Fractals and Visualising Solids | IT

Question 9

Visualise how it can be folded to form a cube.

Question diagram 1
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Solution
Understand the Question
  • A cube has 66 identical square faces, 1212 edges, and 88 vertices.
  • To visualize how a 2D2\text{D} net folds into a 3D3\text{D} cube:
    1. Choose one square to act as the base (bottom face).
    2. Fold the four directly adjacent squares upward at 9090^\circ along their shared edges to form the side faces (left, right, front, back).
    3. Fold the remaining attached square over to form the top face opposite the base.

Step 1 · Label the Squares of the Net

Diagram 1

Let us label the six squares in the net:

  • Center square (X\text{X}): Middle square of the horizontal row.
  • Left square (A\text{A}): Directly to the left of X\text{X}.
  • Right square (B\text{B}): Directly to the right of X\text{X}.
  • Middle-top square (K\text{K}): Directly above X\text{X}.
  • Topmost square (L\text{L}): Directly above K\text{K}.
  • Bottom square (M\text{M}): Directly below X\text{X}.

Step 2 · Fold the Side Faces Around the Base

Take square X\text{X} as the base (bottom face) of the cube:

  • Fold square A\text{A} upward along the left edge of X\text{X} to form the left face.
  • Fold square B\text{B} upward along the right edge of X\text{X} to form the right face.

Step 3 · Fold the Front, Top, and Back Faces

  • Fold square K\text{K} upward along the top edge of X\text{X} to form the front face.
  • Fold square L\text{L} at 9090^\circ along the top edge of K\text{K} to cover the top and form the top face (opposite base X\text{X}).
  • Fold square M\text{M} upward along the bottom edge of X\text{X} to form the back face.

All 66 faces meet at right angles along their edges to form a closed cube.

Answer

Taking the central square X\text{X} as the base:

  • Square A\text{A} folds up to become the left face.
  • Square B\text{B} folds up to become the right face.
  • Square K\text{K} folds up to become the front face.
  • Square L\text{L} folds over to become the top face.
  • Square M\text{M} folds up to become the back face.
Common Mistakes
  • Overlapping Faces: Folding opposite flaps in the wrong direction or failing to recognize that square L\text{L} and square X\text{X} are opposite faces.
  • Base Selection: Forgetting to fix a base face first, which makes it harder to mentally track the 3D3\text{D} orientation of the remaining 55 faces.

More questions in IT

Q1

Draw the initial few steps (at least till Step 2) of the shape sequence that leads to the Sierpinski Carpet.

By its construction, each step in the sequence has (i) squares of the same size that remain in the figure, and the size of these squares becomes smaller and smaller as the step number increases, and (ii) square holes that are formed by removing square pieces.

Q2

Show that by joining the midpoints of an equilateral triangle, we divide it into 4 identical equilateral triangles.

[Hint: Note that the corner triangles are isosceles.]

This fractal is called the Sierpinski Triangle/Gasket.

Q3

In previous classes, you've seen solids that are much simpler than an elephant or cat, such as cubes, spheres, cylinders, and cones. What would the profiles of these look like, from different viewpoints?

Q4

Can you describe a solid and a viewpoint that would result in each of the following cases? If it helps, you can imagine the solid passing through a wall like Tom did, and leaving a hole of the appropriate shape.

  1. A solid whose profile has a square outline
  2. A solid whose profile has a circular outline
  3. A solid whose profile has a triangular outline
Q5

As we saw with the elephant, a given solid might have very different profiles from different viewpoints. Can you visualise solids that have the following contrasting profiles?

Spend some time on this, and if you are finding it difficult to visualise, you may look around and use objects that are around you, or that you will make in the next section. Feel free to consider viewpoints from any direction, including directly above the object.

  1. A solid with a rectangular profile from one viewpoint and a circular profile from another viewpoint
  2. A solid with a circular profile from one viewpoint and a triangular one from another viewpoint
  3. A solid with a rectangular profile from one viewpoint and a triangular one from another viewpoint
  4. A solid with a trapezium shaped profile from one viewpoint and a circular one from another viewpoint
  5. A solid with a pentagonal profile from one viewpoint and a rectangular one from another viewpoint

Are there unique solids for each of the conditions, or can you come up with multiple possibilities?

Q6

If the congruent polygons of a prism have 10 sides, how many faces, edges and vertices does the prism have? What if the polygons have nn sides?

Q7

If the base of a pyramid has 10 sides, how many faces, edges and vertices does the pyramid have? What if the base is an nn-sided polygon?

Q8

What is a net of a cube?

Q9

Visualise how it can be folded to form a cube.

Q10

What is a net of a regular tetrahedron? Which of the following are nets of a regular tetrahedron?

Q11

Are there any other possible nets?

Q12

Draw a net with appropriate measurements that can be folded into a regular tetrahedron. Verify if it works by making an actual cutout.

Q13

Draw a net with appropriate measurements that can be folded into a square pyramid. Verify if it works by making an actual cutout.

Q14

What is the net of a cylinder?

If the circular faces of a cylinder are unfolded, and if a cut is made along the height of the cylinder, as shown in the figure below, then we get

Q15

What are the sidelengths of the rectangle obtained?

Q16

How will the net of a cone look?

Q17

If the cone is slit open along the line ll and then unrolled, what will we get?

Observe that all the points on the boundary of the base circle are at equal distances from OO. So after unrolling the cone, the boundary of the net will be a portion of a circle with centre OO.

Q18

What surface do you construct by using the above net, in which OO is not the centre of the boundary circle? Make a physical model to help you answer this question!

Q19

Draw a net with appropriate measurements that can be folded into a triangular prism. Verify that it works by making an actual cutout.

Q20

Taking all the triangles in the net to be equilateral, make a cutout of the net and fold it to form an octahedron.

Q21

What is the shortest path for the ant to reach the laddu?

Q22

What about in the following case?

Q23

If we think that a certain path is the shortest, how can we be sure that it truly is, among all the infinite possibilities?

Q24

For example, are either of these the shortest path?

Q25

What does this show?

Q26

Have we now completely analysed the problem of finding the shortest path between two points on a cuboid?

Q27

What is the length of the shortest path between the ant and the laddu?

Q29

What happens to the length of a line in its projection?

Q30

Can you now compare the lengths pp and ll?

Q31

When is the length of the projected line equal to its actual length?

Q32

What do you think are the different possible projections of a square that we get based on its orientation?

Q33

What do you think is the projection of a parallelogram under different orientations?

Can this ever be a quadrilateral that is not a parallelogram? As a starting point, you could think about the projection of a pair of parallel lines.

Q34

What can you say about the projection of an nn-sided regular polygon?

[Hint: Projection of a polygon is composed of the projections of its sides.]

Q35

How would the projections of a cube and a cone look?

Q36

See Figures 4.2–4.5. In each case, see if you can visualise another object that gives the same projection.

Q37

Find another object that makes the same projection as that of a given cone.

Q39

Have you played Tetris? There are five basic shapes in Tetris, corresponding to the different ways of arranging four squares.

Q40

Context: In Fig. 4.8, there are five basic shapes in Tetris, corresponding to the different ways of arranging four squares.

Q. Imagine these are cubes, not squares. Draw each of these on your isometric paper (you can find it at the end of the book).

Q41

Why is this correspondence between directions on isometric paper and axes of the solid so effective for communicating the shape of the solid?

Q42

Can you try drawing the other tetris shapes on isometric paper?

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