Friday, March 3, 2017

Renewable Energy Global Innovations features: Co-cultivation of microalgae and nitrifiers for higher biomass production and better carbon capture

Significance Statement

Dragoljub Bilanovic and colleagues investigated the co-cultivation of nitrifiers with microalgae as a non-intrusive technique for selective removal of oxygen generated by microalgae. The study is now published in peer-reviewed journal, Bioresource Technology.

According to the researchers, to tackle the challenge of climate change, processes and practices, elimination of all anthropogenic carbon emissions from CO2 must be deployed.  Current biological, chemical and physical processes being developed for carbon capture and storage are expensive to operate even when capturing and storing carbon from concentrated CO2 sources. Photosynthesis was found helpful in reducing CO2 emissions and will not decrease the concentration of the atmospheric CO2.

Microalgae will produce about 280 ton of biomass per hectare per year, which indicate that a hectare microalgal reactor will release > 500 ton CO2 to the atmosphere per year. Microalgal photosynthesis, has been found to be an excellent-natural carbon capture and microalgae biomass.

The authors calculated the oxygen excreted by microalgae into growth medium intentionally to balance the amount of oxygen needed for full oxidation of both ammonia and nitrite to provide N-NO3 for microalgal growth. The research team assumed composition of ammonia oxidizers and nitrite oxidizing to be the same. Nitrifying bacteria use large quantities of oxygen to convert ammonia to nitrate, to avoid unnecessary accumulation of extracellular products, generated by Chlorella and nitrifying bacteria the experiments were terminated at the end of exponential phase. The team immobilized nitrifying bacteria to know how immobilization affects growth and oxygen concentration in mixed culture of suspended C. vulgaris and immobilized nitrifiers.

They observed that a higher chlorophyll concentration, and higher microalgae biomass production in the mixed-culture, which was due to nitrifying bacteria decreasing the local concentration of photosynthetic oxygen at the surface of microalgae cells thereby improving C. vulgaris growth. The lowest chlorophyll concentration was measured in mixed-culture in which the initial [N]/[A B] ratio was 4.20 indicating that the concentration of nitrifiers was sufficient to affect the concentration of dissolved oxygen but not sufficiently high to eliminate oxygen inhibition.

A somewhat smaller chlorophyll concentration was found with immobilized nitrifiers, up to 30% smaller, than with nitrifiers grown in suspended mode. They found biomass and chlorophyll concentration to be significantly higher in cultures where the dissolved oxygen concentration was kept below 9.0μL L-1 this shows microalgae to be more sensitive to oxygen inhibition than currently thought.

The study concluded higher biomass production is the main way to reduce atmospheric CO2. Nitrifiers was able eliminate oxygen inhibition, enabling high levels of CO2 conversion to organic compounds via photosynthesis. The microalgae biomass production method developed in this study can be scaled up into building reactors for removal of CO2 straight from the atmosphere.

 

Journal Reference

Dragoljub Bilanovic1 ,Mark Holland2, Jeanna Starosvetsky3, Robert Armon3, Co-Cultivation of Microalgae and Nitrifiers for Higher Biomass Production and Better Carbon Capture, Bioresource Technology 220 (2016) 282–288.

Show Affiliations
  1. Center for Environmental, Earth, and Space Studies, Bemidji State University, Bemidji, MN, USA.
  2. Department of Biological Sciences, Salisbury University, Salisbury, MD, USA.
  3. Division of Environmental, Water, and Agriculture Engineering, Faculty of Civil and Environmental Engineering, Technion, Israel Institute of Technology, Haifa 32000, Israel.

 

 

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Renewable Energy Global Innovations features: Investigation on application and performance of emission reduction measures at a pellet boiler

Significance Statement

Several pollutants can be emitted due to the incomplete combustion of biomass fuels. Mirjam Matthes and colleagues from DBFZ Deutsches Biomasseforschungszentrum gemeinnützige GmbH in collaboration with Ulrich Riebel from Brandenburg University of Technology Cottbus in Germany proposed a method for the emission reduction measures at a pellet boiler. They stated that the pollutants released from biomass small-scale firing systems cause major problems. They demonstrated a two-stage emission reduction method at a multifuel pellet boiler with catalytic flue gas cleaning and an electrostatic precipitation process. The tests were carried out with wood, miscanthus and corn strip waste.

