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All of the planets in our solar system, including the gas giants, fit between the earth and the moon with a little bit of room to spare. http://i.imgur.com/CLq
by TkTech 12y ago
All of the planets in our solar system, including the gas giants, fit between the earth and the moon with a little bit of room to spare.
http://i.imgur.com/CLqdeKf.jpg http://i.imgur.com/CLqdeKf.jpg
People severely underestimate the distance to the moon!
- Lambdanaut 12y agoFor some more perspective. The layman should know that actually getting into Low Earth Orbit is BY FAR the most fuel-consuming burn of any rocket mission. Even on a mission to Mars, the most predominantly fuel-consuming burn will be to LEO. Getting to the moon from LEO takes less than half the delta-v that it takes to get to LEO, and WAY less fuel (because by this time you've dropped so much weight getting to LEO) So the real problem will always be the stupidly inefficient method by which we conduct space flight. We send all of our supplies out of an enormous gravity well with a thick atmosphere. Imagine what we could build if we already had everything in space for us already. The only way we'll be able to become truly space-fairing is if we either become an astroid-mining civilization, or if we build something that lets us virtually ignore Earth's gravity well, like a space elevator.
- CodeGenie 12y agoI ask you this question because you seem to know what you're talking about, whereas I simply don't. Watching the launch today, I couldn't help wonder why they don't use standard jets to get the vehicle to a height where a rocket could take over. The highest a jet has flown is about 37km and LEO is considered to start at about 160km. That 37km though in my mind would be the toughest and most fuel costly to ascend. Would it not save both weight and money to use jets and fixed wings up through the low altitudes before turning to rockets for the higher altitude ascent?
- drgath 12y agoThat's pretty much the approach of Virgin Galactic. Reasons why it works for them, but not for NASA would have to be explained by someone more qualified. I do know that VG barely gets into LEO, whereas NASA's requirements are much higher. In any case, I presume the scientists at NASA (and SpaceX & co) have considered just about every alternative, and the current approach still remains the most efficient for their needs.
- teraflop 12y agoNot even LEO; so far, all of Virgin's flights have been strictly suborbital.
- danielweber 12y agoOrbital Sciences is doing something similar, IIRC. They are the two big approaches to cheap space being done now. 1) Be cost-effective at making rockets, 2) launch from jets. My money is on #1, which SpaceX is doing, but #2 has some things going for it that could prove me wrong. #2 is also strictly limited in just how big you can make a payload, while for #1 you can get up to around 200 ton payloads before things start working against you.
- dragonwriter 12y agoI think there are strength/scaling issues with winged aircraft that, given the fuel requirements for any sizable payload to orbit even from the speed/altitude a jet can achieve, makes this extremely challenging, but its something people keep working on.
- sehugg 12y agoI'm sure this has been studied to death, but my guess is that the extra risk during flight/separation, and the extra weight of designing the rocket to handle the different forces encountered when attached to the mothership are not compelling enough to make it worth the extra few % in delta-V. (SpaceShipOne went to Mach 3, not 25, so the boost was greater by percentage)
- danieldyer 12y agoThe issue is that people confuse getting into space with getting into LEO. Virgin Galactic are not even close to getting into LEO – their plan is to fly a ballistic trajectory which takes them just above 100km before falling back to Earth. Since they don't need to achieve anywhere near the required velocity to enter LEO, they can use a much smaller solid-fuel rocket engine and launch from a jet.
- wiredfool 12y agoIt's not the height, it's the speed. (Though, Virgin is trying something like this for their rocket). LEO isn't that far away, but it goes by _really_ quickly. And getting going that fast requires a lot of propellant mass, and that's judged by the tyranny of the rocket equation.
- ash 12y ago"The reason it's hard to get to orbit isn't that space is high up. It's hard to get to orbit because you have to go so fast." https://what-if.xkcd.com/58/ https://what-if.xkcd.com/58/
- keypusher 12y agoI don't entirely buy this. You don't get to go any slower if you are going to Mars, which is not orbiting the Earth in any way. Or if I just want to escape Earth orbit and go drift in space, why do I need to be moving fast relative to the Earth? Why can't I be moving slowly but steadily away?
