The document summarizes a study on the performance assessment of Makurdi burnt bricks in Nigeria. Laboratory tests were conducted on soil samples used to make the bricks and on brick samples themselves. The soil was found to be a true laterite with properties suitable for brick production. Two types of bricks were produced - well burnt and over burnt. Testing found the over burnt bricks had double the water absorption but four times the abrasion resistance of the well burnt bricks. Compressive strengths ranged from 3.46 to 11.75 N/mm2 depending on the brick type. The study evaluated the suitability of the local soil and the performance of the resulting bricks.
Enhancing the Mechanical Properties of Lateritic Brick for Better PerformanceIJERA Editor
The research considered the production of improved stabilized lateritic Bricks (ISLB) with enhanced mechanical
properties. The research data were derived from laboratory experiments which include capillary test, erosion
test, abrasion test, density test and compressive strength test. Three batches of 290mm x 140mm x 100mm brick
samples were produced which are: the Adobe Unstabilized Lateritic Bricks (AULB), Improved Stabilized
Lateritic Brick (ISLB) and the Control Stabilized Lateritic Bricks (CSLB). Brick stabilization was maintained at
5% by weight of cement. Compaction of the bricks were carried out manually; the moulded bricks were
carefully extruded in good shape and placed on clean, hard flat surface to allowed to dry under normal
atmospheric temperature and pressure . The ISLB was divided into four groups of 12 bricks samples immersed
in solution of zycosil and water in the following proportion by volume: (1:100),(1:200),(1:300) and (1:400) for
30 minutes and dried under normal atmospheric temperature and pressure before curing commenced. The result
of the capillary test on bricks samples after 24 hours showed that AULB and CSLB has (0.35 and 0.15)kg
weight difference equivalent of (0.00599 and 0.00256) kg/m2
/min suction rate while the ISLB have 0.05kg
weight difference equivalent to 0.000855kg/m2
/min suction rate. The result of erosion test for brick durability
ranked between very firm for ISLB of 1:100, 1:200 and 1:300 Zycosil Water Solution (ZWS), firm for ISLB of
1:400 ZWS; firm for CSLB and loose for AULB. The abrasion test result showed that the ISLB have abrasion
value of (1,2,2 and 2)% while the CSLB and AULB have (3 and 12)% abrasion value. The density of ISLB are
(1933.50, 1921.18, 1916.26 and 1908.87) kgm-3
at 28 days while the density of CSLB and AULB were (1926.11
and 1800.49) kgm-3
. Density results conform to minimum specification requirement for lateritic bricks of bulk
density of 1810kgm-3
as recommended by the Nigeria Building and Road Research Institute (NBRRI).
Compressive strength test for the ISLB are (3.16, 3.10, 3.07 and 3.08) Nmm-2
at 28 days while the compressive
strength test for CSLB and AULB stood at (3.15 and 2.41) Nm-2 which conforms to NBRRI recommended value
of compressive strength ranges of (3 to 3.5) Nmm-2
at 5% stabilization level. It was concluded that the
mechanical properties of improved stabilized lateritic brick are better than CSLB and AULB in terms of
capillary rise, erosion, abrasion, density and compressive strength.
Role of Additives in Mortars: Historic PrecedentsIJERA Editor
The use of lime in building construction began at least 10,000 years ago, where there are numerous evidence of its earlier uses. This research is an attempt to provide a review of the history of lime as a building material in based on available literature resources. The origin significance and sustainability of lime mortars and their use in architectural conservation is discussed. Large scale use of additives in historic buildings in India and abroad is highlighted in order to put forth their physio-chemical and aesthetical properties. Use of sustainable additives in mortar is stressed. The analysis presented is supposed to help architectural conservation experts in their efforts to safeguard the intrinsic qualities Indian cultural heritage for posterity.
Mechanical Strength of Concrete using Bottom Ash as Fine AggregateVISHNU VIJAYAN
Vishnu Vijayan, Achu V, Riyana M S ,Mechanical Strength of Concrete using Bottom Ash as Fine Aggregate, International Journal of Current Engineering And Scientific Research, April 2018, Volume 5, Issue 4, p-ISSN: 2393-8374,o-ISSN: 2394-0697; GICID: n/d; DOI: 10.21276/ijcesr.
Thermostone in Constrication or ThermostoneNzar Braim
My aim in this report is showing the specialty of thermostone and about the
type of creation the chemical sectional and preparation then discuss about
the method and advantage of thermostone.s to improve the report we used
the Koya thermostone the rate of construction in the Kurdistan region (KRG)
has increased through the recent decade due to a wide scope of investments
in different projects and especially for residential projects, infrastructure and
others
Experiment and Analysis on the Impact of Flexural Strength on Beam with Parti...ijtsrd
In this examination the correlation silica fume, and copper slag concrete quality utilizing destructive test equipment have been completed. In this investigation three sorts of squanders materials silica fume and copper slag and ordinary aggregate were utilized for preparing beam specimens. There are M30 grade of blended extent are used. Squander materials are used in concrete with the substitution bond of 10 , 20 and 30 . These beams are tried on 28 days. The flexural quality are determined with the help of destructive test equipments. Racit Rawat | Prabhat Kumar Tiwari "Experiment & Analysis on the Impact of Flexural Strength on Beam with Partial Replacement of Cement by Silica Fume & Copper Slag" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-6 | Issue-1 , December 2021, URL: https://www.ijtsrd.com/papers/ijtsrd47962.pdf Paper URL: https://www.ijtsrd.com/engineering/civil-engineering/47962/experiment-and-analysis-on-the-impact-of-flexural-strength-on-beam-with-partial-replacement-of-cement-by-silica-fume-and-copper-slag/racit-rawat
Enhancing the Mechanical Properties of Lateritic Brick for Better PerformanceIJERA Editor
The research considered the production of improved stabilized lateritic Bricks (ISLB) with enhanced mechanical
properties. The research data were derived from laboratory experiments which include capillary test, erosion
test, abrasion test, density test and compressive strength test. Three batches of 290mm x 140mm x 100mm brick
samples were produced which are: the Adobe Unstabilized Lateritic Bricks (AULB), Improved Stabilized
Lateritic Brick (ISLB) and the Control Stabilized Lateritic Bricks (CSLB). Brick stabilization was maintained at
5% by weight of cement. Compaction of the bricks were carried out manually; the moulded bricks were
carefully extruded in good shape and placed on clean, hard flat surface to allowed to dry under normal
atmospheric temperature and pressure . The ISLB was divided into four groups of 12 bricks samples immersed
in solution of zycosil and water in the following proportion by volume: (1:100),(1:200),(1:300) and (1:400) for
30 minutes and dried under normal atmospheric temperature and pressure before curing commenced. The result
of the capillary test on bricks samples after 24 hours showed that AULB and CSLB has (0.35 and 0.15)kg
weight difference equivalent of (0.00599 and 0.00256) kg/m2
/min suction rate while the ISLB have 0.05kg
weight difference equivalent to 0.000855kg/m2
/min suction rate. The result of erosion test for brick durability
ranked between very firm for ISLB of 1:100, 1:200 and 1:300 Zycosil Water Solution (ZWS), firm for ISLB of
1:400 ZWS; firm for CSLB and loose for AULB. The abrasion test result showed that the ISLB have abrasion
value of (1,2,2 and 2)% while the CSLB and AULB have (3 and 12)% abrasion value. The density of ISLB are
(1933.50, 1921.18, 1916.26 and 1908.87) kgm-3
at 28 days while the density of CSLB and AULB were (1926.11
and 1800.49) kgm-3
. Density results conform to minimum specification requirement for lateritic bricks of bulk
density of 1810kgm-3
as recommended by the Nigeria Building and Road Research Institute (NBRRI).