In the pellet boiler the combustion takes place in a water cooled combustion chamber out of fireclay with an automatic deashing system. The combustion is regulated by three main factors, namely fuel supply, air supply in the form of primary air and secondary air and two chimney fans, which ensure negative pressure in the combustion chamber. The emission reduction measures aim at two results, on one hand removal of particulate matter and on the other hand removal of gaseous pollutants. The measures have been integrated in a temperature zone between 420 and 670 K. The precipitation has been processed using four discharge electrodes having a wire or a band form. The electrostatic precipitator has been operated in the voltage range of 16-20 kV to ensure a steady operation and avoid flashovers. The integration of both the electrostatic precipitator and the catalyst were taking place in the heat exchange zone with a bypass construction to guarantee continuous operation even during failure of the measures. The electrostatic precipitator is connected with the heat exchanger by a flue gas pipeline. The catalyst has been a commercially available metal honeycomb with a noble metal active phase. The catalyst position has been either upstream or downstream of the precipitator.

The authors successfully demonstrated a reduction of carbon monoxide and a reduction of particulate pollutants. The catalytic reduction of carbon monoxide has been about 50 % at a process temperature of 250 °C. This temperature has been achieved during full-load operation or with a catalyst heating system. Providing a periodic maintenance, the catalyst activity has been observed for several weeks. The particle precipitation efficiency depended on the used fuel type. For wood and miscanthus an average reduction of 70-80 % has been achieved, for corn strip waste only about 60 %. The differences in the collection efficiency can be induced by different particle concentration or also different type of particles. Supplemental investigations to the effects on particle number distribution showed, that particles larger than 20-30 nm are precipitated with the used system.  

Investigation on application and performance of emission reduction measures at a pellet boiler. Renewable Energy Global InnovationsInvestigation on application and performance of emission reduction measures at a pellet boiler. Renewable Energy Global Innovations

About The Author

Mirjam Matthes is a research associate at DBFZ (DBFZ Deutsches Biomasseforschungszentrum gGmbH) in Leipzig for the department Thermo-chemical Conversion since 2011. She is involved in several projects dealing with development and implementation of primary and secondary emission reduction measures for small-scale biomass combustion systems. Her graduation as engineer of energy and environmental technology took place in 2009.

Since 2013, she is a PhD student at the University of Leipzig in cooperation with the University of Applied Sciences in Leipzig working on the topic of catalyst integration in small-scale biomass combustion systems.  

About The Author

Dr. rer. nat. Ingo Hartmann studied Energy Engineering at Leipzig University of Applied Sciences (HTWK Leipzig, 1998-2002) and wrote his doctoral thesis on “Microwave-assisted catalytic oxidation“ at the University of Leipzig (2003-2007). Since 2008, he is the research group leader for Small Scale Furnace Systems in the department of Thermo-chemical Conversion at DBFZ in Leipzig. He is also the leader of the research focus area Catalytic emission control at DBFZ.  

Journal Reference

Mirjam Matthes1, Ingo Hartmann1 , Andreas Groll2, Ulrich Riebel2, Investigation on application and performance of emission reduction measures at a pellet boiler, Biomass conversion and Biorefinery, 2016, Volume 6, pages 301-313.

Show Affiliations
  1. DBFZ Deutsches Biomasseforschungszentrum gemeinnützige GmbH, Thermo-chemical Conversion Department, Leipzig, Germany
  2. 2.BTU Cottbus-Senftenberg, Chair of Mechanical Process Engineering, Cottbus, Germany

 

 

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Renewable Energy Global Innovations features: A novel heat exchanger concept for latent heat thermal energy storage in solar power towers: Modelling and performance comparison

Significance Statement

Solar radiation is a very important renewable resource and conversion technologies are broadly characterized as either line or point focus depending on how they convert it into solar power. Due to the cyclic nature of solar energy, there is a need for energy accumulation and efficient storage. Various research works have aimed at increasing the utilization of renewable energy options. A considerable hurdle to the successful implementation renewable technologies remains energy storage. Without storage renewable resources will never compete with other baseload technologies like coal and nuclear.

