Fonksiyonel Derecelendirilmiş İki Boyutlu Plakın Isıl Analizi
Yıl 2025,
Cilt: 12 Sayı: 1, 224 - 232, 30.05.2025
Oğuzhan Demirel
Durmuş Yarımpabuç
Öz
Kararlı durumdaki iki boyutlu heterojen bir plakanın ısı transferi probleminin kapalı form çözümü ele alınmıştır. Kararlı durumda olduğu düşünülen bu plakanın ısıl iletkenliğinin, iki yönde üstel olarak değiştiği varsayılmıştır. Bu koşullar altında elde edilen kısmi diferansiyel denklemin analitik çözümü, değişkenlerine ayırma yöntemi kullanılarak elde edilmiştir. Çözümün doğruluğunu test etmek için sınır koşullarında verilen keyfi fonksiyonlar kullanılmıştır. Sonuçlar, farklı ısı akı değerlerine göre elde edilen grafikler üzerinde tartışılmıştır.
Proje Numarası
OKÜBAP-2023-PT2-022
Kaynakça
-
Tornabene, F.,Fantuzzi, N., Viola, E.&Carrera,E.(2014). Static analysis of doubly-curved anistropic shells and panels using CUF approach, differantial geometry and differantial quadrature method. Composite structures, 107(1), 675-697.
-
Tornabene, F., Fantuzzi, N., Bacciocchi, M.&Viola,E. (2015). Accurate inter-laminar recovery for plates and doubly-curved shells with variable radii of curvature using layer-wise theories. Composite Structures, 124, 368–393.
-
Kulikov, G.M., Mamontov, A. A., Plotnikova, S.V.& Mamontov, S.A. (2015). Exact geometry solid-shell element based on a sampling surfaces technique for 3D stress analysis of doubly curved composite shells. Curved and Layered Structures, 3(1), 1–16.
-
Lei, Z., Zhang, L. & Liew, K. (2015). Free vibration analysis of laminated FG-CNT reinforced composite rectangular plates using the kp-Ritz method. Composite Structures, 127, 245–259.
-
Lei, Z., Zhang, L. & Liew, K.(2015). Vibration analysis of CNT-reinforced functionally graded rotating cylindrical panels using the element-free kp-Ritz method. Composit Part B: Engineering, 77, 291–303.
-
Lei, Z., Zhang, L. & Liew, K. (2016). Vibration of FG-CNT reinforced composite thick quadrilateral plates resting on Pasternak foundations. Engineering Analysis with Boundary Elements, 64, 1–11.
-
Lei, Z., Zhang, L. & Liew, K.(2016). Analysis of laminated CNT reinforced functionally graded plates using the element-free kp-Ritz method. Composit Part B: Engineering, 84, 211–221.
-
Song, Z., Zhang, L. & Liew, K.(2016). Active vibration control of CNT reinforced functionally graded plates based on a higher-order shear deformation theory. International Journal of Mechanical Sciences, 105, 90-101.
-
Shaw, L.L. (1998). Thermal residual stresses in plates and coatings composed of multi-layered and functionally graded materials. Composit Part B: Engineering, 29(3), 199–210.
-
Reddy, J.N. & Chin, C.D.(1998). Thermomechanical analysis of functionally graded cylinders and plates. Journal of Thermal Stresses, 21 (6), 593–626.
-
Reddy, J.N. & Cheng, Z.Q. (2001). Three-dimensional thermomechanical deformations of functionally graded rectangular plates. European Journal of Mechanics - A/Solids, 20(5), 841–855.
-
Reddy, J.N. (2000). Analysis of functionally graded plates. International Journal For Numerical Methods in Engineering, 47(1-3), 663–684.
-
Fantuzzi, N., Tornabene, F. & Viola, E. (2016). Four-parameter functionally graded cracked plates of arbitrary shape: a GDQFEM solution for free vibrations. Mechanics of Advanced Materials and Structures, 23(1), 89–107.
-
Apalak, M.K. & Bagci, M.D. (2011).Thermal residual stresses in adhesively bonded in-plane functionally graded clamped plates subjected to an edge heat flux. Journal of Adhesion Science and Technology, 25 (15), 1861–1908.
-
Bagci, M.D. & Apalak, M.K.(2011). Thermal residual stresses in one-directional functionally graded plates subjected to in-plane heat flux. Numerical Heat Transfer Applications Part A: Applications, 60(1), 50–83.
