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id="search_in">Search in:</string><string id="check_include">Check to include</string><string id="search">Search...</string><string id="terms">Terms</string><string id="definition">Definition</string><string id="acc_definition">definition</string><string id="acc_resources">resources</string><string id="acc_search_input">search</string><string id="acc_pause">pause</string><string id="acc_play">play</string><string id="acc_replay">replay</string><string id="acc_submit">submit</string><string id="acc_next">next</string><string id="acc_previous">previous</string><string id="acc_volume">volume</string></string_table></string_tables><sounds enabled="false" /><nav_data><outline><links><slidelink slideid="_player.5fdMnRnIpit" displaytext="Untitled Scene" expand="true"><links><slidelink slideid="_player.5fdMnRnIpit.6g5lXrcdCcX" displaytext="Equilibrium" expand="true" /><slidelink slideid="_player.5fdMnRnIpit.6mKxCfyrfdJ" displaytext="Le Chatelier's Principle" expand="true" /><slidelink slideid="_player.5fdMnRnIpit.5XBTLkeBA9n" displaytext="Le Chatelier's Principle: Change in Concentration" expand="true" /><slidelink slideid="_player.5fdMnRnIpit.6XwNol1jyhh" displaytext="Le Chatelier's Principle: Concentration" expand="true" /><slidelink slideid="_player.5fdMnRnIpit.6Vb6sDdMMH6" displaytext="Le Chatelier's Principle: Pressure" expand="true" /><slidelink slideid="_player.5fdMnRnIpit.6HXvSMU1P4w" displaytext="Le Chatelier's Principle: Pressure" expand="true" /><slidelink slideid="_player.5fdMnRnIpit.6HvXevrfv0T" displaytext="Le Chatelier's Principle: Temperature" expand="true" /></links></slidelink></links></outline><search><slidetext slideid="5fdMnRnIpit.6g5lXrcdCcX" slidebank="false">equilibrium </slidetext><slidetext slideid="5fdMnRnIpit.6mKxCfyrfdJ" slidebank="false">le chatelier's principle le chatelier's principle states that if a stress is applied to a system at equilibrium, the equilibrium will shift in such a way to oppose the stress. when we say stress in this case we mean a change in the conditions of the system, such as a change in pressure, temperature, concentration etc.  one way to imagine le chatelier's principle is to imagine you are walking up an escaltor that is moving down.  if you are walking up at  the same rate that the escalator is moving down, you will remain in one place.  in other words, you are at a state of equilibrium. (rate walking  up = rate of escalator down)  continue equilibrium point  if, however the escalator starts moving down at a faster rate (i.e. the system is stressed), you will start to move down the escalator. (rate up &lt; rate down) continue  to counteract the stress, you must increase the speed that you are walking up.  once you have increased your speed to the same speed of the escalator, you will once again remain in place, having established a new equilibrium at a different location. (rate up = rate down) new equilibrium point if, however the escalator starts moving down at a faster rate (i.e. the system is stressed), you will start to move down the escalator. (rate up &lt; rate down) next slide </slidetext><slidetext slideid="5fdMnRnIpit.5XBTLkeBA9n" slidebank="false">le chatelier's principle: change in concentration for a system at equilibrium, when the concentration of the products or reactants is increased, the equilibrium will shift to reduce that concentration increase.  when we say that the equilibrium shifts, we mean that the reaction will proceed in one direction until a new equilibrium is established.  continue  for example, in the following reaction that is in a state of equilibrium: 3h2(g) + n2(g) &lt;--&gt; 2nh3(g) continue  if a stress is introduced to the system, in the form of an increase in concentration of n2, how do you think the reaction will respond to reestablish equilibrium?  continue 3h2(g) + n2(g) &lt;--&gt; 2nh3(g)  when the concentration of one of the reactants (n2) is increased,  le chatelier's principle tells us that the system will respond to reduce that stress.  in this case that means reducing the concentration of n2.  the reaction will shift to the right, producing more nh3 and reducing the concentration of n2.  the reaction will proceed in this way until a new equilibrium is established. continue 3h2(g) + n2(g) &lt;--&gt; 2nh3(g)  when the concentration of one of the reactants (n2) is increased,  le chatelier's principle tells us that the system will respond to reduce that stress.  in this case that means reducing the concentration of n2.  the reaction will shift to the right, producing more nh3 and reducing the concentration of n2.  