Compressive strength test for the ISLB are (3.16, 3.10, 3.07 and 3.08) Nmm-2
at 28 days while the compressive
strength test for CSLB and AULB stood at (3.15 and 2.41) Nm-2 which conforms to NBRRI recommended value
of compressive strength ranges of (3 to 3.5) Nmm-2
at 5% stabilization level. It was concluded that the
mechanical properties of improved stabilized lateritic brick are better than CSLB and AULB in terms of
capillary rise, erosion, abrasion, density and compressive strength.
Role of Additives in Mortars: Historic PrecedentsIJERA Editor
The use of lime in building construction began at least 10,000 years ago, where there are numerous evidence of its earlier uses. This research is an attempt to provide a review of the history of lime as a building material in based on available literature resources. The origin significance and sustainability of lime mortars and their use in architectural conservation is discussed. Large scale use of additives in historic buildings in India and abroad is highlighted in order to put forth their physio-chemical and aesthetical properties. Use of sustainable additives in mortar is stressed. The analysis presented is supposed to help architectural conservation experts in their efforts to safeguard the intrinsic qualities Indian cultural heritage for posterity.
Mechanical Strength of Concrete using Bottom Ash as Fine AggregateVISHNU VIJAYAN
Vishnu Vijayan, Achu V, Riyana M S ,Mechanical Strength of Concrete using Bottom Ash as Fine Aggregate, International Journal of Current Engineering And Scientific Research, April 2018, Volume 5, Issue 4, p-ISSN: 2393-8374,o-ISSN: 2394-0697; GICID: n/d; DOI: 10.21276/ijcesr.
Thermostone in Constrication or ThermostoneNzar Braim
My aim in this report is showing the specialty of thermostone and about the
type of creation the chemical sectional and preparation then discuss about
the method and advantage of thermostone.s to improve the report we used
the Koya thermostone the rate of construction in the Kurdistan region (KRG)
has increased through the recent decade due to a wide scope of investments
in different projects and especially for residential projects, infrastructure and
others
Experiment and Analysis on the Impact of Flexural Strength on Beam with Parti...ijtsrd
In this examination the correlation silica fume, and copper slag concrete quality utilizing destructive test equipment have been completed. In this investigation three sorts of squanders materials silica fume and copper slag and ordinary aggregate were utilized for preparing beam specimens. There are M30 grade of blended extent are used. Squander materials are used in concrete with the substitution bond of 10 , 20 and 30 . These beams are tried on 28 days. The flexural quality are determined with the help of destructive test equipments. Racit Rawat | Prabhat Kumar Tiwari "Experiment & Analysis on the Impact of Flexural Strength on Beam with Partial Replacement of Cement by Silica Fume & Copper Slag" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-6 | Issue-1 , December 2021, URL: https://www.ijtsrd.com/papers/ijtsrd47962.pdf Paper URL: https://www.ijtsrd.com/engineering/civil-engineering/47962/experiment-and-analysis-on-the-impact-of-flexural-strength-on-beam-with-partial-replacement-of-cement-by-silica-fume-and-copper-slag/racit-rawat
A Review on Potential of Utilizing Metal Industry Wastes in Construction Indu...ijsrd.com
This exploration work is an effort to develop the awareness & importance of industrial waste management & its utilization in productive manner in construction industry. In today's more environmentally-conscious world, a more responsible approach to the environment is to increase the use of by-products of one industry which is disposed off as a waste but can be used as a raw material for some other industry. Traditionally materials like clay, sand, stone, gravels, cement, brick, block, tiles, etc. are being used as major building materials in construction sector. All these materials have been produced from the existing natural resources and will have intrinsic distinctiveness for damaging the environment due to their continuous exploitation and increasing cost incrementally. Hence it is essential to find functional substitutes for conventional building materials in the construction industry. For above purpose the exploration study is carried out for understanding and determining the scope of utilization of waste from metal industry such as silica fume, copper slag, foundry waste sand and ground granulated blast furnace slag (metal industry) in construction industry. In our country annually huge quantities of wastes are produced by the industries. Instead of disposing-off these wastes if they are utilized in such a manner then it will provide an eco-friendly solution, simultaneously solving the problem of pollution and raising the step towards economy & obviously towards progress of the nation.
In persuit of alternative ingredients to cement concrete constructioneSAT Journals
Abstract Due to rapid demand and growth in infrastructure, the natural resources are fast depleting. The production of cement and aggregates consume energy which are responsible for increase in concentration of carbon dioxide in atmosphere. On the other hand huge amount of wastes are generated in various fields which are not being utilized other than for landfilling, incineration and a very few reused having a recycle value. Some wastes are biodegradable while others are toxic or harmful to environment. Hence there appears to be an urgent need to search for alternative materials, which can replace existing ingredients partially or fully, thereby reducing energy consumption and reduced CO2 emission. This paper discusses some options which appear to be promising in this direction. Index Terms: Eco-Friendly Concrete, Sustainability, Substitutes for Binders, Substitutes for Aggregates
Durability Study on Self Compacting Concrete with Mineral Admixtureijtsrd
Self compacting concrete can be placed and compacted under its own weight without any vibration and without segregation or bleeding. The use of mineral admixture such as fly ash, GGBS, etc. as partial replacement of cement in SCC can bring down cost. The use of industrial waste such as fly ash, GGBS, etc in the binder of concrete reduces the storage, disposal and environmental problems. The most beneficial property with M SAND addition to the concrete in the hardened state are the tensile strength, impact strength, the toughness and the energy absorption capacity. In the present study the mix design for M50 grade SCC was first carried out in accordance with EFNARC guidelines. The cement will be replaced with GGBS and fine aggregate get replaced with manufacturing sand Test such as slump flow,V funnel were carried out on fresh concrete and the optimum dosage of super plasticizer was found and cubes were cast for 7,28,56 days for the mix ratio 1 1.40 1.27 0.34. The influence of GGBS on the workability, mechanical strength and durability aspects like water absorption test, sulphate attack test, acid resistance test,rapid chloride penetration test , sorptivity test , linear polarization resistivity test and alkalinity test of self compacting concrete are studied. Boopathi V | Sharmila Devi K ""Durability Study on Self Compacting Concrete with Mineral Admixture"" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-3 | Issue-3 , April 2019, URL: https://www.ijtsrd.com/papers/ijtsrd23226.pdf
Paper URL: https://www.ijtsrd.com/engineering/civil-engineering/23226/durability-study-on-self-compacting-concrete-with-mineral-admixture/boopathi-v
Effect of silica fume on the strength of cement mortareSAT Journals
Abstract
The replacement of sand/cement by certain percentage of silica fumes, resulted in the improvement in compressive strength of the mortar. Silica fumes to the highly pozzolanic materials because it consists essentially of silica in non- crystalline form with a high specific surface. It is used to improve the mechanical properties of the concrete. The main objective of this paper is to study the effect of silica fume on the compressive strength of mortar. Three proportions of mixes viz mix 1:3, mix 1:4 and mix 1:6 with different percentages of silica fumes replacement with sand/cement were used. The maximum increase in strength at the age of 28 days when sand is replaced by 15% of silica fume has been observed as 40% and in case of cement replaced with 15% of silica fume, the observed increase in compressive strength of mortar comes out to be 28%.
