h1. Rapid Mix Chamber Design Program


h2. Introduction

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The AguaClara team is making changes in the arrangement of the Rapid Mix system.&nbsp; This page will document and describe the current changes in the Rapid Mix system and the algorithm for preparing an AutoCADD drawing of the Rapid Mix system.&nbsp;

The suspended particles in the water are removed through a process known as sedimentation.&nbsp; The rate of sedimentation is increased by increasing the diameter of the particles through sticking them together.&nbsp; This is done in a process known as flocculation.&nbsp;Alum is the coagulant of choice used to cause the particles to undergo flocculation.&nbsp; This has to be done rapidly as to ensure the aluminum sulfate does not precipitate before it can be used by the particles.&nbsp; We also need even distribution of alum to the molecular level.&nbsp;

The rapid mix system is designed to accomplish this.&nbsp; The rapid mix design consists of piping leading from the entrance tank to the flocculator entrance.&nbsp; The piping contains two orifices.&nbsp; One orifice is for macro-mixing and the other orifice is for micro-mixing.&nbsp; The orifices decrease the cross sectional area of the flow allowing for a higher velocity and thus turbulence.&nbsp; Turbulence, measured in energy dissipation rate, is associated with the formation of eddies which mix the alum to the length scale at which viscosity overrides the formation of eddies with a larger energy dissipation rate being associated with a smaller eddies.&nbsp; The length scale at which the eddies can mix the alum to is known as the Kolmogorov length scale.&nbsp;

There are two main forms of mixing.&nbsp; One is macro-mixing and the other is micro-mixing.&nbsp; Macro-mixing mixes the alum to the length scale at which micro-mixing can start.&nbsp; Micro-mixing distributes the eddies to the length scale that molecular diffusion can finish the task.&nbsp;

h4.


h2. Design Algorithm


[Design Assumptions Design Program]<!--  /* Font Definitions */  @font-face 	{font-family:"Cambria Math"; 	panose-1:2 4 5 3 5 4 6 3 2 4; 	mso-font-charset:0; 	mso-generic-font-family:roman; 	mso-font-pitch:variable; 	mso-font-signature:-1610611985 1107304683 0 0 159 0;} @font-face 	{font-family:Calibri; 	panose-1:2 15 5 2 2 2 4 3 2 4; 	mso-font-charset:0; 	mso-generic-font-family:swiss; 	mso-font-pitch:variable; 	mso-font-signature:-1610611985 1073750139 0 0 159 0;}  /* Style Definitions */  p.MsoNormal, li.MsoNormal, div.MsoNormal 	{mso-style-unhide:no; 	mso-style-qformat:yes; 	mso-style-parent:""; 	margin-top:0in; 	margin-right:0in; 	margin-bottom:10.0pt; 	margin-left:0in; 	line-height:115%; 	mso-pagination:widow-orphan; 	font-size:11.0pt; 	font-family:"Calibri","sans-serif"; 	mso-ascii-font-family:Calibri; 	mso-ascii-theme-font:minor-latin; 	mso-fareast-font-family:Calibri; 	mso-fareast-theme-font:minor-latin; 	mso-hansi-font-family:Calibri; 	mso-hansi-theme-font:minor-latin; 	mso-bidi-font-family:"Times New Roman"; 	mso-bidi-theme-font:minor-bidi;} .MsoChpDefault 	{mso-style-type:export-only; 	mso-default-props:yes; 	mso-ascii-font-family:Calibri; 	mso-ascii-theme-font:minor-latin; 	mso-fareast-font-family:Calibri; 	mso-fareast-theme-font:minor-latin; 	mso-hansi-font-family:Calibri; 	mso-hansi-theme-font:minor-latin; 	mso-bidi-font-family:"Times New Roman"; 	mso-bidi-theme-font:minor-bidi;} .MsoPapDefault 	{mso-style-type:export-only; 	margin-bottom:10.0pt; 	line-height:115%;} @page Section1 	{size:8.5in 11.0in; 	margin:1.0in 1.0in 1.0in 1.0in; 	mso-header-margin:.5in; 	mso-footer-margin:.5in; 	mso-paper-source:0;} div.Section1 	{page:Section1;} -->In the current design, we have two orifices on the same pipe segment.&nbsp; The micro-mixing orifice is two pipe diameters below the macro-mixing orifice.&nbsp; This ensures adequate mixing time for macro-mixing to take effect.&nbsp; The orifices for both equations are sized using the equations of minor loss coefficient for a submerged orifice.&nbsp;

Research has estimated that for a macro-mixing orifice, we should have&nbsp;&nbsp; a minor loss coefficient of 1.3.&nbsp; This is what we are using for our design.&nbsp; In the case of the micro-mixing orifice, we should strive for an energy dissipation rate of 1 W/kg.&nbsp; In the future we plan to use the micro-mixing orifice as a flow measurement device and allow the orifice to have a head loss of 20-50 cm.&nbsp; From here, we derive the orifice size.&nbsp;

In the case of a macro-mixing orifice, each pipe diameter allows for one orifice size.&nbsp; An increase in flow-rates will give the macro-mixing orifice a significant head loss.&nbsp; In the algorithm, if there is significant head loss (2 cm or above), then the piping is upgraded to the next size.&nbsp;

h3.