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Erschienen in: Measurement Techniques 4/2018

02.08.2018 | STATE STANDARDS

GET 59–2016, State Primary Standard of Unit of Thermal Conductivity and Unit of Thermal Resistance

verfasst von: N. A. Sokolov, A. N. Sokolov, N. V. Churilina

Erschienen in: Measurement Techniques | Ausgabe 4/2018

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Abstract

Features and metrological characteristics of State Primary Standard GET 59–2016 of the unit of thermal conductivity and unit of thermal resistance are considered. The basic results of the three international comparisons CCT-S2, 495/RU/10a, and 549/RU/12a are presented.

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Literatur
1.
Zurück zum Zitat D. A. Tatarashvili, O. A. Sergeev, and Yu. A. Chistiyakov, “State Primary Standard of unit of thermal conductivity of solids,” Izmer. Tekhn., No. 4, 18–21 (1975). D. A. Tatarashvili, O. A. Sergeev, and Yu. A. Chistiyakov, “State Primary Standard of unit of thermal conductivity of solids,” Izmer. Tekhn., No. 4, 18–21 (1975).
2.
Zurück zum Zitat GOST 8.140–75, GSI. State Primary Standard and State Measurement Chain for Instruments for the Measurement of the Thermal Conductivity of Solids in the Range of Temperatures 90–500 K. GOST 8.140–75, GSI. State Primary Standard and State Measurement Chain for Instruments for the Measurement of the Thermal Conductivity of Solids in the Range of Temperatures 90500 K.
3.
Zurück zum Zitat GOST 8.140–82, GSI. State Primary Standard and State Measurement Chain for Instruments for the Measurement of the Thermal Conductivity of Solids from 0.1 to 5 W/(m·K) in the Range of Temperatures 90–500 K and from 5 to 20 W/(m·K) in the Range of Temperatures 300–1100 K. GOST 8.140–82, GSI. State Primary Standard and State Measurement Chain for Instruments for the Measurement of the Thermal Conductivity of Solids from 0.1 to 5 W/(m·K) in the Range of Temperatures 90500 K and from 5 to 20 W/(m·K) in the Range of Temperatures 3001100 K.
4.
Zurück zum Zitat N. A. Sokolov, Patent 2276781 RF, “A method of determining the thermal conductivity of a synthetic material,” Izobret. Polezn. Modeli, No. 14 (2006). N. A. Sokolov, Patent 2276781 RF, “A method of determining the thermal conductivity of a synthetic material,” Izobret. Polezn. Modeli, No. 14 (2006).
5.
Zurück zum Zitat N. A. Sokolov, “A new class of devices: multi-valued measures of thermal conductivity,” Izmer. Tekhn., No. 4, 50–52 (2006). N. A. Sokolov, “A new class of devices: multi-valued measures of thermal conductivity,” Izmer. Tekhn., No. 4, 50–52 (2006).
6.
Zurück zum Zitat N. A. Sokolov, Metrological Assurance of Energy Conservation (measurement of thermal conductivity and related quantities), MIO, St. Petersburg (2005). N. A. Sokolov, Metrological Assurance of Energy Conservation (measurement of thermal conductivity and related quantities), MIO, St. Petersburg (2005).
7.
Zurück zum Zitat N. A. Sokolov, “Computer simulation of the measurement of thermal conductivity,” Izmer. Tekhn., No. 4, 44–46 (2007). N. A. Sokolov, “Computer simulation of the measurement of thermal conductivity,” Izmer. Tekhn., No. 4, 44–46 (2007).
8.
Zurück zum Zitat N. A. Sokolov, Creation of an Equipment Complex of the State Primary Standard of the Unit of Thermal Conductivity and System for the Transmission of the Unit in the Range from 0.02 to 0.2 W/(m·K): Auth. Abstr. Dissert. Doct. Techn. Sci., St. Petersburg (2006). N. A. Sokolov, Creation of an Equipment Complex of the State Primary Standard of the Unit of Thermal Conductivity and System for the Transmission of the Unit in the Range from 0.02 to 0.2 W/(m·K): Auth. Abstr. Dissert. Doct. Techn. Sci., St. Petersburg (2006).
9.
Zurück zum Zitat GOST 8.140–2009, GSI. State Measurement Chain for Instruments for the Measurement of the Thermal Conductivity of Solids in the Range from 0.02 to 20 W/(m·K) at a Temperature from 90 to 1100 K. GOST 8.140–2009, GSI. State Measurement Chain for Instruments for the Measurement of the Thermal Conductivity of Solids in the Range from 0.02 to 20 W/(m·K) at a Temperature from 90 to 1100 K.
10.
Zurück zum Zitat GOST 7076–99. Construction Materials and Articles. A Method of Determining Thermal Conductivity and Thermal Resistance under Fixed Thermal Conditions. GOST 7076–99. Construction Materials and Articles. A Method of Determining Thermal Conductivity and Thermal Resistance under Fixed Thermal Conditions.
