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Find: Saturation, S 11% d=2.8 [in] 17% 23% 83% L=5.5 [in] clay
Wtotal=2.58 [lb] SG=2.75 wc=15% Find the saturation of the sample of clay. In this problem,
![Find: Saturation, S 11% d=2.8 [in] 17% 23% 83% L=5.5 [in] clay](http://slideplayer.com/slide/16419528/96/images/1/Find%3A+Saturation%2C+S+11%25+d%3D2.8+%5Bin%5D+17%25+23%25+83%25+L%3D5.5+%5Bin%5D+clay.jpg "Wtotal=2.58 [lb] SG=2.75. wc=15% Find the saturation of the sample of clay. In this problem,")
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Find: Saturation, S 11% d=2.8 [in] 17% 23% 83% L=5.5 [in] clay
Wtotal=2.58 [lb] SG=2.75 wc=15% a cylindrical sample of clay is provided with it’s known dimensions,
![Find: Saturation, S 11% d=2.8 [in] 17% 23% 83% L=5.5 [in] clay](http://slideplayer.com/slide/16419528/96/images/2/Find%3A+Saturation%2C+S+11%25+d%3D2.8+%5Bin%5D+17%25+23%25+83%25+L%3D5.5+%5Bin%5D+clay.jpg "Wtotal=2.58 [lb] SG=2.75. wc=15% a cylindrical sample of clay is provided with it’s known dimensions,")
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Find: Saturation, S 11% d=2.8 [in] 17% 23% 83% L=5.5 [in] clay
Wtotal=2.58 [lb] SG=2.75 wc=15% as well as it’s total weight, specific gravity and water content.
![Find: Saturation, S 11% d=2.8 [in] 17% 23% 83% L=5.5 [in] clay](http://slideplayer.com/slide/16419528/96/images/3/Find%3A+Saturation%2C+S+11%25+d%3D2.8+%5Bin%5D+17%25+23%25+83%25+L%3D5.5+%5Bin%5D+clay.jpg "Wtotal=2.58 [lb] SG=2.75. wc=15% as well as it’s total weight, specific gravity and water content.")
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Find: Saturation, S VW S= VV d=2.8 [in] L=5.5 [in] clay
Wtotal=2.58 [lb] SG=2.75 wc=15% Saturation is defined as the volume of water divided by the volume of voids. To solve for these two variables,
![Find: Saturation, S VW S= VV d=2.8 [in] L=5.5 [in] clay](http://slideplayer.com/slide/16419528/96/images/4/Find%3A+Saturation%2C+S+VW+S%3D+VV+d%3D2.8+%5Bin%5D+L%3D5.5+%5Bin%5D+clay.jpg "Wtotal=2.58 [lb] SG=2.75. wc=15% Saturation is defined as the volume of water divided by the volume of voids. To solve for these two variables,")
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Find: Saturation, S clay A W S Wtotal=2.58 [lb] SG=2.75 wc=15%
V [ft3] W [lb] we’ll need to set up a block block diagram for the sample of clay. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![Find: Saturation, S clay A W S Wtotal=2.58 [lb] SG=2.75 wc=15%](http://slideplayer.com/slide/16419528/96/images/5/Find%3A+Saturation%2C+S+clay+A+W+S+Wtotal%3D2.58+%5Blb%5D+SG%3D2.75+wc%3D15%25.jpg "V [ft3] W [lb] we’ll need to set up a block block diagram for the sample of clay. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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Find: Saturation, S clay A W S 2.58 Wtotal=2.58 [lb] SG=2.75 wc=15%
V [ft3] W [lb] 2.58 We were given the total weight is 2.58 pounds. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![Find: Saturation, S clay A W S 2.58 Wtotal=2.58 [lb] SG=2.75 wc=15%](http://slideplayer.com/slide/16419528/96/images/6/Find%3A+Saturation%2C+S+clay+A+W+S+2.58+Wtotal%3D2.58+%5Blb%5D+SG%3D2.75+wc%3D15%25.jpg "V [ft3] W [lb] We were given the total weight is 2.58 pounds. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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Find: Saturation, S clay π * d2 VT = L * A 4 W S 2.58 Wtotal=2.58 [lb]