Doctor Heinrich Badenhorst from the University of Pretoria in South Africa created an innovative alternative energy storage concept for solar power towers. The research is now published in the peer-reviewed journal, Solar Energy. “The work may completely revolutionize the way thermal energy storage is done for industrial power generation” says Dr Badenhorst.

Recently latent heat storage technology is being pursued to acquire a high storage capacity. This technology is has not yet been implemented in plants, instead the salts are used in their molten form and energy is stored as sensible heat. The cost of these salts are high and they comprise a significant portion of overall plant cost. If the storage capacity of the salt can be increased by utilizing latent heat in addition to sensible, the costs can be significantly reduced for the same storage capacity.

However technical development of this approach is held back by the very low thermal conductivity of the salts, especially in solid form. This makes it very difficult to extract the stored energy using traditional heat exchanger designs. Instead a radical new concept is required which is free of the limits of conventional heat exchanger design when dealing with a solid-liquid phase transition. The study focused on the conceptual feasibility of recovering both latent and sensible heat from a liquid salt stream via granulation inside a solar power tower. Three important designs were considered: retrofitting the Gemasolar plant with the new technology, a Greenfield design and an idealized system. Tower height, steam conditions, salt composition and other operating parameters are considered in optimizing the design.

Phase change material and salt composition play significant role in the author’s suggested system. Salt choice can improve the enthalpy of fusion and sets the phase transition temperature. This in turn sets the maximum achievable steam generation temperature for turbine operation. To achieve a feasible design several operating parameters were adjusted. An energy balance approach was used to lower the amount of phase change material required.

This study combined the existing molten salt designs with the concept of a prilling tower to form solar power tower granulator. The design model explored the influence of many parameters like particle diameter and salt composition as these demonstrate operational feasibility and techno-economic viability. The introduced system in this study was found to be cost effective with 20% reduction in the overall cost of existing plants. Further optimization and implementation of Greenfields designs yield additional cost benefits, making this a very attractive option for large scale energy storage for baseload electricity generation using renewable and sustainable solar energy.

A novel heat exchanger concept for latent heat thermal energy storage in solar power towers: Modelling and performance comparison. Renewable Energy Global Innovations

About The Author

Dr Heinrich BadenhorstResearch at the SARChI Chair for Carbon Materials is aimed at developing new functional materials for energy applications. In the Bulk Carbon research group, led by Dr Heinrich Badenhorst, the objective is to develop novel approaches to thermal energy storage.

The primary focus is on maturing graphite nano-platelet additives, derived from naturally mined graphite to improve thermal conductivity. The work includes the construction of tailor-made measuring equipment to characterise difficult substances such as phase change materials and their composites. In addition, the research aims to concurrently develop practical implementations of the new technology, for example the integration of prilling or granulation into the solar power tower design as a unique way of rapidly extracting the captured solar energy. Related efforts in the group have centred on the development of direct solar absorbers using carbon black nanospheres.

This work is currently being used to develop a solar thermal flash based sea and brackish water desalination technology. Dr Badenhorst completed his PhD at the University of Pretoria on nuclear graphite technology, where he currently teaches heat, mass and momentum transfer.

His work has been acclaimed through the international Green Talents competition, as well as the highly prestigious Meyring Naude Medal awarded by the Royal Society of South Africa.  

Journal Reference

Heinrich Badenhorst, A novel heat exchanger concept for latent heat thermal energy storage insolar power towers: Modelling and performance comparison, Solar Energy, Volume 137, 2016, Pages 90–100.

Department of Chemical Engineering, University of Pretoria, Lynnwood Road, Pretoria 0083, South Africa.

 

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Renewable Energy Global Innovations features: Pricing mechanisms design for guiding electric vehicle charging to fill load valley

Significance Statement

The increased gap between the peak load and valley load of power grids prevailing due to uncoordinated charging load of large-scale electric vehicles can be alleviated by employing proper charging pricing mechanism for electric vehicles. This helps to achieve load valley filling for the power grid. The two scenarios such as non-cooperative scenario and cooperative scenario for flattening the power load profiles are considered in the study.

