Thermal characteristics of the thermal protection material of the rocket motor case at temperatures up to 1000 oС

Геннадий Александрович Фролов, Юрий Игоревич Евдокименко, Вячеслав Михайлович Кисель, Ирина Александровна Гусарова

Abstract


An experimental determination of the temperature dependences of the specific heat capacity and the thermal conductivity coefficient of the multifunctional coating MFP-92 at temperatures up to 1000 °C has been carried out. At temperatures up to 450 °C, an IT-c-400 device was used to determine the specific heat capacity. IT-l-400 device was used for the determination of thermal conductivity. At higher temperatures, the determination of the thermophysical characteristics (TPC) was carried out by solving the inverse problem of thermal conductivity (IPT) in a flat plate under conditions of one-sided heating in a muffle furnace. Composite material MFP-92 is a multilayer structure with upper layers based on silica fabric and chromophosphate binder and lower layers based on mullite-silica fabric and aluminosilicate binder. The TPC of the layers also differ from each other, and, accordingly, the properties of this material as a whole can be determined only in the form of their effective values, averaged in one way or another over the thickness of the coating. In addition, during heating, the material undergoes significant physicochemical transformations associated with the thermal destruction of its components, manifested in the form of abundant gas release, and a decrease in the density of the material, which significantly changes its TPC and determines its dependence on the heating rate. Therefore, studies of the thermophysical characteristics of the MFP-92 material were carried out with several (2-5) consecutive heating cycles. It was found that in four heating cycles of the MFP-92 material up to 450 °C for 75 minutes when measuring the specific heat on the IT-c-400 device, its temperature dependence significantly changes qualitatively and quantitatively. With furnace heating to 1000 °C, the temperature dependences of the TPC of the material, determined in the first and second heating cycles, have a different form, but change insignificantly in subsequent heating cycles. This makes it possible to ascribe to the MFP-92 material a set of two sets of TPC related to its initial (phase A) and annealed after heating to 1000 °C (phase B) states. Using the obtained TPС of phase A (including the magnitude of the thermal effect of irreversible endothermic phase transition at 100 °C) and phase B, good agreement was obtained between the calculated and experimental temperature fields in the samples under furnace heating conditions.

Keywords


multifunctional coating; thermophysical characteristics; high-temperature tests; heat resistance; muffle furnace

References


Isayev, K. B. Teplofizicheskiye kharakteristiki materialov v shirokikh diapazonakh temperatur i skorostey nagreva [Thermophysical characteristics of materials in a wide range of temperatures and heating rates], Kiyev, Kupriyanova publ., 2008. 240 p.

Krukovskiy, P. G. Obratnyye zadachi teplomassoperenosa (obshchiy inzhenernyy podkhod) [Inverse problems of hea tand mass transfer (general engineering approach)]. Kiyev, ITTF NANU Publ., 1998. 224 p.

Prosuntsov, P. V., Reznik, S. V. Opredeleniye teplofizicheskikh svoystv poluprozrachnykh materialov [Determination of thermophysical properties of semitransparent materials]. Inzh.-fiz. zhurn., 1985, vol. 49, no. 6, pp. 977-982.

Volkov, D. P., Korablev, V. K., Zarichnyak, Yu.P. Pribory i metody dlya izmereniya teplofizicheskikh svoystv veshchestv. Metod. ukaz [Devices and methods for measuring the thermophysical properties of substances]. SPb, SPb GU ITMO Publ., 2006. 66 p.

Denisova, E. I., Shak, A. V. Izmereniye teploprovodnosti na izmeritele IT--400. Uchebnoye elektronnoye tekstovoye izdaniye. Pod red. Prof. Ye. L. Furmana [Measurement of thermal conductivity on the IT--400 meter. Educational electronic text edition]. Yekaterinburg, GOU-VPO UGTU-UPI Publ., 2006. 35 p.

Tekhnicheskoye opisaniye modulya preobrazovaniya signalov raskhodomera WAD-RS-BUS(USB) ТУ У 33.2-33056998-001:2009 АКОН.422500.003 [Technical description of the WAD-RS-BUS (USB) flow meter signal conversion module]. Available at: http://www.akon.com.ua. (accessed 10.05.2021).




DOI: https://doi.org/10.32620/aktt.2021.4sup1.02