CIVILGYAN TEST SERIES · civilgyantests.com — free study notes for civil engineering exams
📑 Contents (52 sections)
Part 1 of 5
Building Stones
Last reviewed 16 Sept 2026 · 9 min read
Classification of rocks
Geological classification
Type
Formation
Examples
Igneous rocks
Cooling and solidification of molten magma — intrusive (plutonic), coarse-grained (cooled slowly deep inside) or extrusive (volcanic), fine-grained (cooled quickly at the surface)
Granite (plutonic), basalt and trap (volcanic), dolerite (hypabyssal), syenite, diorite
Sedimentary rocks
Deposition and consolidation of sediments by water, wind or ice — usually stratified
Sedimentary, stratified, porous; strength depends on cementing material (siliceous best)
Walling, ashlar work, flooring, ornamental work
Limestone
Sedimentary, calcareous; varieties include compact and oolitic
Flooring, walling, manufacture of lime and cement, road metal (hard varieties)
Marble
Metamorphic, crystalline, takes a high polish, variety of colours
Flooring, facing, decorative and ornamental work, statues
Slate
Metamorphic, splits into thin non-absorbent sheets
Roofing, damp-proof courses, sills, cisterns
Quartzite
Metamorphic, very hard, durable, difficult to work
Rubble masonry, road metal, concrete aggregate
Gneiss
Metamorphic, banded, strong
Street paving, rough stone work
Laterite
Residual (weathered) rock rich in iron and aluminium oxides; soft when quarried, hardens on exposure
Building blocks in coastal areas (e.g. Kerala, Konkan), road metal
Kankar
Impure limestone nodules
Lime manufacture, road metal for low-traffic roads
Qualities of a good building stone
Crushing strength — adequate for loads; good structural stones commonly have high strength (e.g. granite and trap rank highest; many sandstones and limestones are lower).
Appearance — uniform colour and texture for face work; free from clay holes, spots and cracks.
Durability — resistance to weathering (rain, frost, wind, temperature changes, chemicals).
Hardness — resistance to abrasion (important for floors, pavements, steps); measured by Mohs' scale.
Toughness — resistance to impact (road metal).
Low porosity and water absorption — porous stones absorb water and deteriorate by frost and chemical action (water absorption for good stones is low, commonly below about 5%).
Specific gravity — heavier stones (specific gravity above about 2.7) are generally more compact and durable, suited to dams and retaining walls.
Fire resistance — stones with minerals of different expansion (e.g. granite with quartz) crack in fire; argillaceous stones resist fire better.
Workability and dressing — ease of cutting and dressing (economy).
Texture — fine, compact, crystalline structure is desirable.
Seasoning — freshly quarried stones contain quarry sap and should be seasoned (allowed to dry) before use, commonly for several months.
Availability and cost.
Tests on stones
Test
Purpose / procedure
Crushing strength test
Cube specimens tested in a compression testing machine; strength = failure load ÷ area
Water absorption test
Dry specimen immersed in water (24 hours or boiling); absorption =W1W2−W1×100
Specific gravity
G=W1−W3W1 (W1 dry weight, W3 weight in water) — heavier stones more compact
Hardness test (Mohs' scale)
Scratching with minerals of known hardness; also Dorry's abrasion test
Impact (toughness) test
Resistance to repeated blows of a hammer (as in aggregate impact tests)
Attrition (Deval) test
Rate of wear of stone pieces rotated in a cylinder — for road stones
Acid test
Stone immersed in dilute hydrochloric (or sulphuric) acid — sharp edges and firm grains indicate resistance to acidic atmospheres; calcareous stones effervesce
Crystalline test
Microscopic examination of crystals
Freezing and thawing (frost) test
Repeated cycles in a freezing mixture — weathering resistance; Brard's test uses sodium sulphate crystallisation
Smith's test
Stone chips shaken in water — clear water indicates absence of soluble or earthy matter
Mohs' scale of hardness
Hardness
Mineral
Hardness
Mineral
1
Talc
6
Orthoclase (feldspar)
2
Gypsum
7
Quartz
3
Calcite
8
Topaz
4
Fluorite
9
Corundum
5
Apatite
10
Diamond
Part 2 of 5
Bricks, Tiles & Clay Products
Last reviewed 16 Sept 2026 · 10 min read
Brick earth
Composition of good brick earth
Constituent
Proportion (approx.)