A quantitative cost analysis shows that with the replacement of cement and sand by silica fume, the in cost is more when sand is replaced and it is less when cement is replaced.
Keywords: pozzolanic, silica fumes, non- crystalline, compressive strength
Effects of Soil and Air Drying Methods on Soil Plasticity of Different Cities...IJERA Editor
Atterberg Limits were initially defined in 1911, by Albert Atterberg, a Swedish scientist. Their purposes are to classifying cohesive soils and determine engineering properties of soils. According to ASTM, all the soils tested by Atterberg limits should be oven dried, it is because drying the soils in different degree will alter their properties significantly. Some of the physical properties of soils will undergo changes that appear to be permanent. Therefore, the soil samples should be in natural or air-dried form. However, in reality, due to time constraint and other factors, many will run the tests by using soil samples that are prepared by oven drying method. They assumed that there is no difference between the results of two types of drying method. However, in reality, the properties of soil will be affected and thus give a misleading result. The objective of this study is to determine the effect of two drying methods, air-drying method and oven drying method, on the soil plasticity. Six soil samples from different cities were tested. These tests include sieve analysis, specific gravity test, hydrometer analysis, Plastic limit and liquid limit test. Conclusively, the oven drying method could not replace the air-drying method in soil preparation for both Atterberg limits tests.
A Review on Potential of Utilizing Metal Industry Wastes in Construction Indu...ijsrd.com
This exploration work is an effort to develop the awareness & importance of industrial waste management & its utilization in productive manner in construction industry. In today's more environmentally-conscious world, a more responsible approach to the environment is to increase the use of by-products of one industry which is disposed off as a waste but can be used as a raw material for some other industry. Traditionally materials like clay, sand, stone, gravels, cement, brick, block, tiles, etc. are being used as major building materials in construction sector. All these materials have been produced from the existing natural resources and will have intrinsic distinctiveness for damaging the environment due to their continuous exploitation and increasing cost incrementally. Hence it is essential to find functional substitutes for conventional building materials in the construction industry. For above purpose the exploration study is carried out for understanding and determining the scope of utilization of waste from metal industry such as silica fume, copper slag, foundry waste sand and ground granulated blast furnace slag (metal industry) in construction industry. In our country annually huge quantities of wastes are produced by the industries. Instead of disposing-off these wastes if they are utilized in such a manner then it will provide an eco-friendly solution, simultaneously solving the problem of pollution and raising the step towards economy & obviously towards progress of the nation.
In persuit of alternative ingredients to cement concrete constructioneSAT Journals
Abstract Due to rapid demand and growth in infrastructure, the natural resources are fast depleting. The production of cement and aggregates consume energy which are responsible for increase in concentration of carbon dioxide in atmosphere. On the other hand huge amount of wastes are generated in various fields which are not being utilized other than for landfilling, incineration and a very few reused having a recycle value. Some wastes are biodegradable while others are toxic or harmful to environment. Hence there appears to be an urgent need to search for alternative materials, which can replace existing ingredients partially or fully, thereby reducing energy consumption and reduced CO2 emission. This paper discusses some options which appear to be promising in this direction. Index Terms: Eco-Friendly Concrete, Sustainability, Substitutes for Binders, Substitutes for Aggregates
Durability Study on Self Compacting Concrete with Mineral Admixtureijtsrd
Self compacting concrete can be placed and compacted under its own weight without any vibration and without segregation or bleeding. The use of mineral admixture such as fly ash, GGBS, etc. as partial replacement of cement in SCC can bring down cost. The use of industrial waste such as fly ash, GGBS, etc in the binder of concrete reduces the storage, disposal and environmental problems. The most beneficial property with M SAND addition to the concrete in the hardened state are the tensile strength, impact strength, the toughness and the energy absorption capacity. In the present study the mix design for M50 grade SCC was first carried out in accordance with EFNARC guidelines. The cement will be replaced with GGBS and fine aggregate get replaced with manufacturing sand Test such as slump flow,V funnel were carried out on fresh concrete and the optimum dosage of super plasticizer was found and cubes were cast for 7,28,56 days for the mix ratio 1 1.40 1.27 0.34. The influence of GGBS on the workability, mechanical strength and durability aspects like water absorption test, sulphate attack test, acid resistance test,rapid chloride penetration test , sorptivity test , linear polarization resistivity test and alkalinity test of self compacting concrete are studied. Boopathi V | Sharmila Devi K ""Durability Study on Self Compacting Concrete with Mineral Admixture"" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-3 | Issue-3 , April 2019, URL: https://www.ijtsrd.com/papers/ijtsrd23226.pdf
Paper URL: https://www.ijtsrd.com/engineering/civil-engineering/23226/durability-study-on-self-compacting-concrete-with-mineral-admixture/boopathi-v
Effect of silica fume on the strength of cement mortareSAT Journals
Abstract
The replacement of sand/cement by certain percentage of silica fumes, resulted in the improvement in compressive strength of the mortar. Silica fumes to the highly pozzolanic materials because it consists essentially of silica in non- crystalline form with a high specific surface. It is used to improve the mechanical properties of the concrete. The main objective of this paper is to study the effect of silica fume on the compressive strength of mortar. Three proportions of mixes viz mix 1:3, mix 1:4 and mix 1:6 with different percentages of silica fumes replacement with sand/cement were used. The maximum increase in strength at the age of 28 days when sand is replaced by 15% of silica fume has been observed as 40% and in case of cement replaced with 15% of silica fume, the observed increase in compressive strength of mortar comes out to be 28%.
A quantitative cost analysis shows that with the replacement of cement and sand by silica fume, the in cost is more when sand is replaced and it is less when cement is replaced.
Keywords: pozzolanic, silica fumes, non- crystalline, compressive strength
Effects of Soil and Air Drying Methods on Soil Plasticity of Different Cities...IJERA Editor
Atterberg Limits were initially defined in 1911, by Albert Atterberg, a Swedish scientist. Their purposes are to classifying cohesive soils and determine engineering properties of soils. According to ASTM, all the soils tested by Atterberg limits should be oven dried, it is because drying the soils in different degree will alter their properties significantly. Some of the physical properties of soils will undergo changes that appear to be permanent. Therefore, the soil samples should be in natural or air-dried form. However, in reality, due to time constraint and other factors, many will run the tests by using soil samples that are prepared by oven drying method. They assumed that there is no difference between the results of two types of drying method. However, in reality, the properties of soil will be affected and thus give a misleading result. The objective of this study is to determine the effect of two drying methods, air-drying method and oven drying method, on the soil plasticity. Six soil samples from different cities were tested. These tests include sieve analysis, specific gravity test, hydrometer analysis, Plastic limit and liquid limit test. Conclusively, the oven drying method could not replace the air-drying method in soil preparation for both Atterberg limits tests.
