Foreword |
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xv | |
Preface |
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xvi | |
Design in Industry: CAE in Action: Skate Blades on the Cutting Edge |
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xxi | |
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Introduction to Graphics Communication and Sketching |
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1 | (72) |
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1 | (1) |
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2 | (2) |
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The Importance of Graphics in the Design Process |
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4 | (4) |
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5 | (2) |
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7 | (1) |
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7 | (1) |
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The Traditional Design Process |
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8 | (1) |
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The Design Process Using Concurrent Engineering |
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9 | (2) |
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Standards and Conventions |
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11 | (1) |
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12 | (1) |
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12 | (1) |
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Specialists and Technical Drawings |
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13 | (1) |
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13 | (14) |
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14 | (1) |
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Historical Highlight Leonardo da Vinci |
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15 | (1) |
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16 | (1) |
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17 | (1) |
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17 | (2) |
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Mechanical Engineer's Scale |
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19 | (4) |
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23 | (1) |
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24 | (1) |
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25 | (1) |
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26 | (1) |
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27 | (1) |
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27 | (2) |
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3-D Modeling Project Chapter 1: Stapler Modeling Project |
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28 | (1) |
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29 | (1) |
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29 | (1) |
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Computer-Aided Drawing Tools |
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29 | (3) |
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32 | (4) |
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35 | (1) |
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36 | (1) |
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36 | (9) |
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Seeing, Imaging, Representing |
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37 | (1) |
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38 | (2) |
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40 | (1) |
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40 | (1) |
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40 | (3) |
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43 | (2) |
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Proportions and Construction Lines |
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45 | (4) |
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49 | (6) |
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49 | (1) |
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50 | (1) |
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50 | (3) |
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53 | (2) |
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55 | (1) |
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56 | (17) |
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Design Case Study 3-D Design Pays Off for Bose Corporation |
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57 | (1) |
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58 | (1) |
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58 | (1) |
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59 | (1) |
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Design in Industry Virtual Reality Changes the Face of Design |
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59 | (1) |
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60 | (12) |
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72 | (1) |
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The Engineering Design Process |
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73 | (61) |
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73 | (1) |
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74 | (2) |
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The Engineering Design Process |
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76 | (8) |
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Traditional Engineering Design |
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77 | (1) |
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Concurrent Engineering Design |
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77 | (1) |
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Collaborative Engineering |
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78 | (1) |
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Virtual Product Representation |
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78 | (1) |
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78 | (1) |
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79 | (1) |
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79 | (3) |
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Internet, Intranet, and Extranet |
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82 | (1) |
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82 | (1) |
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82 | (1) |
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82 | (2) |
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84 | (1) |
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84 | (1) |
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84 | (5) |
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84 | (3) |
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Preliminary Ideas Statement |
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87 | (1) |
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87 | (2) |
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89 | (1) |
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89 | (1) |
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89 | (12) |
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93 | (3) |
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Computer Simulation and Animation |
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96 | (1) |
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97 | (4) |
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101 | (1) |
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101 | (12) |
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101 | (1) |
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102 | (1) |
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103 | (1) |
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104 | (1) |
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105 | (1) |
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106 | (1) |
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106 | (1) |
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Historical Highlight Standards |
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107 | (6) |
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113 | (4) |
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113 | (1) |
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3-D Modeling Project Chapter 2 Stapler Modeling Project |
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114 | (2) |
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116 | (1) |
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116 | (1) |
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Other Engineering Design Methods |
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117 | (17) |
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Design Case Study The Motorola i1000 Handset Communicator |
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118 | (5) |
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123 | (1) |
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123 | (1) |
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Design in Industry FEA and the America's Cup |
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124 | (2) |
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126 | (8) |
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134 | (51) |
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134 | (1) |
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135 | (1) |
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135 | (1) |
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136 | (6) |
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137 | (3) |
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140 | (1) |
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140 | (1) |
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140 | (1) |
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Absolute and Relative Coordinates |
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141 | (1) |
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World and Local Coordinate Systems |
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142 | (1) |
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142 | (1) |
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Points, Lines, Circles, and Arcs |
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143 | (7) |
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143 | (1) |
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Historical Highlight Gaspard Monge |
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143 | (2) |
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145 | (2) |
