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@valiotoro
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Week 8 for the Cherry coco🍒 One Green Pheno in the garden. Green sensation next week I can already see the harvest👀 Have a good one Take care😎
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Easy strain to grow, didn't stretch much and yielded good for a cookie. Frosty REALLY dense buds fragrant buds. Really good. 🙏: 1:
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Week 6 Veg. The Wock smell is getting stronger by the day. Strong candy terps with gas, Straight GAS that stings the nose bit makes you want to take an even bigger huff. I can already tell she’s going to be stanky once flower starts. One thing to note about Wockesha is that she is a super compact plant with thick foliage once topped. I’ve started to introduce the bloom nutrients at 1tbsp/g. since I’ll be flowering in the next 3 to 4 weeks, I’m adding early to ensure that all nutrients in my living soil will be broken down and readily available to all plants as soon as bloom starts.
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@BlaKX
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Ai Gude Growmies Plan B mit EPN DĂŒnger und nur Wasser Gießen! Musste wieder entlauben und Triebe stuzen da mehr Blatt Masse bei er Hitze leider 2 mal dazu fĂŒhrte das es substrat fast komplett austrocknete da ich nicht mit gerechnet habe das sie 3-4 L an einem Tag verbraucht. Habe seit dem 1 Tag outdoor die topf OberflĂ€che mit moos abgedeckt weil es 1. Das Gießwasser aufsaugt and gleichmĂ€ĂŸig an die erde abgibt habe noch nie gesehen das die Wurzeln so dicht unter der OberflĂ€che wachsen!
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@Preston22
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Overall successful grow
 will try to get bigger buds on my next grow for sure with different techniques
. Other than that 42fastbuds is legit
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@Belverde
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Welcome growers End of week n°3 in bloom for this nice CREAM CARAMEL đŸŹđŸ­đŸ« She's the best in the garden, no doubt 🙌 Great aroma...nice bud development..fast and compact 💯 And like all the other ladyes, like you have see in the video, yesterday i defoliated hard âœ‚ïžđŸƒđŸƒđŸƒ Usually i don't use this type of "aggressive technique" I always defoliated a little, but never in this way... This time I decided to practice it on all the plants I have in the garden (10 visible in the diaries + 8 regular all female) out of pure curiosity to see how each of them will react We seeing what happens.. Anyway After that I immediately start a more massive fertilization.. Next week we will see how they will be 😉 About nutrients 👇 I still giving their always organic/veganic nutrients.. A little bit of silicium (Bionova) / Crescita (Biomagno) / Activera (Biobizz) / Grow vegan (Bionova) / The Missing Link (Bionova) / X-Cell (Bionova) / Bioheaven (Biobizz) , a little bit of P-K 3-5 (Bionova) /Fioritura (Biomagno) / Bloom vegan (Bionova) and now i have introduced Biomassa (Biomagno) and Florastimo (Biomagno) Basically these nutrients contain primarily NPK in organic / vegan form + kelp extracts, humic and fulvic acids, amino acids, aloe vera, potassium silicate, beneficial bacteria and fungi Like i usually do, a little bit of everything at any watering 💧 And that's all.. See you in week n°4 of flowering đŸŒ» Thanks for watching 😎👍👍 FC ✌ 🇼đŸ‡č
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@Salokin
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Hi growmies, unfortunately I skipped a day checking on the reservoir and the plant must have consumed a lot more water than expected, probably due to the heat we are experiencing where I live, since I realized tip burn getting worse everywhere I checked the ec, which was close to 3 😳, topped up with RO water right away and this seems to have stopped it. Other than that I don’t think it bothered the plant too much either, as she keeps on swelling bigger and bigger. A&B fertilizer was reduced already and once, either next week or the one after I’ll start flushing, depending on the stage of ripening.
