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class 10
TOPICS
 INTRODUCTION
 CHEMICAL REACTION
 CHEMICAL EQUATION
 TYPES OF CHEMICAL REACTION
 CORROSION
 RANCIDITY
what is a chemical
reactions? Chemical reaction, a process in which one or more
substances, the reactants, are converted to one or more
different substances, the products. Substances are
either chemical elements or compounds.
 Example of chemical reaction in everyday life
I. photosynthesis
II. combustion
III. Respiration
IV. Rust
V. Digestion
VI. Cooking
Identification of
chemical reaction
 It can be determined by 4 factors
i. change in state
ii. change in color
iii. change in gas
iv. change in temp
According to the law of conservation of
mass matter can neither be created
nor be destroyed, & it is discovered by
ANTOINE LAVOISER
What is chemical
equation?
 Symbolic representation of chemical
reaction.
 It can be written in two form word and
formula.
Word form:
magnesium + oxygen magnesium oxide
Formula form:
mg+02 mgo
How to generate chemical
equations?
 Reactants are written in LHS
 Product are written in RHS
 It is used to show direction of reaction:
 “+” is placed between different reactant and
products.
mg+o2 mgo
(reactant) (product)
What are the type of
chemical equations?
 Balanced chemical equation
It is an equation for a chemical reaction in
which the number of atoms for each element in
the reaction and the total charge are the same for
both the reactants and the products.
 Unbalanced chemical equation
It is an equation where the no of atoms for
elements anf their total charge are not equal in
both side.
How to balance a chemical
equation?
 First count the atoms of each element
in the reactants and the products.
 Use coefficients to place them in front
of the compounds as needed.
 3fe+4h2o fe3o4+4h2
Note: It should not alter formula of
compound
it should not alter elements. Eg:
h2o4 ,(h2o)4
What are the type of
chemical reactions?
 Combustion reaction
 Decomposition reaction
 Displacement reaction
 Double-displacement reaction
 Oxidation-reduction reaction
 It involves the breaking &making of bond
between atom & production of new
substance.
Combination reaction
 A reaction in which single product is
formed from 2 or more reactant.
 Cao +H2O(l) –Ca(OH)2(aq)+heat
 Burning of coal:C(s)+O2(g)-CO2(aq)
 Formation of water: H(g) +O2(g)-H2O(l)
 Burning of natural gas:CH4(g)+O2(g)-
CO2(g)+H2O(l)
Decomposition reaction
 The reaction in which single reactant break down
to form simpler product
 CaCo3 Cao(s)+Co2(g);(in cement)
 Thermal decomposition-carried in presence of
heat.
 2Agcl(s) 2Ag(s)+cl2(g)
(sunlight) (grey)
used in white and black photography.
What are the types of
decomposition reaction?
 There are 3 types:
 Thermal decomposition or thermolysis
 Electrolytic decomposition or electrolysis
 Photodecomposition or photolysis
ELECTROLYTIC
DECOMPOSITION
 It results when an electric current passes through
an aqueous solution.
 Uses of electrolytic decomposition:
 electrolysis of water is the decomposition of
water into oxygen and hydrogen gas due to an
electric current
 When we pass electricity in a solution of NaCl and
water NaCl is broken in ions. current being passed
through the water.
Thermal decomposition
 The break down of a substance into other simpler
substances under the effect of heat is
called thermal decomposition.
 The reaction is usually endothermic as heat is
required to break chemical bonds in the compound
undergoing decomposition.
PHOTODECOMPOSITION
Photodecomposition reaction is one in which the
compound breaks when a light of suitable wavelength
falls over it .
For example :
when Silver Chloride is exposed to sunlight , it
decomposes to form silver metal and chlorine gas
DISPLACEMENT REACTION
 A displacement reaction is a type
of reaction in which part of one reactant is
replaced by another reactant.
 A displacement reaction is also known as
a replacement reaction or a metathesis
reaction.
 There are two types of displacement
reaction.
What are type of
displacement reaction?
 Single displacement reaction
These are the reactions where one reactant replaces
part of the other:
AB + C → AC + B
eg: Fe + CuSO4 → FeSO4 + Cu
 Double displacement reaction
These are reactions where the cations and anions in
the reactants switch partners to form products:
AB + CD → AD + c
eg: AgNO3 + NaCl → AgCl + NaNO3
REDOX REACTION
 A redox (or oxidation-reduction) reaction is a type
of chemical reaction that involves a transfer of
electrons between two specie
 It involves two terms:
oxidation- gain of oxygen or loss of hydrogen
Reduction- gain of hydrogen or loss of oxygen
Cuo+H2 Cu+H2O
 There are two types of agent:
oxidizing agent
Reducing agent
REDOX
 Oxidizing agent:
It is the substance which give oxygen or gain
hydrogen.
It can also be termed as it reduces itself and
oxidized other.
 Reducing agent:
It is the substance which gain oxygen or give
hydrogen.
It can also be termed as it oxidizes itself and
reduced other.
What is corrosion?
 Corrosion is a process through which metals in
manufactured states return to their natural oxidation
states.
 This process is a reduction-oxidation reaction in which
the metal is being oxidized by its surroundings.
 RUST-It is red or orange coating form on the surface of
iron.
The chemical mechanism of corrosion is “OXIDATION”.
What is rancidity?
 It is generally known as oxidation of fats.
 It is caused by a biochemical reaction between
fats and oxygen
 In this process the long-chain fatty acids are
degraded and short-chain compounds are
formed.
 Cause:
oxidation in food items.
What are the effects of
rancidity?
 accelerated aging,
 tissue damage
 development of cancer diabetes
 Alzheimer's disease.
 reduces the nutritional
value of the food product.

