What do you do for a living?

BuffyBot22

Scooby
Joined
Oct 28, 2016
Messages
973
Age
32
Location
US
So I was wondering what everyone here does as their career or what they are aspiring to be...

Also if you comment on if you are happy with what you do, sharing your likes and dislikes and your overall job satisfaction

I just recently graduated from undergrad college and am currently working at a Pharmaceutical company as a Biologist even though my degree is in Chemistry. We are currently setting up our lab so I have zero idea if I even like my job or not.

I always thought I would go on to be some sort of doctor or dentist. I am thinking about those two options now, but so much goes into both careers and I don't know if I have the dedication for med school + residency or the savvyness to run a business while also providing adequate dental care.

So just curious to see what everyone does and if they find satisfaction in their career!
 
Cool thread!

I study Aerospace Engineering. I'm not sure if I'm cut out for engineering at all actually. I'm on my third year and so far all of my courses are about physics and math, some focused on Aerospace Engineering in particular, others about electronics, but I'm still not sure what I'm going to do on practical terms.
It's kind of become part of my identity now, what I study, and I can't imagine studying anything else.

I don't have anything else to say lol.
 
Blaze
Blaze
that's still how I feel about my profession and I've already graduated lol I think we're never fully sure of what we want to do
I was trained as an Avionic Engineer (Aircraft instruments & electronics) for a major 'British' airline, working across the entire fleet of their aircraft at the time.
Then I switched to the same companies fledgling IT department, where I've been ever since (Mainframe Computer support).
I am now semi-retired as they outsourced my entire department last year, but kept me on a paid retainer (sitting at home just in case the new boys screwed up) but that
is due to finish end of May, Then I either retire fully or get a part time job...... 🙂
 
Retail & school at the moment. Hoping to be history/archaeology professor er in other words...
images
 
Last Watcher
Last Watcher
Indiana Janes
Hopefully by this time next week I will have landed a new research position in a chemistry lab.

The sad thing with being a researcher is that it's all contract work (unless you're a professor), so I've been out of a lab job for 5 months. In the meantime I've been tutoring chemistry, and working at the barn. I do the typical mucking stalls, watering, feeding, and I've been training horses. That job is by far the best job in the world, but unfortunately I can't make a living doing only that.
 
I do the typical mucking stalls, watering, feeding, and I've been training horses. That job is by far the best job in the world, but unfortunately I can't make a living doing only that.

Hehe going on almost 20 years now myself. It really is an enjoyable job and living within the means of what they pay can be a nice life. I started in show ponies, and pony club eventing, then on to trail riding and teaching tourists to ride, then on to racehorses, then on to equine facilitated learning, then on to running an agistment farm with 40 horses, (livery for those in the UK) - all the while volunteering as a coach for Riding for the disabled / Riding Develops Ability and Hippotherapy.

I am off work now since my back finally told me I cannot fix fences any more and picking up poo is a job for the young'uns who havent been bucked off racehorses yet. But I will go back to RDA after Easter. I've found the local group down here - much smaller than my last, but what I need for this time of my life. I need to slow down now. And in such a small group I can make more of a difference to their lives of the kids. I am also trained in Hippotherapy which is basically physiotherapy on horse back - of course I need a qualified physio to help provide this service so I am unsure if it is running down here,, but I would really like to keep my qualification for that. Its pretty amazing to be involved in teaching children to walk. It makes a huge difference in their lives.

Apart from the horses, I've done a bit of ere and there - waitressing, retail, childcare (dont let anyone ever tell you there are no jobs - there are ALWAYS jobs in childcare - and they pay better than many suspect!), craft stalls and kite stalls, a lot of housesitting earlier but I dont think I would do that now. People say they will pay after and then they dont. I 've done a heck of a lot of volunteer work. I try to stay away but its hard! I honestly do miss volly work, it is the most rewarding for me personally. Everyone is there for the same goal and has chosen to put their energy there. It restores my faith in humanity when facebook destroys it.
 
English teacher for Dutch kids in a secondary school in the Netherlands 🙂 Nearly have finished my teaching degree and then I can have a chill year next year! I plan to work, but not study on the side like I am doing now because I'm so overworked and drained (who thought studying 30 hours per week and being at work 25 hours a week was a good idea?)
 
Retired electrical engineer specializing in low-noise amplifiers, avionics and spacecraft systems. (I could tell you a lot of bizarre stories about what goes on with spacecraft - that could be a thread in itself.) I also did some test engineering and project management.
 