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The outdoor grow continues to come along nicely! Temps were up last week, getting in the 30's with the humidex, so the ladies got some extra water. Thanks for stopping by growfessors đŸ‘œđŸŒłđŸ’š
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Hey everyone 😊. The two women will be in the vegi tent for the last time under 6/6 this week, and will come to the flower tent đŸ€— next week. Otherwise there is nothing to report this week, except that both are developing really well 😀. Have fun with the update and everything stays healthy đŸ™đŸ»â˜˜ïž You can buy this Strain at : https://sweetseeds.es/de/red-mandarine-f1-fast-version/ Type: Red Mandarine F1 Fast Version â˜ïžđŸŒ Genetics: Red Poison AutoÂźïž (SWS39) X Tangie (California Orange x Hybrid Skunk) 👍 Vega lamp: 2 x Todogrow Led Quantum Board 100 W 💡 Bloom Lamp : 2 x Todogrow Led Cxb 3590 COB 3500 K 205W đŸ’ĄđŸ’Ąâ˜ïžđŸŒ Soil : Canna Coco Professional + â˜ïžđŸŒ Fertilizer: Green House Powder Feeding â˜ïžđŸŒđŸŒ± Water: Osmosis water mixed with normal water (24 hours stale that the chlorine evaporates) to 0.2 EC. Add Cal / Mag to 0.4 Ec Ph with Organic Ph - to 5.5 - 5.8 .
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@pareto
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Maybe she had like a week more to go but I am going on vacation in a few days so she had to go. Trimmed everything off that did not have any trichomes on it. Looks great, smells great.
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Processing
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@Reaper
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JUNE 17: Start of week 2 flowering Not too much stretch but getting bushy
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Still cooking strong. Did a heavy defoliation after these pics. But really just letting em be crazy ha. This strain is super hearty, excited to see what the next few weeks bring. Really starting to show signs of flower no been on 12/12 for about 10 days. Thanks for stopping by and as always đŸ»
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Day 53 Started to flush the Fruitspirit finally i see some amber trichomes 😆 Flushing just with plain water PH 6.5 I will do closeups tomorrow! đŸ’Ș Skittelz is packing on buds as she should.... She isnt the biggest fan of high nutrient content but looks like pure Indica power! Green gelato is an crazy.... I dont understand this bud đŸ‘œ She looks amber enaught to be harvested but she is still putting on weight and I wanna give her all the time she needs Day 54 Took some closeups today and as you can see only weeks to gođŸ‘» The smell of the Gelato is so overpowering I love it 😁 im so happy that I took some clones they will grow outside soon if when they are strong enaughtđŸ’ȘđŸ’Ș😅 Today i added a fresh pack of TNB Natural Co2 Enhancer for the final flower weeks....
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@MG2009
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07/05/2019 Start of week 6 flower,Calyxs are swelling up more pistils popping out she should start bulking up this week I'm Told she puts on her weight in last 2 weeks. Excited to see how she does. Might add some Overdrive into her feeding this week what do ya think?