Role
Alumina (clay)
20–30%
Gives plasticity for moulding; excess causes shrinkage, warping and cracking on drying and burning
Silica
50–60%
Prevents cracking, shrinkage and warping; gives uniform shape and durability; excess makes bricks brittle
Lime
Less than about 5%
In fine powder, reduces shrinkage and helps silica to fuse slightly (binding); excess causes melting and loss of shape; lumps of lime cause splitting
Magnesia
Less than about 1%
Gives a yellow tint; reduces shrinkage; excess causes decay
Iron oxide
About 5–6%
Gives red colour and helps fusion; improves strength and impermeability
Harmful ingredients
Lime lumps — expand on slaking after burning, causing bricks to split (lime bursting).
Iron pyrites — cause crystallisation, discolouration and splitting.
Alkalis (salts of sodium, potassium) — cause efflorescence (white patches) and melting.
Pebbles and gravel — prevent uniform mixing and weaken bricks.
Organic matter and vegetation — leave pores after burning, making bricks porous.
Manufacture of bricks
1. Preparation of clay
Unsoiling (removal of top soil), digging, cleaning (removing stones, roots), weathering (exposure to atmosphere to soften and mature the clay), blending (mixing ingredients) and tempering (mixing with water and kneading — in a pug mill for large-scale production) to obtain a homogeneous plastic mass.
2. Moulding
Method
Description
Hand moulding — ground moulding
Moulds filled on levelled ground; bricks left on the ground
Hand moulding — table moulding
Moulding on a table; bricks carried to drying area
Slop moulding
Mould dipped in water before filling — smooth surface
Sand moulding
Mould sprinkled with sand — prevents sticking
Machine moulding — plastic clay (wire-cut) method
Clay extruded as a column and cut by wires — uniform, many bricks
Machine moulding — dry press method
Nearly dry clay pressed in moulds under high pressure — dense, accurate bricks
A frog — a shallow depression on one face of a hand-moulded brick — provides a key for mortar, reduces weight and may carry the manufacturer's mark. Bricks with frogs are laid frog upward.
3. Drying
Green bricks are dried (naturally in the shade/open air, or artificially in drying chambers) to reduce moisture before burning, preventing cracks and distortion. Natural drying commonly takes one to two weeks depending on weather.
4. Burning
Burning gives strength, hardness and durability through dehydration and partial vitrification of clay; bricks are commonly burnt at around 900–1100 °C.
Kiln / clamp
Type
Features
Clamp
Intermittent, temporary
Bricks and fuel stacked in alternate layers and burnt; cheap, but uneven burning, many under- and over-burnt bricks
Intermittent kilns (e.g. Scotch kiln)
Loaded, fired, cooled and unloaded batch by batch
Better control than clamps; fuel waste in reheating
Bull's trench kiln (BTK)
Continuous, trench in ground (circular or oval); fire moves round the trench
Widely used in India; large output; traditional fixed-chimney kilns cause air pollution
Zigzag kiln
Continuous, air flows in a zigzag path through the bricks
Better fuel efficiency and lower emissions — promoted as an improvement over conventional BTKs
Hoffman's kiln
Continuous, permanent (circular, with chambers and roof)
Burning even in rain; good-quality bricks; high initial cost
Tunnel kiln
Continuous; bricks on cars move through a tunnel with fixed preheating, firing and cooling zones
High quality and output; mechanised factories
Sizes of bricks
Brick
Size (mm)
Modular (IS) brick
190 × 90 × 90 (nominal with 10 mm mortar joint: 200 × 100 × 100)
Modular brick (thinner variant)
190 × 90 × 40
Conventional (traditional) brick
About 230 × 110 × 70 (9″ × 4½″ × 3″)
For modular bricks, about 500 bricks make one cubic metre of masonry (including mortar joints).
