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@CheeRz
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It's week five of flowering, and everything is currently going according to plan. The buds are slowly growing bigger and becoming frosty. Once again, Barney's Farm provides top-quality seeds you can rely on.
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These 3 Gelato auto are part of a 30 plant SOG project, in this diary we will only focus on this fantastic strain as you can see, this is Gelato auto by fast buds grown with nothing but FLO (living soil blend) mixed up with the soil and water 💦, let's see what type of flavors we are going to find! Stay tuned for this one! 👨‍🌾❤️💚
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@Joni2017
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They follow their rhythm 65 cm 👏🏻💪, temperature 26º C ☀️ Humidity 65% 💧irrigation 750 ml/plant💦💦 water one day with nutrients and other day whitout nutrients 😋 defoliation 🍃 binaural sound 🎼😋👍
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@MG2009
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08/20/2020 Soil temp a little warm,it is hot and humid going to water her good,and mulch the topsoil. Flowering has started!
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8th week , 4th of flora They are tall, strong and healthy Using the same fert proportions as vegetative stage. They reached 77cm tall
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In dieser Woche geht es ein letztes mal in die Breite. Die abgebrochenen Triebe haben aujjf der einen Seite ein ganz schönes Loch hinterlassen. Das wird sich hoffentlich in dieser Woche noch schließen. Ich habe alles wieder etwa auf eine Höhe gebracht und lasse der Lady jetzt noch ein paar tage ihre Erholung, bevor es dann endlich in den 12:12 Zyklus geht. Näheres dazu in meinen Vegi Woche 6 Video auf Youtube: Coming this afternoon Link zur Lampe (Mars Hydro FC3000-Evo: https://marshydro.eu/products/mars-hydro-smart-fc-3000-evo/?ref=docgreenthumb Gutscheincode für Mars Hydro (3% Rabatt): docgreenthumb
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@daggaDNA
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DAY36🌻BIG BLOCK Bred by Cannabis Brothers California Lineage Blockberry x Motorbreath 15 (Legend OG) Tap water feeding (Premium program) Aptus Light (BS600) + UVA/UVB 3hrs daily @future_of_grow Soil (lightmix) & pH Plagron Tent size 4x4 (120x120) Pot size 6L (1.6 gal) Media sponsor Skunk Magazine 5th week of 12/12 ended for my Big Block by Cannabis Brothers California. As you can see, I don't do heavy defoliation on my plants as I think it's not natural to shock them like that. I don't give a flying f@ck about yield. My philosophy is turned towards good flavors before all and I like to follow plants development in more natural way when comes to defoliation. I believe that plant will always adapt and focus on where energy comes from, and in indoor grows we all know that bottoms will get bleachy as we enter late flowering. On the other side, nobody wants mids and small buds, so yes, of course I remove bottoms, but only first few nodes and not in a way of lollipopping or something like that. I'm just trying to be in balance with natural process of plant development at all times. I'm not saying defoliation is wrong, but since I never grow the same cultivar twice, it's way safer to observe their natural behaviour, instead of forcing techniquies other growers are claiming to be "the best". With that being said, my plants are exploding from happiness, as you can see. I got two of more indica leaning phenotypes and two taller - more sativa alike specimens. But all have a distinctive OG structure and smell is getting super intense. It smells diesel and chem like no run before. It's the reason why I'm growing it in the first place. And what better way to try out the true OG than from the original creators of White Fire OG. Yes. If you didn't know Terence and Philip, in collab with Rascal, the real OG's, also known as Payaso and Cannabis Gardener, are behind the legendary OG cross and all the rest are just white labeling this famous cross. Know your genetics, brothers and sisters. There are too many copycats out there, so try to show respect to the origins. Noone can make a patent on a certain cultivar, but we as consumers, need to know who are we going to support in the future. Breeding is art and I like to pay respect to those who actually do the work of breeding. Just look at the Blue Dream for instance. Do we actually know who stands behind this cross and who has the original tissue of this genetics? Ask Google a little bit, dig in, and you'll be shocked. Show respect to those who truly deserve one. Peace in and out!
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She's doing very well so far,smells super nice,definitely I'll grow more autos by gea seeds,I had the pleasure to grow autos by this awesome seedbank and can't wait to grow more of them,never let me down,let's see how she ends up.💚💛❤️🌱
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I attended NECANN (New England Cannabis Convention) in Burlington, VT this weekend - Great event!! While I was there I purchased these two Baox hemp clones. The baox strain is supposed to have very high CBD content with very low THC (less than 0.3%). I have obtained a hemp farming license from the state department of agriculture. I will be expanding my grow room setup over the next few weeks and adding a separate flowering tent for photo period plants, including these hemp plants. I am hoping to learn a lot about CBD here. My family has been using a variety of CBD products recently and enjoying the results. Hopefully I will be able to make some of these products on my own in the future. 👍
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@G_abitbol
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To me it looks like ready for harvest even thow I still have new pistils on main cola. I will flush one last time today. I will let the earth dry out and as soon as the leaves start to drop I will put into darkness for 48 hours and harvest. I think its good to give the plant a more natural rhythm as soon as you start flushing at least I have the feeling that it smells stronger now.
