Abstract

This article analyzes the structure of the wireless sensor circuit, considering the balance of power consumption, integration, area, noise, etc., and adopts a radio frequency wireless sensor circuit with a low-IF structure. Through the analysis and comparison of traditional analog current trigger and digital current trigger structure, the feed-forward current trigger structure is selected, which is composed of received signal strength indicator (RSSI) and variable gain amplifier (VGA), which achieves low power consumption, fast stabilization time, and wide dynamic range design. The received signal strength indicator adopts the form of approximate logarithmic amplifier, five-stage double feedback loop structure, and realizes lower power consumption. In order to prevent the load current trigger from entering the speed saturation zone, a gain unit structure in which the superimposed current trigger is connected to the NMOS tube as the load is proposed. The test results show that the circuit has a good power consumption performance (1 mW) and at the same time 56.8 dB/m sensitivity. In this paper, through the analysis of the current trigger system and the analysis and comparison of the existing variable gain amplifiers, the variable gain amplifier structure composed of the folded wireless sensing unit and the index control unit is adopted. In order to reduce the power consumption of the circuit and increase the output swing, a structure in which the two-stage folding wireless sensor unit shares the controlled voltage-to-current part of the circuit is proposed. Aiming at the design requirements of the system, this article discussed in detail the architecture of the entire temperature measurement node and the design parameters of the chip and completed the overall architecture design of the chip. The simulation results of the steady-state temperature rise of the electric heating field show that the circuit has achieved an input dynamic adjustment range of more than 60 dB, the maximum power consumption is 1 mW, and the linearity error is less than 0.5 dB. The designed automatic gain control circuit is implemented in SMIC 0.18 cape CMOS process. The simulation results of the steady-state temperature rise of the electric heating field show that the circuit has a 56 dB input dynamic adjustment range within a linear error of 1.25 dB, and the time constant is 7.55 ms, and power consumption is 2.84 mW. Through the steady-state temperature rise simulation and test results of the electric heating field, the correctness of the design is verified and it meets the system requirements.

Highlights

  • With the rapid development of wireless communication technology, sensor technology, system-on-chip technology, etc., the wireless sensor network (WSN), called the peripheral nerve of the Internet of Things, has once again become a research hotspot at home and abroad and is widely used in military defense, industrial control, and environment surveillance and medical and health fields [1]

  • The radio frequency wireless sensor circuit is an important interface for wireless communication in the wireless sensor network, and its performance directly determines the quality of communication [2]

  • The research of this paper is based on the low-IF structure radio frequency wireless sensor circuit system, focusing on the design and chip realization of the Journal of Sensors automatic gain control circuit, and verifies the correctness of the design through the steady-state temperature rise simulation test of the electric heating field [4]

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Summary

Introduction

With the rapid development of wireless communication technology, sensor technology, system-on-chip technology, etc., the wireless sensor network (WSN), called the peripheral nerve of the Internet of Things, has once again become a research hotspot at home and abroad and is widely used in military defense, industrial control, and environment surveillance and medical and health fields [1]. The research of this paper is based on the low-IF structure radio frequency wireless sensor circuit system, focusing on the design and chip realization of the Journal of Sensors automatic gain control circuit, and verifies the correctness of the design through the steady-state temperature rise simulation test of the electric heating field [4]. According to the performance indicators and functional requirements required by the system, this paper designs and analyzes the structure of the circuit system, studies the selection of peripheral circuits, and proposes the wireless sensor circuit hybrid electric heating field steady-state temperature rise modulation method. The Cadence software is used to simulate the steady-state temperature rise of the overall electric heating field under different input voltage and output load conditions

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