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Showing posts with label Concrete Masonry. Show all posts
Showing posts with label Concrete Masonry. Show all posts

Wednesday, April 24, 2019

Some vital characteristics of concrete in fresh and hardened state

STRENGTH:

Concrete has good strength against compression but poor strength against tension and bending as a result the concrete can’t be demolished easily but with little force, it can be separated into pieces or leads to bending cracks.
Compressive strength is mainly based on the amount of cement utilized, but it is also influenced by the ratio of water to cement along with proper mixing and placing, and the capacity and extent of hydration and curing.
Both tensile strength and flexural bending strength will be raised with inclusion of steel or fiber reinforcement.
Desired compressive strength is based on an analysis of the loads that will be applied and the soil conditions at the project site.

DURABILITY

Concrete that will be walked or driven on should have good resistance capacity against abrasion in order that it doesn’t corrode.
Concrete that is uncovered to the exterior of a building should contain strong resistance capacity against weather in order that it doesn’t weaken from frequent freezing and thawing.
The stability of concrete uncovered to frequent freeze-thaw cycles is considerably raised with air entrainment.
Concrete in which steel reinforcement is implanted should control extra moisture absorption with the purpose of safeguarding the metal from corrosion.

VOLUME STABILITY:

As a porous material, the concrete is widened and compacted with variations in temperature and moisture content. Preliminary shrinkage occurs to cement-based products like concrete, concrete masonry and stucco since the cement hydrates and additional mixing water evaporates.
Additional shrinkage in concrete leads to cracking and consequently facilitate the moisture to infiltrate, and a vicious cycle of corrosion will start.
Shrinkage cracking is controlled moderately with steel or fiber reinforcement, and the position and weather resistance of shrinkage cracks can also be controlled via control joints which segregate the concrete into smaller panels or sections.
The shrinkage cracking may also be affected with the mix design and ingredient proportions.

WORKABILITY:

The workability of fresh concrete becomes superior when it is formed, compacted, and finished to its final shape and texture with nominal attempt and devoid of segregation of the materials.
Due to poor workability, the concrete fails to flow smoothly into forms and correctly envelop reinforcing steel and embedded items, and it becomes complicated to compact and finish.
Every mix should be perfect for its proposed application, maintaining a balance between desired fluidity, strength, and economy.
Workability is associated with the stability and cohesiveness of the mix, and is influenced by the cement content, aggregates, water content, and admixtures.

CONSISTENCY:

Consistency is an attribute of workability concerning the flow characteristics of fresh concrete.
It is the evidence of the fluidity or wetness of a mix and is calculated with the slump test. Fresh concrete is set in a metal cone and after detaching the cone, the concrete slumps a certain amount based on fluidity. A wet, soft mix slumps in a greater extent as compared to a drier, stiffer one.
A high-slump mix leads to extra bleeding, shrinkage, cracking, and dusting of the hardened concrete surface.
A specific range of consistency exists that is ideal for each type of work. Workability is highest in concrete having medium consistency with a slump among 3 and 6 in. The functionality of both very dry (low-slump) and very wet (high-slump) mixes is reduced.

COHESIVENESS:

Cohesiveness refers to the component of workability to identify whether a mix is harsh, sticky, or plastic.
A harsh mix does not have plasticity and the elements may have a propensity to detach.
Harshness occurs due to extra or shortage of mixing water (high- or low-slump mixes), a shortage of cement (lean mixes), or fine aggregate particles.
Harshness may also occur because of extra rough, angular, flat, or elongated aggregate particles. Harsh mixes are improved with air entrainment or by enhancing the fine aggregate or cement content, but modifications should be done to the overall mix to sustain the exact proportion of all materials.
A sticky mix may contain higher cement content (fat mixes) or large amounts of rock dust, fine sand, or similar fine materials (over-sanded mixes). Sticky mixes are not detached easily, but as they need a lot of water to attain nominal workability, sticky mixes may frequently contribute to extra shrinkage cracking.
A plastic mix is cohesive without becoming either sticky or harsh, and the materials can be easily detached until the concrete is managed incorrectly.
Some vital characteristics of concrete in fresh and hardened state

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Published By
Rajib Dey
www.constructioncost.co
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Saturday, January 5, 2019

Benefits of Parapet Walls

A parapet belongs to a low wall built up over the roofline that normally extents around the boundary of a building. Parapets may be simply aesthetic or largely functional, like hiding mechanical equipment or functioning as a firewall.