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Chemical reactions and equations

  • 2. TOPICS  INTRODUCTION  CHEMICAL REACTION  CHEMICAL EQUATION  TYPES OF CHEMICAL REACTION  CORROSION  RANCIDITY
  • 3. what is a chemical reactions? Chemical reaction, a process in which one or more substances, the reactants, are converted to one or more different substances, the products. Substances are either chemical elements or compounds.  Example of chemical reaction in everyday life I. photosynthesis II. combustion III. Respiration IV. Rust V. Digestion VI. Cooking
  • 4. Identification of chemical reaction  It can be determined by 4 factors i. change in state ii. change in color iii. change in gas iv. change in temp According to the law of conservation of mass matter can neither be created nor be destroyed, & it is discovered by ANTOINE LAVOISER
  • 5. What is chemical equation?  Symbolic representation of chemical reaction.  It can be written in two form word and formula. Word form: magnesium + oxygen magnesium oxide Formula form: mg+02 mgo
  • 6. How to generate chemical equations?  Reactants are written in LHS  Product are written in RHS  It is used to show direction of reaction:  “+” is placed between different reactant and products. mg+o2 mgo (reactant) (product)
  • 7. What are the type of chemical equations?  Balanced chemical equation It is an equation for a chemical reaction in which the number of atoms for each element in the reaction and the total charge are the same for both the reactants and the products.  Unbalanced chemical equation It is an equation where the no of atoms for elements anf their total charge are not equal in both side.
  • 8. How to balance a chemical equation?  First count the atoms of each element in the reactants and the products.  Use coefficients to place them in front of the compounds as needed.  3fe+4h2o fe3o4+4h2 Note: It should not alter formula of compound it should not alter elements. Eg: h2o4 ,(h2o)4
  • 9. What are the type of chemical reactions?  Combustion reaction  Decomposition reaction  Displacement reaction  Double-displacement reaction  Oxidation-reduction reaction  It involves the breaking &making of bond between atom & production of new substance.
  • 10. Combination reaction  A reaction in which single product is formed from 2 or more reactant.  Cao +H2O(l) –Ca(OH)2(aq)+heat  Burning of coal:C(s)+O2(g)-CO2(aq)  Formation of water: H(g) +O2(g)-H2O(l)  Burning of natural gas:CH4(g)+O2(g)- CO2(g)+H2O(l)
  • 11. Decomposition reaction  The reaction in which single reactant break down to form simpler product  CaCo3 Cao(s)+Co2(g);(in cement)  Thermal decomposition-carried in presence of heat.  2Agcl(s) 2Ag(s)+cl2(g) (sunlight) (grey) used in white and black photography.
  • 12. What are the types of decomposition reaction?  There are 3 types:  Thermal decomposition or thermolysis  Electrolytic decomposition or electrolysis  Photodecomposition or photolysis
  • 13. ELECTROLYTIC DECOMPOSITION  It results when an electric current passes through an aqueous solution.  Uses of electrolytic decomposition:  electrolysis of water is the decomposition of water into oxygen and hydrogen gas due to an electric current  When we pass electricity in a solution of NaCl and water NaCl is broken in ions. current being passed through the water.
  • 14. Thermal decomposition  The break down of a substance into other simpler substances under the effect of heat is called thermal decomposition.  The reaction is usually endothermic as heat is required to break chemical bonds in the compound undergoing decomposition.
  • 15. PHOTODECOMPOSITION Photodecomposition reaction is one in which the compound breaks when a light of suitable wavelength falls over it . For example : when Silver Chloride is exposed to sunlight , it decomposes to form silver metal and chlorine gas
  • 16. DISPLACEMENT REACTION  A displacement reaction is a type of reaction in which part of one reactant is replaced by another reactant.  A displacement reaction is also known as a replacement reaction or a metathesis reaction.  There are two types of displacement reaction.
  • 17. What are type of displacement reaction?  Single displacement reaction These are the reactions where one reactant replaces part of the other: AB + C → AC + B eg: Fe + CuSO4 → FeSO4 + Cu  Double displacement reaction These are reactions where the cations and anions in the reactants switch partners to form products: AB + CD → AD + c eg: AgNO3 + NaCl → AgCl + NaNO3
  • 18. REDOX REACTION  A redox (or oxidation-reduction) reaction is a type of chemical reaction that involves a transfer of electrons between two specie  It involves two terms: oxidation- gain of oxygen or loss of hydrogen Reduction- gain of hydrogen or loss of oxygen Cuo+H2 Cu+H2O  There are two types of agent: oxidizing agent Reducing agent
  • 19. REDOX  Oxidizing agent: It is the substance which give oxygen or gain hydrogen. It can also be termed as it reduces itself and oxidized other.  Reducing agent: It is the substance which gain oxygen or give hydrogen. It can also be termed as it oxidizes itself and reduced other.
  • 20. What is corrosion?  Corrosion is a process through which metals in manufactured states return to their natural oxidation states.  This process is a reduction-oxidation reaction in which the metal is being oxidized by its surroundings.  RUST-It is red or orange coating form on the surface of iron. The chemical mechanism of corrosion is “OXIDATION”.
  • 21. What is rancidity?  It is generally known as oxidation of fats.  It is caused by a biochemical reaction between fats and oxygen  In this process the long-chain fatty acids are degraded and short-chain compounds are formed.  Cause: oxidation in food items.
  • 22. What are the effects of rancidity?  accelerated aging,  tissue damage  development of cancer diabetes  Alzheimer's disease.  reduces the nutritional value of the food product.