Each electric vehicle in the non-cooperative scenario, possess its own charging power without any cooperation with other electric vehicles whereas in the cooperative scenario, there is an aggregator controlling all the electric vehicles together. Zechun Hu and colleagues from Tsinghua University in China proposed coordinated charging strategies by deriving appropriate conditions of the valley-filling pricing mechanisms for both the non-cooperative and cooperative scenarios.

If electric vehicles are properly controlled, they can highly reduce network losses, balance renewable energy fluctuation and bring frequency regulation. Application of load valley filling in the electric vehicle ensures low cost in power load servings. This makes electric charging load an ideal source by providing flexibilities in selecting the period of charging vehicles.

In the non-cooperative scenario, EV owners optimize their charging schedules to minimize their individual charging costs. Game theory is applied to reach Nash equilibrium in order to gain extra profits. Thus cost is minimized by changing the charging schedule unilaterally. It is proved that the price function is a strictly increasing function of the total load implies the price function is valley-filling.

guiding electric vehicle charging to fill load valleyguiding electric vehicle charging to fill load valley -2

Fig. 1  Load profiles (left) and valley-filling price curve (right) in the non-cooperative scenario

In the cooperative scenario, the charging processes of all electric vehicles are coordinated through an aggregator to minimize the total charging cost. The function of aggregator involves checking for newly arrived electric vehicles to be charged and updating their information such as state of charge, arrival time and expected departure time. The sufficient and necessary condition of valley-filling price is derived and proved.

guiding electric vehicle charging to fill load valley-3guiding electric vehicle charging to fill load valley-4

Fig.2.  Load profiles (left) and three different price curves (right) in the cooperative scenario (2476 EVs).

With a proper guidance to price mechanism design, the cooperative and non-cooperative charging strategies are proposed to reduce communication burden and guarantees quick convergence. The valley-filling pricing mechanism was designed in such a way that it maximizes social benefit and minimizes load variance. It depends on the electric vehicle owners to charge their vehicles depending on the market electric price signal. A dynamic load pricing strategy is chosen to avoid heavy peak loads during high population of electric vehicles. The application of such optimization methods and strategies ensure effective load valley profile along with reduced cost.

 

Journal Reference

Zechun Hu1, Kaiqiao Zhan2, Hongcai Zhang1, Yonghua Song1, Pricing mechanisms design for guiding electric vehicle charging to fill load valley,  Applied Energy, Volume 178,  2016, Pages 155–163.

Show Affiliations
  1. Department of Electrical Engineering, Tsinghua University, Beijing, People’s Republic of China.
  2. Electric Power Research Institute, China Southern Grid, Guangzhou, People’s Republic of China.

 

 

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Renewable Energy Global Innovations features: Novel plant development for a high performance 3 kW integrated wind and solar system

Significance Statement

Professor Hsing-Sheng Chai and colleagues in Taiwan proposed to investigate the performance of a parallel system of four Savonius wind rotors with a solar panel deflector. The work is published in peer-reviewed Journal of Renewable and Sustainable Energy.

Since emphasis has been placed on renewable energies to protect the world from unwanted pollution, Chai and colleagues also join other research groups in improving savonius wind turbine which was used to generate energy. The savonius is a drag-type wind turbine, where the blades are the only driving force which the wind drag act. The rotational speed of the rotors and the relationship between the tip-speed ratio TSR and power coefficient Cp are to be considered.

According to the research team, to improve the performance of savonius wind rotors, they placed a series of rotors in a line, with a fixed distance between them, with each one rotating at a specific phase angle. The team in their view to improve the performance of 3 Kw integrated wind and solar system, they considered the number of blades, the wind velocity, the height of the rotor, and the blade overlap ratio. A system of four two-bladed savonius wind rotors in parallel matrix was constructed. The team employed a computational fluid dynamics software, Fluent, to analyze the flow fields then compared the simulations to their own experimental data.