The moisture may enter through the top portion of a parapet wall and it creates problems. To get rid of this issue, select a perfect cap.

There are different types of materials like limestone, terra cotta, hard-fired clay, or precast concrete to cap off the wall. These materials contain thermal properties identical to brick and concrete masonry.

Contrarily, metal includes a coefficient of thermal expansion almost three times higher than masonry that produces a considerable amount of differential movement among the parapet cap and the wall underneath. Metal versions should be arranged with firmly sealed slippage joints where the cap section bends.

Caps are available with various shapes, but they should contain pitch, projections (1-in. minimum), and incessant drips. These components safeguard the parapet from pooling water and resist moisture from flowing out of the exterior wall surface.

Most caps are prone to entering of moisture at the head (vertical) joints. In order to reduce penetration at these positions, rake out the mortar head joints, bed joints in the cap to a depth of ½ in., and use elastomeric sealant to fill the joint.

An incessant flashing membrane is to be installed directly underneath the mortar joint under the cap so that the moisture can’t penetrate through the top of the wall. This flashing membrane is built from sheet metal, combination sheet metal/asphaltic, or rubberized asphalt. The flashing has to be arranged entirely through the wall to make a slippage plane among the cap and the wall underneath. The cap should be anchored to the wall underneath.

Different types of stainless steel anchorage systems are applied to fix the coping to the wall. A flexible system should be set up so that the mason can be perfectly arranged with the dowel anchor through the pre-drilled holes in the cap. A considerate amount of mastic should be used to the flashing where anchor punctures may happen.

If the back portion of the parapet is fully uncovered, both exterior wythes should be built up of the same material. Brick situated on the backside of the parapet should be coated with rainproof water repellant.

The bottom flange of the steel beam should be connected with the concrete masonry underneath with a debonded shear anchor. The anchor is mechanically secured to the bottom of the beam at specified spacings that is arranged with the head joints in the concrete masonry wythe. A debonded shear anchor protects out-of-plane (but not in-plane) shear forces and allows structural movement of the steel beam (deflection). The anchor should be completely implanted in mortar, inside the head joint of the concrete masonry unit, for this connection to be effective.

Benefits of Parapet Walls

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Published By
Rajib Dey
www.constructioncost.co
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Tuesday, June 20, 2017

Benefits of Concrete floor heating

Reason For Floor Heating: Concrete floor heating is carried out by employing the high thermal mass concerning a concrete slab or floor with preservation of heat in the floor and it performs similar to a large heating panel, to heat the interior space over it and arrange a convenient living surroundings for the occupants.

The hot floor heats the whole space over it and is mostly suitable for finishes like polished concrete floors. Due to its radian output, the concrete floor that has been heated is capable of attaining convenient living conditions at a lower air temperature as compared to normal air heating systems. It is considered as one of the easiest forms of space heating that offers consistent, discreet heat.

The electric constituents or pipes that distribute hot water (called as hydronic systems) are implanted inside the concrete slab or topping screed to heat the concrete slab. Off-peak domestic heating tariffs may also be cost-effective to the homeowner when the energy source remains electricity for either type of system.


Preferably, employing concrete floors for heating is considered as most perfect to the buildings of solid construction where exterior and interior walls also contain a high thermal mass like concrete panel, brick or block walls. These materials, along with the concrete floor function as a heat bank or reservoir which preserve the heat. The method can also be fruitful in buildings of lighter construction along with brick veneer subject to some concern is given to sufficient insulation.


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Published By
Rajib Dey
www.constructioncost.co

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