V-Cube 6

6×6×6 Rubik's Cube


title: "V-Cube 6" type: doc version: 1 created: 2026-02-28 author: "Wikipedia contributors" status: active scope: public tags: ["rubik's-cube"] description: "6×6×6 Rubik's Cube" topic_path: "general/rubik-s-cube" source: "https://en.wikipedia.org/wiki/V-Cube_6" license: "CC BY-SA 4.0" wikipedia_page_id: 0 wikipedia_revision_id: 0

::summary 6×6×6 Rubik's Cube ::

::figure[src="https://upload.wikimedia.org/wikipedia/commons/f/fc/V-Cube_6_in_box.jpg" caption="V-Cube 6 in original packaging"] ::

The V-Cube 6 is a 6×6×6 version of the original Rubik's Cube. The first mass-produced 6×6×6 was invented by Panagiotis Verdes and is produced by the Greek company Verdes Innovations SA. Other such puzzles have since been introduced by a number of Chinese companies, most of which have mechanisms which improve on the original. Unlike the original puzzle (but like the 4×4×4 cube), it has no fixed facets: the center facets (16 per face) are free to move to different positions.

Methods for solving the 3×3×3 cube work for the edges and corners of the 6×6×6 cube, as long as one has correctly identified the relative positions of the colors — since the center facets can no longer be used for identification.

Mechanics

::figure[src="https://upload.wikimedia.org/wikipedia/commons/e/e6/V-Cube_6_scrambled.jpg" caption="Scrambled V-Cube 6"] ::

::figure[src="https://upload.wikimedia.org/wikipedia/commons/8/89/V-Cube_6_small.jpg" caption="Solved V-Cube 6"] ::

The puzzle consists of 152 pieces ("cubies") on the surface. There are also 66 pieces (60 movable, 6 fixed, and a central "spider" frame) entirely hidden within the interior of the cube. The V-Cube 7 uses essentially the same mechanism, except that on the latter these hidden pieces (corresponding to the center rows) are made visible. United States Patent 20070057455

There are 96 center pieces which show one color each, 48 edge pieces which show two colors each, and eight corner pieces which show three colors. Each piece (or quartet of edge pieces) shows a unique color combination, but not all combinations are present (for example, there is no edge piece with both red and orange sides, since red and orange are on opposite sides of the solved Cube). The location of these cubes relative to one another can be altered by twisting the layers of the Cube 90°, 180° or 270°, but the location of the colored sides relative to one another in the completed state of the puzzle cannot be altered: it is fixed by the distribution of color combinations on the edge and corner pieces.

The V-Cube 6 is produced with white plastic as a base, with red opposite orange, blue opposite green, and yellow opposite black. One center piece is branded with the letter V. Verdes also sells a version with black plastic and a white face, with the other colors remaining the same.

Unlike the rounded V-Cube 7, the original V-Cube 6 has flat faces. The outermost pieces are slightly wider than those in the center. This subtle difference allows the use of a thicker stalk to hold the corner pieces to the internal mechanism, thus making the puzzle more durable. The original V-Cube 6 incorporates a clicking mechanism designed to keep the hidden middle layer in alignment with the rest of the pieces. The V-Cube 6b, with the same pillowed shape as the V-Cube 7, was introduced later with a modified internal mechanism.

Permutations

::figure[src="https://upload.wikimedia.org/wikipedia/commons/c/c0/V-Cube_6_size_comparison.jpg" caption="The V-Cube 6 is roughly the same size as the official [[Professor's Cube]]."] ::

There are 8 corners, 48 edges and 96 centers.

Any permutation of the corners is possible, including odd permutations. Seven of the corners can be independently rotated, and the orientation of the eighth depends on the other seven, giving 8!×37 combinations.

There are 96 centers, consisting of four sets of 24 pieces each. Within each set there are four centers of each color. Centers from one set cannot be exchanged with those from another set. Each set can be arranged in 24! different ways. Assuming that the four centers of each color in each set are indistinguishable, the number of permutations is reduced to 24!/(246) arrangements. The reducing factor comes about because there are 24 (4!) ways to arrange the four pieces of a given color. This is raised to the sixth power because there are six colors. The total number of center permutations is the permutations of a single set raised to the fourth power, 24!4/(2424).

There are 48 edges, consisting of 24 inner and 24 outer edges. These cannot be flipped, due to the internal shape of the pieces, nor can an inner edge exchange places with an outer edge. The four edges in each matching quartet are distinguishable, since corresponding edges are mirror images of each other. Any permutation of the edges in each set is possible, including odd permutations, giving 24! arrangements for each set or 24!2 total, regardless of the position or orientation of any other pieces.

Assuming the cube does not have a fixed orientation in space, and that the permutations resulting from rotating the cube without twisting it are considered identical, the number of permutations is reduced by a factor of 24. This is because the 24 possible positions and orientations of the first corner are equivalent because of the lack of fixed centers. This factor does not appear when calculating the permutations of N×N×N cubes where N is odd, since those puzzles have fixed centers which identify the cube's spatial orientation.

This gives a total number of permutations of :\frac{8! \times 3^7 \times 24!^6}{24^{25}} \approx 1.57 \times 10^{116} The entire number is 157 152 858 401 024 063 281 013 959 519 483 771 508 510 790 313 968 742 344 694 684 829 502 629 887 168 573 442 107 637 760 000 000 000 000 000 000 000 000 (around 157 novemdecillion on the long scale or 157 septentrigintillion on the short scale).