Classification of bricks
Traditional (field) classification
Class
Description
Use
First-class bricks
Table-moulded, well burnt in kilns, uniform red colour, sharp edges, metallic ringing sound, no scratch with finger nail, low water absorption
Exposed masonry, important structures
Second-class bricks
Ground-moulded, kiln burnt, slightly irregular shape or colour, fine cracks
Plastered masonry
Third-class bricks
Ground-moulded, burnt in clamps, soft, light-red, dull sound
Temporary structures, sheltered areas
Fourth-class (over-burnt) bricks — jhama
Over-burnt, distorted, very hard, dark
Broken as aggregate (brick ballast) for foundations, floors, lime concrete
Under-burnt bricks
Soft, yellowish, absorbent
Not used for masonry
IS classification (IS 1077)
Common burnt clay bricks are classified by average compressive strength into classes (designations in N/mm²) such as 35, 30, 25, 20, 17.5, 15, 12.5, 10, 7.5, 5 and 3.5 — the class designation is the minimum average compressive strength.
Tests on bricks
Laboratory tests (IS 3495)
Test
Procedure / requirement
Compressive strength
Frog filled with mortar, specimens immersed in water, capped and tested; strength = load ÷ bed area
Water absorption
Dry bricks immersed in cold water for 24 hours (or boiled for 5 hours); absorption = (wet − dry)/dry × 100; for common bricks it should generally not exceed about 20% by weight for lower classes (lower limits for higher classes)
Efflorescence
Bricks placed on end in distilled water in a dish until water is absorbed and evaporated; deposit of white salts rated as nil, slight (up to about 10% of exposed area covered by a thin deposit), moderate (about 10–50%), heavy (more than 50%) and serious (heavy deposit with powdering/flaking)
Dimensional tolerance
Twenty bricks placed in contact in a row along length, width and height; total dimensions must be within specified limits
Warpage
Measurement of distortion of faces
Field tests
Sound test — two bricks struck together should give a clear metallic ringing sound.
Hardness test — no impression when scratched with a finger nail.
Soundness/strength test — a good brick should not break when dropped flat on hard ground from a height of about 1 m.
Shape, size and colour — uniform, with sharp straight edges and uniform colour.
Structure — a broken brick shows a homogeneous, compact structure without holes or lumps.
Part 3 of 5
Cement — Manufacture, Composition, Types & Tests
Last reviewed 16 Sept 2026 · 11 min read
Portland cement
Cement is a finely ground hydraulic binder that sets and hardens by chemical reaction with water and remains stable under water. Joseph Aspdin patented Portland cement in 1824, naming it after its resemblance to Portland stone.
Raw materials
Material
Examples
Supplies
Calcareous
Limestone, chalk, marl, shells
Lime (CaO)
Argillaceous
Clay, shale, slate
Silica (SiO₂), alumina (Al₂O₃), iron oxide (Fe₂O₃)
Corrective materials
Bauxite, iron ore, sand
Adjust alumina, iron or silica
Gypsum (added to clinker during grinding)
Calcium sulphate
Retards setting — prevents flash set due to C₃A
Fuel
Coal, petcoke, alternative fuels
Heat
Manufacture
Processes
Wet process
Dry process
Raw materials ground with water to form a slurry (about 35–40% water)
Raw materials dried and ground to fine raw meal
High fuel consumption (evaporation of water)
Lower fuel consumption — used by modern plants with preheaters and precalciners
Better homogenisation (older technology)
Needs efficient blending; faster
Longer kilns
Shorter kilns with suspension preheaters
Burning in the rotary kiln
The kiln is a long inclined steel cylinder lined with refractory bricks, rotating slowly; material moves down towards the hot end.
Zone
Temperature (approx.)
Reactions
Drying zone
Up to about 100–200 °C
Evaporation of free water
Preheating / calcination zone
About 600–900 °C
Dehydration of clay; calcination of limestone (CaCO₃ → CaO + CO₂)
Burning (clinkering) zone
About 1400–1500 °C
Lime combines with silica, alumina and iron oxide to form clinker compounds; partial fusion
Cooling zone
Clinker cooled rapidly
Rapid cooling improves quality (glassy phases, less free lime)
The clinker (dark nodules, a few mm to 25 mm) is cooled, stored and ground with about 3–5% gypsum (and other additions for blended cements) to a fine powder, then stored in silos and packed (commonly 50 kg bags) or dispatched in bulk.
