Scientists sent “Erasmus” lunar cement to the International Space Station. Half a year later, he came back stronger than vinegar

Taking concrete mixers loaded with cement into space It is not something viable. Therefore, science has long been looking for ways to obtain construction materials from lunar regolith. When they are manufactured the first buildings on the Moonthe cement would not have to be brought from Earth, because it would be prepared on site. However, just because something is manufactured in space, with materials from space, does not mean that it will resist space conditions well, no matter how paradoxical it may be. For this reason, a team of scientists from the University of Delaware recently sent some samples of their lunar cement to the International Space Station (ISS). Six months later, they have returned them to Earth for analysis. What they have seen is very interesting. Stronger than on Earth. The lunar cement samples were placed on the outside of the ISS for six months. After, they were returned to our planet to see how cosmic radiation, vacuum or microgravity had affected them, among other factors. At the same time, other samples similar to those were kept on Earth, in order to verify the differences. When the space samples returned to our planet, it was observed that none had lost resistance. In fact, some had become more resistant after their space stay. The ingredients of moon cement. Broadly speaking, conventional cement is obtained subjecting a mixture of limestone and some clay to very high temperatures. This represents an energy consumption that we cannot even consider when traveling to space. Therefore, the first thing these scientists from the University of Delaware did was look for ways to obtain a cement-like material that did not require that extreme heating. They tried the development of geopolymers, which are materials obtained from clays through chemical reactions. In this case, simulated lunar and Martian regolith was used, which was mixed with a minimal amount of additives. These polymerized to give rise to a material that, when solidified, resembles the concrete we use here on Earth. Not all regoliths are the same. moon dustknown as regolith, is made up of different rock materials. They are not all the same. For this reason, these scientists started with an AI algorithm that predicts the resistance of the final result, depending on the type of regolith that was used as a starting point. This is very useful, as it allows you to select the best options to obtain a strong lunar cement. The results of this other step are published in a different study to the one used to show the results of the spatial exposure. A critical point not so critical. On the other hand, these scientists have identified a key point in the reaction to obtain lunar cement, known as the critical point of the gel, in which the material goes from a functional suspension to a solidifying structure. However, they found that mixing before that point did not affect how long the material took to harden or its final strength. Therefore, there is quite a bit of flexibility in the development of these materials. Taking into account that they want to do it in a place that is not too inhospitable, the less restricted the reaction is, the better. Image | Magnificent In Xataka | A study has tried to find out why space food is so bad: it’s not the food, it’s the astronauts

What doesn’t kill you makes you stronger. Especially if you are a bacteria on Mars

Today, astronauts They usually quarantine before traveling to space to ensure that they do not carry with them any unwanted pathogenic microorganisms. This is for two reasons. On the one hand, it prevents them from getting sick at such a distance from a doctor who can treat them. On the other hand, we do not know how these microorganisms may behave beyond our planet, so it is better not to carry any. The problem is that, when lunar and Martian colonizations arrive, it will not be so easy to make this type of controls. Sooner or later it is likely that some pathogenic bacteria will reach there, so it is important to know what we should expect. Several studies have been done in this regard, but one of the most interesting and recent is the doctoral thesis of astrobiologist Tommaso Zaccaria, from Radboud University. In this thesisstudies how four species of bacteria would behave on Mars. Thus, he discovers that not only could they survive. They could also become much more dangerous to humans. Four pathogenic bacteria. The study was carried out with four species of non-extremophilic pathogenic bacteria. That is, disease-causing bacteria that are not naturally prepared to resist extreme conditions. Those chosen were Klebsiella pneumoniae, Serratia marcescens, Burkholderia cepacia and Pseudomonas aeruginosa. First, Zaccaria exposed them to a simulated Martian environment, with conditions such as very low pressure, desiccation, very high ultraviolet radiation and high concentrations of perchlorates. There were two that held up especially well: Klebsiella pneumoniae and Serratia marcescens. For this reason, they were chosen for a second phase of the research, in which they were exposed to human immune cells. The results were quite worrying. Martian superbacteria. When exposed to bacteria that had remained in Martian conditions, it was seen that the immune cells lost their ability to produce cytokines, proteins that are part of the defensive response. They also didn’t produce as many reactive oxygen species, which are also produced as a result of an inflammatory immune reaction. In short, it seems that Martianized bacteria become much more elusive for the human immune system. The reasons. Zaccaria thinks that, in part, the bacteria’s resistance is due to the influence of the martian regolith. And it has nooks and crannies where water can accumulate that would help with desiccation. In addition, it protects them against ultraviolet radiation. At the same time, they themselves develop resistance mechanisms, which help them defend themselves against Martian inclemencies, but also against the human immune system. They become superbugs. The regolith doesn’t help at all. We have already seen that the regolith becomes a protector of bacteria. But the thing doesn’t stop there. In his study, Zaccaria exposed both live mice and human epithelial cells to simulated lunar and Martian regolith. Thus, it was seen that regolith damages the epithelial cells that normally cover the airways and, in addition, enhances inflammation and the activation of genes for mucus formation and pulmonary fibrosis. Let us remember that one of the bacteria that survives Martian conditions is causing pneumonia. That the regolith sensitizes the lungs does not help at all. Although it should be noted that the lunar regolith turned out to be worse than the Martian one. The effects are not comparable. ‘Klebsiella pneumoniae’ Heroin yeasts. Finally, this scientist has verified how Martian conditions affect eukaryotic microorganisms. Bacteria are prokaryotes because they do not have a delimited nucleus. Yeasts, for their part, are eukaryotic microorganisms. One of the yeasts tested in the study, Rhodotorula frigidalcoholisshowed great resistance to Martian conditions. It is capable of stopping its cell cycle and repairing DNA, so that dangerous changes do not continue to spread from one cell to another. Learning more about this mechanism could help us protect ourselves in our future as space colonizers. After all, our cells are eukaryotic. This doesn’t end here. Zaccaria wants to study some bacterial defense mechanisms, such as the formation of biofilms or the synthesis of certain pigments. In addition, he hopes to be able to analyze how Martian conditions affect bacteria that are beneficial, such as those of the intestinal microbiota. With all this, we will be able to have a much more precise photograph to prevent the possible evils of future colonizers. When quarantines are not enough, it will be better to have a well-researched action plan. Image | NASA | Ajay Kumar Chaurasiya In Xataka | Chernobyl was filled with mushrooms after the nuclear accident. Thanks to them we discovered a “new form of photosynthesis”

