| Literature DB >> 29848947 |
Hardianto Hardianto1,2, Gilbert De Mey3, Izabela Ciesielska-Wrόbel4, Carla Hertleer5, Lieva Van Langenhove6.
Abstract
Thermocouples made of etched and non-etched nickel-coated carbon yarn (NiCCY) were investigated. Theoretic Seebeck coefficients were compared to experimental results from measurements of generated electric voltage by these thermocouples. The etching process for making thermocouples was performed by immersion of NiCCY in the solution containing a mixture of hydrochloric acid (HCl) (37% of concentration), and hydrogen peroxide (H₂O₂) in three different concentrations-3%, 6%, and 10%. Thirty minutes of etching to remove Ni from NiCCY was followed by washing and drying. Next, the ability to generate electrical voltage by the thermocouples (being a junction of the etched and the non-etched NiCCY) was measured in different ranges of temperatures, both a cold junction (291.15⁻293.15 K) and a hot junction (293.15⁻325.15 K). A formula predicting the Seebeck coefficient of this thermocouple was elaborated, taking into consideration resistance values of the tested samples. It was proven that there is a good agreement between the theoretical and experimental data, especially for the yarns etched with 6% and 10% peroxide (both were mixed with HCl). The electrical resistance of non-fully etched nickel remaining on the carbon fiber surface ( R 1 ) can have a significant effect on the thermocouples' characteristics.Entities:
Keywords: Seebeck coefficient; conductive yarn; nickel-coated carbon fiber; thermocouple
Year: 2018 PMID: 29848947 PMCID: PMC6025552 DOI: 10.3390/ma11060922
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Theoretical diagram of etched and non-etched segment of one filament of nickel-coated carbon fiber as a thermocouple where C is carbon fiber; Ni is nickel coating on the surface of C fiber; S, S1, and S2 are the cross-section areas of C, Ni on etched segment and Ni on non-etched segment, respectively; T is temperature; T and T are cold and hot temperatures, respectively; ϕ is electric potential; V is a voltage at junction (x = 0); V0 is a voltage at a single end of nickel-coated carbon fiber (x = b); x is axis along the thermocouple.
Figure 2An image of Tenax®-J HTS40 1420tex NiCCY provided by Toho Tenax Europe GmbH, Wuppertal, Germany. The image was taken with OneBird Smart 5M 300X USB Digital Microscope Camera Video with MicroCapture. The diameter of 6.906 mm was measured without any pretension [14].
Characteristics of nickel-coated carbon yarn (NiCCY) [14].
| Parameter | Description |
|---|---|
| Raw material | Carbon |
| Liner density [tex] | 1420 tex |
| Coating | 0.25 µm of Ni |
| No. of filaments | 1200 |
| Filament diameter [µm] | 7.5 incl. Coating |
| Density [g/cm3] | 2.70 |
| Twist [tpm, type] | 0 |
| Linear electrical resistance [Ω/m] | 2.2667 |
| Commercial name | Tenax®-J HTS40 |
Figure 3Illustration of the voltage measurement set up. The junction was placed on the hot plate that had been covered with a piece of paper and a wood weight was placed on the junction and thermometer probe.
Figure 4Images from scanning electron microscope (Jeol JSM-7600F) taken with 5000x magnification: (a) Untreated nickel-coated carbon fiber; (b) nickel-coated carbon fiber after treatment of 3% H2O2 + 37% HCl; (c) nickel-coated carbon fiber after treatment of 6 % H2O2 + 37% HCl; (d) nickel-coated carbon fiber after treatment of 10% H2O2 + 37% HCl.
Linear electrical resistance of etched and non-etched yarns [13].
| Etching Condition | Linear Electrical Resistance [Ω/m] |
|---|---|
| Non-etched | 2.2667 |
| 3% H2O2 + 37% HCl (1:1) | 2.8667 |
| 6% H2O2 + 37% HCl (1:1) | 31.533 |
| 10% H2O2 + 37% HCl (1:1) | 45.933 |
Figure 5Plot of voltage vs. temperature difference of the samples (theoretical and experimental).
Figure 6The generated voltage versus plotted from Equation (21) with a temperature difference of 1 K.