11.
Zurück zum Zitat N. A. Sokolov, Patent 2343466 RF, “A method of determining the thermal conductivity of synthetic materials,” Izobret. Polezn. Modeli, No. 1 (2009). N. A. Sokolov, Patent 2343466 RF, “A method of determining the thermal conductivity of synthetic materials,” Izobret. Polezn. Modeli, No. 1 (2009).
12.
Zurück zum Zitat N. A. Sokolov and A. N. Sokolov, “Multi-valued measures of thermal conductivity for the range 20–500 W/(m·K),” Izmer. Tekhn., No. 7, 43–46 (2009). N. A. Sokolov and A. N. Sokolov, “Multi-valued measures of thermal conductivity for the range 20–500 W/(m·K),” Izmer. Tekhn., No. 7, 43–46 (2009).
13.
Zurück zum Zitat N. A. Sokolov and A. N. Sokolov, Patent 2479040 RF, “A method of determining the thermal conductivity of a synthetic material,” Izobret. Polezn. Modeli, No. 10 (2013). N. A. Sokolov and A. N. Sokolov, Patent 2479040 RF, “A method of determining the thermal conductivity of a synthetic material,” Izobret. Polezn. Modeli, No. 10 (2013).
14.
Zurück zum Zitat N. A. Sokolov, Development and Investigation of Methods and Instruments for Increasing the Precision of Measurement of Thermal Conductivity in the Range from 0.02 to 3 W/(m·K), Thermal Resistance in the Range from 0.005 to 1.5·m2·K/W, and Heat Transfer Resistance in the Range 0.02 to 6 m2·K/W: Auth. Abstr. Dissert. Cand. Techn. Sci., St. Petersburg (2011). N. A. Sokolov, Development and Investigation of Methods and Instruments for Increasing the Precision of Measurement of Thermal Conductivity in the Range from 0.02 to 3 W/(m·K), Thermal Resistance in the Range from 0.005 to 1.5·m2·K/W, and Heat Transfer Resistance in the Range 0.02 to 6 m2·K/W: Auth. Abstr. Dissert. Cand. Techn. Sci., St. Petersburg (2011).
15.
Zurück zum Zitat GOST 8.061–80, GSI. State Measurement Chains. Content and Construction. GOST 8.061–80, GSI. State Measurement Chains. Content and Construction.
16.
Zurück zum Zitat B. Hay, L. Cortes, B. Doucey, et al., International Comparison on Thermal Conductivity Measurements of Insulating Materials by Guarded Hotplate, DEStech Publications, USA (2009), pp. 79–87. B. Hay, L. Cortes, B. Doucey, et al., International Comparison on Thermal Conductivity Measurements of Insulating Materials by Guarded Hotplate, DEStech Publications, USA (2009), pp. 79–87.
17.
Zurück zum Zitat N. A. Sokolov and A. N. Sokolov, “Creation of new instruments and a system of metrological assurance of measurements of the thermal conductivity of effective thermal insulators,” Pribory, No. 7, 2–9 (2010). N. A. Sokolov and A. N. Sokolov, “Creation of new instruments and a system of metrological assurance of measurements of the thermal conductivity of effective thermal insulators,” Pribory, No. 7, 2–9 (2010).
18.
Zurück zum Zitat B. Hay, L. Cortes, B. Doucey, et al., “International comparison on thermal conductivity measurements of insulating materials by guarded hotplates–preliminary results,” Proc. 30th Int. Thermal Conductivity Conf. and 18th Int. Thermal Expansion Symp. (2010), Vol. 18, pp. 378–385. B. Hay, L. Cortes, B. Doucey, et al., “International comparison on thermal conductivity measurements of insulating materials by guarded hotplates–preliminary results,” Proc. 30th Int. Thermal Conductivity Conf. and 18th Int. Thermal Expansion Symp. (2010), Vol. 18, pp. 378–385.
20.
Zurück zum Zitat N. A. Sokolov, V. N. Mikhalchenko, P. V. Krivonos, et al., “International comparison on thermal conductivity measurements of thermal insulators at a temperature of 10 to 40°C,” Energy Conservation in Heat and Gas Supply Systems: Proc. 4th Sci. Pract. Conf., St. Petersburg (2013), pp. 8–12. N. A. Sokolov, V. N. Mikhalchenko, P. V. Krivonos, et al., “International comparison on thermal conductivity measurements of thermal insulators at a temperature of 10 to 40°C,” Energy Conservation in Heat and Gas Supply Systems: Proc. 4th Sci. Pract. Conf., St. Petersburg (2013), pp. 8–12.
Metadaten
Titel
GET 59–2016, State Primary Standard of Unit of Thermal Conductivity and Unit of Thermal Resistance
verfasst von
N. A. Sokolov
A. N. Sokolov
N. V. Churilina
Publikationsdatum
02.08.2018
Verlag
Springer US
Erschienen in
Measurement Techniques / Ausgabe 4/2018
Print ISSN: 0543-1972
Elektronische ISSN: 1573-8906
DOI
https://doi.org/10.1007/s11018-018-1428-z

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