Water scarcity is the lack of fresh water resources to meet the standard water demand. There are two type of water scarcity. One is physical. The other is economic water scarcity.
Automobile Management System Project Report.pdfKamal Acharya
The proposed project is developed to manage the automobile in the automobile dealer company. The main module in this project is login, automobile management, customer management, sales, complaints and reports. The first module is the login. The automobile showroom owner should login to the project for usage. The username and password are verified and if it is correct, next form opens. If the username and password are not correct, it shows the error message.
When a customer search for a automobile, if the automobile is available, they will be taken to a page that shows the details of the automobile including automobile name, automobile ID, quantity, price etc. “Automobile Management System” is useful for maintaining automobiles, customers effectively and hence helps for establishing good relation between customer and automobile organization. It contains various customized modules for effectively maintaining automobiles and stock information accurately and safely.
When the automobile is sold to the customer, stock will be reduced automatically. When a new purchase is made, stock will be increased automatically. While selecting automobiles for sale, the proposed software will automatically check for total number of available stock of that particular item, if the total stock of that particular item is less than 5, software will notify the user to purchase the particular item.
Also when the user tries to sale items which are not in stock, the system will prompt the user that the stock is not enough. Customers of this system can search for a automobile; can purchase a automobile easily by selecting fast. On the other hand the stock of automobiles can be maintained perfectly by the automobile shop manager overcoming the drawbacks of existing system.
COLLEGE BUS MANAGEMENT SYSTEM PROJECT REPORT.pdfKamal Acharya
The College Bus Management system is completely developed by Visual Basic .NET Version. The application is connect with most secured database language MS SQL Server. The application is develop by using best combination of front-end and back-end languages. The application is totally design like flat user interface. This flat user interface is more attractive user interface in 2017. The application is gives more important to the system functionality. The application is to manage the student’s details, driver’s details, bus details, bus route details, bus fees details and more. The application has only one unit for admin. The admin can manage the entire application. The admin can login into the application by using username and password of the admin. The application is develop for big and small colleges. It is more user friendly for non-computer person. Even they can easily learn how to manage the application within hours. The application is more secure by the admin. The system will give an effective output for the VB.Net and SQL Server given as input to the system. The compiled java program given as input to the system, after scanning the program will generate different reports. The application generates the report for users. The admin can view and download the report of the data. The application deliver the excel format reports. Because, excel formatted reports is very easy to understand the income and expense of the college bus. This application is mainly develop for windows operating system users. In 2017, 73% of people enterprises are using windows operating system. So the application will easily install for all the windows operating system users. The application-developed size is very low. The application consumes very low space in disk. Therefore, the user can allocate very minimum local disk space for this application.
Student information management system project report ii.pdfKamal Acharya
Our project explains about the student management. This project mainly explains the various actions related to student details. This project shows some ease in adding, editing and deleting the student details. It also provides a less time consuming process for viewing, adding, editing and deleting the marks of the students.
Explore the innovative world of trenchless pipe repair with our comprehensive guide, "The Benefits and Techniques of Trenchless Pipe Repair." This document delves into the modern methods of repairing underground pipes without the need for extensive excavation, highlighting the numerous advantages and the latest techniques used in the industry.
Learn about the cost savings, reduced environmental impact, and minimal disruption associated with trenchless technology. Discover detailed explanations of popular techniques such as pipe bursting, cured-in-place pipe (CIPP) lining, and directional drilling. Understand how these methods can be applied to various types of infrastructure, from residential plumbing to large-scale municipal systems.
Ideal for homeowners, contractors, engineers, and anyone interested in modern plumbing solutions, this guide provides valuable insights into why trenchless pipe repair is becoming the preferred choice for pipe rehabilitation. Stay informed about the latest advancements and best practices in the field.
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptxR&R Consult
CFD analysis is incredibly effective at solving mysteries and improving the performance of complex systems!
Here's a great example: At a large natural gas-fired power plant, where they use waste heat to generate steam and energy, they were puzzled that their boiler wasn't producing as much steam as expected.
R&R and Tetra Engineering Group Inc. were asked to solve the issue with reduced steam production.
An inspection had shown that a significant amount of hot flue gas was bypassing the boiler tubes, where the heat was supposed to be transferred.
R&R Consult conducted a CFD analysis, which revealed that 6.3% of the flue gas was bypassing the boiler tubes without transferring heat. The analysis also showed that the flue gas was instead being directed along the sides of the boiler and between the modules that were supposed to capture the heat. This was the cause of the reduced performance.
Based on our results, Tetra Engineering installed covering plates to reduce the bypass flow. This improved the boiler's performance and increased electricity production.
It is always satisfying when we can help solve complex challenges like this. Do your systems also need a check-up or optimization? Give us a call!
Work done in cooperation with James Malloy and David Moelling from Tetra Engineering.
More examples of our work https://www.r-r-consult.dk/en/cases-en/
Quality defects in TMT Bars, Possible causes and Potential Solutions.PrashantGoswami42
Maintaining high-quality standards in the production of TMT bars is crucial for ensuring structural integrity in construction. Addressing common defects through careful monitoring, standardized processes, and advanced technology can significantly improve the quality of TMT bars. Continuous training and adherence to quality control measures will also play a pivotal role in minimizing these defects.
Democratizing Fuzzing at Scale by Abhishek Aryaabh.arya
Presented at NUS: Fuzzing and Software Security Summer School 2024
This keynote talks about the democratization of fuzzing at scale, highlighting the collaboration between open source communities, academia, and industry to advance the field of fuzzing. It delves into the history of fuzzing, the development of scalable fuzzing platforms, and the empowerment of community-driven research. The talk will further discuss recent advancements leveraging AI/ML and offer insights into the future evolution of the fuzzing landscape.
Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...Dr.Costas Sachpazis
Terzaghi's soil bearing capacity theory, developed by Karl Terzaghi, is a fundamental principle in geotechnical engineering used to determine the bearing capacity of shallow foundations. This theory provides a method to calculate the ultimate bearing capacity of soil, which is the maximum load per unit area that the soil can support without undergoing shear failure. The Calculation HTML Code included.
Hybrid optimization of pumped hydro system and solar- Engr. Abdul-Azeez.pdffxintegritypublishin
Advancements in technology unveil a myriad of electrical and electronic breakthroughs geared towards efficiently harnessing limited resources to meet human energy demands. The optimization of hybrid solar PV panels and pumped hydro energy supply systems plays a pivotal role in utilizing natural resources effectively. This initiative not only benefits humanity but also fosters environmental sustainability. The study investigated the design optimization of these hybrid systems, focusing on understanding solar radiation patterns, identifying geographical influences on solar radiation, formulating a mathematical model for system optimization, and determining the optimal configuration of PV panels and pumped hydro storage. Through a comparative analysis approach and eight weeks of data collection, the study addressed key research questions related to solar radiation patterns and optimal system design. The findings highlighted regions with heightened solar radiation levels, showcasing substantial potential for power generation and emphasizing the system's efficiency. Optimizing system design significantly boosted power generation, promoted renewable energy utilization, and enhanced energy storage capacity. The study underscored the benefits of optimizing hybrid solar PV panels and pumped hydro energy supply systems for sustainable energy usage. Optimizing the design of solar PV panels and pumped hydro energy supply systems as examined across diverse climatic conditions in a developing country, not only enhances power generation but also improves the integration of renewable energy sources and boosts energy storage capacities, particularly beneficial for less economically prosperous regions. Additionally, the study provides valuable insights for advancing energy research in economically viable areas. Recommendations included conducting site-specific assessments, utilizing advanced modeling tools, implementing regular maintenance protocols, and enhancing communication among system components.
