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They look like ice cream scoops, nice and compact, it's a shame it wasn't very productive
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@Rollex420
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Day 18 Transplanted today the plants into their 11L pots.😊 While instead i will let the Lemon Tree grow for another 4/5 days in the same pot because she only got 13 days, so I prefer to have it strengthened a little before the transplant. Day 24 Mimosa, Meringue, and Kmintz were Topped, Defoliated and also applied a light LST to the main stems of the plants. I will do the same for the Lemon Tree in the next 2/3 days.. I hope they have a quick recovery 🤞🏻 Day 27 LST also performed on the side branches of all plants except the Kmintz which is too small to bend its branches. Also Today we got 21 days for the Lemon Tree which has a great shape! Carried out topping, LST and a little defoliation.. 🙌🏻 In the next few days I will let them grow them without further stress. Have a great weekend gromies!! ☮️💚
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@SKIDR0W
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Blütezeit Indoor Zwischen 60 und 66 Tagen (im Schnitt 63 Tage) Wuchsverhalten Schmächtig Schnell Gestreckt Kräftig Seitentriebe durchschnittlich bis viele; sehr lang sowie sehr stark und kräftig. Die Pflanzen dieser Sorte... ...wachsen eher wie eine Indica. ...sind gut geeignet für einen SoG (See of Green). ...sollten nicht zu stark beschnitten werden. ...benötigen nicht viel Dünger. ...sind nicht anfällig für Pilzkrankheiten. ...haben keine Probleme mit niedrigen Temperaturen. ...haben keine Probleme mit hohen Temperaturen. ...sind gut geeignet für einen ScroG (Screen of Green). ...sind eine gute Wahl für den kommerziellen Anbau. ...bilden viele, dicke Buds an den Seitentrieben. ...sollten in der Blüte gestützt werden (Netze, JoJos, Stöcke). ...können in der Wachstumsphase Vorblüten bilden.
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Fifth week completed. They are showing more and more deficiencies, so I starded feeding more. I also got Bluelab soil pH meter - currently they are around 6.2 - not bad - week ago runoff was adound 5 so I was worried - but 2 waterings of pH 7.2 did the trick. They are back on track. I hope they will eat fast enough to save more leaves till the end - I want to keep them 3 or 4 more weeks. Buds are bulking nicely - they get fatter by the day. And they smell amazing - even with my horrid temperatures - the heat wave is real - AC does not help much though without AC it would be like 40*C in the tent 😵 Till next week! Happy growing everyone! 💪
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Eigentlich alles bestens sie entwickeln sich sehr gut ich bin sehr zufrieden morgen wird beschnitten, Triebe und Blätter entfernen die überschüssig sind und Licht weg nehmen👌😊 Actually everything is fine. They are developing very well. I am very satisfied. Tomorrow will be pruned, removing shoots and leaves that are excess and taking away light😁😊👌
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GRANDPA ZOMBIE 🧟‍♂️ / IZI SEEDS WEEK #10 OVERALL WEEK #5 FLOWER This week all good 👍, she's looking great no issues thus far in this grow. She's a dark green color and her buds are starting to get the swell on!! STAY GROWING MY FRIENDS!! THANK YOU FOR STOPPING BY AND TAKING A LOOK!! IT'S ALWAYS APPRECIATED!! THANK YOU IZI SEEDS!!! GRANDPA ZOMBIE 🧟‍♂️ / IZI SEEDS
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Just watering now, no more feeds. Lots of leaves dying off but trichomes are still clear. Will wait another week to see what happens. She smells very good indeed.
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@Roberts
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Auto Northern Dragon Fuel is growing good. She has started to produce her first pistils. I did some defoliation, and lollipop the canopy some. Just getting her ready for the stretch. Everything is looking good at the moment. Thank you Medic Grow, and Super Sativa Seed Club. 🤜🏻🤛🏻🌱🌱🌱 Thank you grow diaries community for the 👇likes👇, follows, comments, and subscriptions on my YouTube channel👇. ❄️🌱🍻 Happy Growing 🌱🌱🌱 https://youtube.com/channel/UCAhN7yRzWLpcaRHhMIQ7X4g
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@420keef
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Looking healthy! Still wondering if the second one is a gorilla glue because i might have mixed them up, i gues time will tell!