BuffyBot22
BuffyBot22
Feel free to tell if ya want!! Sounds interesting!
I'm a video producer for an online training company. I work with authors around the world to put together video courses teaching people anything from Photoshop, to coding, to CG animation, to whatever. Been here about five years. It's not terribly exciting but the benefits are ridiculous. Especially for where I'm living (I'm a remote employee - main company is in the Bay area.) Right now I'm trying to get as far ahead financially as I can because what I really want to do when I grow up is make my own video content to entertain people with.
 
Stories about spacecraft? I thought you would never ask

When I worked at Spar Aerospace, we had consultants in on a long-term basis from Lockheed Missiles and Space Company who were the experts in the field of three-axis stabilized satellites to help us with the Hermes satellite that was launched successfully on 27 Jan 76. After all, LMSC had actually put some up that worked and that put them ahead of anyone else. On the last day one of the consultants was there, we took him out to the local pub (the other one was a holy roller who kept a Bible prominently displayed on the upper left corner of his desk and would never be caught dead in a pub).


1. The first satellite was a spin-stabilized one. There are solar cells all around so as it spins, there is no need to point an array – but only the equivalent diameter is active, rather than the circumference. But it offered a simple design that was used throughout the 1960’s and beyond. Imagine the left front wheel of a car: if you turn to the right, gyroscopic force will tend to add camber, meaning the top of the tire will move away from the car and the bottom will tuck under. Spin-stabilized satellites make use of gyroscopic force to maintain a stable pointing angle as determined by a star sensor that finds Cassiopeia and the position of the antenna that is pointed to the earth. In this era, most satellites were for communications and pointing accuracy was essential with the low-power transmitters in use.

In order to get the required spin, small thrusters using hydrazine as a propellant were used. They launched one satellite and proceeded to spin it. They got no signal. Not even telemetry. They checked the star sensor output. Lots of light but no edges. Finally it dawned on someone. The thrusters were pointing the wrong way. The satellite had stabilized with the star sensor pointing at the earth and the antenna pointing out into space. There was no way to correct the problem. They lost the satellite.

2. The second satellite was a three-axis stabilized one that always pointed a flat sheet of solar arrays to the sun, one on each side of the satellite, increasing the power available. These satellites were launched into synchronous orbit at a 22,000 mile altitude and appeared to stand still in the sky. The pointing angle of the satellite is controlled by an earth sensor that aligns the satellite with the edges of the earth to maintain a stable antenna position.

In those days, a program that went smoothly without glitches was something of a fantasy. Launch vehicles blew up on the pad. Stuff that was tested exhaustively failed once it was installed. There was plenty of trouble before launch as well. Electronics failed or did something different from what was expected. Parts that should connect together seamlessly didn’t. Integrating the satellite to the launch vehicle was something that was part mystery, part Rube Goldberg and usually took a lot of unscheduled schedule.

But Lockheed seemed to have a program that the gods smiled on. The electronics and optics all worked. The electronics did exactly what it was supposed to do. Integration with the Thor Delta (the same launch vehicle we were using) went off without a hitch. Certainly this program was blessed! All LMSC had to do was deliver it into orbit, despin it, acquire earth (using the on-board earth sensor) and show that it was stabilized and they could collect the $30,000,000 launch cost. At the time, a house cost $20,000, so this would be about ten times that amount today and would buy a community of 1500 houses – a good chunk of change in those days.

The launch went perfectly. The Thor stage with its nine solid-fuel rockets surrounding it lifted off and delivered the Delta stage with the satellite on it into a low orbit 120 miles up. The Delta stage delivered the satellite into an elliptical orbit with the perigee at 120 miles and the apogee at 22,000 miles. The satellite had an additional rocket that was fired at the apogee to circularize the orbit. It all went smoothly. They spun up the internal momentum wheel and fired the small pitch-axis thrusters to eliminate any residual spin, and waited for the attitude control system to stabilize. Nothing happened. The earth sensor did not appear to see the earth. They checked the telemetry. The earth sensor power supply voltages were in spec. The clocks for the digital logic were running. But it was like they were out in deep space. They were starting to get worried now. $30,000,000 and the reputation of the company were at stake. Finally, one program manager decided to look back over the preflight checklist to see if there was anything that would give them a clue. One box was not checked off:

Remove Earth Sensor Lens Cap

They couldn’t stabilize. They lost the spacecraft and their $30,000,000. That would be about $500,000,000 these days.
 