Overview of the fundamental roles in Hydropower generation and the components involved in wider Electrical Engineering.
This paper presents the design and construction of hydroelectric dams from the hydrologist’s survey of the valley before construction, all aspects and involved disciplines, fluid dynamics, structural engineering, generation and mains frequency regulation to the very transmission of power through the network in the United Kingdom.
Author: Robbie Edward Sayers
Collaborators and co editors: Charlie Sims and Connor Healey.
(C) 2024 Robbie E. Sayers
Performance Assessment of Makurdi Burnt Bricks.pdf
1. PERFORMANCE ASSESSMENT OF MAKURDI BURNT BRICKS
Olawuyi, B. J.1
; Olusola, K. O.2
; Ogunbode, E. B.1
and Kyenge S. S.1
Email: babatundeolawuyi@yahoo.com
Department of Building, Federal University of Technology, Minna, Niger State, Nigeria.1
Department of Building, Obafemi Awolowo University, Ile-Ife, Nigeria.2
ABSTRACT
This work involved onsite observation of the production process; determination of physical properties
and chemical composition of the soil sample used for production of Makurdi burnt bricks (MBB). A total
of 22 brick specimens, of the MBB was examined in the laboratory for compressive strength, water
absorption and abrasion resistance. The results reveal the soil sample as a true laterite having a Silica-
Sesquioxide ratio of 1.01, Silica content of 42.95 and clay content of 27.38 and total clay + silt content
of 30.78. The Atterberg’s limit test gave the liquid limit as 36.79; plastic limit, 26.11and plastic index,
10.68. Compressive strength was 3.46 N/mm2
and 11.75 N/mm2
for Samples A and B respectively;
Average water absorption for Sample B (16.49%) was double that of Sample A (8.58%) while the
Abrasion resistance ability of Sample B (33.67%) was four times better than Sample A (9.32%).
KEYWORDS: Burnt Bricks, Performance Assessment, Compressive Strength, Abrasion Resistance,
Water Absorption.
INTRODUCTION
A visit to Makurdi, the Benue State Capital of Nigeria in 2009 for the 39th
Annual General Meeting/
Conference of Nigerian Institute of Building (NIOB) tagged “Food Basket 2009” generated a research
interest on the Makurdi locally made burnt bricks (MBB). Something of interest is the rampant use and
acceptability of the MBB; it is really a display of the residents attempt at meeting the need for shelter
using materials that the environment can afford in line with the postulations of Fitch and Branch (1960).
Adegoke and Ajayi (2003) posited that a good material for shelter provision must allow participation
from the community and thereby improving the economy of that community. This is what they called
appropriate technology. Such materials must be readily available, appropriate (economically (i.e.
affordable) and physically) to the environmental demands, thermally efficient and socially acceptable
(Olusola, 2005).
2. Makurdi Burnt Bricks can be said to fall specifically to the category of materials fitting into the scenario
described by the researchers quoted above. The bricks were not only being adopted for modern building
structures as shown in Plates 1 & 2, they are used for incinerators, drainage works, waterlogged sites and
free standing walls of fence with little or no treatment as shown in Plates 3 & 4. The use of the MBB
was noted not to be limited to private residential houses, public and corporate building structures were
not left out. A good example is the wall of fence of J. S. Tarka Foundation Civic Centre in Makurdi.
Plate 1: A modern structure built from MBB. Plate 2: A modern structure being constructed using MBB.
Plate 3: MBB used to construct an open Incinerator. Plate 4: MBB adopted for the perimeter wall of a Water Tank Tower.
The MBB were said to be cheap, sold as low as #5/brick at normal period, while the highest price stands
at #8/brick during the peak period as against the unit price of #100 and #120 for 150 mm and 225 mm
sandcrete blocks respectively, implying masonry unit material cost of #235/m2
to #376/m2
using MBB as
against #1000/m2
to #1200/m2
for sandcrete blocks. Hence a saving in masonry material cost of about
70% in wall. This is coupled with the fact that brickwall surfaces are often finished without additional
3. cement/sand rendering. Despite these numerous advantages of the MBB and its high level of public
acceptance and use in Makurdi and its environments, there are no empirical data on the Engineering
properties of this important masonry unit nor is there a research report on the classification and
suitability of the soil being used for its production. This paper thereby presents a report of the critical
study of the production process and performance assessment of the MBB with a view at determining the
suitability of the soil type used, adequacy of technology adopted for its production, the performance
assessment of the MBB at meeting requisite standards and its durability in the prevailing environment.
LITERATURE REVIEW
Brick is defined in the Encarta English Dictionary (2009) as a rectangular block of clay or similar
material (i.e. laterite) that is baked until is hard and is used for building houses, walls or other permanent
structures.
Usage of burnt bricks dates back to the stone age (i.e. 2500 BC) as recorded in the Bible story of “The
Tower of Babel” in Genesis chapter 11 verse 3 where the people were said to “make bricks and burn
them thoroughly.” They had brick for stone, and they had asphalt for mortar (The Maxwell Leadership
Bible, 2007 – NKJV).
In pre-modern China, brick-making was the job of a lowly and unskilled artisan, but a kiln master was
respected as a step above the latter. The Romans made use of fired bricks and the Roman legions which
operated mobile kilns introduced bricks to many parts of the empire. Roman bricks are often stamped
with the mark of the legion that supervised its production. The use of bricks in Southern and Western
Germany for example, can be traced back to traditions already described by the Roman Architect
Vitruvius (Wikipedia, 2011). Brick or Earth for wall construction in Nigeria is of the long proven use,
earth bricks are still mostly used for dwellings, which are built without formal authorization such as
obtained in the rural housing or uncontrolled low income housing in the urban areas.
The soil used for brick making is often called different names such as earth, clay or laterite but the term
“laterite” according to Encarta English Dictionary (2009) originates from the Latin word later meaning
brick.
Laterite is defined as red tropical soil: a reddish mixture of clayey iron and aluminium oxides and
hydroxides formed by the weathering of basalt under humid, tropical conditions (Encarta, 2009).
4. Numerous definitions have been given to Laterite depending on the professional inclination of the
authors. While some are purely morphological, some are purely physical and some others are purely
chemical.
