| Literature DB >> 35543758 |
Dujuan Tan1, Qixuan Zeng1, Xue Wang2, Songlei Yuan1, Yanlin Luo1, Xiaofang Zhang1, Liming Tan1, Chenguo Hu1, Guanlin Liu3,4.
Abstract
Triboelectric nanogenerators (TENGs) have shown promising potential for large-scale blue energy harvesting. However, the lack of reasonable designs has largely hindered TENG from harvesting energy from both rough and tranquil seas. Herein, a fully symmetrical triboelectric nanogenerator based on an elliptical cylindrical structure (EC-TENG) is proposed for all-weather blue energy harvesting. The novel elliptical cylindrical shell provides a unique self-stability, high sensitivity to wave triggering, and most importantly, an anti-overturning capability for the EC-TENG. Moreover, benefiting from its internal symmetrical design, the EC-TENG can produce energy normally, even if it was overturned under a rude oscillation in the rough seas, which distinguishes this work from previous reported TENGs. The working mechanism and output performance are systematically studied. The as-fabricated EC-TENG is capable of lighting 400 light-emitting diodes and driving small electronics. More than that, an automatic monitoring system powered by the EC-TENG can also monitor the water level in real-time and provide an alarm if necessary. This work presents an innovative and reliable approach toward all-weather wave energy harvesting in actual marine environments.Entities:
Keywords: Anti-overturning; Elliptic cylindrical; Fully symmetrical; Triboelectric nanogenerator; Wave energy
Year: 2022 PMID: 35543758 PMCID: PMC9095809 DOI: 10.1007/s40820-022-00866-w
Source DB: PubMed Journal: Nanomicro Lett ISSN: 2150-5551
Fig. 1Structure design of the EC-TENG. a Schematic diagram of the EC-TENG. b–d Schematic diagrams of the cross-sectional configuration of EC-TENG, outer V-shaped TENG, and inner TENG. e Dynamic analysis of a steel bar rolling in the inner shell (i), and comparison of the elliptic cylindrical shell with cylindrical or spherical shells in bar rolling distance under the same slant angle (ii). f Proposed network composed of the EC-TENGs for large-scale blue energy harvesting
Fig. 2Working principles of the EC-TENG. a, b Sketches of the working principles of a the internal part and b the external part. c, d The corresponding potential distributions of the c inner TENG and d outer TENG calculated by COMSOL in a two-dimensional plane
Fig. 3The electrical output performance of the internal TENG. a Transferred charge quantity under various electrode widths at f = 0.25 Hz and Deg = 27°. b The calculated transferred charge amount in a period under various electrode widths. c–e Point plots of the c transferred charge, d open-circuit voltage and e short-circuit current under diverse frequencies and swing amplitudes. f The output current, output voltage, and power dependence of the external load resistance at f = 1 Hz and Deg = 63°
Fig. 4The electrical output performance of the outer TENG. a–f 3D surface graphs of a QSC, b ISC, and c VOC on changing both the working frequency and swing amplitude and their corresponding 2D graphs (d–f). g The short-circuit currents of a top and a bottom TENG at a frequency of 1 Hz and amplitude of 63°. h Peak power comparison of a single top TENG and a pair of diagonal TENGs connected in parallel (at 1 Hz and 63°). i Voltage curves of several commercial capacitors charged by different sets of outer TENGs (at 1 Hz and 63°)
Fig. 5Demonstrations of the EC-TENG for wave energy harvesting. a Short-circuit current of the device before and after overturning. b Voltage profiles of several commercial capacitors charged by different sets of outer TENGs when the device is driven by a water wave. c Comparison of charging performances of stepper motor excitation and water wave triggering. d Image of 400 green LEDs lit by EC-TENG. e The voltage profile for an electronic calculator powered by the EC-TENG, where the insets show the working states of the electronic calculator. f Image of a water-level monitoring system powered by the EC-TENG. g A blueprint of the conceived EC-TENG-based water-level monitoring system for monitoring the coastal water levels, where the inset shows the circuit diagram of the water-level monitoring system