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147 | (2) |
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149 | (1) |
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150 | (6) |
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151 | (1) |
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151 | (1) |
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152 | (4) |
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156 | (3) |
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Design in Industry New Tools Help Link Computer-Aided Industrial Design with Mechanical CAD |
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156 | (1) |
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157 | (1) |
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157 | (1) |
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158 | (1) |
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Double-Curved Lines, Including Helixes |
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159 | (1) |
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159 | (2) |
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160 | (1) |
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Bezier and B-Spline Curves |
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160 | (1) |
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161 | (1) |
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162 | (1) |
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162 | (10) |
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164 | (2) |
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166 | (5) |
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Fractal Curves and Surfaces |
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171 | (1) |
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172 | (13) |
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174 | (1) |
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175 | (1) |
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176 | (1) |
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3-D Modeling Project Chapter 3: Stapler Modeling Project |
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177 | (1) |
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177 | (1) |
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177 | (1) |
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178 | (5) |
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183 | (2) |
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185 | (49) |
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185 | (1) |
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185 | (4) |
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186 | (1) |
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187 | (2) |
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189 | (2) |
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General Visualization Techniques |
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191 | (8) |
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Solid Object Combinations and Negative Solids |
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191 | (1) |
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192 | (3) |
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195 | (1) |
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Surface Models (Developments) |
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196 | (3) |
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Visualization Techniques for Engineering Drawings |
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199 | (2) |
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199 | (1) |
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Object-Image Plane Orientation |
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200 | (1) |
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200 | (1) |
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Choosing a View to Describe an Object |
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201 | (1) |
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Graphical Analysis of Engineering Data |
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201 | (10) |
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Data Visualization Elements |
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202 | (4) |
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Visualizations for One Independent Variable |
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206 | (3) |
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Visualizations for Two Independent Variables |
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209 | (1) |
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Design in Industry Sikorsky Helibus |
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210 | (1) |
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211 | (1) |
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212 | (22) |
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213 | (1) |
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213 | (1) |
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214 | (20) |
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234 | (63) |
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234 | (1) |
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235 | (1) |
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235 | (1) |
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235 | (1) |
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Constructive Solid Geometry (CSG) Modeling |
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236 | (4) |
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Boundary Representation (B-Rep) Modeling |
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240 | (1) |
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240 | (1) |
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Constraint-Based Modeling |
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241 | (1) |
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241 | (1) |
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241 | (1) |
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242 | (1) |
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242 | (1) |
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242 | (2) |
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244 | (18) |
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Features from Generalized Sweeps |
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244 | (1) |
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245 | (3) |
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248 | (1) |
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249 | (5) |
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Completing the Feature Definition |
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254 | (4) |
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Feature Planning Strategies |
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258 | (2) |
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Design in Industry Design of Tollway Extension |
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260 | (2) |
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262 | (3) |
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Understanding Feature Order |
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262 | (2) |
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Editing Feature Properties |
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264 | (1) |
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Duplicating Part Features |
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265 | (1) |
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266 | (6) |
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266 | (4) |
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270 | (2) |
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Application of Part Model Data |
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272 | (9) |
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273 | (1) |
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273 | (2) |
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275 | (4) |
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279 | (2) |
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281 | (16) |
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281 | (2) |
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283 | (1) |
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283 | (1) |
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284 | (13) |
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Multiviews and Auxiliary Views |
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297 | (96) |
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297 | (2) |
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299 | (2) |
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299 | (1) |
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299 | (1) |
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Parallel versus Perspective Projection |
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299 | (2) |
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Multiview Projection Planes |
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301 | (1) |
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Frontal Plane of Projection |
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301 | (1) |
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Horizontal Plane of Projection |
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301 | (1) |
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Profile Plane of Projection |
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302 | (1) |
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Orientation of Views from Projection Planes |
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302 | (1) |
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Advantages of Multiview Drawings |
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302 | (4) |
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Historical Highlight Ivan Sutherland (1938- ) |
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305 | (1) |
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306 | (8) |
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Conventional View Placement |
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307 | (2) |
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First- and Third-Angle Projection |
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309 | (1) |
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309 | (2) |
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311 | (1) |
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311 | (1) |
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311 | (3) |
