Week 2: New Tasks


Well, it's been a week. Unfortunately, for the most of this week, my technical lead was sick. However, at least, we got some stuff finished.

We have finished measuring the various parts of the apparatus components, and they are ready to be cut. I did not mark where the fixtures go because I figured that the we should mark them after we cut the various components.


Also, I've been given a side project. It's about making a visualization for a sort of ball robot (essentially simulate it in a 3D environment). For this, I'm going to use MATLAB and VRML. In a given system, there are four ball robots. These robots are tethered together with a spring (because a spring is always taut), Then, they scale the cliff together. That way, if one falls, there are three other ball robots that are sticking onto the cliff, so the fallen ball robot can jump again. This concept was inspired by mountain climbers who scale large  .

Within each ball robot, there are many components. The most important features they have are thrusters. These thrusters are directly perpendicular with the ground. One might ask how does the ball robots go anywhere but up? This is explained with reaction wheels. Reaction wheels are some seriously cool stuff. Essentially, three wheels of the same mass are connected together on three different aces so that they cover all three dimensions (x,y,z or i,j,k).
3 wheels for three axes.

Then, they are to be rotated. Because of the conservation of angular momentum, the robot will spin to counter whatever the angular momentum an individual wheels build up. The last distinguishing feature is its ability to grip onto a surface. Essentially, the ball robots use a micro-spine technology that can grip onto very small aberrations in a material's surface. It is sort of like how Velcro works.

Comments

  1. That's a cool model. How is this connected to your antenna research?

    ReplyDelete
    Replies
    1. Nope. It's just that the lab doesn't have a load of work for the inflatables project, so when the technical lead is sick, inflatable stuff stops.

      Delete
  2. I'm really excited what you develop with the side robot project! If this is linked to the inflatable antenna, then will this benefit the antenna?

    ReplyDelete
    Replies
    1. No this is not linked to the inflatable antenna.

      Delete
  3. That sucks that your technical lead was sick for most of the week. Hopefully he will be well enough this upcoming week. How does the ball robot relate to the antenna?

    ReplyDelete
    Replies
    1. The ball robots are not related to the inflatables.

      Delete
  4. I really liked how you explained the ball robots. What are the applications for these robots?

    ReplyDelete
    Replies
    1. They are primarily designed for cliff climbing, especially in low-gravity areas. Thus asteroid exploration and exploration of cliff caves in Mars becomes much easier, especially because there is lava flow beneath the surface.

      Delete
  5. I hope you have a better week, but what are the benefits of the robots.

    ReplyDelete
    Replies
    1. They are designed to counter the short-comings of legged and wheeled robots. Such conventional robots unfortunately do not hop, which may be necessary in traversing the terrain.

      Delete
  6. I like this concept of the ball robot. What will these be used for? Also, is there already a functioning design for these on the market that is used currently by people?

    ReplyDelete
    Replies
    1. These robots will be used for cliff-climbing. There is no real design for this robot that is commercially available. However, the parts are all commercially available.

      Delete
  7. Sorry to hear that your tech lead was sick. Could you use the ball robots to propel your antennae?

    ReplyDelete
    Replies
    1. Yes, but that wouldn't be very practical. The antenna I've been talking about, inflatables, are primarily used in space and not extraterrestrial surfaces. Ball robots are for exploring surfaces. So there really isn't the greatest application between the two as the antenna would be extremely cumbersome for the ball robots.

      Delete
  8. This is very interesting and exciting! How will you be able to control the three balls at a time, and how will different masses affect your robot?

    ReplyDelete
    Replies
    1. There are actually 4 balls at the same time. However, only one ball moves, so there is a certain stability, where there are three points of contact, so if a jump by one ball fails, it can try again. Lastly, what do yo mean by different masses?

      Delete
  9. I'm curious about this ball robot. If I understand this correctly, the two reaction wheels on the x and y axes control left/right direction, but what about the one in the z axis?

    ReplyDelete
    Replies
    1. Sorry, I didn't see your comment. The one in the Z direction controls up/down.

      Delete

Post a Comment