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AD620 Based Heart Rate Detection System Design

  • Contents

I. Introduction

The heart rate is a key indicator value reflecting the health of the body. Simply put, the heart rate refers to the frequency of cardiovascular beats within 1 minute. The test of heart rate can show scientific evidence in work such as disease diagnosis, patient care, and athlete training. In recent years, many medical types of equipment and fitness equipment developed and manufactured by countries around the world have adopted heart rate test power circuits. The low cost of product development and high-performance heart rate test power circuits have important application values. The article introduces this kind of heartbeat rate detection system based on AD620 integrated IC in detail. Using the excellent low-noise characteristics of AD620 integrated IC, plus effective filtering and amplifying circuits, combined with microprocessor solutions, a high-precision heart rate monitoring system is obtained.

AD620

Figure 1 AD620

Catalog

I. Introduction

II. AD620 Chip

III. Circuit Design

3.1 Block Diagram

3.2 Signal Extraction Circuit Based on AD620

3.3 Filter Amplifier Circuit

3.4 Microprocessor Circuit

3.5 Experimental Results and Discussion

IV. Conclusion

FAQ

Ordering & Quantity

 

II.AD620 chip

 

AD620 is a low-cost, high-precision instrumentation amplifier. It only needs an external resistor to set the gain, and the gain range is 1 to 10000. In addition, AD620 adopts 8-pin SOIC and DIP package, the size is smaller than the discrete circuit design, and the power consumption is lower, so it is very suitable for battery-powered and portable applications. Its characteristics are as follows:

 

  • EASY TO USE

  Gain Set with One External Resistor

  (Gain Range 1 to 10,000)

  Wide Power Supply Range (±2.3 V to ±18 V)

  Higher Performance than Three

  Op Amp IA Designs

  Available in 8-Lead DIP and SOIC Packaging

  Low Power, 1.3 mA max Supply

  • LOW NOISE

  9 nV/√Hz, @ 1 kHz, Input Voltage Noise

  0.28 µV p-p Noise (0.1 Hz to 10 Hz)

  • EXCELLENT DC PERFORMANCE (B GRADE)

  50 µV max, Input Offset Voltage

  0.6 µV/°C max, Input Offset Drift

  1.0 nA max, Input Bias Current

  100 dB min Common-Mode

  Rejection Ratio (G = 10)

  • EXCELLENT AC SPECIFICATIONS

  120 kHz Bandwidth (G = 100)

        15 µs Settling Time to 0.01%

 

III. Circuit Design

 

3.1 Block Diagram

 

The surface of the human skin contains human ECG EMG, and power frequency signals. Generally, the noise of the ECG  signal containing heart rate information is much smaller than that of the power frequency signal. In order to extract the weak ECG  signal, a low-noise operational amplifier must be used and a reasonable filter amplifier circuit must be designed.

 

Figure 2 is a block diagram of the heart rate detection system. The whole heart rate detection system consists of four parts: the sensor head in contact with the human skin surface, the signal extraction circuit, the filter amplifier circuit, and the microprocessor circuit. The sensor head is generally a metal that is easy to conduct electricity. After contacting the surface of the human skin, it has complex electrical signals such as human ECG  signals, electromyographic signals, and power frequency signals. We use the low-noise AD620 operational amplifier as the core chip of the heartbeat rate extraction circuit. In the filtering and amplifying circuit part, a simple low-pass filtering circuit is used. The experimental results show that this filtering circuit is sufficient to extract the heart rate signal. After filtering the amplified signal, an adjustable comparator combined with a transistor circuit is used to form a 5 volt TTL level signal, and finally connected to the microprocessor, the heartbeat signal is processed by the microcomputer, and the heartbeat rate is calculated and displayed.

Figure 2 Block diagram of heart rate detection principle

Figure 2 Block diagram of heart rate detection principle

 

3.2 Signal Extraction Circuit Based on AD620

 

AD620 operational amplifier, usually used in high-precision test instruments, the maximum nonlinear error of 40ppm, the maximum voltage offset of 50uV, the maximum temperature drift of 0.6uV/℃, because of its low noise, low bias current, low power consumption characteristics, it is widely used in medical fields such as electrocardiogram (ECG) and blood pressure monitoring.

 

Figure 3 is a signal extraction circuit based on AD620, in which the LEFT_ARM, RIGHT_ARM, LEG three leads are connected to the aluminum sheet (ie the sensor head), which are respectively connected to the left and right hands and right feet of the human body. Our experimental research results show that the R4 gain of LEFT_ARM is 1K, the corresponding AD620 operational amplifier gain is 50. Too much gain will weaken the final signal-to-noise ratio, so the R4 resistance value should be set reasonably in the experiment. The 0.1uF capacitance between the LEFT_ARM and RIGHT_ARM leads is to effectively weaken the power frequency noise. The LEG lead is connected to AD620 through TL082A, which provides the reference potential of the human body for the differential signal of LEFT_ARM and RIGHT_ARM.

Figure 3 Signal extraction circuit based on AD620

Figure 3 Signal extraction circuit based on AD620

 

3.3 Filter Amplifier Circuit

 

Figure 4 is a filter amplifier circuit. Three operational amplifiers constitute a three-stage amplification, each amplifying 100 times. Due to circuit loss, especially the loss of the isolation capacitor, the actual signal amplification is less than 1 million times. The ratio of the resistance values of R6 and R5, R9 and R8, R11 and R10 in the circuit determines the magnification factor, and these resistance values should be adjusted reasonably in practical applications.