Concrete — Ingredients, Fresh & Hardened Properties and Tests
Last reviewed 16 Sept 2026 · 11 min read
Concrete
Concrete is a composite material of cement (binder), fine aggregate, coarse aggregate and water (with admixtures as needed) that hardens by hydration of cement. Plain cement concrete (PCC) is strong in compression but weak in tension; reinforced cement concrete (RCC) combines it with steel; prestressed concrete applies pre-compression.
Ingredients
Cement — OPC, PPC, PSC or other types as required.
Aggregates — fine and coarse, clean, strong and well graded (see Aggregates & Mortars).
Water — for hydration and workability.
Admixtures — chemical and mineral (see Concrete Mix Design & Admixtures).
Quality of mixing water
Water fit for drinking is generally suitable. IS 456 requires water to be free from injurious amounts of oils, acids, alkalis, salts, sugar and organic materials, with a pH of not less than 6, and limits on solids such as organic matter (about 200 mg/L), inorganic solids (about 3000 mg/L), sulphates (about 400 mg/L as SO₃) and chlorides (about 2000 mg/L for plain concrete and 500 mg/L for reinforced concrete). Sea water should not be used for reinforced or prestressed concrete (chlorides cause corrosion).
Grades of concrete (IS 456)
Concrete is designated by M followed by its characteristic compressive strength (N/mm²) of 150 mm cubes at 28 days.
Group
Grades
Ordinary concrete
M10, M15, M20
Standard concrete
M25 to M55
High-strength concrete
M60 and above
Minimum grade for reinforced concrete is M20 (IS 456).
The maximum cement content (OPC, excluding fly ash and slag) is generally limited to 450 kg/m³ to reduce shrinkage and thermal cracking.
Production of concrete
Batching — measuring ingredients: weigh batching (accurate, preferred) or volume batching (for small works; allowance for bulking of sand; cement always in whole bags).
Mixing — machine mixing (tilting or non-tilting drum mixers, pan mixers, batching plants) until uniform; hand mixing on a watertight platform is allowed only for small works with an extra quantity of cement (commonly 10%).
Transporting — pans, wheelbarrows, buckets and cranes, chutes, belt conveyors, pumps, transit mixers (ready-mixed concrete) — avoiding segregation and loss of workability.
Placing — in clean, oiled, rigid formwork; in layers; avoiding large free fall (which causes segregation); using tremie for underwater placement.
Compaction — removal of entrapped air (about 5% air voids can reduce strength by about 30%): needle (immersion) vibrators, surface vibrators (slabs), formwork (external) vibrators, vibrating tables (precast); hand rodding for small works. Over-vibration causes segregation and bleeding.
Curing — maintaining moisture and temperature for hydration.
Curing
Minimum curing period (IS 456): at least 7 days for concrete with OPC; at least 10 days where mineral admixtures or blended cements are used; longer periods (e.g. 10 and 14 days respectively) in hot, dry weather.
Workability is the ease with which concrete can be mixed, transported, placed, compacted and finished without segregation.
Factors: water content (most important), aggregate–cement ratio, aggregate size, shape, texture and grading, use of admixtures (plasticisers, air entrainment, fly ash), temperature and time.
Segregation and bleeding
Segregation — separation of coarse aggregate from mortar (or grout from aggregates) — due to excess water, poor grading, large free fall, over-vibration, long transport.
Bleeding — water rising to the surface after placing (a form of segregation) — due to high w/c ratio, lean mixes, poorly graded or coarse sand; causes weak surface layer (laitance), porous channels and reduced bond with reinforcement.
Harshness — difficulty in finishing due to lack of fines/paste.