The CTC Spacecraft

Even if it has been a bad day, whenever I walk past the automotive paint section at Canadian Tire, that large rack of rattle-can aerosol paints, it always makes me smile. Many years ago, an organization I was with bought a case of twelve cans of Canadian Tire Corporation exhaust pipe enamel and sent it 22,000 miles away. If you are wide awake, you will realize something:

It is no longer on this planet.

I was called in to do two hours’ work on a proposal one winter Saturday at 9:00 AM – that miserable unpaid work that engineers have to endure in certain companies. But by the time I left at 11:00 AM, the story I had heard made the day worthwhile.

Several years before, we had been working on the Communications Technology Satellite, CTS, later renamed Hermes when it was launched on 27 Jan 76. While I was working on that proposal, I heard the real truth about how things were put together.

CTS was the first synchronous communications satellite with 200 watts output, so it could be received with an 8-foot diameter antenna. Modern satellite TV users have a 20” dish, but before CTS, you needed the equivalent of a radio telescope antenna, 30 foot diameter – not the thing for consumers. CTS was designed to broadcast into communities in the far north where the 8-foot diameter receiving antenna could be hauled up on the back of a pickup truck.

It was parked at 119 degrees west at synchronous altitude. To get there, it was launched on a Thor-Delta rocket with the Thor stage taking it to a low orbit of 120 miles and the Delta stage sending it into an elliptical orbit between 120 miles and 22,000 miles. At the apogee, a solid-fuel rocket on the satellite itself burned for 28 seconds to circularize the orbit.

This was getting pretty close to the limit for the Thor-Delta. It can lift 1550 pounds into synchronous orbit and the satellite was slightly over 1500 pounds. The rocket on board the satellite was the most beautiful piece of spun stainless steel I have ever seen. It had a large combustion chamber about 4’ diameter narrowing down to a convergent-divergent nozzle and the whole piece of metal stood about 4 feet high. It was 0.100” thick and this had raised a concern: toward the end of the burn that the nozzle would distort due to the heat and the satellite would not be able to reach synchronous speed. The rocket engine in the satellite was 723 pounds of which 692 pounds was propellant.

Someone suggested the simple idea that painting the outside surface of the nozzle with a flat black paint would enable it to radiate enough heat to retain its shape, so we contacted a supplier of space-qualified paint. Now it should be noted that satellites are trailing-edge technology. Nothing new ever goes into a spacecraft without an arduous testing process. Everything has to have an established reliability and preferably years of use before it can be put on a spacecraft. Every part, chemical or process has to be qualified by being subjected to rigourous qualification, or “qual” testing and until the entire suite of tests was over, it was never a slam dunk; parts could pass or fail qual. A few companies specialize in space-qualified parts but normal military testing (as done back in the 1970’s) was usually sufficient if the highest grades of components were used. (Nowadays, most satellites are built with commercial parts – but it was unthinkable then to risk a $62 million launch on parts with no history.) Anytime you wanted to add anything to the list of qualified items, you had to fill out a NONSPAR – a non-standard parts approval request and NASA would pass judgment on it. That was an arcane process that kept us on tenterhooks until it was complete.

We called up one supplier of space-qualified paint and his reply was, “Sure, we can give you immediate delivery. How many tank cars do you want and where is your railway siding?”

So we found a polite way to tell him no and called another supplier, who said, “Pints and quarts, sure, no problem. Fifteen months delivery.” This meant they had not qualified or even formulated the paint yet and there was a definite possibility that the paint would fail qual and leave us with nothing.

So one of our engineers came up with an obvious idea – what about automotive exhaust pipe enamel? We went to the nearby Canadian Tire store at Dufferin and Castlefield in Toronto and bought a case of 12 cans (which were $2.67 a can at the time). We did not use the spray nozzle on the can – that would be too ghetto for any spacecraft – we had a very good De Vilbiss spray system, similar to what would be used for refinishing a car. We established that the paint had to be really roasted onto the metal at high temperature or it would not adhere. But once it was baked on, the adhesion was great. It would not flake or chip when tested for scratch resistance or discolouration under salt spray, the bane of anything stored near the ocean at Cape Kennedy.

Canadian Tire exhaust pipe enamel was qualified and flown on the CTS spacecraft. But before that, we had the problem of writing up the NONSPAR. We used the stock number which at the time was three numbers followed by a dash and three more numbers and listed it as “Paint, CTC Corporation” in the description and we buried it among other chemicals we were getting approved. NASA didn’t ask any questions. We certainly didn’t volunteer any information. According to the rules, only the paint from that particular case was qualified – approval is granted only for a certain manufacturer and run and there was no way to determine if any other paint was the same formulation or even came from the same company, since it is a private-label brand.