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@Island
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Week 4 Broad Mite still making victim. On this week I watered she with water + diatomaceous earth Still waiting for better days, I hope hv succes 😐 Apparently the diatomaceous earth is working against broadmite 😅
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Started ponytailing both Banana’s to get light to her lower buds for 6 hours at a time. Did more LST to the branches and main stem removed a few leaves and tucking what can be tucked. The bananas appear to both be in pre flower and they are all handling LST very well.
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Super pungent, super fat, supergirl! She really is amazing. One of the buds got some sort of heat or light burn weeks ago which has resulted in the top changing shape. It's noticeably rounder and fatter than the rest. The wait is killing me with this girl. Can't wait for harvest. Till next week!
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Seedling managing 93F 30%RH, around 20 DLI. Vpd is in the 3's. No I don't recommend. Signum Magnum. "A great sign appeared in the sky a woman clothed with the sun with the moon under her feet and on her head a crown of twelve stars. Sing ye to the Lord a new canticle: because He has done wonderful things. Glory to the Father, and to the Son, and to the Holy Spirit As it was in the beginning, and now, and ever shall be, world without end." The plant nutrient nitrogen exists in forms with both positive and negative charges. Ammonium (NH4+)(immobile in soil)(Cation) has a positive charge, while nitrate (NO3-) (highly mobile in soil)(Anion)has a negative charge. Nitrogen is unique among plant nutrients in that it can exist in both positively charged (ammonium, NH₄⁺) and negatively charged (nitrate, NO₃⁻) forms in the soil. This makes it a special nutrient. In that it is responsible for providing balance for reactionary trade offs when it comes to ph. Because ph itself in the medium will always slowly drift towards acidicity, such is nature. 80% of nitrogen should be nitrate and no more than 20% ammoniacal nitrogen. Ca, mg, and K are the big 3 cations related to soil composition, pH & base saturation. When nitrogen is in the form of ammonium, it can compete with calcium, magnesium, and potassium for absorption sites in the plant root. This competition can lead to a reduction in the uptake of these other essential nutrients. Nitrogen, particularly in its nitrate form (NO3-), can increase soil acidity, which can also affect the availability of calcium, magnesium, and potassium. The form of nitrogen applied (ammonium vs. nitrate) can influence its interactions with other nutrients. Ammonium nitrogen can have a more pronounced negative effect on the uptake of calcium, magnesium, and potassium compared to nitrate nitrogen. Common forms of ammonium nitrogen include ammonium ion (NH4+), urea, and ammonium compounds like ammonium nitrate, ammonium sulfate, and ammonium phosphate. Common forms of nitrate nitrogen include potassium nitrate (KNO3), sodium nitrate (NaNO3), calcium nitrate (Ca(NO3)2), and ammonium nitrate (NH4NO3). Phosphorus is an essential plant nutrient, and its availability in the soil is strongly linked to the presence of oxygen. Plants primarily absorb phosphorus as phosphate (PO4), and oxygen is a key component of this molecule. Furthermore, the availability of phosphorus in the soil can be impacted by factors like soil aeration and temperature, which in turn affect the oxygen supply to the roots. Phosphorus uptake in plants is most critical during the early stages of growth, particularly within the first few weeks of plant development. Young plants actively growing tissues have a high demand for phosphorus. They may absorb up to 75% of their total phosphorus requirements within the first few weeks of vegetative growth, with up to 51% of uptake happening overnight, primarily in the first few hours or early nightfall. ⑨Anaerobic root respiration, or respiration without oxygen, is detrimental to plants because it's less efficient and produces toxic byproducts, leading to reduced energy production, nutrient uptake issues, and ultimately, root damage and plant stress. ⑨Anaerobic respiration, unlike aerobic respiration, doesn't utilize oxygen as the final electron acceptor in the electron transport chain. This results in a significant drop in the amount of energy (ATP) produced, which is necessary for various plant functions, including growth, nutrient uptake, and maintenance of cellular processes. ⑨In the absence of oxygen, plants produce byproducts like ethanol and lactic acid during anaerobic fermentation. These byproducts can be toxic to the roots and inhibit their function, ⑨When oxygen is depleted in a medium, the pH tends to decrease (become more acidic) due to