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What's in the soil? What's not in the soil would be an easier question to answer. 16-18 DLI @ the minute. +++ as she grows. Probably not recommended, but to get to where it needs to be, I need to start now. Vegetative @1400ppm 0.8–1.2 kPa 80–86°F (26.7–30°C) 65–75%, LST Day 10, Fim'd Day 11 CEC (Cation Exchange Capacity): This is a measure of a soil's ability to hold and exchange positively charged nutrients, like calcium, magnesium, and potassium. Soils with high CEC (more clay and organic matter) have more negative charges that attract and hold these essential nutrients, preventing them from leaching away. Biochar is highly efficient at increasing cation exchange capacity (CEC) compared to many other amendments. Biochar's high CEC potential stems from its negatively charged functional groups, and studies show it can increase CEC by over 90%. Amendments like compost also increase CEC but are often more prone to rapid biodegradation, which can make biochar's effect more long-lasting. biochar acts as a long-lasting Cation Exchange Capacity (CEC) enhancer because its porous, carbon-rich structure provides sites for nutrients to bind to, effectively improving nutrient retention in soil without relying on the short-term benefits of fresh organic matter like compost or manure. Biochar's stability means these benefits last much longer than those from traditional organic amendments, making it a sustainable way to improve soil fertility, water retention, and structure over time. Needs to be charged first, similar to Coco, or it will immobilize cations, but at a much higher ratio. a high cation exchange capacity (CEC) results in a high buffer protection, meaning the soil can better resist changes in pH and nutrient availability. This is because a high CEC soil has more negatively charged sites to hold onto essential positively charged nutrients, like calcium and magnesium, and to buffer against acid ions, such as hydrogen. EC (Electrical Conductivity): This measures the amount of soluble salts in the soil. High EC levels indicate a high concentration of dissolved salts and can be a sign of potential salinity issues that can harm plants. The stored cations associated with a medium's cation exchange capacity (CEC) do not directly contribute to a real-time electrical conductivity (EC) reading. A real-time EC measurement reflects only the concentration of free, dissolved salt ions in the water solution within the medium. 98% of a plants nutrients comes directly from the water solution. 2% come directly from soil particles. CEC is a mediums storage capacity for cations. These stored cations do not contribute to a mediums EC directly. Electrical Conductivity (EC) does not measure salt ions adsorbed (stored) onto a Cation Exchange Capacity (CEC) site, as EC measures the conductivity of ions in solution within a soil or water sample, not those held on soil particles. A medium releases stored cations to water by ion exchange, where a new, more desirable ion from the water solution temporarily displaces the stored cation from the medium's surface, a process also seen in plants absorbing nutrients via mass flow. For example, in water softeners, sodium ions are released from resin beads to bond with the medium's surface, displacing calcium and magnesium ions which then enter the water. This same principle applies when plants take up nutrients from the soil solution: the cations are released from the soil particles into the water in response to a concentration equilibrium, and then moved to the root surface via mass flow. An example of ion exchange within the context of Cation Exchange Capacity (CEC) is a soil particle with a negative charge attracting and holding positively charged nutrient ions, like potassium (K+) or calcium (Ca2+), and then exchanging them for other positive ions present in the soil solution. For instance, a negatively charged clay particle in soil can hold a K+ ion and later release it to a plant's roots when a different cation, such as calcium (Ca2+), is abundant and replaces the potassium. This process of holding and swapping positively charged ions is fundamental to soil fertility, as it provides plants with essential nutrients. Negative charges on soil particles: Soil particles, particularly clay and organic matter, have negatively charged surfaces due to their chemical structure. Attraction of cations: These negative charges attract and hold positively charged ions, or cations, such as: Potassium (K+) Calcium (Ca2+) Magnesium (Mg2+) Sodium (Na+) Ammonium (NH4+) Plant roots excrete hydrogen ions (H+) through the action of proton pumps embedded in the root cell membranes, which use ATP (energy) to actively transport H+ ions from inside the root cell into the surrounding soil. This process lowers the pH of the soil, which helps to make certain mineral nutrients, such as iron, more available for uptake by the plant. Mechanism of H+ Excretion Proton Pumps: Root cells contain specialized proteins called proton pumps (H+-ATPases) in their cell membranes. Active Transport: These proton pumps use energy from ATP to actively move H+ ions from the cytoplasm of the root cell into the soil, against their concentration gradient. Role in pH Regulation: This active excretion of H+ is a major way plants regulate their internal cytoplasmic pH. Nutrient Availability: The resulting decrease in soil pH makes certain essential mineral nutrients, like iron, more soluble and available for the root cells to absorb. Ion Exchange: The H+ ions also displace positively charged mineral cations from the soil particles, making them available for uptake. Iron Uptake: In response to iron deficiency stress, plants enhance H+ excretion and reductant release to lower the pH and convert Fe3+ to the more available form Fe2+. The altered pH can influence the activity and composition of beneficial microbes in the soil. The H+ gradient created by the proton pumps can also be used