They experienced magnus effect as each rotor absorbed momentum from other rotors during rotation, and is responsible for the additional rotation of the downstream rotor and the periodic coupling of local flow between the two rotors, enhancing the performance of the overall system. They found that the higher the wind velocity the better the performance of the system. The TSR values at the slopes of the simulation and experimental curves differ, this is because in simulations, the rotational speed of the wind rotors and inlet wind velocity are fixed values. A fast rotating wind that wind will easily passes through wind rotors, thereby causing Cp to decrease as a result of the wind not doing significant work on the rotors, said the research team.

This study experimentally tested novel four Savonius rotor system with a solar panel so as to improve the system performance and they were able to generate 14.55kWh of power per day at an efficiency of 21.7%. The results of this study show that the two-bladed configurations have better performance than the three-bladed ones, except with respect to the starting torque.

About The Author

Dr. Hsing-Sheng Chai is an assistant professor of Aletheia University in Taiwan. He obtained his PhD degree from National Chiao Tung University. His PhD major is mechanical engineering, while Bachelor and Master major is aerospace engineering. Renewable energy, thermal engineering, combustion science, fire safety, and computational fluid dynamics are the research topics appealing to him.  

Journal Reference

Hsing-Sheng Chai1, Chang-An Chen2, Chiun-Hsun Chen2, Novel Plant Development for a High Performance 3 Kw Integrated Wind and Solar System, Journal of Renewable and Sustainable Energy 8, 045302 (2016).

Show Affiliations
  1. General Education Center, Aletheia University, 32 Zhenli St., Danshui Dist., New Taipei City 251, Taiwan, R.O.C.
  2. Department of Mechanical Engineering, National Chiao Tung University, 1001 University Road, Hsinchu 300, Taiwan, R.O.C

 

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Renewable Energy Global Innovations features: Application of a three-dimensional aeroelastic model to study the wind-induced response of bridge stay cables in unsteady wind conditions

Significance Statement

A great concern in the engineering community is the vulnerability of inclined bridge stay cable when subjected to excitation by natural wind. This study is proposed to examine the susceptibility of stay cables on cable-stayed bridges to practical wind conditions. It employs a three-dimensional aeroelastic model and numerical solution technique to explore the excitation mechanisms of and contributing factors to inclined cable galloping. The violent cable motion under various unsteady mean wind conditions are investigated, which is found to be triggered by an opposite-phase relation between the aerodynamic force along the direction of cable motion and the relative wind speed in the critical flow regime.

The vulnerability of stay cables on cable-stayed bridges to environmental excitations, such as natural wind, wind combined with rain, is mainly due to their low inherent damping and high lateral flexibility. The assessment of pre-existing motion of stay cables and exposure to atmospheric boundary layer type wind speed profile is essential to find their respective impact on the growth of galloping response. The various types of unsteady winds such as speed of winds increasing from sub-critical to critical range, decrease in speed from critical to sub-critical range and ideal representation of wind gusts presence are considered in the assessment process.

The observation by the authors, Dr. Arash Raeesi, Professor Shaohong Cheng and Professor David Ting from the University of Windsor in Canada, showed that the cables were susceptible to wind excitations in the absence of rain when wind speed reaches the critical Reynolds number regime. This type of large amplitude wind-induced cable vibration is termed as dry inclined cable galloping. The most favorable conditions for galloping development are found to be when a cable is subjected to uniformly distributed steady wind in the critical Reynolds number range sustained over a sufficient period of time. The research work is now published in Journal of Sound and Vibration.

 The mechanism of cable galloping contains three key elements namely emergence of critical Reynolds number regime, span-wise correlation of aerodynamic forces on the cable and the sustained duration of critical flow condition. Aerodynamic forces acting on the cable highly depends on the Reynolds number. In the critical Reynolds number regime, the emergence of drag crisis and the steady non-zero lift force within a narrow range leads to negative aerodynamic damping.

 In other words, the aerodynamic forces become very sensitive to Reynolds number variation within the critical regime. It decreases with increase of Reynolds number and vice versa. Net increase of the peak amplitude in each cable vibration cycle is observed when there is a 180 degree out-of-phase relation between the wind velocity and the aerodynamic force in the critical Reynolds number range. It would cause a gradual build-up of cable response and eventually lead to galloping. This is believed to be the actual triggering mechanism of dry inclined cable galloping.