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314 | (7) |
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314 | (1) |
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314 | (5) |
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319 | (1) |
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Multiviews from 3-D CAD Models |
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320 | (1) |
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321 | (4) |
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Fundamental Views of Edges and Planes for Visualization |
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325 | (4) |
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325 | (1) |
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326 | (3) |
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329 | (1) |
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329 | (1) |
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Multiview Representations for Sketches |
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329 | (11) |
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329 | (1) |
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329 | (3) |
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332 | (1) |
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332 | (1) |
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332 | (1) |
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333 | (3) |
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Fillets, Rounds, Finished Surfaces, and Chamfers |
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336 | (2) |
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338 | (1) |
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338 | (1) |
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Cylinders Intersecting Prisms and Holes |
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339 | (1) |
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Multiview Drawings Visualization |
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340 | (9) |
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341 | (1) |
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Physical Model Construction |
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341 | (2) |
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343 | (1) |
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344 | (1) |
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345 | (1) |
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345 | (1) |
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345 | (1) |
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345 | (3) |
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348 | (1) |
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ANSI Standards for Multiview Drawings and Sketches |
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349 | (2) |
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349 | (1) |
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350 | (1) |
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351 | (1) |
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Auxiliary View Projections |
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351 | (5) |
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352 | (1) |
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352 | (2) |
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Design in Industry Using Parametrics with an Agile Manufacturing Strategy |
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354 | (2) |
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Auxiliary View Classifications |
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356 | (1) |
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Auxiliary Views Using CAD |
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356 | (1) |
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357 | (1) |
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357 | (36) |
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357 | (1) |
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358 | (1) |
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359 | (29) |
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388 | (5) |
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393 | (46) |
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394 | (1) |
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394 | (3) |
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Axonometric Projection Classifications |
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394 | (3) |
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Isometric Axonometric Projections |
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397 | (3) |
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Isometric Axonometric Drawings |
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398 | (1) |
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Standards for Hidden Lines, Center Lines, and Dimensions |
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399 | (1) |
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Isometric Pictorial Sketches |
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400 | (3) |
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Historical Highlight Thomas Ewing French (1871-1944) |
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401 | (2) |
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403 | (3) |
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406 | (2) |
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Design in Industry Design for the Environment (DFE) |
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407 | (1) |
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Oblique Planes in Isometric Views |
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408 | (1) |
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Angles in Isometric Views |
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409 | (1) |
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Irregular Curves in Isometric Views |
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409 | (1) |
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Isometric Ellipses Templates |
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410 | (2) |
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Section Views in Isometric Views |
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412 | (1) |
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Isometric Assembly Drawings |
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413 | (1) |
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Design in Industry Concept to Victory in 7 Months |
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413 | (1) |
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414 | (4) |
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Oblique Projection Theory |
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414 | (3) |
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Oblique Drawing Classifications |
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417 | (1) |
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418 | (1) |
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Oblique Pictorial Sketching |
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418 | (2) |
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420 | (1) |
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Perspective Projection Terminology |
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421 | (3) |
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Perspective Projection Classifications |
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424 | (1) |
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Perspective Drawing Variables Selection |
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425 | (1) |
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425 | (14) |
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428 | (1) |
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428 | (1) |
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428 | (1) |
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428 | (1) |
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429 | (1) |
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430 | (6) |
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436 | (3) |
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439 | (38) |
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Introduction and Objectives |
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439 | (2) |
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441 | (4) |
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443 | (1) |
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Visualization of Section Views |
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444 | (1) |
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445 | (3) |
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Placement of Cutting Plane Lines |
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447 | (1) |
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448 | (3) |
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449 | (1) |
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449 | (1) |
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450 | (1) |
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451 | (1) |
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451 | (9) |
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452 | (1) |
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452 | (1) |
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453 | (1) |
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454 | (1) |
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454 | (2) |
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456 | (1) |
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457 | (1) |
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457 | (3) |
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Historical Highlight Doug Engelbart (1925- ) |
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460 | (1) |
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Special Sectioning Conventions |
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460 | (5) |
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Ribs, Webs, and Other Thin Features |
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461 | (1) |
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462 | (1) |
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Design in Industry Adjustable Mountain Bike Suspension |
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463 | (2) |
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465 | (1) |
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465 | (1) |