V [ft3] W [lb] π * d2 VT = L * 4 2.58 and, we can calculate the total volume by knowing, the cylinder’s length and diameter. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![Find: Saturation, S clay π * d2 VT = L * A 4 W S 2.58 Wtotal=2.58 [lb]](http://slideplayer.com/slide/16419528/96/images/7/Find%3A+Saturation%2C+S+clay+%CF%80+%2A+d2+VT+%3D+L+%2A+A+4+W+S+2.58+Wtotal%3D2.58+%5Blb%5D.jpg "V [ft3] W [lb] π * d2. VT = L * and, we can calculate the total volume by knowing, the cylinder’s length and diameter. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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Find: Saturation, S clay π * d2 VT = L * A 4 W S VT = 0.0196 [ft3]
V [ft3] W [lb] π * d2 VT = L * 4 VT = [ft3] 0.0196 2.58 The total volume of the sample is cubic feet. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![Find: Saturation, S clay π * d2 VT = L * A 4 W S VT = [ft3]](http://slideplayer.com/slide/16419528/96/images/8/Find%3A+Saturation%2C+S+clay+%CF%80+%2A+d2+VT+%3D+L+%2A+A+4+W+S+VT+%3D+%5Bft3%5D.jpg "V [ft3] W [lb] π * d2. VT = L * 4. VT = [ft3] The total volume of the sample is cubic feet. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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Find: Saturation, S clay A W S 0.0196 2.58 Wtotal=2.58 [lb]
V [ft3] W [lb] 0.0196 2.58 Since we know the weight of air is zero, and we know the total weight, clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![Find: Saturation, S clay A W S Wtotal=2.58 [lb]](http://slideplayer.com/slide/16419528/96/images/9/Find%3A+Saturation%2C+S+clay+A+W+S+Wtotal%3D2.58+%5Blb%5D.jpg "V [ft3] W [lb] Since we know the weight of air is zero, and we know the total weight, clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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Find: Saturation, S clay wc= A W S WW WS 0.0196 2.58 Wtotal=2.58 [lb]
V [ft3] W [lb] wc= WW WS WW WS 0.0196 2.58 we can use the water content to solve for the weight of water and weight of solid. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![Find: Saturation, S clay wc= A W S WW WS Wtotal=2.58 [lb]](http://slideplayer.com/slide/16419528/96/images/10/Find%3A+Saturation%2C+S+clay+wc%3D+A+W+S+WW+WS+Wtotal%3D2.58+%5Blb%5D.jpg "V [ft3] W [lb] wc= WW. WS. WW. WS we can use the water content to solve for the weight of water and weight of solid. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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Find: Saturation, S clay wc= A W WW=wc * WS S WW WS 0.0196 2.58
V [ft3] W [lb] wc= WW WS WW=wc * WS WW WS 0.0196 2.58 The weight of water is 15% the weight of the solid. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find: Saturation, S clay wc= A W WW=wc * WS S WW=0.15 * WS WW WS
V [ft3] W [lb] wc= WW WS WW=wc * WS WW WW=0.15 * WS WS 0.0196 2.58 We also know --- clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find: Saturation, S clay wc= A W WW=wc * WS S WW=0.15 * WS
