Yes. Start by drawing an arbitrary rectangle that hugs the state. Now rotate that rectangle, adjusting its dimensions as it turns to keep each side in contact with the shape. If you turn it through 90 degrees, then the “height” and “width” will have traded places: What had been the shorter side of the rectangle is now the longer. So at some point the two must have had the same value.

(This is a two-dimensional variation on a classic puzzle.)

1. Qh8! and the queen will mate.

From Carpenter’s Chess Problems, 1886.

The pieces don’t quite match. If the pieces in the second figure are arranged carefully back into the first, it will be seen that they overlap. The indicated parallelogram measures exactly 2 square units.

1. c4 c5 2. Qa4 Qa5 3. Qc6 Qc3 4. Qxc8#:

(Henry E. Dudeney, “A Budget of Christmas Puzzles,” Strand 64:12 [December 1922], 619-622.) (If you want to solve the other puzzles, the solutions are here.)

Tin (actinium, astatine, platinum, protactinium).

(Dave Morice, “Kickshaws,” Word Ways 28:3 [August 1995], 170-180.)

06/09/2021 UPDATE: In French, the name or (gold) appears as an unbroken string in the names of nine elements: bore (boron), californium, chlore (chlorine), fluor (fluorine), livermorium, phosphore (phosphorus), rutherfordium, seaborgium, and thorium. (Thanks, Jean-Claude.)

Think of the stones as tennis players and put them through a singles tournament. There are no upsets: In each match (weighing), the better (heavier) player always wins and goes on to the next round. With 32 players, this will produce a tournament with five rounds, comprising 16, 8, 4, 2, and 1 matches, successively, enough to produce 31 losers and identify the best (heaviest) stone.

Now, the second-heaviest stone must have “lost” to the heaviest at some point in the tournament (since that was the only “player” strong enough to beat it). So take the five players beaten by the heaviest stone and put them through a little tournament of their own. Four matches will be enough to find the strongest of these five, and that must be the second-heaviest stone overall.

(Via Ross Honsberger’s Mathematical Delights, 2004.)

1. Rxc6!

From Chess Problems, 1873.

1,000,000 = 2⁶ × 5⁶. To avoid zeroes we need to collect the 2s into one factor and the 5s into the other: 64 × 15625.

(Thanks, Nick.)

If there were only 3 matches in the original pile, A would lose — he could withdraw 1 or 2 matches, but then B could immediately withdraw the remainder and win the game. If there were 4 or 5 matches in the original pile then A could saddle B with a losing 3-match pile, but if there were 6 in the original pile, then by the same principle B could saddle A with the 3-match pile.

The winning strategy, then, is always to leave your opponent a quantity that’s a multiple of 3. A can accomplish this on his first turn by taking 2 matches from the pile of 500, leaving 498 = 3 × 166 matches for B, who cannot now escape his fate.