Workability tests
Test
Features
Slump test
Frustum mould — 300 mm high, 100 mm top and 200 mm bottom diameter; concrete filled in 4 layers, each rodded 25 times with a 16 mm rod; mould lifted and the subsidence (slump) measured. True slump, shear slump (lean/harsh mix, repeat), collapse slump (very wet mix). Suitable for medium to high workability; widely used on site
Compaction factor test
Ratio of the weight of partially compacted concrete (falling through two hoppers into a cylinder) to the weight of fully compacted concrete in the same cylinder — sensitive for low-workability mixes
Vee-Bee consistometer
Time (seconds) for a slumped concrete cone to be remoulded into a cylinder under vibration — for very stiff (low workability) mixes; time in Vee-Bee seconds
Flow table test
Spread of concrete on a jolted table — high workability mixes
Kelly ball test
Penetration of a hemispherical ball — field test
Slump flow, V-funnel, L-box
Self-compacting concrete (see Special Concretes)
Degree of workability (typical correlations):
Workability
Slump (mm)
Compaction factor
Very low
0–25
about 0.78
Low
25–50
about 0.85
Medium
50–100
about 0.92
High
100–175
about 0.95
IS 456 recommends slump ranges by placing condition — e.g. low slumps for mass concrete and pavements, about 50–100 mm for heavily reinforced sections, higher for pumped concrete or congested reinforcement (commonly using superplasticisers).
Hardened concrete
Compressive strength
Measured on 150 mm cubes (IS 516) cured in water and tested at 7 and 28 days (cylinders 150 × 300 mm are used in some codes; cylinder strength is roughly 0.8 of cube strength).
Characteristic strength (fck) — the strength below which not more than 5% of test results are expected to fall.
Target mean strength for mix design: fck′=fck+1.65s (s = standard deviation).
Typical strength gain with OPC: about 65–70% of 28-day strength at 7 days.
Water–cement ratio law and gel–space ratio
∑FormulaStrength relations
Abrams' law — for fully compacted concrete, strength depends on the water–cement ratio:
fc=Bw/cA
(strength decreases as w/c increases; A, B are empirical constants.)
Gel–space ratio (Powers):
fc=240x3MPa,x=volume of gel+capillary poresvolume of hydrated cement gel
Other factors: degree of compaction, curing and age, cement type, aggregate properties and bond, temperature, admixtures, specimen size and shape, loading rate.
Tensile and flexural strength
Concrete's tensile strength is only about 8–12% of its compressive strength.
Flexural strength (modulus of rupture) — tested on beams (e.g. 150 × 150 × 700 mm) under two-point loading; IS 456 gives
fcr=0.7fckN/mm2
Split tensile strength — cylinder loaded along its length (Brazilian test): ft=πDL2P.
Modulus of elasticity
Ec=5000fckN/mm2(short-term static modulus, IS 456)
Poisson's ratio of concrete ≈ 0.15–0.20.
Shrinkage
Plastic shrinkage — rapid evaporation from fresh concrete (hot, windy weather) → surface cracks; prevented by early curing, windbreaks, fog spraying.
Drying shrinkage — loss of water from hardened concrete; IS 456 suggests a total shrinkage strain of about 0.0003 in the absence of data.
Autogenous shrinkage (self-desiccation in low w/c concretes), carbonation shrinkage.
Creep
Creep is the gradual increase in strain under sustained load. It increases with higher stress, earlier age at loading, higher w/c, lower humidity and more paste. IS 456 gives creep coefficients of about 2.2 (loading at 7 days), 1.6 (28 days) and 1.1 (1 year). Creep causes long-term deflections and loss of prestress but relieves stress concentrations.
Durability
Durability — ability to resist weathering, chemical attack and abrasion while retaining its properties. Key threats:
IS 456 specifies sampling frequency based on quantity of concrete (e.g. 1 sample for 1–5 m³, 2 for 6–15 m³, 3 for 16–30 m³, 4 for 31–50 m³, and 4 plus one for each additional 50 m³ beyond that); each sample consists of 3 cubes whose average is the test result. Acceptance criteria compare the mean of consecutive results and individual results with the characteristic strength as specified in the code.
Non-destructive tests
Test
Principle / use
Rebound hammer (Schmidt hammer)
Rebound of a spring-driven mass indicates surface hardness → estimated strength, uniformity
Ultrasonic pulse velocity (UPV)
Velocity of ultrasonic pulses indicates quality, uniformity, cracks and voids (higher velocity → better concrete)
Core test
Cores drilled and tested in compression — semi-destructive, reliable in-situ strength
Pull-out, penetration resistance
In-situ strength
Cover meter, half-cell potential, carbonation (phenolphthalein) test
Cover depth, corrosion risk, carbonation depth
Load test
Structural performance
Maturity of concrete
Strength development depends on time and temperature:
M=∑(T+10)Δt(°C⋅hours)
(Nurse–Saul function with a datum temperature of about −10 °C.) Concretes of the same mix with equal maturity have approximately equal strength — useful for estimating strength under different curing temperatures and for steam curing.