-
Apalak, M.K. & Demirbas, M.D. (2013). Thermal residual stresses in adhesively bonded in-plane functionally graded clamped circular hollow plates. Journal of Adhesion Science and Technology, 27(14), 1590–1623
-
Apalak, M.K. & Demirbas, M.D.(2015). Thermal residual stresses in in-plane functionally graded clamped hollow circular plates subjected to an edge heat flux. Proceedings of The Institution of Mechanical Engineers Part L-Journal of Materials-Design and Applications, 229(3), 236–260.
-
Sadowski, T., Boniecki, M., Librant, Z.&Nakonieczyn,K.(2007). Theoretical prediction and experimental verification of temperature distribution in FGM cylindrical plates subjected to thermal shock. International Journal of Heat and Mass Transfer, 50(21-22), 4461–4467.
-
Alibeigloo, A. (2010). Exact Solution for Thermal-Elastic Response of Functionally Graded Rectangular Plates . Composite structures, 92(1), 113-121.
-
Apalak, M. & Demirbaş, M. (2018). Thermal StressAnalysis of In-Plane Two-Directional Functionally Graded Plates Subjected to In-Plane Edge Heat Fluxes. Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, 232(8), 693-716.
-
Apalak, M.K. & Bağcı, M.D. (2011). Thermal Residual Stresses in Adhesively Bonded In-Plane Functionally Graded Plates Subjected to an Edge Heat Flux. Journal of Adhesion Science and Technology, 25(15), 1681-1908.
-
Bağcı, M.D. & Apalak, M.K. (2011). Thermal Residual Stresses in On-Directional Functionally Graded Plates Subjected to In-Plane Heat Flux. Numerical Heat Transfer, Part A: Applications, 60(1), 50-83.
-
Boggarapu, V., Gujjala, R., Ojha, S., Acharya, S., Chowdary, S.& Kumar Gara, D. (2021). State of the Art in Functionally Graded Materials.’’ Composite Structures, 262, 113596.
-
Demirbaş, M.D., Apalak, M.K.& Ekici, R. (2023). Determination of Three-Dimensional Thermo-Mechanical Behavior of Bidirectional Functionally Graded Rectangular Plates With the Theory of Elasticity. Mechanics of Advanced Materials and Structures, 31(3), 1-29.
-
Demirbaş, M.D., Ekici, R.& Apalak, M.K. (2020). Thermoelastic Analysis of Temperature-Dependent Functionally Graded Rectangular Plates using Finite Difference Methods. Mechanics of Advanced Materials and Structures, 27(9), 707-724.
-
Ghatage, P.S., Kar, V.R. & Sudhagar, P.E. (2020). On the Numerical Modelling and Analysis of Multi-Directional Functionally Graded. Composite Structures:A Review, Composite Structures, 236, 111837.
-
Golbahar Haghighi, M., Malekzadeh, P. & Rahideh, H. (2011). Three-Dimensional Transient Optimal Boundary Heating of Functionally Graded Plates. Numerical Heat Transfer, Part B: Fundamentals, 59(1), 76-95.
-
Leetsch, R.,Wallmersperger, T. & Kröplin, B. (2009). Thermomechanical Modeling of Functionally Graded Plates. Journal of intelligent material systems and structures, 20(15), 1799-1813.
-
Marchuk, A.V. (2021). Analytical Solution of the Problem on the Thermally Stressed State of Functionally Graded Plates based on the 3D Elasticity Theory. Composites: Mechanics, Computations, Applications: An International Journal, 12(4), 37- 62.
-
Matysiak, S. & Perkowski, D. (2016). On Heat Conduction Problems in a Composite Half-Space With a Nonhomogeneous Coating. Heat Transfer Research, 47(12), 1141-1155.
-
Pala, Y. & Çavuş, M. (2011). Dikdörtgensel Plakalarda Hareketli Isı Kaynağının Oluşturduğu Sıcaklık dağılımı. Pamukkale Üniversitesi Mühendsilik Bilimleri Dergisi, 17(1), 19-25.
-
Yarımpabuç, D., Cihan, E., Çelebi, K. & Eker, M. (2020). Heat Conduction Analysis of Two-Dimensional Anisotropic Plate. Çukurova Üniversitesi Mühendislik-Mimarlık Fakültesi Dergisi, 35(1), 139-148.
-
Baytak, T., Tosun, M., Ipek, C., Mollamahmutoglu, C. & Bulut, O. (2024). Thermal Stress Analysis for Functionally Graded Plates with Modulus Gradation, Part II. Experimental Mechanics, 64, 1229-1247.