The term “laterite”, according to Hamilton (1995), was first used by Buchanan in 1807 to describe a
ferruginous (high iron content), vesicular (contain small cavities), unstratified and porous material with
yellow archers caused by its high iron content, and occurring abundantly in Malabar, India. It was used
for weathering materials from which blocks are cut, that after drying are used as building bricks. Hence
the word “laterite” was derived from the Latin word “later” which means brick or tile. Laterite has also
been recognized as the alteration or in-situ weathering products of various materials including
crystalline igneous rocks, sediments detrital deposit and volcanic ash. The degree of weathering to
which the parent materials have been subjected influences greatly the physical and chemical
composition of Laterite soils (Olusola, 2005).
The first to establish the chemical concept of the definitions of Laterite was probably Mallet (1883) as
quoted in Osunade (1984), Owoshagba (1991) and Olusola (2005). He established the ferruginous and
aluminium nature of lateritic soils. Fermor (1981) defined various forms of laterite soils on the basis of
the relative contents of the so-called laterite constituents (Fe, Al, Ti, Mn) in relation to Silica. A
chemical definition base on the (S-S) Silica Sesquioxides ratio (SiO2 / Al2O3+Fe2O3) had been proposed,
the conclusion being an S-S ratio 1.33 implies a true laterite; an s-s ratio between 1.33 and 2.0 refers
to a lateritic soil; and an S-S ratio 2.0 indicates a non-lateritic typically weathered soil.
Gidigasu (1976) gave a broad-based definition of Laterite which may be more appropriate for
engineering applications. He states that the word laterite should be used to describe “all the reddish
residual and non-residual tropically weathered soils, which genetically form a chain of materials ranging
from decomposed rock through clays to sesquioxides (Al2O3 + Fe2O3) rich crust, generally known as
cuirass or carapace”. Cuirass stands for the upper layer of laterite accumulation zone and is particularly
enriched in iron oxide minerals. Carapace on the other hand stands for the lower part of laterite
accumulation zone. Miller (1999) also describes laterite as heavily leached tropical subsoil which is not
fertile and comprises mainly iron and aluminium oxides and kaolinite-clays.
5. Rajput (2006) stated that brick earth is derived by the disintegration of igneous rocks and that a good
brick earth should be easily moulded and dried without cracking and warping. Discussing on the
chemical composition, he further stated that it should have the followings:
1. Alumina (Al2O3) or Clay = 20-30 percent by weight
2. Silica (SiO2) or sand = 35-50 percent by weight
3. Silt = 20-25 percent by weight.
Total content of clay and silt is recommended to preferably be less than 50 percent by weight. Rajput
(2006) further stated that brick earth must have proper proportions of sand, silt and clay; be
homogeneous; have sufficient plasticity and be free from lumps of lime and nodules of kankar. This
conforms to the postulations that the material used for brick production falls under other previous
authors and researchers’ classification of the soil called laterite.
Burning of bricks is one of the popular methods of stabilization; others are introduction of cement and
other pozzolanic material such as Rice husk ash, volcanic ash, sugarcane bargash ash and many others.
Burning of bricks being possibly the first means of stabilization has to be thorough and uniform for the
essence of imparting hardness and strength to the bricks and increasing the bricks density so as to
enhance its water resistance tendencies to be achieved. This study thereby examines MBB with a view
to determining the physical properties and chemical composition of the soil used in making the bricks,
investigate the production process specifically the method of burning and assess the compressive
strength and durability properties of the bricks.
MATERIALS AND METHODS
Materials Collection
This study involved observation of the production process of the MBB at the local site in Km. 4, Gboko
road, Makurdi. Keen attention was given to the burning process of the bricks while some quantity of the
soil sample were collected for laboratory analysis for physical and chemical properties with some
samples of the finished bricks also collected for determination of compressive strength, abrasion and
water absorption.
Local Production of Burnt Bricks in Makurdi
The stages involved in processing the local burnt bricks as observed in Makurdi are as follows;
6. The soil was excavated from a boring pit and stacked in heaps in the open for rain to wash out the
soluble salts which might later cause white scum on the product. After the soil had been thoroughly
washed, it was stored in open storage area until when they are ready for use. Before putting it to use,
water was then added to the soil to form a paste.
The laterite paste was then poured into a mould of 270 mm x 110 mm x 80 mm and the bricks were then
moulded. The freshly produced bricks were stored in the open air in rows. They were covered
temporarily with dried grass to ensure protection against adverse weather condition. This ensures that
there is constant drying. This depends completely on the weather conditions and can take as from 4 – 6
weeks of proper or desired drying before burning.
The bricks were only ready for burning at the completion of proper drying. The properly dried bricks
were stacked with a provision for firing or heating to develop hardness at the bottom. The staked bricks
were covered with a thick layer of soil paste to reduce the loss of heat during firing as shown in Plate 5.
The fire was started, heat developed and then after few days of firing the fuel was cut off entirely and
the burnt bricks were allowed to cool down naturally. The fuel mostly used in firing is wood.
When the bricks are well burnt, a cherry-red hue develops and this condition is held for about 6 hours.
Sufficient fuel must be available when the burning starts as the entire batch of bricks might be lost if the
fires were allowed to die down during the operation. Firing with wood took two to five days. The bricks
were adjudged to have been thoroughly burnt when a part of the heap starts falling without the bricks
breaking as seen in Plate 6. Burnt brick samples were examined by breaking off a part of the brick to see
how the inner surface is; bricks not well burnt gave an inner colour of ash as in Plate 7 while well burnt
brick gave a uniform yellowish brown colour same as the external surface.
Plate 5: Staked bricks set for firing Plate 6: Staked bricks after firing
7. Plate 7: Inner ash colour of brick no well burnt Plate 8: Stacked burnt bricks around firing channel
Plate 9: Crushed burnt brick (Sample A) Plate 10: Crushed burnt brick (Sample B)
During the firing, the bricks shrink as much as 10%. As they were taken out of the staked batch after
firing, they were sort to different grades with the main criteria being strength, irregular dimensions and
sometimes cracks. Two classifications of good bricks always result from this process; well burnt bricks
usually adopted for normal building construction (Sample A - those brick not in direct contact with fire
source) and the over burnt referred to as iron-bricks - commonly used for drainages and waterlogged
areas (Sample B - those brick in direct contact with fire source). Plates 9 and 10 presents Sample A
having uniform yellowish brown colour and Sample B in dark grey/black shining charcoal-like colour.
A total of Thirty (30) bricks – Fifteen (15) for each Sample specimens were collected from No 4 Gboko
road, Makurdi and taken to F.U.T, Minna for assessment in the laboratory.
Instrumentation
The chemical analysis of Laterite sample was carried out at the Sagamu Works Department of Lafarge
Cement (West African Portland Cement Company -WAPCO) via an X-ray Fluorescent Analysis using a
8. Total Cement Analyser model ARL 9900 XP. The physical properties test on the soil sample;
compressive strength and water absorption on the MBB were carried out in the Department of Building
laboratory, FUT, Minna and Abrasion test on the MBB was carried out at the Civil Engineering
Laboratory of Federal Polytechnic, Bida using the Los Angeles Abrasion Testing Machine. Furthermore
all mass measurements were taken on weighing balances available in the various Laboratories of the
Federal University of Technology (FUT), Minna and Federal Polytechnic, Bida.