 

A low-pass filter circuit should be used while amplifying the signal to achieve the effect of filtering power frequency noise. Since the frequency of the power frequency noise is 50Hz, the designed filter circuit has a passband bandwidth of less than 50Hz, that is, the RC time constant of the capacitor resistor must be of the same order of magnitude as the power frequency signal period. R7 and C10 in the circuit form a low-pass filter. We use 1uF capacitor isolation between levels of amplification. These capacitors will attenuate the signal at the same time, and the three operational amplifiers are selected for signal amplification, so the signal-to-noise ratio is improved. It should be pointed out that if the isolation capacitor is too large, it is easy to cause the output electrical signal to drift.

Figure 4 Filter amplifier circuit

Figure 4 Filter amplifier circuit

 

Figure 5 is the shaping circuit. The heartbeat rate signal and signal-to-noise ratio of the 2ND_OUT lead are large enough (the pulse rate of the heartbeat rate is 1 ~ 5V), after the half-wave shaping of D1, then the adjustable comparator, and finally the transistor Q1 is converted to the microcontroller level.

Figure 5 Shaping circuit

Figure 5 Shaping circuit

 

3.4 Microprocessor Circuit

 

The final signal is processed by AT89C51, and the heart rate is displayed by an LED digital tube. The microprocessor circuit with AT89C51 as the core is very mature, so it's no need to repeat it here.

 

3.5 Experimental Results and Discussion

 

Figure 6 shows the actual measurement results of the human heart rate using the above system. Figure 6(a) is the voltage signal after the signal 2ND_OUT is shaped by D1. It can be seen from the figure that this is actually a complete ECG  signal. In a cycle of signals, there are two more obvious pulse signals. This pulse characteristic varies from person to person. It is found that there is at least one pulse signal through actual measurement of the ECG  signals of different people. Figure 6(b) shows the electrical signal of  HEART_PULSE, which is obtained after the signal of Figure 6(a) passes through the comparator and the transistor switch. The signal can be directly input to the port of the microprocessor, and the microprocessor calculates and outputs the heart rate.

Figure 6 Heart rate signal diagram

Figure 6 Heart rate signal diagram

 

When developing the above-mentioned heart rate detection system, there are several key points to pay special attention to:

 

(1) Connecting capacitors to LEFT_ARM and RIGHT_ARM can greatly improve the signal-to-noise ratio; the main energy of the heart rate signal on LEFT_ARM and RIGHT_ARM is at a frequency of about 1 Hz, and the capacitor is a low-pass filter that can filter and suppress noise; Choose a large capacitor to eliminate high-frequency noise. In the experiment, a 10uF non-polar capacitor is used, and the effect is very good;

 

(2) The low-pass filter circuit effectively weakens the power frequency signal and improves the signal-to-noise ratio; it adopts a combination of active filtering and passive filtering to filter while amplifying, which has a better effect than filtering after amplification;

 

(3) Capacitor isolation attenuation and multi-stage amplification are beneficial to improve the signal-to-noise ratio; the main noise is 50Hz power frequency signals. Although the multi-stage amplification and filtering increase thermal noise, it has great suppression of power frequency noise. Of course, the number of amplification stages cannot be infinite, and the best number of stages is the minimum sum of power frequency noise and thermal noise;

 

(4) Small capacitor isolation should be used to suppress DC signal drift. This is shown by the experimental results, and the reason needs to be further studied.

 

IV. Conclusion

 

This article discusses a scheme based on AD620 chip heart rate detection and introduces the circuit design of the sensor head, signal extraction, filter amplification, and microprocessor that make up the system. Gives the method to improve the system performance. Experiments show that the system can obtain better ECG signals and accurate heart rates. The heartbeat rate detection system in this article has strong anti-interference ability, simple structure, and low cost.


FAQ

  • What is obtained using the low-noise characteristics of AD620 integrated IC?

High-precision heart rate monitoring system

  • What package does AD620 adopt?

8-pin SOIC and DIP

  • What type of test instruments are AD620 operational amplifier usually used?

High-precision test instruments

  • What is AD620?

AD620 is a low-cost, high-precision instrumentation amplifier. It only requires an external resistor to set the gain. The gain range is 1 to 10,000.

  • Can I change AD620 to AD623 when making MCU products?

Both AD620 and AD623 are single instrumentation amplifiers, and the pin arrangement is exactly the same.

The main difference is: AD620 must use positive and negative power supplies, AD623 can be a positive and negative power supply or a single power supply.

If the original board is AD620, you can replace it with 623; if the original board is AD623, you may not be able to replace it with 620 (it depends on whether the power supply of the original board circuit is dual power supply or single power supply).

After replacing AD620 and AD623 in single-chip products, the program can work normally without modification.

  • What is the difference between AD620BR and AD620AN?

Their packages are different.

  • What is the output resistance of AD620? How to adjust it?

AD620 is a kind of low power consumption instrument amplifier, its output resistance is about 10K, this is the inherent characteristic of this chip, generally it is difficult to adjust.

If you have requirements for output resistance, you can generally use an external circuit to solve it.

  • Is AD620 a positive phase amplification or a reverse phase amplification?

AD620 is an instrument amplifier, the output voltage is [(Vin+)-(Vin-)]*gain.

If the desired signal is (Vin+)-(Vin-), the gain is positive, which is equivalent to positive amplification.

Conversely, if the desired signal is (Vin-)-(Vin+), the gain is equivalent to negative, which is equivalent to reverse amplification.

  • What is an instrumentation amplifier?

Instrumentation amplifier, an improvement of the differential amplifier, has an input buffer, does not require input impedance matching, so that the amplifier is suitable for measurement and electronic instruments

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