 The authors validated the proposed three-dimensional aeroelastic model and the finite difference solution scheme by comparing the cable free vibration response with those in the literature. The aerodynamic response of a sample cable with moderate sag and relatively low bending stiffness is analysed by applying different initial conditions and various types of unsteady wind conditions.

 The effect of flow unsteadiness is found to have a dual effect on the wind-induced response of a dry inclined cable depending on its fluctuation frequency. While the high frequency turbulence components in the flow would advance the critical Reynolds number range and thus increase the possibility of galloping occurrence at lower wind speed, the relatively lower frequency fluctuation components would have a stabilizing effect on the cable response.

The analytical model proposed by the authors in this study will improve our understanding on the excitation mechanisms and contribution factors associated with dry inclined cable galloping and clarify the onset conditions of this type of cable aerodynamic instability phenomenon on site.  

Application of a three-dimensional aeroelastic model to study the wind-induced response of bridge stay cables in unsteady wind conditions. Renewable Energy Global Innovations

About The Author

Dr. Arash Raeesi is a research council officer at aerospace portfolio of National Research Council, Canada since 2016. Within the past 8 years, Arash has been involved in multiple bluff body aerodynamics and wind engineering research projects such as study of aeroelastic instabilities of stay cables on cable-stayed bridges. Arash was born in Tehran, Iran in 1983. In 2001, he was enrolled in the University of Tehran where he obtained the Bachelor of Science in Mechanical Engineering in 2006. In winter of 2009, Arash graduated from the University of Windsor with a Master of Science degree in Mechanical Engineering.

He received his doctoral degree in Civil Engineering from University of Windsor in 2015, researching on wind-induced galloping of stay cables under unsteady wind conditions.  

About The Author

Shaohong Cheng is an Associate Professor in the Department of Civil and Environmental Engineering at the University of Windsor. She is a Professional Engineer of Ontario and member of American Society of Civil Engineers and International Association for Bridge and Structural Engineering. Dr. Cheng worked on flutter of long-span bridges during her graduate studies. Before joining the University of Windsor, she was in charge of a wind tunnel study on wind-induced cable vibrations in collaboration with the Federal Highway Administration of US and the National Research Council Canada, and also worked as a senior consulting engineer in Gradient Wind Engineering Inc..

Dr. Cheng is the founder of the Boundary Layer Wind Tunnel Laboratory at the University of Windsor. She conducts research and supervises students in a broad range of projects, mainly in the areas of bluff body aerodynamics, fluid-structure interaction, vibration control and concrete technology.

In recent years, her research is focused on Wind-induced response of structures, in particular, the bridge stay cables; Mitigating excessive stay cable vibrations using external dampers, cross-ties and hybrid systems; Mechanisms associated with dry inclined cable galloping and high-speed vortex excitation; Enhancing the aerodynamic stability of a new small ducted-fan type VTOL UAV model for precision agriculture; Simulating atmospheric boundary layer effect in the wind tunnel; Shear strengthening of prestressed precast concrete hollow core slabs using carbon fibre reinforced polymer.  

About The Author

David S-K Ting worked on Combustion and Turbulence (Premixed Turbulent Flame Propagation) during his graduate years. He then ventured into Convection Heat Transfer and Flow-Structure Interactions, prior to joining University of Windsor. Professor Ting is the founder of the Turbulence & Energy Laboratory. Dr. Ting supervises students on a wide range of research projects primarily in the Energy Conservation and Renewable Energy areas.

Specifically, his recent research includes Convective Cooling of Solar PV Panels, Enhancing the Performance of Geothermal Heat Exchanger, Wind Farm Analytics, Monitoring, and Performance Prediction, Smart Water, Mitigation of Flow-Induced Vibrations, Aerodynamics, Energy Systems, Heat Transfer, and Wave Energy. Fundamentally, his love is still faithfully on Flow Turbulence.  

Journal Reference

Arash Raeesi1, Shaohong Cheng1 , David S.-K. Ting2, Application of a three-dimensional aeroelastic model to study the wind-induced response of bridge stay cables in unsteady wind conditions, Journal of Sound and Vibration, Volume 375, 2016, Pages 217–236.

