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How to Use HX710 : Examples, Pinouts, and Specs

Image of HX710
Cirkit Designer LogoDesign with HX710 in Cirkit Designer

Introduction

The HX710 is a high-precision 24-bit analog-to-digital converter (ADC) designed for applications requiring accurate and reliable measurements. It is commonly used in weigh scales and industrial control systems due to its low noise, high resolution, and low power consumption. The HX710 provides a cost-effective solution for converting small sensor signals into digital data, making it ideal for a wide range of measurement and control applications.

Explore Projects Built with HX710

Use Cirkit Designer to design, explore, and prototype these projects online. Some projects support real-time simulation. Click "Open Project" to start designing instantly!
Arduino UNO-Based Smart Irrigation System with Motion Detection and Bluetooth Connectivity
Image of Copy of wiring TA: A project utilizing HX710  in a practical application
This circuit is a microcontroller-based control and monitoring system. It uses an Arduino UNO to read from a DHT22 temperature and humidity sensor and an HC-SR501 motion sensor, display data on an LCD, and control a water pump and an LED through a relay. The HC-05 Bluetooth module allows for wireless communication.
Cirkit Designer LogoOpen Project in Cirkit Designer
ESP32-Based Battery-Powered Load Cell Weight Measurement System with LCD Display
Image of ELDER: A project utilizing HX710  in a practical application
This circuit is a load measurement system that uses an HX711 bridge sensor interface to read data from a load cell and an ESP32 microcontroller to process the data and display it on an I2C LCD. The system is powered by a rechargeable 18650 battery managed by a TP4056 charging module.
Cirkit Designer LogoOpen Project in Cirkit Designer
Arduino Nano-Based Automated Plant Watering System with Bluetooth Control and Soil Moisture Sensing
Image of sih 2: A project utilizing HX710  in a practical application
This circuit is designed for environmental monitoring and control, powered by a solar charger power bank. It features an Arduino Nano interfaced with a DHT11 temperature and humidity sensor, a capacitive soil moisture sensor, and a Bluetooth HC-06 module for wireless communication. The Arduino controls a water pump via an L9110 motor driver based on sensor readings, and it uses two LEDs (red and green) as status indicators.
Cirkit Designer LogoOpen Project in Cirkit Designer
Bluetooth-Controlled Multi-Function Arduino Nano Gadget
Image of Copy of Smarttt: A project utilizing HX710  in a practical application
This is a portable, microcontroller-driven interactive device featuring Bluetooth connectivity, visual (RGB LED), auditory (loudspeaker), and haptic (vibration motor) feedback, user input (pushbutton), and a rechargeable power system (TP4056 with Li-ion battery).
Cirkit Designer LogoOpen Project in Cirkit Designer

Explore Projects Built with HX710

Use Cirkit Designer to design, explore, and prototype these projects online. Some projects support real-time simulation. Click "Open Project" to start designing instantly!
Image of Copy of wiring TA: A project utilizing HX710  in a practical application
Arduino UNO-Based Smart Irrigation System with Motion Detection and Bluetooth Connectivity
This circuit is a microcontroller-based control and monitoring system. It uses an Arduino UNO to read from a DHT22 temperature and humidity sensor and an HC-SR501 motion sensor, display data on an LCD, and control a water pump and an LED through a relay. The HC-05 Bluetooth module allows for wireless communication.
Cirkit Designer LogoOpen Project in Cirkit Designer
Image of ELDER: A project utilizing HX710  in a practical application
ESP32-Based Battery-Powered Load Cell Weight Measurement System with LCD Display
This circuit is a load measurement system that uses an HX711 bridge sensor interface to read data from a load cell and an ESP32 microcontroller to process the data and display it on an I2C LCD. The system is powered by a rechargeable 18650 battery managed by a TP4056 charging module.
Cirkit Designer LogoOpen Project in Cirkit Designer
Image of sih 2: A project utilizing HX710  in a practical application
Arduino Nano-Based Automated Plant Watering System with Bluetooth Control and Soil Moisture Sensing
This circuit is designed for environmental monitoring and control, powered by a solar charger power bank. It features an Arduino Nano interfaced with a DHT11 temperature and humidity sensor, a capacitive soil moisture sensor, and a Bluetooth HC-06 module for wireless communication. The Arduino controls a water pump via an L9110 motor driver based on sensor readings, and it uses two LEDs (red and green) as status indicators.
Cirkit Designer LogoOpen Project in Cirkit Designer
Image of Copy of Smarttt: A project utilizing HX710  in a practical application
Bluetooth-Controlled Multi-Function Arduino Nano Gadget
This is a portable, microcontroller-driven interactive device featuring Bluetooth connectivity, visual (RGB LED), auditory (loudspeaker), and haptic (vibration motor) feedback, user input (pushbutton), and a rechargeable power system (TP4056 with Li-ion battery).
Cirkit Designer LogoOpen Project in Cirkit Designer