But in a world where product quality is a sore point for buyers of many items, isn’t it nice to know that you can purchase space quality products without even knowing it?



Hermes Post-Launch




Apogee motor firing went off perfectly and the satellite remained in its position at 119° west synchronous orbit as planned.  CTS remained in service from the launch date of 27 Jan 76 until its demise due to earth sensor failure on 24 Nov 79.  Since it had a planned two-year lifespan, the project was a success.  That doesn't mean everything went smoothly.  We had some component failures which were mitigated by redundant systems.

You have to understand the psychology pre-launch.  To a man, all of us were saying, "I hope it blows up on the (launch) pad."  None of us had any confidence that his own system was ready for prime time.

The earth sensors were linear photodiode arrays which were part of an optical train that included a mirror mounted on flex pivots (crossed leaf springs that formed an "X" shape) with the mirror pivoted and vibrating at 4.4 Hz.  The length of the earth was known in pixels so the prime earth sensor built up a measurement in the direction of vibration (along the equator) had a less accurate measurement was in the latitude direction based on the total length of the image.  The start of the bright area was one edge of the earth and the end was the other, so the prime earth sensor had very good accuracy and resolution in the longitude dimension and not so much in the latitude dimension.  Someone had the bright idea that the flex pivots would possibly be a problem, so the redundant earth sensor was mounted at right angles, so the flex dimension corresponded to latitude and the image size dimension corresponded to longitude.  It was an inspired decision – the prime earth sensor failed due to flex pivot breakage immediately after takeoff and we ran on the redundant sensor until it failed due to flex pivot breakage on 24 Nov 79.  Within five minutes on its final day, the main antenna had drifted out of reception range and we were left to communicate via the omnidirectional TT&C (telemetry, track and command) system.  But with the 1200-watt solar arrays moving out of alignment with the sun, the main 200-watt transmitter was shut down for the last time.

This wasn’t the only problem.  In synchronous orbit, you run into at least partial eclipse 84 days of the year and full eclipse 72 days of the year.  Since we launched in winter, we didn’t see any effect until a couple of months later when we got the word: the prime power converter had failed.  The solar arrays were two fan-folded structures about 21 feet long on each side of the spacecraft.  They were carefully designed so that all magnetic torques were balanced and they were gathered in series-parallel into 78-volt buses to feed the converter.  When a solar cell gets cold, the voltage goes up and it appears that just before the failure, the array output reached 130 volts.  The arrays were being cooled to -50°C in eclipse.  From that time on, we went with the redundant power converter and shut the array output off for about eight minutes after coming out of eclipse.  The electronics could run off the battery supply for another few minutes per day and the array had warmed to an acceptable temperature (and voltage) by then.

On day 100, I was met at the door as soon as I walked into the building.  A colleague said, "We went into AFP last night."  This was chilling news for me.  Backing up a bit, I was REE (Responsible Equipment Engineer) for the Attitude Control Electronics Assembly.  For political reasons, we had to break a cardinal rule of spacecraft: "You never buy a guidance system – ALWAYS build it".  Being REE is the same as being the goalie in hockey – you are the last line of defense against a bad design.  And RCA had done bad designs, so bad that we forced them into two intermediate design reviews between PDR (preliminary design review) which is approval of the conceptual design and CDR (critical design review) which is the authority to begin build of the qual units.  I was blissfully unaware of the political and career carnage my design reviews had caused, but they had saved a lot of schedule by making sure everything sailed through qual without a hitch.  One of the things added to the guidance system was an AFP (automatic failure protection) mode where the pitch momentum wheel was held at constant speed and reaction control thrusters were shut off if anything drifted too far off course or telemetry found a problem.  If you went into AFP, something was very wrong.  We were on tenterhooks for hours as the news slowly trickled in: an experimental solar array section had blown out and the force was enough to throw the spacecraft off alignment.  BIG SIGH OF RELIEF!  We powered the attitude control electronics back up and it acquired earth and remained stabilized for the rest of its life.
 
At the moment, this. I want to go back to school very soon though. I still can't decide on graphic design or social care. I spent most of my teens and 20s working at bars and waitressing. Some of the best money I ever made was waitressing and bar keeping. Going home with close to 200 in tips, yeehaw! It's not like that anymore though. And I hate all drunk people now other than myself.
 
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