Worked examples
✎Worked ExampleExample 1 — nominal mix quantities
Find the materials for 1 m³ of M20 nominal mix concrete (1 : 1.5 : 3), taking a dry volume factor of 1.54.
Solution. Dry volume =1.54 m³; parts =5.5
Cement =1.54/5.5=0.28 m³ → 0.28/0.0347=8.07bags (≈ 403 kg)
Sand =0.28×1.5=0.42m3; coarse aggregate =0.28×3=0.84m3
✎Worked ExampleExample 2 — flexural strength and modulus
For M25 concrete, find the flexural strength and modulus of elasticity as per IS 456.
Adding water on site to improve slump (raises w/c and lowers strength and durability).
Stopping curing after 3 days because the surface looks hard.
Using the Vee-Bee test for high-slump concrete (it suits stiff mixes).
✔Revision SummaryChapter summary
Concrete consists of cement, aggregates, water and admixtures; water quality and grades are specified in IS 456.
Durability requirements set minimum cement content, maximum w/c ratio and minimum grade by exposure.
Good concrete needs proper batching, mixing, transport, placing, compaction and curing.
Fresh concrete workability is measured by slump, compaction factor, Vee-Bee and flow tests; segregation and bleeding must be avoided.
Hardened concrete properties — compressive, tensile and flexural strength, modulus, shrinkage, creep and durability — are assessed by standard, acceptance and non-destructive tests.
Part 5 of 5
Brick Masonry
Last reviewed 16 Sept 2026 · 11 min read
Terms in brickwork
Term
Meaning
Stretcher
Brick laid with its length along the face of the wall (the longer narrow face — the stretcher face — exposed)
Header
Brick laid with its length across the wall (the end face exposed)
Bed
Lower surface of the brick when laid; bed joint — horizontal mortar joint
Frog
Depression on one bed face — laid upwards and filled with mortar
Lap
Horizontal distance by which one brick projects beyond a vertical joint in the course below (commonly one-quarter brick in standard bonds)
Perpend
Vertical joint on the face of a wall — perpends in alternate courses should line up vertically
Closer
A piece of brick cut lengthwise to complete a course or to maintain bond: queen closer (half the width, cut along the length — full length, half width), king closer (one corner cut off diagonally, leaving half header and half stretcher faces), bevelled closer, mitred closer
Bat
A piece of brick cut across its width — half bat, three-quarter bat, bevelled bat
Quoin
External corner of a wall; quoin header/stretcher — brick at the corner
Racking back
Stepping back each course at the end of a wall section being built, so that later work can be bonded in
Toothing
Leaving alternate courses projecting at the end of a wall for future bonding
Squint quoin
Corner that is not a right angle
Course
One horizontal layer of bricks
Rules for bonding
Bond is the arrangement of bricks in successive courses so that vertical joints do not coincide, distributing loads and binding the wall together.
Bricks should be of uniform size; length about twice the width plus one joint.
Lap should be at least one-quarter brick along the length of the wall and half a brick across the thickness.
No continuous vertical joints in the face or within the thickness.
Stretchers are used mainly on the faces; the hearting should be filled with headers as far as possible.
Minimum use of bats; closers are placed next to quoin headers to develop lap.
Vertical joints in alternate courses should be in the same vertical line (perpends).
Each alternate header should be centrally placed over the stretcher below (in appropriate bonds).