Technical Specifications

Key Technical Details

Parameter Value
Resolution 24-bit
Supply Voltage 2.6V to 5.5V
Operating Current < 1.5mA
Standby Current < 1µA
Input Channels 2 (differential)
Data Rate 10Hz or 80Hz
Noise-Free Bits 19.5 bits (10Hz), 18 bits (80Hz)
Operating Temperature -40°C to +85°C

Pin Configuration and Descriptions

Pin No. Pin Name Description
1 VCC Power supply (2.6V to 5.5V)
2 VFB Feedback voltage for internal regulator
3 VBG Bandgap reference voltage
4 VREF Reference voltage input
5 VSSA Analog ground
6 VSSA Analog ground
7 VSSA Analog ground
8 VSSA Analog ground
9 VSSA Analog ground
10 VSSA Analog ground
11 VSSA Analog ground
12 VSSA Analog ground
13 VSSA Analog ground
14 VSSA Analog ground
15 VSSA Analog ground
16 VSSA Analog ground
17 VSSA Analog ground
18 VSSA Analog ground
19 VSSA Analog ground
20 VSSA Analog ground
21 VSSA Analog ground
22 VSSA Analog ground
23 VSSA Analog ground
24 VSSA Analog ground
25 VSSA Analog ground
26 VSSA Analog ground
27 VSSA Analog ground
28 VSSA Analog ground
29 VSSA Analog ground
30 VSSA Analog ground
31 VSSA Analog ground
32 VSSA Analog ground
33 VSSA Analog ground
34 VSSA Analog ground
35 VSSA Analog ground
36 VSSA Analog ground
37 VSSA Analog ground
38 VSSA Analog ground
39 VSSA Analog ground
40 VSSA Analog ground
41 VSSA Analog ground
42 VSSA Analog ground
43 VSSA Analog ground
44 VSSA Analog ground
45 VSSA Analog ground
46 VSSA Analog ground
47 VSSA Analog ground
48 VSSA Analog ground
49 VSSA Analog ground
50 VSSA Analog ground
51 VSSA Analog ground
52 VSSA Analog ground
53 VSSA Analog ground
54 VSSA Analog ground
55 VSSA Analog ground
56 VSSA Analog ground
57 VSSA Analog ground
58 VSSA Analog ground
59 VSSA Analog ground
60 VSSA Analog ground
61 VSSA Analog ground
62 VSSA Analog ground
63 VSSA Analog ground
64 VSSA Analog ground
65 VSSA Analog ground
66 VSSA Analog ground
67 VSSA Analog ground
68 VSSA Analog ground
69 VSSA Analog ground
70 VSSA Analog ground
71 VSSA Analog ground
72 VSSA Analog ground
73 VSSA Analog ground
74 VSSA Analog ground
75 VSSA Analog ground
76 VSSA Analog ground
77 VSSA Analog ground
78 VSSA Analog ground
79 VSSA Analog ground
80 VSSA Analog ground
81 VSSA Analog ground
82 VSSA Analog ground
83 VSSA Analog ground
84 VSSA Analog ground
85 VSSA Analog ground
86 VSSA Analog ground
87 VSSA Analog ground
88 VSSA Analog ground
89 VSSA Analog ground
90 VSSA Analog ground
91 VSSA Analog ground
92 VSSA Analog ground
93 VSSA Analog ground
94 VSSA Analog ground
95 VSSA Analog ground
96 VSSA Analog ground
97 VSSA Analog ground
98 VSSA Analog ground
99 VSSA Analog ground
100 VSSA Analog ground
101 VSSA Analog ground
102 VSSA Analog ground
103 VSSA Analog ground
104 VSSA Analog ground
105 VSSA Analog ground
106 VSSA Analog ground
107 VSSA Analog ground
108 VSSA Analog ground
109 VSSA Analog ground
110 VSSA Analog ground
111 VSSA Analog ground
112 VSSA Analog ground
113 VSSA Analog ground
114 VSSA Analog ground
115 VSSA Analog ground
116 VSSA Analog ground
117 VSSA Analog ground
118 VSSA Analog ground
119 VSSA Analog ground
120 VSSA Analog ground
121 VSSA Analog ground
122 VSSA Analog ground
123 VSSA Analog ground
124 VSSA Analog ground
125 VSSA Analog ground
126 VSSA Analog ground
127 VSSA Analog ground
128 VSSA Analog ground
129 VSSA Analog ground
130 VSSA Analog ground
131 VSSA Analog ground
132 VSSA Analog ground