Show Affiliations
  1. Department of Civil and Environmental Engineering, University of Windsor, 401 Sunset Avenue, Windsor, Ontario, Canada N9B 3P4.
  2. Department of Mechanical, Automotive and Materials Engineering, University of Windsor, 401 Sunset Avenue, Windsor, Ontario, Canada N9B 3P4.

 

 

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Renewable Energy Global Innovations features: Solar radiation properties of common membrane roofs used in building structures

Significance Statement

Researchers from Tianjin University in China proposed to test the solar radiation properties of membrane roofs with different materials, colors, thickness values, and printing dot ratios. The research work is now published in peer-reviewed journal, Material and Design.

Membrane roofs are widely used building materials, and their solar radiation coefficients significantly affect the thermal environment of the steel structures. According to the authors solar radiation properties, affect the indoor thermal environment of buildings and the temperature of steel structures below the roof.

The research team focused on five types of membranes that are commonly used in building roofs and they studied their solar radiation coefficients. These membranes include ethylene tetrafluoroethylene ETFE, polytetrafluoroethylene PTFE, polyvinyl chloride PVC with polyvinylidene fluoride PVDF coating, thermoplastic olefin TPO, and polyethylene PE. To consider the effect of thickness, printing silver dot ratio, and surface color, the researcher selected 25 membrane specimens. A numerical simulation method using a CFD package was also presented to analyze the temperature of steel members under membrane roofs. The effect of ambient wind and the incubator effect, were observed under four conditions with different enclosing degrees.

They found the difference between steel plate temperature and ambient temperature increases with the solar radiation transmittance of a membrane roof. Moreover, the higher the transmittance of the membrane roofs the more solar radiation absorbed by the steel plate. Professor Hongbo Liu who is the first author in the published paper said that the temperature of the steel plates below the membrane roofs is higher than ambient air temperature under solar radiation, especially the fully enclosed condition. From the team findings, the temperature of the steel plates below the membrane roofs are higher compared to when exposing it to solar radiation.

The solar radiation transmittance of the ETFE membrane without printing dots and the PE membrane according to the team was found to be higher than that of the other types of membranes. The solar radiation transmittance of the PTFE and PVDF membranes is lower while that of the TPO membrane is lowest.

The research team also confirmed the printing dot in the ETFE membrane to have a weak solar radiation transmittance but strong reflectance and absorbance. Furthermore, they confirmed the temperature of the steel structures to be below the PTFE, PVDF, and TPO membrane roofs and over 41.2 °C during summer, which is at least 7.2 °C higher than ambient air temperature.

This study successfully tested the solar radiation properties of membrane roofs with different materials, colors, thickness values, and printing dot ratios and the research team was able to achieve their aim of detecting the properties of membrane roofs under different condition.     

About The Author

Dr. Hongbo Liu, an associate professor of the School of Civil Engineering, Tianjin University, who has acquired the honor of “the national excellent doctoral dissertations”. He has directed more than 10 research subjects related to “the non-uniform temperature effect on large span spatial structures under solar radiation” and also published more than 100 academic papers, in which over 40 papers are included in SCI database.  

About The Author

Dr. Zhihua Chen, a Professor of Structural Engineering in the School of Civil Engineering at Tianjin University in China, has received the “state council special allowance”. He is also the national candidate of the “New Century National Hundred, Thousand and Ten Thousand Talent Project”. Dr. Chen has directed over 100 engineering research projects of steel structures and spatial structures, and published over 300 research papers, of which nearly 100 papers belong to the Science Citation Index category. His research contribution has received 1 “Second level award of National Technology Progress Award” and 7 “First level award of Provincial or Ministry Technology Progress Award”.  

Journal Reference

Hongbo Liu1, Bo Li1, Zhihua Chen1 ,Ting Zhou2, Qi Zhang2, Solar Radiation Properties of Common Membrane Roofs used in Building Structures, Materials and Design 105 (2016) 268–277.

Show Affiliations
  1. State Key Laboratory of Hydraulic Engineering Simulation and Safety, Tianjin University, Tianjin 300072, China
  2. School of Architecture, Tianjin University, Tianjin 300072, China

 

 

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