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Remember that, however you are played, or by whom, your soul is in your keeping alone. Even though those who presume to play you be kings or men of power, when you stand before God, you cannot say, 'But I was told by others to do thus,' or that virtue was not convenient at the time. This will not suffice. Remember that. Day:18 84°F and 65% RH (VPD) for the vegetative stage. Approximately 1.15kPa(assuming leaf temperature is about 2°F cooler than the air), which falls right into the ideal vegetative sweet spot (0.8kPa to 1.2kPa). At 1.15kPa, plants can draw water and nutrients efficiently without risking stress or wilting. It keeps the leaf pores (stomata) open, allowing for ideal carbon dioxide intake and maximizing vegetative growth. VPD is determined by the leaf's temperature, not just the ambient air. Because leaves usually run 1° to 3°F cooler than room air under bright grow lights, my actual VPD will be slightly lower, closer to the 1.0kPa mark. As she transitions from vegetative growth to flowering, one can gradually lower the humidity (to around 45–60%) and drop temperatures slightly to prevent disease from settling inside dense buds when they appear. Night:6 At 70°F and 60% relative humidity, Vapor Pressure Deficit (VPD) is 0.86 kPa. This is right on the cusp of whats optimal for the vegetative stage. During the nighttime, plants generally close their stomata and undergo cellular respiration rather than photosynthesis. Transpiration slows to a near stop, making VPD less critical at night than during the day. However, maintaining a nighttime VPD between 0.8 and 1.0 kPa is highly beneficial in that it ensures the air is dry enough to prevent powdery mildew or bud rot, but moist enough to keep the plant from undergoing unnecessary stress. This range keeps the environment comfortable for cellular processes and prevents large atmospheric swings. Keeping it all flowing. (Not pushing them yet, these are photoperiods) The optimal soil (root zone) temperature for cellular root respiration and nutrient uptake in cannabis is between 68F & 72F This narrow range balances biological energy production (cellular respiration) with the dissolved oxygen levels in the soil, maximizing plant growth and health. Warmer soils hold significantly less dissolved oxygen. When soil temperature exceeds 74F oxygen depletion occurs, inhibiting cellular respiration almost entirely, At 68-72F root cells generate optimal adenosine triphosphate (ATP) via respiration to power root-tip elongation and the active transport of water and nutrients. Too Hot (Above 78F) Root respiration increases, demanding more oxygen, while the water's oxygen-carrying capacity drops. This creates a prime environment for anaerobic pathogens and Pythium (root rot). Too Cold (Below 60F) Root metabolism and cellular respiration slow to a crawl. This severely impairs nutrient and water absorption, leading to yellowing, wilting, and phosphorus deficiencies. A lot depends on whether it's automatic or photoperiod; with photoperiod, there is not as much of a need to push "hard" as the real countdown only begins once the flower is initiated. Automatics, on the other hand, the chronological "clock" begins ticking the moment the seed germinates. It is of critical importance that the seedling growth gets off to the races, understanding that early growth is like compound interest, which will pay off come harvest. This reality is why getting autoflowers "off to the races" early on yields such exponential benefits. The "compound interest" is directly related to the surface area of the leaves. Larger, faster-growing seedlings process more light and build bigger root networks early on, which translates into an explosion of vertical and lateral growth during their short vegetative window. The margins for error are so thin with autoflowers; this early-stage momentum depends on several critical practices. Seedlings exposed to increased atmospheric CO2 levels early in life will develop at an increased rate. To effectively "extend" or optimize the capacity of Photosystem II (PSII) for increased photosynthetic efficiency. In standard oxygenic photosynthesis, Photosystem II (PSII) is naturally limited to the red-light spectrum, peaking at 680nm. Extending its light-harvesting capacity past 700nm into the far-red region requires bypassing the natural limits of standard chlorophyll a. Adding 730 nm (far-red) LEDs alongside standard red/blue lights has been shown to increase canopy photosynthesis by 20–30% in several crops by acting synergistically with shorter wavelengths. However, the limitation is that excessive, pure IR/Far-red light (without accompanying red light) can trigger the "shade avoidance response," causing plants to grow tall, weak, and spindly rather than robust. Utilizing infrared light (specifically the 700-750 nm far-red range) is a viable method to boost photosynthetic efficiency. It acts as a bridge to allow PSII to utilize a broader spectrum of light, breaking the traditional 700 nm barrier. UVR8-mediated