-
Yarımpabuç , D., Eker, M. & Yıldırım, R. (2023). Thermal Analysis of Bi-Directional Functionally Graded Plates Subjected To Heat Generation. Heat Transfer Research, 55(6), 83-92.
Thermal Analysis of Functionally Graded Two Dimensional Plate
Yıl 2025,
Cilt: 12 Sayı: 1, 224 - 232, 30.05.2025
Oğuzhan Demirel
Durmuş Yarımpabuç
Öz
A closed form solution of the heat transfer problem of a two-dimensional heterogeneous plate under steady state condition is discussed. It is assumed that the thermal conductivity of this plate, which is in steady state, varies exponentially in two directions. The analytical solution of the partial differential equation obtained under these conditions is obtained using the separation of variables method. Arbitrary functions given in boundary conditions are used to test the accuracy of the solution. The results are discussed on the graphs obtained according to different heat flux values.
Proje Numarası
OKÜBAP-2023-PT2-022
Kaynakça
-
Tornabene, F.,Fantuzzi, N., Viola, E.&Carrera,E.(2014). Static analysis of doubly-curved anistropic shells and panels using CUF approach, differantial geometry and differantial quadrature method. Composite structures, 107(1), 675-697.
-
Tornabene, F., Fantuzzi, N., Bacciocchi, M.&Viola,E. (2015). Accurate inter-laminar recovery for plates and doubly-curved shells with variable radii of curvature using layer-wise theories. Composite Structures, 124, 368–393.
-
Kulikov, G.M., Mamontov, A. A., Plotnikova, S.V.& Mamontov, S.A. (2015). Exact geometry solid-shell element based on a sampling surfaces technique for 3D stress analysis of doubly curved composite shells. Curved and Layered Structures, 3(1), 1–16.
-
Lei, Z., Zhang, L. & Liew, K. (2015). Free vibration analysis of laminated FG-CNT reinforced composite rectangular plates using the kp-Ritz method. Composite Structures, 127, 245–259.
-
Lei, Z., Zhang, L. & Liew, K.(2015). Vibration analysis of CNT-reinforced functionally graded rotating cylindrical panels using the element-free kp-Ritz method. Composit Part B: Engineering, 77, 291–303.
-
Lei, Z., Zhang, L. & Liew, K. (2016). Vibration of FG-CNT reinforced composite thick quadrilateral plates resting on Pasternak foundations. Engineering Analysis with Boundary Elements, 64, 1–11.
-
Lei, Z., Zhang, L. & Liew, K.(2016). Analysis of laminated CNT reinforced functionally graded plates using the element-free kp-Ritz method. Composit Part B: Engineering, 84, 211–221.
-
Song, Z., Zhang, L. & Liew, K.(2016). Active vibration control of CNT reinforced functionally graded plates based on a higher-order shear deformation theory. International Journal of Mechanical Sciences, 105, 90-101.
-
Shaw, L.L. (1998). Thermal residual stresses in plates and coatings composed of multi-layered and functionally graded materials. Composit Part B: Engineering, 29(3), 199–210.
-
Reddy, J.N. & Chin, C.D.(1998). Thermomechanical analysis of functionally graded cylinders and plates. Journal of Thermal Stresses, 21 (6), 593–626.
-
Reddy, J.N. & Cheng, Z.Q. (2001). Three-dimensional thermomechanical deformations of functionally graded rectangular plates. European Journal of Mechanics - A/Solids, 20(5), 841–855.
-
Reddy, J.N. (2000). Analysis of functionally graded plates. International Journal For Numerical Methods in Engineering, 47(1-3), 663–684.
-
Fantuzzi, N., Tornabene, F. & Viola, E. (2016). Four-parameter functionally graded cracked plates of arbitrary shape: a GDQFEM solution for free vibrations. Mechanics of Advanced Materials and Structures, 23(1), 89–107.
-
Apalak, M.K. & Bagci, M.D. (2011).Thermal residual stresses in adhesively bonded in-plane functionally graded clamped plates subjected to an edge heat flux. Journal of Adhesion Science and Technology, 25 (15), 1861–1908.
-
Bagci, M.D. & Apalak, M.K.(2011). Thermal residual stresses in one-directional functionally graded plates subjected to in-plane heat flux. Numerical Heat Transfer Applications Part A: Applications, 60(1), 50–83.
-
Apalak, M.K. & Demirbas, M.D. (2013). Thermal residual stresses in adhesively bonded in-plane functionally graded clamped circular hollow plates. Journal of Adhesion Science and Technology, 27(14), 1590–1623
-
Apalak, M.K. & Demirbas, M.D.(2015). Thermal residual stresses in in-plane functionally graded clamped hollow circular plates subjected to an edge heat flux. Proceedings of The Institution of Mechanical Engineers Part L-Journal of Materials-Design and Applications, 229(3), 236–260.