the reaction will proceed in this way until a new equilibrium is established. next slide </slidetext><slidetext slideid="5fdMnRnIpit.6XwNol1jyhh" slidebank="false">le chatelier's principle: concentration let's take a closer look at the diagram to dissect what happens.  continue  2. the system is stressed by the addition of more n2 which causes its concentration to increase. 2. continue let's take a closer look at the diagram to dissect what happens. 1. the original reaction proceeds until it reaches equilibrium   2. the system is stressed by the addition of more n2 which causes its concentration to increase 3. the system adjusts to the stress to reduce the concentration of n2 by shifting the reaction towards the right.  3. continue let's take a closer look at the diagram to dissect what happens. 1. the original reaction proceeds until it reaches equilibrium   2. the system is stressed by the addition of more n2 which causes its concentration to increase 3. the system adjusts to the stress to reduce the concentration of n2 by shifting the reaction towards the right. 4. the reaction proceeds until a new equilibrium is reached 4. next slide let's take a closer look at the diagram to dissect what happens. 1. the original reaction proceeds until it reaches equilibrium   1. let's take a closer look at the diagram to dissect what happens. 1. the original reaction proceeds until it reaches equilibrium  continue </slidetext><slidetext slideid="5fdMnRnIpit.6Vb6sDdMMH6" slidebank="false">le chatelier's principle: pressure now we will examine how le chatelier's principle would be applied to a change in pressure.  the pressure of a system is related to the volume of the system as well as the number of molecules within the system.  click the buttons below to see how the number of molecules and volume of a system affects pressure  normal pressure higher pressure lower pressure  smaller volume, same number of molecules same volume larger number of molecules higher pressure  same number of molecules, larger volume same volume, fewer molecules lower pressure </slidetext><slidetext slideid="5fdMnRnIpit.6HXvSMU1P4w" slidebank="false">le chatelier's principle: pressure now, lets see how our reaction from earlier will respond to a stress to the system (an increase in pressure). recall our equation:  3h2(g) + n2(g) &lt;--&gt; 2nh3(g) notice that for every 4 moles of reactant molecules (3h2 + 1n2) we have 2 moles of product produced. so, lets consider our system after equilibrium has been reached (note for these examples, each molecule represents 1 mole): continue  3h2(g) + n2(g) &lt;--&gt; 2nh3(g) 18 moles total continue  the volume is decreased, causing an increase in pressure.  how do you think the system will respond?  continue 18 moles total 18 moles total  the reaction shifts to the right, producing more nh3 molecules, this reduces the pressure by lowering the total amount of molecules in the system. 3h2(g) + n2(g) --&gt; 2nh3(g) 14 moles total </slidetext><slidetext slideid="5fdMnRnIpit.6HvXevrfv0T" slidebank="false">le chatelier's principle: temperature what happens to a system at equilibrium if heat is added or removed from the system? to predict how changes in temperature affect a reaction we need to consider the change in enthalpy.  lets go back to our same sample reaction, but  lets write it as a thermochemical equation now. 3h2(g) + n2(g) --&gt; 2nh3(g)     continue  3h2(g) + n2(g) --&gt; 2nh3(g)         δh = -92.58 since the δh is negative, this is an exothermic reaction, therefore when the reaction proceeds to the right, heat is released by the system.  remember though, if we reverse a reaction, we reverse the sign of the δh value, therefore when it proceeds to the left, it is endothermic and therefore absorbs heat. continue  so what do you think will happen if heat is added to the system?  le chatelier's principle tells us the system will react to counteract the stress. continue  the reaction will shift to the left if heat is added because the reverse reaction will act to absorb the added heat and therefore counteract the stress of adding heat to the system.  conversely, if you were to remove heat by cooling the system, the reaction would shift to the right to try to replace the heat that was removed. 3h2(g) + n2(g) &lt;-- 2nh3(g)    so what do you think will happen if heat is added to the system?  le chatelier's principle tells us the system will react to counteract the stress. next slide </slidetext></search></nav_data><resource_data description="&lt;p align='left'&gt;&lt;font face='Articulate' size='11' color='#444444'&gt;Here are some useful links and documents:&lt;/font&gt;&lt;/p&gt;" /><transcript_data /><glossary_data /></bwFrame>