6)>>11; 119 x3 = x1 + x2; 120 b3 = (((((long)ac1)*4 + x3)<<OSS) + 2)>>2; 121 122 // Calculate B4 123 x1 = (ac3 * b6)>>13; 124 x2 = (b1 * ((b6 * b6)>>12))>>16; 125 x3 = ((x1 + x2) + 2)>>2; 126 b4 = (ac4 * (unsigned long)(x3 + 32768))>>15; 127 128 b7 = ((unsigned long)(up - b3) * (50000>>OSS)); 129 if (b7 < 0x80000000) 130 p = (b7<<1)/b4; 131 else 132 p = (b7/b4)<<1; 133 134 x1 = (p>>8) * (p>>8); 135 x1 = (x1 * 3038)>>16; 136 x2 = (-7357 * p)>>16; 137 p += (x1 + x2 + 3791)>>4; 138 139 return p; 140 } 141 142 // Read 1 byte from the BMP085 at 'address' 143 char bmp085Read(unsigned char address) 144 { 145 unsigned char data; 146 147 Wire.beginTransmission(BMP085_ADDRESS); 148 Wire.write(address); 149 Wire.endTransmission(); 150 151 Wire.requestFrom(BMP085_ADDRESS, 1); 152 while(!Wire.available()) 153 ; 154 155 return Wire.read(); 156 } 157 158 // Read 2 bytes from the BMP085 159 // First byte will be from 'address' 160 // Second byte will be from 'address'+1 161 int bmp085ReadInt(unsigned char address) 162 { 163 unsigned char msb, lsb; 164 165 Wire.beginTransmission(BMP085_ADDRESS); 166 Wire.write(address); 167 Wire.endTransmission(); 168 169 Wire.requestFrom(BMP085_ADDRESS, 2); 170 while(Wire.available()<2) 171 ; 172 msb = Wire.read(); 173 lsb = Wire.read(); 174 175 return (int) msb<<8 | lsb; 176 } 177 178 // Read the uncompensated temperature value 179 unsigned int bmp085ReadUT() 180 { 181 unsigned int ut; 182 183 // Write 0x2E into Register 0xF4 184 // This requests a temperature reading 185 Wire.beginTransmission(BMP085_ADDRESS); 186 Wire.write(0xF4); 187 Wire.write(0x2E); 188 Wire.endTransmission(); 189 190 // Wait at least 4.5ms 191 delay(5); 192 193 // Read two bytes from registers 0xF6 and 0xF7 194 ut = bmp085ReadInt(0xF6); 195 return ut; 196 } 197 198 // Read the uncompensated pressure value 199 unsigned long bmp085ReadUP() 200 { 201 unsigned char msb, lsb, xlsb; 202 unsigned long up = 0; 203 204 // Write 0x34+(OSS<<6) into register 0xF4 205 // Request a pressure reading w/ oversampling setting 206 Wire.beginTransmission(BMP085_ADDRESS); 207 Wire.write(0xF4); 208 Wire.write(0x34 + (OSS<<6)); 209 Wire.endTransmission(); 210 211 // Wait for conversion, delay time dependent on OSS 212 delay(2 + (3<<OSS)); 213 214 // Read register 0xF6 (MSB), 0xF7 (LSB), and 0xF8 (XLSB) 215 Wire.beginTransmission(BMP085_ADDRESS); 216 Wire.write(0xF6); 217 Wire.endTransmission(); 218 Wire.requestFrom(BMP085_ADDRESS, 3); 219 220 // Wait for data to become available 221 while(Wire.available() < 3) 222 ; 223 msb = Wire.read(); 224 lsb = Wire.read(); 225 xlsb = Wire.read(); 226 227 up = (((unsigned long) msb << 16) | ((unsigned long) lsb << 8) | (unsigned long) xlsb) >> (8-OSS); 228 229 return up; 230 }
the Serial output when the data is approaching to a stable level:
Here i get Temperature, Pressure, Altitude.
I use google earth to find out at my position the altitude would be around 105 metres.
Either one is right.
Or other accurate sensors or measuring in other methods will give us the most right accurate result.
As we all know that the altitude is caculated out from the pressure.
in different seasons and on different weather, the pressure could be different.
So the altitude i got would not be very accurate.
Google earth maybe use the technology of promixity, ray or etc.. This result could be more accurate than that caculated out from the pressure inderectly.
Here we just have a test individually.
If I put the sensor into a bag and blow some air into the bag,
we will see :
The altitude will decrease.
Somehow it comes to an altitude below 0 metre(s). e.g. -13.23m ( coz there are too much air in the bag. The lower Altitude is, the higher air pressure will be. )
You could check it out. Temperature, Pressure, Altitude.
Here's the basic function
As for some info in Chinese language:
资料自行下载http://www.kuaipan.cn/file/id_61649243307246089.html
1、板载BMP085数字式气压传感器,内置AD转换器,支持IIC通信协议
2、模块可以测试大气气温和大气压强,
PCB采用沉金工艺。pcb尺寸18.5mm*18mm
3、支持5V/3.3V电压输入
4、常用的引脚已经引出,插针为标准2.54mm
It's brief introduction :
BMP085 是一款高精度、超低能耗的压力传感器,可以应用在移动设备中。它的性能卓越,绝对精度最低可以达到0.03hPa,并且耗电极低,只有3μA。 BMP085采用强大的8-pin陶瓷无引线芯片承载(LCC)超薄封装,可以通过I2C总线直接与各种微处理器相连。
主要特点:
压力范围:300 - 1100hPa(海拔9000米至-500米)
电源电压:1.8V - 3.6V(VDDA)
1.62V - 3.6V(VDDD)
LCC8封装:无铅陶瓷载体封装(LCC)
尺 寸: 5.0mmx5.0x1.2mm
低功耗: 5μA 在标准模式
高精度: 低功耗模式下,分辨率为0.06hPa(0.5米)
高线性模式下,分辨率为0.03hPa(0.25米)
含温度输出
I2C接口
温度补偿
无铅,符合RoHS规范,
MSL 1
反应时间:7.5ms
待机电流:0.1μA
无需外部时钟电路
典型应用:
1.GPS精确导航(航位推算,上下桥检测等)
2.室内室外导航
3.休闲、体育和医疗健康等监测
4.天气预报
5.垂直速度指示(上升/下沉速度)
6.风扇功率控制