V [ft3] W [lb] wc= WW WS WW=wc * WS WW WW=0.15 * WS WS WT = WW + WS 0.0196 2.58 the total weight equals the weight of water plus the weight of solid. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find: Saturation, S clay wc= A W WW=wc * WS S WW=0.15 * WS
V [ft3] W [lb] wc= WW WS WW=wc * WS WW WW=0.15 * WS WS WT = WW + WS 0.0196 2.58 WS = WT - WW Rearranging the equation, clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find: Saturation, S clay wc= A W WW=wc * WS S WW=0.15 * WS
V [ft3] W [lb] wc= WW WS WW=wc * WS WW WW=0.15 * WS WS WT = WW + WS 0.0196 2.58 WS = WT - WW the weight of solid is 2.58 pounds minus the weight of water. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find: Saturation, S clay wc= A W WW=wc * WS S WW=0.15 * WS
V [ft3] W [lb] wc= WW WS WW=wc * WS WW WW=0.15 * WS WS WT = WW + WS 0.0196 2.58 WS = WT - WW If we plug this into a previous equation and skip a couple steps of algebra, WS = 2.58 [lb] - WW clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find: Saturation, S clay wc= A W WW=wc * WS S WW=0.15 * WS
V [ft3] W [lb] wc= WW WS WW=wc * WS 0.337 WW=0.15 * WS WS WT = WW + WS 0.0196 2.58 WS = WT - WW we find the weight of water is pounds. WS = 2.58 [lb] - WW clay Wtotal=2.58 [lb] SG=2.75 wc=15% 1.15 * WW = [lb] WW = [lb] L=5.5 [in] d=2.8 [in]
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Find: Saturation, S clay wc= A W WW=wc * WS S WW=0.15 * WS
V [ft3] W [lb] wc= WW WS WW=wc * WS 0.337 WW=0.15 * WS 2.243 WT = WW + WS 0.0196 2.58 WS = WT - WW And by quick subtraction, the weight of solids is pounds. [pause] WS = 2.58 [lb] - WW clay Wtotal=2.58 [lb] SG=2.75 wc=15% 1.15 * WW = [lb] WW = [lb] WS = [lb] L=5.5 [in] d=2.8 [in]
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γS Find: Saturation, S clay A W S WS VS= VA VW 0.337 VS 2.243 0.0196
V [ft3] W [lb] WS VS= γS VA VW 0.337 VS 2.243 0.0196 2.58 Next, we solve for the volumes of air, water and solid. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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γS γW Find: Saturation, S clay A W S WS 2.243 [lb] VS= = VA 62.4 VW
V [ft3] W [lb] WS 2.243 [lb] VS= γS = VA lb 62.4 *2.75 ft3 γW VW 0.337 VS 2.243 0.0196 2.58 The volume of solid is the weight of solid divided the unit weigh of solid, clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![γS γW Find: Saturation, S clay A W S WS [lb] VS= = VA 62.4 VW](http://slideplayer.com/slide/16419528/96/images/20/%CE%B3S+%CE%B3W+Find%3A+Saturation%2C+S+clay+A+W+S+WS+%5Blb%5D+VS%3D+%3D+VA+62.4+VW.jpg "V [ft3] W [lb] WS [lb] VS= γS. = VA. lb *2.75. ft3. γW. VW VS The volume of solid is the weight of solid divided the unit weigh of solid, clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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γS γW Find: Saturation, S clay A W S WS 2.243 [lb] VS= = VA 62.4 VW