Experimental Procedure
Determination of Chemical Composition of Laterite Sample
The Laterite sample was prepared in F.U.T, Minna and then taken to WAPCO, Sagamu Works for
analysis. About 150 g of the Laterite sample was packaged in small nylon bag and sent to the Chemical
Laboratory of WAPCO.
The determination of the chemical composition at WAPCO in accordance to ASTM C311 – 2008
involved drying, grinding, pressing and analysing. The materials were dried in an oven at 100 ±10o
C for
about two hours until a constant weight (±0.01 g) was obtained after which the sample was placed in a
desiccator to cool for about 30 minutes before grinding commences. In order to aid grinding and to
prevent sticking of the sample to dish, 0.8 g of stearic acid was weighed into sample dish before adding
20.0 g of the material (VA sample) into it. Grinding was done on a gyro-mill grinding machine (Model
HSM 100H, Serial Number MA 11566-5-1, 2004), which stops automatically after grinding for a pre-set
time of 3 minutes. The sample was then ready for pressing.
The ground sample plus 1.0 g of stearic acid to ensure adequate binding, was used to fill the pellet cup to
the brim. The pellet cup was then centrally placed in an automatic hydraulic operated press (Model TP
40/2D), pressed at 20 tons load and 30 seconds hold time. On completion of pressing, the pressed pellet
was carefully removed from the cylindrical pressing die and transferred into the X-ray analyser sample
holder ready for analysis.
The analysis was carried out using X-Ray Fluorescent Analyser called Total Cement Analyser (Model
ARL 9900 XP), is connected directly to a computer system. The pressed pellet was loaded in the sample
port of the analyser and the assembly left for about three minutes after which the values of elements
concentration were displayed on the monitor. This was saved directly on the system and the printed out
as the result of the analysis.
9. Physical Properties of Laterite Sample
The physical properties tests carried out on the Laterite soil sample included sieve analysis to determine
the particle size distribution; Atterberg limits tests (i.e. liquid and plastic limits) to determine the plastic
index of the soil sample. Also determined were the specific gravity and the moisture content of the soil
sample. The tests were carried out in accordance with the requisite current British standards (i.e. BS EN
933 – 1:1997 and BS EN 12620 – 1:2002 for sample grading; BS EN 1377 – 2:1990 for Atterberg
limits; BS EN 1097 – 6:2000 and BS EN 1097 – 5:1999 for moisture contents).
Performance Assessment of the MBB
The major tests carried out on the MBB are the compressive strength, abrasion and the water absorption. A
total of twenty two (22) numbers of the burnt bricks were used for these tests in accordance with the
appropriate British Standards.
The compressive strength in accordance to BS EN 12390 – 3:2000 involved subjecting a total of ten bricks
(five numbers for each brick specimen type) to crushing on an ELE compression machine (maximum
capacity 2000KN, Model No JYS 2000A CLASS 1 Serial No. 16) while the crushing force was noted and
average of the compressive strength calculated for five specimen giving the compressive strength value of
the brick sample. Plates 9 and 10 presents the two sample types of brick crushed.
Abrasion test and water absorption are both durability measures to determine the ability of the brick to
resist wearing away by erosion and other environmental conditions (i.e. abrasion) one hand; while water
absorption properties on the other hand is a measure of the suitability of a brick for construction works.
Rajput (2006) specifies that the water absorption of a good brick should not exceed 20% weight of the dry
brick.
The water absorption in accordance to BS 1881 - 122:1983 was carried out using a total of six brick
samples (three each for each sample type). The specimen bricks were first weighed dry, and then immersed
in water for a period of sixteen hours (16 hrs) and weighed again; the difference in weight indicated the
water absorbed by the brick. The average of three replicates for each sample type gave the water absorption
value of the brick.
10. The compressive strength and water absorption tests were carried out at the Building Laboratory of Federal
University of Technology, Minna.
The abrasion test in following the concept spelt in BS 1881 – 122:1983 was carried for a total of six
specimen of the MBB adopting three each for Samples A and B respectively in Civil Engineering
Laboratory of Federal Polytechnic, Bida using the Los Angeles Abrasion Testing Machine available.
The test involved weighing the brick sample before inserting the machine and then subjected to 500
revolutions and weighed again. The difference in weight calculated in percentage (%) gives an
indication of the % durability of the brick sample while the average of three replicate was adopted in this
study as the % durability.
RESULTS AND DISCUSSION
Constituents of the Soil Sample
The result of the chemical analysis carried out on the Laterite sample as shown in Table 1. It reflects
Silica – Sesquioxide (S-S) Ratio tagged SR in the Table, as 1.01 implying a true laterite.
Table 1: Result of Chemical Analysis of Laterite Sample
Elements % Composition by weight Others Values
SiO2 42.95 Cl-
0.00
Al2O3 27.38 L.O.I
Fe2O3 14.95 SUM 83.76
CaO -0.65 LSF -0.34
MgO -0.62 SR 1.01
K2O 0.32 AR 1.83
Na2O 0.23 C3S -487.34
P2O5 0.03 C2S -481.23
TiO2 1.14 C3A 16.92
Mn2O3 0.16 C4AF 36.45
SO3 -0.14 Al2O3+Fe2O3 42.33
Total SiO2+Al2O3+Fe2O3 85.28
The laterite sample was noted to be light brown in colour and have a high quantity of Silica (SiO2 =
42.95 %), average Iron Oxide and Aluminium content (Fe2O3 = 14.95 % and Al2O3 = 27.38 %) and can
be classified to be Aluminium Laterite but not bauxite in line with Tietz (1997) classification since the
Aluminium content is higher than the Iron content. The soil thereby conforms to Rajput (2006)
11. requirement for a good brick making earth on basis of the Alumina (Al2O3) or clay and Silica (SiO2) or
sand content.
The result of Liquid and Plastic Limit are shown in Table 2 and 3 while Fig.1 shows the plot of the
Liquid Limit gotten via the use of Microsoft Excel.
TABLE 2: Liquid Limit of Laterite Sample Used
LIQUID LIMIT
Penetration (mm) 15 17 19.5 22.5 24.5
Can Number A B C D E
Weight of Can (g) 24.1 24.3 24.6 23.9 25.4
Weight of Can + wet Soil (g) 29.6 29.9 30.1 30.2 31.7
Weight of Can + dry soil (g) 28.5 28.6 28.8 28.4 29.5
Weight of wet soil (g) 5.5 5.6 5.5 6.3 6.3
Weight of dry soil (g) 4.4 4.3 4.2 4.5 4.1
Moisture Content (%) 25.0 30.2 31.0 40.0 53.7
TABLE 3: Plastic Limit of Laterite Sample Used
Plastic Limit
Can Number 20 10
Weight of Can (g) 24.9 24.3
Weight of Can + wet Soil (g) 26.2 25.4
Weight of Can + dry soil (g) 25.9 25.2
Weight of wet soil (g) 1.3 1.1
Weight of dry soil (g) 1.0 0.9
Moisture Content (%) 30.0 22.2
Average 26.11
Using the equation of the line of best fit given as y = 2.725x – 17.71 and R2 = 0.882
Hence Liquid Limit (L. L .i.e. Moisture Content at 20 mm penetration) = 36.79.
