Thermal performance of lightweight concrete applications in building envelopes in Lebanon

Author(s):  
Emilio Sassine ◽  
Elias Kinab ◽  
Yassine Cherif ◽  
Emmanuel Antczak ◽  
Michel Nasrallah
Author(s):  
S. Ya. Galitskov ◽  
S. A. Mizuryaev ◽  
A. G. Chiknovoryan

The paper focuses on building envelopes for industrial thermal generating units, their efficiency and its increase. Building envelopes made of lightweight heat-resistant concretes are considered most effective from the point of their building construction, maintenance, repair and cost-effectiveness. One of the unresolved problems here is that porous granular materials suitable for use as concrete fillers operating at temperatures over 1000 OC are not industrially manufactured at the moment The article also characterises commonly used heat resistant porous fillers. It indicates that the use of exhaust zeolites is potentially perspective General properties and characteristics of zeolites are also given. The paper demonstrates that it is quite possible to use exhaust zeolites in building envelopes of lightweight heat-resistant concretes. The work describes testing experiments of typical exhaust zeolites (petrochemical and oil refining industries wastes) in Samara region and the Republic of Tatarstan. Their stress-strain properties and chemical compositions as well as X-ray crystallographic analysis (including analysis under high temperature) are presented. They prove that zeolites are heat-resistant and fire-proof because of corundum formation. Phosphate binder was used for tesing in heat-resistant concretes. The composition of the concrete mixture is given in the paper. As a result, concrete with the following characteristics was obtained: 1550 kg/m3 density, with compressive strength of approximately 21 MPa, having high thermal resistance and maximum permissible application temperature of 1450° c.


2019 ◽  
Vol 43 (5) ◽  
pp. 398-427 ◽  
Author(s):  
Hamed H Saber ◽  
Wahid Maref ◽  
Ali E Hajiah

Many parts of the building envelopes contain enclosed airspaces. Also, the insulating glass units in fenestration systems, such as curtain walls, windows, and skylight devices, contain enclosed spaces that are normally filled with air or heavy gas such as argon, xenon, or krypton. The thermal resistance (R-value) of an enclosed space depends mainly on the type of the filling gas, emissivity of all surfaces that bound the space, the size and orientation of the space, the direction of heat flow through the space, and the respective temperatures of all surfaces that define the space. Assessing the energy performance of building envelopes and fenestration systems, subjected to different climatic conditions, requires accurate determination of the R-values of the enclosed spaces. In this study, a comprehensive review is conducted on the thermal performance of enclosed airspaces for different building applications. This review includes the computational and experimental methods for determining the effective R-value of enclosed reflective airspaces. Also, the different parameters that affect the thermal performance of enclosed airspaces are discussed. These parameters include the following: (a) dimensions, (b) inclination angles, (c) directions of heat flow, (d) emissivity of all surfaces that bound the space, and (e) operating conditions. Moreover, numerical simulations are conducted using a previously developed and validated model to investigate the effect of the inclination angle, direction of heat transfer, and the coating emissivity on the R-values of enclosed spaces when they are filled with different types of gases.


2013 ◽  
Vol 3 (4) ◽  
pp. 99-105
Author(s):  
L. V PAVLOVA

The issues of quality and reliability of thermal performance of buildings in the current conditions, the design and operation in accordance with the new requirements of building regulations in the light of saving fuel and energy resources and the economy. We present the theory of heating calculation of building envelopes using probabilistic methods.


2019 ◽  
Vol 12 (4) ◽  
pp. 629-640 ◽  
Author(s):  
Xiaoqin Sun ◽  
Jovana Jovanovic ◽  
Siyuan Fan ◽  
Youhong Chu ◽  
Yajing Mo ◽  
...  

2021 ◽  
pp. 107809
Author(s):  
Cheli Hershcovich ◽  
René van Hout ◽  
Vladislav Rinsky ◽  
Michael Laufer ◽  
Yasha j. Grobman

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