Friday, March 20, 2020

12 Examples of Chemical Energy

12 Examples of Chemical Energy Chemical energy is the energy stored within chemicals, which makes it energy inside atoms and molecules. Most often, its considered the energy of chemical bonds, but the term also includes energy stored in the electron arrangement of atoms and ions. Its a form of potential energy that you wont observe until a reaction occurs. Chemical energy can be changed into other forms of energy through chemical reactions or chemical changes. Energy, often in the form of heat, is absorbed or released when chemical energy is converted to another form. Chemical Energy Examples Chemical energy is a form of potential energy found within chemical bonds, atoms, and subatomic particles.Chemical energy can be observed and measured only when a chemical reaction occurs.Any matter considered to be a fuel contains chemical energy.The energy can be released or absorbed. For example, combustion releases more energy than is needed to initiate the reaction. Photosynthesis absorbs more energy than it releases. Examples of Chemical Energy Basically, any compound contains chemical energy that can be released when its chemical bonds are broken. Any substance that can be used as a fuel contains chemical energy. Examples of matter containing chemical energy include: Coal: Combustion reaction converts chemical energy into light and heat.Wood: Combustion reaction converts chemical energy into light and heat.Petroleum: Can be burned to release light and heat or changed into another form of chemical energy, such as gasoline.Chemical batteries: Store chemical energy to be changed into electricity.Biomass: Combustion reaction converts chemical energy into light and heat.Natural gas: Combustion reaction converts chemical energy into light and heat.Food: Digested to convert chemical energy into other forms of energy used by cells.Cold packs: Chemical energy is absorbed in a reaction.Propane: Burned to produce heat and light.Hot packs: Chemical reaction produces heat or thermal energy.Photosynthesis changes solar energy into chemical energy.Cellular respiration is a set of reactions that changes chemical energy in glucose into chemical energy in ATP, a form our bodies can use. Source Schmidt-Rohr, Klaus. Why Combustions Are Always Exothermic, Yielding About 418 kJ per Mole of O2. Journal of Chemical Education.

Wednesday, March 4, 2020

How to Define Acceleration

How to Define Acceleration Acceleration is the rate of change of velocity as a function of time. It is a vector, meaning that it has both magnitude and direction. It is measured in meters per second squared or meters per second (the objects speed or velocity) per second. In calculus terms, acceleration is the second derivative of position concerning time or, alternately, the first derivative of the velocity concerning time. Acceleration- Change in Speed The everyday experience of acceleration is in a vehicle. You step on the accelerator, and the car speeds up as increasing force is applied to the drive train by the engine. But deceleration is also acceleration - the velocity is changing. If you take your foot off the accelerator, the force decreases and velocity is reduced over time. Acceleration, as heard in ads, follows the rule of the change of speed (miles per hour) over time, such as from zero to 60 miles per hour in seven seconds. Units of Acceleration The SI units for acceleration are m / s2(meters per second squared or  meters per second per second). The gal or galileo (Gal) is a unit of acceleration used in gravimetry but is not an SI unit. It is defined as 1 centimeter per second squared. 1 cm/s2 English units for acceleration are feet per second per second,  ft/s2 The standard acceleration due to gravity, or standard gravity  g0 is the gravitational acceleration of an object in a vacuum near the surface of the earth. It combines the effects of gravity and centrifugal acceleration from the rotation of the Earth. Converting Acceleration Units Value m/s2 1 Gal, or cm/s2 0.01 1 ft/s2 0.304800 1 g0 9.80665 Newtons Second Law- Calculating Acceleration The classical mechanics equation for acceleration comes from Newtons Second Law: The sum of the forces (F) on an object of constant mass (m) is equal to mass m multiplied by the objects acceleration (a). F am Therefore, this can be rearranged to define acceleration as: a F/m The result of this equation is that if no forces are acting on an object (F   0), it will not accelerate. Its speed will remain constant. If mass  is added to the object, the acceleration will be lower. If  mass  is removed from the object, its acceleration will be higher. Newtons Second Law is one of the three laws of motion Isaac Newton published in 1687 in  Philosophià ¦ Naturalis Principia Mathematica (Mathematical Principles of Natural Philosophy).   Acceleration and Relativity While Newtons laws of motion apply at speeds we encounter in daily life, once objects are traveling near the speed of light, the rules change. Thats when Einsteins special theory of relativity is more accurate. The special theory of relativity says it takes more force to result in acceleration as an object approaches the speed of light. Eventually, acceleration becomes vanishingly small and the object never quite achieves the speed of light. Under the theory of general relativity, the principle of equivalence says that gravity and acceleration have identical effects. You dont know whether or not you are accelerating unless you can observe without any forces on you, including gravity.