the production of metabolic byproducts. This is particularly relevant in biological systems where aerobic respiration relies on oxygen as the final electron acceptor. ⑨When oxygen is scarce, plants may switch to anaerobic respiration. This process produces carbon dioxide (CO2) as a byproduct. ⑨CO2 dissolves in water to form carbonic acid (H2CO3). This acid lowers the pH of the medium, making it more acidic. ⑨Anaerobic conditions can impair a plant's ability to regulate its internal pH, leading to a drop in cytoplasmic pH and potentially cellular acidosis. ⑨The change in pH can also affect the availability of certain nutrients to the plant, as pH influences the solubility of micronutrients like iron, manganese, zinc, copper, and boron. ⑨The lack of oxygen in the plant medium leads to a decrease in pH due to the production of carbon dioxide during anaerobic respiration and impaired pH regulation within the plant. In plant cells, cellular acidosis, a drop in the internal pH of the cytosol, is a significant stress response, particularly during conditions like flooding or hypoxia. This acidification can be triggered by a decrease in oxygen levels, leading to the production of metabolic byproducts like lactic acid and CO2. The plant's ability to tolerate and recover from these conditions depends on its cellular mechanisms to regulate pH and mitigate the effects of acidosis. When plants are subjected to low oxygen environments, such as those experienced during flooding, anaerobic metabolism, which produces lactic acid and ethanol, becomes the primary source of energy. This can lead to a build-up of these acidic metabolites in the cytosol, causing a drop in pH. OXYGEN Atomic oxygen (single oxygen atom, O) is the lightest form of oxygen, as it has the lowest mass of the oxygen molecules. Oxygen also exists as a diatomic molecule (O2) and an allotrope called ozone (O3), which have higher masses due to the number of oxygen atoms combined. Atomic Oxygen (O): This refers to a single oxygen atom, which is the most fundamental form of oxygen. Molecular Oxygen (O2): This is the common form of oxygen we breathe, consisting of two oxygen atoms bonded together. Ozone (O3): This is an allotrope of oxygen, meaning it's a different form of the same element, consisting of three oxygen atoms bonded together. Since atomic oxygen has the fewest oxygen atoms, it naturally has the lowest mass compared to O2 or O3. Ozone (O3) Lifespan: Ozone has a relatively long lifespan in the stratosphere, particularly at lower altitudes. For example, at 32 km in the middle latitudes during spring, ozone has a lifetime of about 2 months. Oxygen (O) Lifespan: Atomic oxygen, on the other hand, has a much shorter lifespan. At the same altitude, its lifetime is about 4/100ths of a second. Ozone-Oxygen Cycle: The ozone-oxygen cycle involves the rapid exchange between atomic oxygen (O) and ozone (O3). UV radiation can split molecular oxygen (O2) into atomic oxygen (O), which then reacts with O2 to form ozone (O3). Ozone can also be photolyzed by UV radiation, creating atomic oxygen again, which can then react with O3 to reform O2. Dominant Form: The partitioning of odd oxygen (Ox) between ozone and atomic oxygen favors ozone in the lower stratosphere. This means that a much larger proportion of odd oxygen exists as ozone than as atomic oxygen, especially in the lower stratosphere. Recombination: Atomic oxygen has a high energy and reactivity. When it encounters another oxygen atom, they can combine to form O2. This process releases energy, contributing to the heating of the atmosphere. Ozone Formation: Atomic oxygen can also react with molecular oxygen (O2) to form ozone (O3). Ozone plays a significant role in absorbing harmful UV radiation. Other Reactions: Atomic oxygen can react with various other molecules in the atmosphere, like nitrogen (N2), water (H2O), and carbon dioxide (CO2), forming different compounds. UV light below 240nm (peak 185nm) creates ozone (O₃) through a process called photolysis, where UV light breaks down dioxygen molecules (O₂) into single atomic oxygen atoms (O). These single oxygen atoms then react with other oxygen molecules to form ozone (O₃). Specifically, UV-C light with wavelengths shorter than 240 nm can cause this photolysis. UV light with wavelengths between 240-280 nm, (peak 254 nm) breaks down ozone (O₃) into dioxygen molecules (O₂) and atomic oxygen atoms (O). 280nm does not have the energy potential to break apart the stable bond of (O₂) into enough (O) to make (O₃) At ground level, atomic oxygen (single oxygen atoms) has a very short lifespan. This is because it's highly reactive and quickly combines with other molecules to form stable diatomic oxygen (O2) or other compounds. While the exact timeframe varies depending on the specific circumstances, its lifespan is typically measured in nanoseconds or picoseconds.