signaling (often in conjunction with CRY proteins) triggers protective mechanisms that maintain the stability of the photosynthetic apparatus (including LHCII and reaction center proteins), thus ensuring that the efficiency of Photosystem II remains higher in UV-B-exposed plants compared to plants lacking this receptor. ΩPSII indictates the rate of electron transfer from water to plastoquinone, which drives the production of ATP and NADPH. There is a close link between ΩPSII and the true rate of CO2 fixation (Ω*co2). ETR stands for Electron Transport Rate. It measures the speed at which electrons are moved through the thylakoid membranes in a plant's chloroplasts during the light-dependent reactions of photosynthesis. Infrared light (particularly Near-Infrared or NIR) improves cellular energy by interacting directly with the electron transport chain (ETC) in mitochondria. This process boosts adenosine triphosphate production, which acts as a metabolic coefficient multiplier by accelerating enzyme activity dramatically. Extend then multiply. Far-Red photons interact with plant photoreceptors to accelerate the plant’s biological "clock" or trigger a shade-avoidance response. Autoflowers don't use the plant's biological clock, although the IR will initiate a shade avoidance and make them stretchy. You can just add equal measures of 660nm-680nm to negate the shade avoidance effect. Replacing nights' "darkness" with a combination of IR+ and 660nm. Because autoflowers don't require a dark period to flower, many growers just blast them with light. 18/6 24/0. However, this ignores the plant's metabolic rhythms, where daytime photosynthesis (light reactions) must be perfectly balanced with nighttime carbon fixation and assimilation (Calvin cycle) to avoid bottlenecking plant development. Cellular respiration is a 24/7 process, but it can only function while the plant has the free oxidative capacity to do so. A 100% photosynthetically active leaf cannot perform cellular respiration. The viral trend of defoliation of every leaf that isn't "getting enough light" is of great detriment overall, putting 100% of the cellular respiratory "workload" and responsibility on the 0/4/6 hours of darkness in sub-optimal conditions for enzymatic activity. Photosynthesis captures nearly 100% of the initial energy as carbon, while cellular respiration is the process that unlocks 90% of that captured energy into usable ATP so the plant can use it. Respiration is considered roughly 30% to 40% efficient. It captures enough of the potential energy in glucose to synthesize around 30 to 38 ATP molecules per glucose molecule. The remaining 60% to 70% of the energy in the sugar is not captured in ATP; instead, it naturally escapes into the environment as heat, which helps regulate plant temperature. In plants, the primary enzymes of the Electron Transport Chain (ETC) and the ATP synthase complexes are typically adapted to function optimally in warmer temperatures (roughly 25°C to 35°C depending on the specific plant strain). As temperatures rise within this physiological range, molecular collisions increase, speeding up respiration and ATP production. The cannabis plant has a branched respiratory pathway. During heat or cold stress, plants activate Alternative Oxidase (AOX). AOX burns sugars to dissipate energy as heat rather than coupling it to ATP production. This pathway actually functions optimally at elevated temperatures to help protect the cell from the damaging build-up of Reactive Oxygen Species (ROS) during heat stress. Enzyme activity generally scales with heat; there is a strict biological limit. If canopy temperatures in a grow room exceed 40°C, the enzymes and their supporting lipid membranes lose stability. Not saying you need to go crazy, just optimize nights the same as we optimize days. Phosphorus is the driving force behind early seedling development. It acts as the "energy hub" of the plant, directly driving cell division, robust root growth, and the creation of DNA. Without an adequate, easily accessible supply early on, the plant's overall growth potential and final yield can suffer permanently. E=MC2 looks like a simple multiplication problem; it describes a fundamental physical truth: mass and energy are the same thing. The equation doesn't just calculate a value; it reveals that mass is effectively "congealed" energy. Energy is just numbers. Energy isn't a physical "substance" you can hold or touch. It is essentially an abstract, calculated number that we assign to a system to predict how it will change, interact, or move. A numerical label we attach to matter to track how it behaves. Because the universe runs on laws of symmetry (specifically, that the laws of physics don't change over time), a single global number must be conserved. We call that number "energy". We don't grow; we facilitate energy conversion. How well a seedling grows is essentially down to how much knowledge one can acquire to increase the level of conversion to occur. Applying knowledge effectively requires intuition, which comes from hands-on experience. A seasoned stoner learns to read subtle signs—like a slight change in leaf turgor (stiffness), subtle color shifts, or the specific texture of the soil—before a textbook diagnosis can be made. Ultimately, growing is the application of botanical science blended with active observation. Knowledge dictates your potential, but adaptability and attentiveness to the plant's immediate environment determine your results. 