V [ft3] W [lb] WS 2.243 [lb] VS= γS = VA lb 62.4 *2.75 ft3 γW VW 0.337 VS= [ft3] VS 2.243 0.0196 2.58 and equals cubic feet. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![γS γW Find: Saturation, S clay A W S WS [lb] VS= = VA 62.4 VW](http://slideplayer.com/slide/16419528/96/images/21/%CE%B3S+%CE%B3W+Find%3A+Saturation%2C+S+clay+A+W+S+WS+%5Blb%5D+VS%3D+%3D+VA+62.4+VW.jpg "V [ft3] W [lb] WS [lb] VS= γS. = VA. lb *2.75. ft3. γW. VW VS= [ft3] VS and equals cubic feet. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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γS γW γW Find: Saturation, S clay A W S WS 2.243 [lb] VS= = VA 62.4 VW
V [ft3] W [lb] WS 2.243 [lb] VS= γS = VA lb 62.4 *2.75 ft3 γW VW 0.337 VS= [ft3] 0.0131 2.243 WW 0.337 [lb] VW= γW = 0.0196 2.58 lb 62.4 The volume of water is solved much the same, ft3 clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
![γS γW γW Find: Saturation, S clay A W S WS [lb] VS= = VA 62.4 VW](http://slideplayer.com/slide/16419528/96/images/22/%CE%B3S+%CE%B3W+%CE%B3W+Find%3A+Saturation%2C+S+clay+A+W+S+WS+%5Blb%5D+VS%3D+%3D+VA+62.4+VW.jpg "V [ft3] W [lb] WS [lb] VS= γS. = VA. lb *2.75. ft3. γW. VW VS= [ft3] WW [lb] VW= γW. = lb The volume of water is solved much the same, ft3. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]")
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γS γW γW Find: Saturation, S clay A W S WS 2.243 [lb] VS= = VA 62.4 VW
V [ft3] W [lb] WS 2.243 [lb] VS= γS = VA lb 62.4 *2.75 ft3 γW VW 0.337 VS= [ft3] 0.0131 2.243 WW 0.337 [lb] VW= γW = 0.0196 2.58 lb 62.4 and equals cubic feet. ft3 clay Wtotal=2.58 [lb] SG=2.75 wc=15% VW= [ft3] L=5.5 [in] d=2.8 [in]
![γS γW γW Find: Saturation, S clay A W S WS [lb] VS= = VA 62.4 VW](http://slideplayer.com/slide/16419528/96/images/23/%CE%B3S+%CE%B3W+%CE%B3W+Find%3A+Saturation%2C+S+clay+A+W+S+WS+%5Blb%5D+VS%3D+%3D+VA+62.4+VW.jpg "V [ft3] W [lb] WS [lb] VS= γS. = VA. lb *2.75. ft3. γW. VW VS= [ft3] WW [lb] VW= γW. = lb and equals cubic feet. ft3. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% VW= [ft3] L=5.5 [in] d=2.8 [in]")
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γS γW γW Find: Saturation, S clay A W S WS 2.243 [lb] VS= = VA 62.4
V [ft3] W [lb] WS 2.243 [lb] VS= γS = VA lb 62.4 *2.75 ft3 γW 0.0054 0.337 VS= [ft3] 0.0131 2.243 WW 0.337 [lb] VW= γW = 0.0196 2.58 lb 62.4 The volume of air is the total volume minus the volume of solid minus the volume of water, ft3 clay Wtotal=2.58 [lb] SG=2.75 wc=15% VW= [ft3] VA = VT - VS - VW L=5.5 [in] d=2.8 [in]
![γS γW γW Find: Saturation, S clay A W S WS [lb] VS= = VA 62.4](http://slideplayer.com/slide/16419528/96/images/24/%CE%B3S+%CE%B3W+%CE%B3W+Find%3A+Saturation%2C+S+clay+A+W+S+WS+%5Blb%5D+VS%3D+%3D+VA+62.4.jpg "V [ft3] W [lb] WS [lb] VS= γS. = VA. lb *2.75. ft3. γW VS= [ft3] WW [lb] VW= γW. = lb The volume of air is the total volume minus the volume of solid minus the volume of water, ft3. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% VW= [ft3] VA = VT - VS - VW. L=5.5 [in] d=2.8 [in]")
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γS γW γW Find: Saturation, S clay A W S WS 2.243 [lb] VS= = VA 62.4
V [ft3] W [lb] WS 2.243 [lb] VS= γS = VA lb 62.4 *2.75 ft3 γW 0.0054 0.337 VS= [ft3] 0.0131 2.243 WW 0.337 [lb] VW= γW = 0.0196 2.58 lb 62.4 and equals cubic feet. ft3 clay Wtotal=2.58 [lb] SG=2.75 wc=15% VW= [ft3] VA = VT - VS - VW VA = [ft3] L=5.5 [in] d=2.8 [in]