Types of bonds
Bond
Arrangement
Use / remarks
Stretcher (running) bond
All bricks laid as stretchers, with half-brick lap in successive courses
Half-brick thick walls — partitions, cavity wall leaves, facing; not for thicker load-bearing walls (no bonding across thickness)
Header bond
All bricks laid as headers with half-width lap (three-quarter bats at quoins in alternate courses)
One-brick thick walls, curved walls (small radius), footings (for load distribution); less attractive for long walls
English bond
Alternate courses of headers and stretchers; a queen closer placed next to the quoin header in each header course; headers centred over stretchers
Strongest bond — load-bearing walls, piers; no continuous vertical joints
Flemish bond
Headers and stretchers alternate in the same course; each header centred over a stretcher of the course below; queen closers next to quoin headers in alternate courses
Better appearance; double Flemish (Flemish on both faces) and single Flemish (Flemish on face, English backing)
English garden wall bond
One course of headers to three to five courses of stretchers
Garden and compound walls (economical, attractive)
Flemish garden wall bond
In each course, one header after three to five stretchers
Garden and boundary walls
Facing bond
Header courses at intervals tying a facing of stretchers to backing
When facing and backing bricks differ in thickness
Raking bond
Bricks laid at an angle in the interior of thick walls — diagonal bond (45° in each direction in alternate courses) and herring-bone bond (V-pattern)
Increases longitudinal strength of thick walls; herring-bone for paving and decorative work
Dutch bond
Modified English bond with three-quarter bats at quoins and no queen closers
Strong corners
Zig-zag bond
Similar to herring-bone with zig-zag pattern
Brick paving, ornamental work
Stack bond
Bricks stacked with continuous vertical joints
Non-load-bearing decorative work (needs reinforcement)
English bond versus Flemish bond
English bond
Flemish bond
Headers and stretchers in alternate courses
Headers and stretchers alternate in every course
Stronger (fewer bats, better bonding through thickness) — preferred for load-bearing walls thicker than one brick
Somewhat weaker for walls thicker than 1½ bricks; uses more brickbats
Less attractive (plain appearance)
Better appearance on the face
Easier to construct; less skilled labour
Needs more skill and care
Economical
Slightly less economical (more cut bricks), but bats can use broken bricks
Construction practice and precautions
Use good-quality bricks (well burnt, uniform); soak bricks in water before use (to prevent absorption of water from mortar) but lay them surface-dry.
Lay bricks with frogs upward on a full bed of mortar; fill all vertical joints ("buttering").
Keep mortar joints uniform — commonly about 10 mm.
Build walls plumb and courses level using a mason's line, spirit level and plumb bob; check with a straight edge.
Raise the wall uniformly along its length; limit the height built in a day (commonly about 1 m or less) to allow mortar to gain strength; use racking back rather than toothing at junctions where possible.
Break joints according to the bond; use closers at quoins; avoid excessive use of bats.
Cure brickwork by keeping it moist (commonly at least 7 days for cement mortar).
Rake joints (about 10–12 mm deep) while mortar is green if the wall is to be plastered or pointed.
Provide holdfasts for door and window frames, and bond walls at junctions.
Protect fresh work from rain, hot sun and frost; do not load newly built walls prematurely.
Leave scaffolding holes only as permitted and fill them afterwards.
Reinforced brick masonry and brick nogging
Reinforced brick masonry (RBM) — steel bars or hoop iron embedded in mortar joints or grouted cores to resist tension, shear and seismic forces — lintels, slabs (reinforced brick concrete), walls in earthquake zones.
Half-brick walls (partitions) are often strengthened with hoop iron or reinforcement in every third or fourth course.
Brick nogging — brickwork filling a framework of timber or concrete posts and rails (panel walls).
Earthquake-resistant masonry — horizontal RCC bands (plinth, lintel, roof bands) and vertical reinforcement at corners and junctions as per IS 4326.
Strength of brickwork
The strength of brick masonry depends on:
Compressive strength of bricks and mortar grade (masonry strength is less than brick strength).
Workmanship — filling of joints, joint thickness (thicker joints reduce strength), wetting of bricks, bond.
Slenderness ratio of walls and columns — effective height (or length) ÷ effective thickness; higher slenderness reduces permissible stress (stress reduction factor).
Eccentricity of loading.
Shape and size of units.
IS 1905 (Code of practice for structural use of unreinforced masonry) gives basic compressive stresses for masonry based on unit strength and mortar type, stress reduction factors for slenderness and eccentricity, area reduction factors, limits on slenderness ratio (commonly up to about 27 for walls in cement or cement–lime mortar), and minimum wall thicknesses.
∑FormulaSlenderness ratio
SR=tefhef
hef = effective height (depends on end restraints — e.g. about 0.75 × clear height when floors restrain the wall at top and bottom); tef = effective thickness.
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