Table 3 present the Plastic Limit=26.11, while the Plastic Index = L. L – P. L =10.68, all this shows the
laterite sample has Atterberg limits conforming to the range as specified by the findings of Abidoye
(1977).
12. Fig. 1: Liquid Limit of Laterite Sample Used
Table 4 present result of the sieve analysis of the Laterite sample.
Table 4: Results for Sieve Analysis on Soil Sample
Sieve
Sizes
Weight
of
sieve (g)
Weight
of sieve +
sample
retained
(g)
Weight
of
sample
retained
(g)
%
retained
%
Passing
Cumulative
% retained
5.00mm 478.6 507.2 28.60 5.72 5.72 94.28
3.35 mm 468.9 499.7 30.80 6.16 11.88 88.12
2.00mm 423.4 493.0 69.60 13.92 25.80 74.20
1.18mm 387.9 481.0 93.10 18.62 44.42 55.58
850 μm 356.3 415.6 59.30 11.86 56.28 43.72
600 μm 468.6 531.5 62.90 12.58 68.86 31.14
425 μm 436.2 476.0 39.80 7.96 76.82 23.18
300 μm 314.2 351.6 37.40 7.48 84.30 15.70
150 μm 421.1 459.6 38.50 7.70 92.00 8.00
75 μm 405.3 428.3 23.00 4.60 96.60 3.40
PAN 272.2 289.3 17.00 3.40 100.00 0.00
Total 500
Summary of the grading curves gives D60 = 1.22, D30 = 0.59, D10 = 0.20 and hence Coefficient of
Uniformity (Cu) = D60/ D10 = 1.22/0.20= 6.16; Coefficient of covalence (Cc) = D30
2
/D60 x D10 =
0.592
/1.22x0.20 = 1.52. This infers the laterite sample is well graded.
A close look at Table 4 reveals the proportion of the soil sample passing 75 µm sieve representing silt
particles in the soil sample is 3.4% (same as % retained in the pan). This added to the proportion of
y = 2.7251x - 17.712
R² = 0.8824
0.0
10.0
20.0
30.0
40.0
50.0
60.0
0 10 20 30
Moisture
Content
(%)
Penetration (mm)
Moisture Content (%)
13. Alumina (Al2O3) also known as clay in the soil sample (=27.38%) gives a total of 30.78% < 50% by
weight indicating the soil sample fits well into Rajput (2006) specifications for a good brick making
earth.
The Specific Gravity of the soil was found to be 2.54, the average natural moisture content was 16.54
and the Fineness Modulus value of 2.79, indicating a medium fine grading.
Compressive Strength of MBB
The result of the compressive strength test carried out on the MBB is as presented in Table 5 revealing
average compressive strength values of 3.46 N/mm2 for Sample A and 11.74 N/mm2 for Sample B.
Sample B was noted to be very strong and harder than Sample A. Implying the compressive strength of
Makurdi locally manufactured burnt bricks fall within the limits and ranges stipulated for building
construction by the NIS 87:2004. The standard stipulates a compressive strength value of 2.8 N/mm2 for
bricks to be used for load bearing walls and 2.0 N/mm2 for non-load bearing walls. Thus, the MBB
adequately meet the purpose of construction of buildings. Sample B can be adjudged to fall to
classification of engineering bricks on basis of its compressive strength value.
Table 5: Results for Compressive Strength Test of MBB
Sample
No
Weight
(Kg)
Crushing
load (N)
Area
(mm)
Compressive
Strength
(N/mm2
)
Average
Compressive
(N/mm2)
A1 3.81 10700 2970 3.60
A2 3.83 10400 2970 3.50
A3 3.75 10200 2970 3.43 3.46
A4 3.68 9500 2970 3.20
A5 3.70 10600 2970 3.57
B1 4.27 34155 2970 11.50
B2 4.21 31200 2970 10.51
B3 4.16 35640 2970 12.00 11.74
B4 3.97 37700 2970 12.69
B5 4.23 35700 2970 12.02
Water Absorption Characteristics of the MBB
Table 6 presents the result of the water absorption test carried out on MBB. It reveals an average value
of 8.58% for Sample A and 16.49% for Sample B both falling within the limit of 20% by weight
specified by Rajput (2006) for building bricks. It was however noted that Sample B absorbed twice the
14. quantity of water absorbed by Sample A; this can be as a result of the over-heating. The samples
however do not dissolve nor melt in water.
Table 6: Result of Water Absorption Test
Sample
No
Initial
Wt. of
Specimen
Final
Weight
of
Specimen
% Water
Absorption
Av.
%Water
Absorption
w1 (g) w2 (g)
=(W2 - W1)100
W1
A1 3480.0 3810.6 9.50
A2 3275.2 3545.4 8.25 8.58
A3 3145.0 3396 7.98
B1 3250.0 3753.8 15.50
B2 3300.0 3852.1 16.73 16.49
B3 3275.0 3839.6 17.24
Abrasion Resistance of the MBB
The result of Abrasion resistance test as presented in Table 7 reveals average % Durability values of
9.32 and 33.67 for Samples A and B respectively. Implying Sample B is about four times as durable
against wear effect and abrasive attack as Sample A. This confirms the choice of the residents at
adopting Sample B for construction works in areas where there could be tendencies for erosion effect on
the walls by rain and other sources of contact of the brickwall surfaces with water while Sample A is
limited to only wall construction in buildings.
Table 7: Results of Abrasion Resistance Test of MBB
Sample
Initial Wt. of
Specimen
Wt. after 500
Revolutions % Durability Av. Durability
w1 (g) w3 (g)
D=100 – (w1-w3)100
w1
A1 3250.0 334.5 10.29
A2 3300.0 260.3 7.89 9.32
A3 3275.0 320.5 9.79
B1 3480.0 1369.8 39.36
B2 3275.2 1123.2 34.29 33.67
B3 3145.0 860.1 27.35
CONCLUSION AND RECOMMENDATION
The result affirms that soil sample used for production of Makurdi local burnt brick is a true laterite
having a Silica – Sesquioxide ratio of 1.01, Silica content of 42.95 and clay content of 27.38 and total
15. clay + silt content of 30.78 and is thereby suitable for the production of burnt bricks. The two brick
samples has average compressive strength values (Sample A, 3.46 N/mm2 and Sample B, 11.75
N/mm2) meeting NIS 87:2004 stipulation of 2.8 N/mm2 for bricks to be used for load bearing walls and
2.0 N/mm2 for non-load bearing walls. Sample B can even be adopted for use as engineering brick on
basis of compressive strength. The two Sample types were found adequate for building construction on
basis of water absorption and abrasion resistance properties.
The general acceptability of the MBB in Makurdi can be linked to the observed usage of the bricks for
public buildings by the State Government and other corporate organizations in the State. Government at
the three tiers in Nigeria should emulate this practice as noticed in Makurdi, Benue State and encourage
the patronage of alternative building materials emanating from various research works in our
Universities and other Institutions of learning in Nigeria. Further studies on MBB targeted at developing
improved local kiln for better and proper burning of the bricks is highly necessary, while excavation of
lateritic soil for local brick making should be controlled by the Local Authorities to avert erosion and
environmental degradation due to indiscriminate excavations.
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