![γS γW γW Find: Saturation, S clay A W S WS [lb] VS= = VA 62.4](http://slideplayer.com/slide/16419528/96/images/25/%CE%B3S+%CE%B3W+%CE%B3W+Find%3A+Saturation%2C+S+clay+A+W+S+WS+%5Blb%5D+VS%3D+%3D+VA+62.4.jpg "V [ft3] W [lb] WS [lb] VS= γS. = VA. lb *2.75. ft3. γW VS= [ft3] WW [lb] VW= γW. = lb and equals cubic feet. ft3. clay. Wtotal=2.58 [lb] SG=2.75 wc=15% VW= [ft3] VA = VT - VS - VW. VA = [ft3] L=5.5 [in] d=2.8 [in]")
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Find: Saturation, S VW S= VV clay A W S 0.0011 0.0054 0.337 0.0131
V [ft3] W [lb] VW S= 0.0011 VV 0.0054 0.337 0.0131 2.243 0.0196 2.58 With our block diagram solved, we can compute the saturation of the soil. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find:Saturation, S VW VW S= = VV VW+VA clay A W S 0.0011 0.0054 0.337
V [ft3] W [lb] VW VW S= = 0.0011 VV VW+VA 0.0054 0.337 0.0131 2.243 0.0196 2.58 After plugging in the appropriate values, clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find:Saturation, S VW VW S= = VV VW+VA S = 83.1% clay A W S 0.0011
V [ft3] W [lb] VW VW S= = 0.0011 VV VW+VA 0.0054 0.337 S = 83.1% 0.0131 2.243 0.0196 2.58 we find the saturation is 83.1 percent. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find:Saturation, S VW VW S= = VV VW+VA S = 83.1% clay A W S 0.0011
V [ft3] W [lb] VW VW S= = 0.0011 VV VW+VA 0.0054 0.337 S = 83.1% 0.0131 2.243 0.0196 2.58 11% 17% 23% 83% When reviewing the possible solutions, clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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Find:Saturation, S VW VW S= = VV VW+VA S = 83.1% AnswerD clay A W S
V [ft3] W [lb] VW VW S= = 0.0011 VV VW+VA 0.0054 0.337 S = 83.1% 0.0131 2.243 AnswerD 0.0196 2.58 11% 17% 23% 83% the answer is D. clay Wtotal=2.58 [lb] SG=2.75 wc=15% L=5.5 [in] d=2.8 [in]
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( ) ? τ [lb/ft2] γclay=53.1[lb/ft3] Index σ’v = Σ φ γ Δ d ˚ H*C σfinal
wc= WW WS 1 Index γclay=53.1[lb/ft3] Find: σ’v ρc d = 30 feet (1+wc)*γw wc+(1/SG) σ’v = Σ φ γ Δ d ˚ d Sand 10 ft γT=100 [lb/ft3] 100 [lb/ft3] φ=α1-α2 10 [ft] 20 ft Clay = γsand dsand +γclay dclay A W S V [ft3] W [lb] 40 ft text wc = 37% ? Δh 20 [ft] τ [lb/ft2] 62.4 lb ft3 27 yd3 ft3 (5 [cm])2 * π/4 ( ) H*C σfinal ρcn= 1+e σinitial log ‘ φ size[mm] % passing 0% 20% 40% 60% 80% 100% 10 1 0.1 0.01 c=0 400 1,400 σ3 Sand σ1
![( ) τ [lb/ft2] γclay=53.1[lb/ft3] Index σ’v = Σ φ γ Δ d ˚ H*C σfinal](http://slideplayer.com/slide/16419528/96/images/31/%28+%29+%CF%84+%5Blb%2Fft2%5D+%CE%B3clay%3D53.1%5Blb%2Fft3%5D+Index+%CF%83%E2%80%99v+%3D+%CE%A3+%CF%86+%CE%B3+%CE%94+d+%CB%9A+H%2AC+%CF%83final.jpg "wc= WW. WS. 1. Index. γclay=53.1[lb/ft3] Find: σ’v ρc d = 30 feet. (1+wc)*γw. wc+(1/SG) σ’v = Σ φ γ Δ d ˚ d. Sand. 10 ft. γT=100 [lb/ft3] 100 [lb/ft3] φ=α1-α2. 10 [ft] 20 ft. Clay. = γsand dsand. +γclay dclay. A. W. S. V [ft3] W [lb] 40 ft. text. wc = 37% Δh. 20 [ft] τ [lb/ft2] lb. ft yd3. ft3. (5 [cm])2 * π/4. ( ) H*C σfinal. ρcn= 1+e σinitial. log. ‘ φ. size[mm] % passing. 0% 20% 40% 60% 80% 100% c= ,400. σ3. Sand. σ1.")
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