One of the center pieces is marked with a V, which distinguishes it from the other three in its set. This increases the number of patterns by a factor of four to 6.29×10116, although any of the four possible positions for this piece could be regarded as correct. ::figure[src="https://upload.wikimedia.org/wikipedia/commons/d/d8/V-Cube_6_disassembled.jpg" caption="V-Cube 6 disassembled"] ::

Solutions

There are numerous ways to solve the V-Cube 6. Some of the popular ones are given below.

Reduction method

The reduction method is a popular method among the speedcubing community. The method starts off by solving the 96 face centers, making sure that colors are properly placed relative to each other. The next step involves matching up quartets of edge pieces into solid strips. At this point the cube is solved as if it were a very large 3×3×3 cube, with possible parity errors (described below) which cannot occur on the original 3×3×3 cube.

Yau method

The Yau method is another popular method. This has much in common with the reduction method, but involves performing some steps in a different order.

Cage method

The cage method differs in that the edges and corners are solved first. In some versions the centers of two opposite faces are solved prior to this. The final step entails moving the remaining center pieces to the proper faces.

Parity errors

Parity errors are positions that cannot be reached on the 3×3×3 Rubik's Cube. These have special algorithms to fix the parity. Such errors include having a single edge quartet "flipped", or having two edge quartets swapped.

World records

The world record for single solve is 57.69 seconds, set by Max Park of the United States at Burbank Big Cubes 2025 in Burbank, California.

The world record for mean of three solves is 1 minute, 5.04 seconds, also set by Max Park of the United States at Nub Open Trabuco Hills Fall 2025 in Mission Viejo, California, with times of 1:04.60, 1:04.80, and 1:05.73.

Top 10 solvers by single solve

::data[format=table]

RankNameResultCompetition
1USA Max Park57.69sUSA Burbank Big Cubes 2025
2KOR Seung Hyuk Nahm (남승혁)1:00.40KOR Seoul Winter 2026
3POL Tymon Kolasiński1:00.80
4CHN Ziyu Wu (吴子钰)1:03.30CHN Guangzhou Big Cubes 2025
5USA Henry Lichner1:03.43USA Rubik's WCA World Championship 2025
6SGP Emmanuel Kao1:03.91SGP Singapore Warm Up January 2026
7RUS Timofei Tarasenko1:05.88KAZ Astana Open 2025
8VNM Đỗ Quang Hưng1:06.83THA Paradise Park Bangkok NxNxN 2025
9IRE Ciarán Beahan1:07.76DEU Rubik's German Nationals 2025
10MYS Lim Hung (林弘)1:07.99IDN Indonesian Championship 2025
::

Top 10 solvers by mean of three solves

::data[format=table]

RankNameResultCompetitionTimes
1USA Max Park1:05.04USA Nub Open Trabuco Hills Fall 20251:04.60, 1:04.80, 1:05.73
2KOR Seung Hyuk Nahm (남승혁)1:06.46KOR Daegu Cold Winter 20241:08.52, 1:02.67, 1:08.18
3POL Tymon Kolasiński1:06.98POL Polish Championship 20251:08.80, 1:02.12, 1:10.01
4VNM Đỗ Quang Hưng1:07.77VNM NxN in Hanoi 20251:07.83, 1:07.88, 1:07.60
5CHN Ziyu Wu (吴子钰)1:09.27CHN Guangzhou Big Cubes 20251:11.11, 1:03.30, 1:13.39
6IRE Ciarán Beahan1:09.67GBR Manchester 5x5 Day 20251:10.68, 1:10.11, 1:08.23
7RUS Timofei Tarasenko1:10.06UZB Tashkent Open 20251:05.96, 1:10.71, 1:13.51
8USA Henry Lichner1:10.64USA Machesney Park Fall 20251:10.76, 1:15.76, 1:05.39
9SGP Emmanuel Kao1:11.85SGP Singapore Megaland July 20251:18.74, 1:06.80, 1:10.02
10USA Jack Pfeifer1:12.44USA Oberlin Big Cubes 20251:09.43, 1:12.10, 1:15.78
::

In popular culture

  • In the movie Snowden, a 6×6×6 cube, specifically a V-Cube 6, is seen, along with the standard Rubik's Cube and its variants in Hank Forrester's puzzle collection.

References

References

  1. [http://www.jaapsch.net/puzzles/cube6.htm V-Cube 6 at Jaap's Puzzle Site]
  2. [[World Cube Association]] [https://www.worldcubeassociation.org/results/regions.php?regionId=&eventId=666&years=&mixed=Mixed Official Results - 6x6x6 Cube]
  3. [[World Cube Association]] [https://www.worldcubeassociation.org/results/events.php?eventId=666&regionId=&years=&show=100%2BPersons&single=Single Official 6x6x6 Ranking Single]
  4. [[World Cube Association]] [https://www.worldcubeassociation.org/results/events.php?eventId=666&regionId=&years=&show=100%2BPersons&average=Average Official 6x6x6 Ranking Average]
  5. (May 2, 2025). "Snowden (2016). Edward charla con Hank Forrester sobre la vigilancia en Internet. [1891]".

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