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466 | (11) |
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467 | (1) |
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467 | (1) |
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467 | (1) |
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468 | (9) |
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Dimensioning and Tolerancing Practices |
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477 | (80) |
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Introduction and Objectives |
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477 | (1) |
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478 | (1) |
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Size and Location Dimensions |
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|
478 | (10) |
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|
480 | (2) |
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482 | (1) |
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483 | (1) |
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Location and Orientation Dimensions |
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483 | (1) |
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483 | (1) |
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484 | (4) |
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488 | (6) |
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491 | (1) |
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492 | (1) |
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492 | (1) |
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492 | (1) |
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492 | (1) |
|
Design in Industry Project Extranets Coordinate Engineering Projects across the Globe |
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493 | (1) |
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494 | (1) |
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494 | (1) |
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494 | (1) |
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494 | (6) |
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495 | (3) |
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498 | (1) |
|
ASME Standard Dimensioning Rules |
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499 | (1) |
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500 | (1) |
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501 | (1) |
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|
501 | (17) |
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|
502 | (1) |
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|
502 | (1) |
|
Plus and Minus Dimensions |
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|
502 | (1) |
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503 | (1) |
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503 | (1) |
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504 | (1) |
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505 | (1) |
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506 | (1) |
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|
506 | (1) |
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|
506 | (1) |
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|
507 | (6) |
|
Standard Precision Fits: English Units |
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|
513 | (5) |
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|
518 | (1) |
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|
518 | (1) |
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|
518 | (1) |
|
Geometric Dimensioning and Tolerancing |
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|
518 | (2) |
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|
520 | (1) |
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|
520 | (2) |
|
Maximum Material Condition |
|
|
522 | (1) |
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Material Condition Symbols |
|
|
522 | (1) |
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|
523 | (1) |
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|
523 | (1) |
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Separation of Control Types |
|
|
523 | (1) |
|
Datums and Datum Features |
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|
523 | (3) |
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524 | (1) |
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524 | (1) |
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524 | (1) |
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525 | (1) |
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|
525 | (1) |
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Secondary and Tertiary Datums |
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|
525 | (1) |
|
Design in Industry Companies Collaborate to Produce Ships Faster |
|
|
526 | (1) |
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526 | (1) |
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|
526 | (11) |
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|
526 | (1) |
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|
526 | (1) |
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|
526 | (1) |
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|
527 | (3) |
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530 | (2) |
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|
532 | (5) |
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|
537 | (1) |
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Floating Fastener Tolerancing |
|
|
537 | (1) |
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Fixed Fastener Tolerancing |
|
|
537 | (1) |
|
Hole Diameter Tolerancing |
|
|
537 | (1) |
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|
537 | (2) |
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|
537 | (1) |
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538 | (1) |
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|
539 | (18) |
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542 | (1) |
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|
542 | (2) |
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|
544 | (1) |
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|
545 | (12) |
|
Working Drawings and Assemblies |
|
|
557 | |
|
Introduction and Objectives |
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|
557 | |
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|
558 | |
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|
559 | |
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|
561 | |
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|
561 | |
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|
567 | |
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|
567 | |
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|
568 | |
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|
568 | |
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|
569 | |
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|
570 | |
|
Engineering Change Orders (ECO) |
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|
570 | |
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|
570 | |
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|
571 | |
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|
572 | |
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|
572 | |
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|
572 | |
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|
573 | |
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|
573 | |
|
Thread Specifications: Metric System |
|
|
575 | |
|
|
576 | |
|
Standard Bolts, Studs, and Screws |
|
|
580 | |
|
|
581 | |
|
Design in Industry Design for Assembly: Building a Simpler Computer |
|
|
581 | |
|
|
582 | |
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|
582 | |
|
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582 | |
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582 | |
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583 | |
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583 | |
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584 | |
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584 | |
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585 | |
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586 | |
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588 | |
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589 | |
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591 | |
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591 | |
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594 | |
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595 | |
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596 | |
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597 | |
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597 | |
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3-D Modeling Project Chapter 10: Stapler Modeling Project |
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598 | |
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598 | |
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598 | |
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599 | |
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638 | |
APPENDIXES |
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A-1 | |
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A-3 | |
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2. Trigonometry Functions |
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A-4 | |
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3. ANSI Running and Sliding Fits (RC) |
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A-5 | |
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4. ANSI Clearance Locational Fits (LC) |
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A-6 | |
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5. ANSI Transition Locational Fits (LT) |
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A-7 | |
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6. ANSI Interference Locational Fits (LN) |
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A-8 | |
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7. ANSI Force and Shrink Fits (FN) |
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A-9 | |
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8. Description of Preferred Metric Fits |
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A-10 | |
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9. ANSI Preferred Hole Basis Metric Clearance Fits |
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A-11 | |
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10. ANSI Preferred Hole Basis Transition and Interference Fits |
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A-12 | |