for other vital cell functions, such as ATP synthesis and the transport of other solutes. The hydrogen ions (H+) excreted during photosynthesis come from the splitting of water molecules. This splitting, called photolysis, occurs in Photosystem II to replace the electrons used in the light-dependent reactions. The released hydrogen ions are then pumped into the thylakoid lumen, creating a proton gradient that drives ATP synthesis. Plants release hydrogen ions (H+) from their roots into the soil, a process that occurs in conjunction with nutrient uptake and photosynthesis. These H+ ions compete with mineral cations for the negatively charged sites on soil particles, a phenomenon known as cation exchange. By displacing beneficial mineral cations, the excreted H+ ions make these nutrients available for the plant to absorb, which can also lower the soil pH and indirectly affect its Cation Exchange Capacity (CEC) by altering the pool of exchangeable cations in the soil solution. Plants use proton (H+) exudation, driven by the H+-ATPase enzyme, to release H+ ions into the soil, creating a more acidic rhizosphere, which enhances nutrient availability and influences nutrient cycling processes. This acidification mobilizes insoluble nutrients like iron (Fe) by breaking them down, while also facilitating the activity of beneficial microbes involved in the nutrient cycle. Therefore, H+ exudation is a critical plant strategy for nutrient acquisition and management, allowing plants to improve their access to essential elements from the soil. A lack of water splitting during photosynthesis can affect iron uptake because the resulting energy imbalance disrupts the plant's ability to produce ATP and NADPH, which are crucial for overall photosynthetic energy conversion and can trigger a deficiency in iron homeostasis pathways. While photosynthesis uses hydrogen ions produced from water splitting for the Calvin cycle, not to create a hydrogen gas deficiency, the overall process is sensitive to nutrient availability, and iron is essential for chloroplast function. In photosynthesis, water is split to provide electrons to replace those lost in Photosystem II, which is triggered by light absorption. These electrons then travel along a transport chain to generate ATP (energy currency) and NADPH (reducing power). Carbon Fixation: The generated ATP and NADPH are then used to convert carbon dioxide into carbohydrates in the Calvin cycle. Impaired water splitting (via water in or out) breaks the chain reaction of photosynthesis. This leads to an imbalance in ATP and NADPH levels, which disrupts the Calvin cycle and overall energy production in the plant. Plants require a sufficient supply of essential mineral elements like iron for photosynthesis. Iron is vital for chlorophyll formation and plays a crucial role in electron transport within the chloroplasts. The complex relationship between nutrient status and photosynthesis is evident when iron deficiency can be reverted by depleting other micronutrients like manganese. This highlights how nutrient homeostasis influences photosynthetic function. A lack of adequate energy and reducing power from photosynthesis, which is directly linked to water splitting, can trigger complex adaptive responses in the plant's iron uptake and distribution systems. Plants possess receptors called transceptors that can directly detect specific nutrient concentrations in the soil or within the plant's tissues. These receptors trigger signaling pathways, sometimes involving calcium influx or changes in protein complex activity, that then influence nutrient uptake by the roots. Plants use this information to make long-term adjustments, such as Increasing root biomass to explore more soil for nutrients. Modifying metabolic pathways to make better use of available resources. Adjusting the rate of nutrient transport into the roots. That's why I keep a high EC. Abundance resonates Abundance.
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@TSXpress
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Og kush auto - 420fastbuds Harvested! Super awesome strain!
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Replanted kids from the cups into organic coco mix. 6g of BioGrow per 1 litre of coco mix, plus I added some mycorrhiza. After replanting watered with Enhancer and Sugar Royal. Пересадил малышек из стаканов в органический кокосовый замес. 6гр BioGrow на литр кокосового субстрата, добавил микоризы. После пересадки пролил Enhancer и Sugar Royal.
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- Worried about overcrowding of leaves and not enough light getting through. Based on research it is not good to trim Autos but i found later in this grow that my plants were strong enough to trim and actually seemed to benefit from more light being able to get through to lower branches - Lots of growth still even though flowering has begun and due to it being an Autoflowering strain it will keep growing - Had a bent stem this week on one plant, splinted it and seemed to have regenerated -
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Big Lemon needs a stronger dose of calcium in her next feeding. I normally dont have nutrient probs but ive never had to feed a plant this big and hungry 😯
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I can never talk bad on auto flowers. I did not pay much attention to these girls and it shows but the genetics from FASTBUDS were so good that the quality of the buds was still A1. I bought more FASTBUDS seeds and will grow them in my new setup and hopefully I can maximize the yields this time around.
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Le piante hanno parecchia fame, per il momento do 3 Litri di soluzione ogni due o tre giorni dipende, crescono a vista d'occhio.
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@yan402
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Still just runnof from my indoor plants, the rest is in the video.