-
Sadowski, T., Boniecki, M., Librant, Z.&Nakonieczyn,K.(2007). Theoretical prediction and experimental verification of temperature distribution in FGM cylindrical plates subjected to thermal shock. International Journal of Heat and Mass Transfer, 50(21-22), 4461–4467.
-
Alibeigloo, A. (2010). Exact Solution for Thermal-Elastic Response of Functionally Graded Rectangular Plates . Composite structures, 92(1), 113-121.
-
Apalak, M. & Demirbaş, M. (2018). Thermal StressAnalysis of In-Plane Two-Directional Functionally Graded Plates Subjected to In-Plane Edge Heat Fluxes. Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, 232(8), 693-716.
-
Apalak, M.K. & Bağcı, M.D. (2011). Thermal Residual Stresses in Adhesively Bonded In-Plane Functionally Graded Plates Subjected to an Edge Heat Flux. Journal of Adhesion Science and Technology, 25(15), 1681-1908.
-
Bağcı, M.D. & Apalak, M.K. (2011). Thermal Residual Stresses in On-Directional Functionally Graded Plates Subjected to In-Plane Heat Flux. Numerical Heat Transfer, Part A: Applications, 60(1), 50-83.
-
Boggarapu, V., Gujjala, R., Ojha, S., Acharya, S., Chowdary, S.& Kumar Gara, D. (2021). State of the Art in Functionally Graded Materials.’’ Composite Structures, 262, 113596.
-
Demirbaş, M.D., Apalak, M.K.& Ekici, R. (2023). Determination of Three-Dimensional Thermo-Mechanical Behavior of Bidirectional Functionally Graded Rectangular Plates With the Theory of Elasticity. Mechanics of Advanced Materials and Structures, 31(3), 1-29.
-
Demirbaş, M.D., Ekici, R.& Apalak, M.K. (2020). Thermoelastic Analysis of Temperature-Dependent Functionally Graded Rectangular Plates using Finite Difference Methods. Mechanics of Advanced Materials and Structures, 27(9), 707-724.
-
Ghatage, P.S., Kar, V.R. & Sudhagar, P.E. (2020). On the Numerical Modelling and Analysis of Multi-Directional Functionally Graded. Composite Structures:A Review, Composite Structures, 236, 111837.
-
Golbahar Haghighi, M., Malekzadeh, P. & Rahideh, H. (2011). Three-Dimensional Transient Optimal Boundary Heating of Functionally Graded Plates. Numerical Heat Transfer, Part B: Fundamentals, 59(1), 76-95.
-
Leetsch, R.,Wallmersperger, T. & Kröplin, B. (2009). Thermomechanical Modeling of Functionally Graded Plates. Journal of intelligent material systems and structures, 20(15), 1799-1813.
-
Marchuk, A.V. (2021). Analytical Solution of the Problem on the Thermally Stressed State of Functionally Graded Plates based on the 3D Elasticity Theory. Composites: Mechanics, Computations, Applications: An International Journal, 12(4), 37- 62.
-
Matysiak, S. & Perkowski, D. (2016). On Heat Conduction Problems in a Composite Half-Space With a Nonhomogeneous Coating. Heat Transfer Research, 47(12), 1141-1155.
-
Pala, Y. & Çavuş, M. (2011). Dikdörtgensel Plakalarda Hareketli Isı Kaynağının Oluşturduğu Sıcaklık dağılımı. Pamukkale Üniversitesi Mühendsilik Bilimleri Dergisi, 17(1), 19-25.
-
Yarımpabuç, D., Cihan, E., Çelebi, K. & Eker, M. (2020). Heat Conduction Analysis of Two-Dimensional Anisotropic Plate. Çukurova Üniversitesi Mühendislik-Mimarlık Fakültesi Dergisi, 35(1), 139-148.
-
Baytak, T., Tosun, M., Ipek, C., Mollamahmutoglu, C. & Bulut, O. (2024). Thermal Stress Analysis for Functionally Graded Plates with Modulus Gradation, Part II. Experimental Mechanics, 64, 1229-1247.
-
Yarımpabuç , D., Eker, M. & Yıldırım, R. (2023). Thermal Analysis of Bi-Directional Functionally Graded Plates Subjected To Heat Generation. Heat Transfer Research, 55(6), 83-92.