The great promise of obtaining a stronger material than steel

Inventwood, a company that emerged at Maryland University, The Superwood Commercial Manufacture will begin After seven years of development. The material, invented by the scientist Liangbing Hu In 2018, it has 50% more tensile strength than steel and a ten-times higher resistance ratio. Why is it important. The construction industry generates high CO2 emissions: producing a ton of steel emits almost two tons of carbon dioxide. This supermadera not only eliminates these emissions, but carbon capture when manufactured with sustainable farm wood. In addition, it offers natural resistance to fire, humidity, termites and fungi without chemical additives. The context. What began as an academic discovery documented in Nature In 2018 It has evolved to become a technology that promises to be commercially viable. The company has managed to reduce the manufacturing time of weeks to hours and has raised $ 15 million to build its first plant in Maryland. In detail. The process requires two main steps: First, lignin is partially dissolved – the polymer that hardens wood – using food degree chemicals. Then, the wood is compressed at 65 ° C, collapsing its cellular structure in a dense matrix. The result is a material five times thinner than the original, but twelve times more resistant and ten times harder. The figures: The first installation will produce a million square meters per year from this summer. A second phase in autumn of 2025 will introduce outdoor panels. The initial price will be “Premium” but competitive with tropical high-end wood: between 12.50 and $ 25 per pound (between 27.5 and 55 per kilo), compared to the $ 1-2 of steel (2-4 per kilo). Yes, but. Although the supermadera is initially more expensive than steel by weight, its upper resistance-peso ratio means that a 5 kilos beam could match the load capacity of a 45 kilos steel beam. This reduces its effective cost to 2.75-5.5 dollars per kilo when we adjust for yield. Much more interesting and less far from steel. The panoramic. Inventwood A second installation already plans of more than 30 million square meters for infrastructure and large developments. Contractors can cut, pierce and hold this overmaster with standard carpentry tools, which should facilitate its adoption. The material could also be extended to other sectors such as vehicles, aircraft or furniture, but for now the company is focusing on construction, where steel and concrete suppose 90% of the carbon impact of buildings. Outstanding image | Inventwood In Xataka | China was for decades the largest CO2 issuer on the planet. Renewables are correcting what seemed impossible

the best way to watch free and legal television on your mobile is back stronger than ever

Internet piracy is at a critical juncture, with the biggest counterattack from governments, security forces and rights owners that we have seen in many years. Pirated IPTV accounts for most of the attacks, with large police operations to end pirate football and even prison sentences just for sharing a legal signal. Some countries like Spain even contemplate the possibility of fine illegal IPTV users. In the midst of this chaotic situation, many users are returning to the safe side, to legal apps; and the good news is that you don’t have to pay to watch high-quality content completely legally. We have a good example in TDTChannelsan app that has not had a few problems, but is now better than ever. TDTChannels is an app for watch tv for free on our devices and without having to configure anything. In reality, it is an app that uses IPTV technology, but unlike others, it is based on completely legal IPTV lists; That is because the included channels already broadcast openly over the Internet, so the servers of this app do not host any type of pirated content. This app only connects us with the official server that already broadcasts live on the Internet, but it is much easier to use and change between channels. The last time we talked about TDTChannels, its situation was not good, after have been expelled from the Play Store for unknown reasons; Although the app was still available to download from its website and worked without problems, the millions of Spanish users who use Android phones could no longer find it in the official Google store. Fortunately, on December 19, Google backed down, and TDTChannels is again available for download in the Play Store; This way, we just have to enter the store from our mobile phone and search for TDTChannels to download it safely and directly. That’s not the only good news that the TDTChannels development team has for its users. The app started the year with new channelsboth television and radio, available without having to do anything; For example, 101TV Costa del Sol and Noticias Telemundo are now available, in addition to the Elite radio stations. Channels have also been updated so that they are available again, especially some local and regional channels such as 7 La Rioja. Continuing with this pace, TDTChannels also announced an important change in its operation. Specifically, as of the last update lists in W3U format are no longer available; This format for multimedia content is one of those used to share IPTV or music lists, but it is no longer compatible with TDTChannels. Instead, users can continue using lists in M3U format, which are much more popular, in addition to M3U8 and compatible with Enigma.

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