1.618 nature mathematically optimizes quantum energy transfer and light absorption efficiency within the photosynthetic machinery, as it naturally dictates energy scaling hierarchies and resonance dynamics. External vibration or electromagnetic wave that perfectly matches a plant's natural frequency directly influences plant growth. Low-frequency sound waves and targeted electromagnetic fields stimulate cellular processes and boost photosynthetic efficiency Does it produce better yields? How long is a piece of string? As long as you cut it. But isssss the juice worth the squeeze? The quantum framework of the IVM seems to think so. Good enough for the quantum firmware, good enough for the DNA software. Genetics are not dictated; they are expressed; the rate of that expression is dictated by the environment in which growth occurs. Quantum Coherence in Photosynthesis occurs When a photon of sunlight strikes a leaf, the energy it carries must travel to a reaction center to be converted into chemical energy. This process operates at nearly 100% efficiency. If the energy moved in a traditional "bunching" or random hopping manner, a large portion of it would be lost as heat. Instead, plants utilize quantum superposition. The energy particle (exciton) doesn't just take one path; it exists in a wave state and explores multiple pathways simultaneously. It essentially "chooses" the most efficient route to the reaction center simultaneously. Research shows that molecular vibrations and the specific network arrangements of chlorophyll molecules (like the naturally evolved Chlorophyll A & B ratios) actively protect against energy overflow, optimizing light capture across different light intensities. Enzymes are the biological catalysts that speed up chemical reactions within a plant's cells, allowing them to grow, metabolize, and repair. Rather than relying solely on the classical kinetic energy of molecules colliding, plants use quantum tunneling. Subatomic particles like electrons and protons (hydrogen ions) can literally "teleport" through energy barriers that they normally wouldn’t have the energy to climb over. This makes vital metabolic reactions happen far faster than classical physics could ever explain. Chloryphyll b has peak absorption at 460nm (Blue) and at 647nm(Red). If we take the blue peak wavelength 460nm and a UV-B, UVR8 peak absorption wavelength 285nm, Tryptophan-285 (W285) Sensing protein. 460/285=1.618 Ω If we take chlorypyhll b's Red absorption peak 647nm and a UV-A of 400nm, we get 647/400=1.618 Ω. "Structure of light". The cryptochrome photoreceptor (CRY) is a UV-A/blue light receptor that shares this dual sensitivity with several other biological structures and functions, including significant sequence similarity and a common evolutionary ancestor with DNA photolyase enzymes. These are light-activated enzymes that use blue/UV-A light to repair DNA damage caused by UV-B radiation in plants. Synergistic. But Shhh, it's a secret. Effective quantum efficiency of photosystem II, often denoted as ΩPSII, represents the proportion of light absorbed by Photosystem II (ΩPSII) that is actually used in photosynthetic electron transport. It is a key indicator of how efficiently a plant is using light for photosynthesis, as opposed to losing it as heat or fluorescence. ΩPSII (effective quantum yield of photosystem II) functions primarily as a "multiplier" (a coefficient of efficiency) rather than an additive factor when estimating the overall photosynthetic electron transport rate (ETR). Multipliers are considered far more beneficial than additions because they generate exponential growth, leverage existing resources to their full potential, and create sustainable, self-multiplying capacity, rather than just incremental, linear increases. This fascinating observation is rooted in the intersection of subatomic geometry, fractal scaling, and quantum dynamics. In specific molecular arrangements—such as in conjugated polymer networks or biomolecular architectures—the Golden Ratio (PHI) naturally dictates energy scaling hierarchies and resonance dynamics. Mathematically tied to the fine-structure constant, which defines the strength of the electromagnetic interaction. The Golden Ratio can be mapped geometrically as the Golden Angle (137.5 degrees) in atomic structures, linking the charge of the electron to fundamental quantum constants like Planck's constant. Electromagnetic. The Golden Angle (137.5): This angle is derived from the Golden Ratio (1.618). It is the smaller of two angles created when a circle is divided such that the ratio of the arcs equals the Golden Ratio.