- dragonwriter 12y ago> Or if I just want to escape Earth orbit and go drift in space, why do I need to be moving fast relative to the Earth? Because gravity. If you aren't going fast relative to Earth, you aren't going to escape Earth orbit [0]. Heck, if you aren't going fast relative to Earth, you aren't even going to be in Earth orbit [1], you are going to be falling back to the surface. [0] http://en.wikipedia.org/wiki/Escape_velocity http://en.wikipedia.org/wiki/Escape_velocity [1] http://en.wikipedia.org/wiki/Orbital_speed http://en.wikipedia.org/wiki/Orbital_speed
- scott_s 12y agoEveryone's responses are spot-on. But I can understand that it still may not be intuitive to you. The difficulty is that we see pictures and videos of our satellites and shuttles in orbit, and they look peaceful and serene. What's missing from those images and videos is a visceral feel that they are going over 17,000 mph. If they went less, they would leave orbit, and hit the Earth. Objects in orbit are not "outside" of Earth's gravity; they are not just up there, just floating in space. The reason they don't "fall to Earth" is that they are falling to Earth. Constantly. It's just that their horizontal speed relative to the Earth is so large that they are - literally - falling around the Earth.
- lukeschlather 12y agoThe premise of your question is wrong. If you are in Earth orbit, you are moving fast. It's actually being in orbit that allows you to move slowly away, because you can take as long as you want to apply the force. If you're not in orbit you have to quickly apply enough force to escape Earth's influence in one go or you will fall back to Earth.
- azernik 12y agoThis is all true, and is all well and good for unmanned space exploration (yes, getting to LEO is halfway to anywhere), but for manned spaceflight time is also expensive - every day spent in flight adds mass for life support and supplies, and also increases the human risk of a failure. For yet more perspective - an astronaut on the ISS in LEO is at most a couple of hours from the ground-based facilities in an emergency, probably more accessible than researchers at the South Pole. Sending people to Mars (on the order of magnitude of a year round trip, with very limited opportunities for early return) would require them to carry with them not only more expensive redundant systems, but also more advanced medical equipment and repair systems than anyone has had to carry into space before (which requires yet more mass, and hence a bigger and better launcher). Of course, Orion itself doesn't deal with any of these issues - it's meant to be used for ascent and Earth return only, and to be attached to the larger systems that deal with the challenges of a Mars journey. Which indicates pretty well how little of the engineering work has been done towards NASA's Mars mission.
- grecy 12y ago> So the real problem will always be the stupidly inefficient method by which we conduct space flight. We send all of our supplies out of an enormous gravity well with a thick atmosphere. True, but it doesn't actually cost very much to do so. The cost of fuel for getting into orbit is only 0.3% of the total cost for the rocket [1], so if we could rapidly re-use them, we could potentially launch them every day of the year for not a lot of money. [1]http://www.space.com/21386-spacex-reusable-rockets-cost.html http://www.space.com/21386-spacex-reusable-rockets-cost.html
- higherpurpose 12y ago384,000 KM doesn't sound that much in space scale. Don't our rockets travel at something like 30,000+ KM/h in space?
- dandelany 12y agoOrbital velocity at LEO is ~28,000 km/hr, but as you get further away from the Earth, your velocity decreases. Orbital velocity at the distance of the moon is only ~3,700 km/hr. (Obviously this all depends on your reference frame...)
- zalzane 12y agowhen talking about space travel, speeds and distances aren't relevant the same way they are planetside. in space travel, it's all about who's gravity well you're stuck in, and how much delta V itll take to transfer to a different gravity well. if we're talking about probes, the delta V aspect becomes a lot more fun when you consider the web of gravity slingshots that can be pulled off to up your dV