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@Sadhus
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**Semaine Harvest : RĂ©colte Finale – Sticky Broccoli (28 avril 2026)** **Note :** Fin du cycle Eternity Grow Cup 2. RĂ©colte effectuĂ©e en semaine 10 de floraison (lĂ©gĂšrement anticipĂ©e). Tout le journal de culture est maintenant complet. ### Contexte et Bilan du Cycle AprĂšs 10 semaines de floraison (semaine 14 globale), la rĂ©colte a Ă©tĂ© dĂ©clenchĂ©e suite Ă  un dĂ©part de botrytis sur une autre plante du mĂȘme espace. J’aurais pu laisser encore quelques jours pour laisser mĂ»rir un peu plus les trichomes ambrĂ©s, mais la sĂ©curitĂ© prime. La plante dominante (150 cm) a donnĂ© un beau rendement qualitatif, avec des buds denses, extrĂȘmement frosty et rĂ©sineux. **Poids frais : environ 780 grammes** (poids humide total des buds trimĂ©s, sans les grosses tiges). Mise Ă  jour prĂ©vue dans 2 semaines pour le **poids sec final** aprĂšs un bon curing. ### Observations Ă  la RĂ©colte - **Buds** : Denses et compacts, trĂšs collants. Couverture trichomale exceptionnelle (majoritairement laiteux avec quelques tĂȘtes ambrĂ©es). L’aspect sugar est magnifique, les buds brillent littĂ©ralement. - **Odeur** : TrĂšs agrĂ©able, sucrĂ©e, Ă©picĂ©e et florale, typique de Sticky Broccoli. Puissante mĂȘme aprĂšs le flush. - **RĂ©sine** : ExtrĂȘmement rĂ©sineuse au toucher – parfait pour du dry sift ou un petit Ice-o-Lator. - **Structure** : Belle densitĂ© globale, mĂȘme si la taille individuelle des buds reste dans la moyenne haute pour la variĂ©tĂ© (pas les plus gros que j’ai vus, mais la qualitĂ© trichomale compense largement). - **SantĂ©** : Plantes propres jusqu’à la fin, pas de carence visible. Le flush des 3 derniers jours (EC 0,7) a bien aidĂ© Ă  nettoyer les sels. **Clones** : Quelques clones prĂ©levĂ©s plusieurs semaines auparavant ont Ă©tĂ© repiquĂ©s avec succĂšs dans leur nouveau systĂšme. Ils sont bien enracinĂ©s et prĂȘts Ă  repartir pour un prochain cycle de vĂ©gĂ©tation/floraison. La gĂ©nĂ©tique est conservĂ©e ! ### ParamĂštres en Fin de Cycle (semaine 10) - TempĂ©rature jour/nuit : 19-21 °C / 14-15 °C - HumiditĂ© : 48-58 % jour / 29-39 % nuit - VPD : 0.9-1.3 kPa - PPFD : 550 (DLI 24) - UV : 90 min/jour - EC final : 1.0 puis flush Ă  0.7 (Terra Aquatica seul) - pH : 5.8-6.0 - Steering : gĂ©nĂ©ratif jusqu’à la fin - 48h de blackout avant rĂ©colte : appliquĂ© pour booster la rĂ©sine et amĂ©liorer la qualitĂ© des trichomes. ### Plans Post-RĂ©colte - **SĂ©chage** : 7-10 jours Ă  18-20 °C et 55-60 % d’humiditĂ© dans un espace sombre et ventilĂ©. - **Curing** : Minimum 2-3 semaines en bocaux (burping rĂ©gulier) pour affiner les terpĂšnes et la douceur. Mise Ă  jour dans 2 semaines avec le poids sec final. - **Utilisation** : Une partie en fleurs sĂ©chĂ©es/cure, et un petit batch pour **dry sift** + **Ice-o-Lator** (bubble hash) histoire de se rĂ©galer avec la rĂ©sine exceptionnelle de cette Sticky Broccoli. **Tips Ă©ducatif final : Le flush et le blackout en fin de cycle** - **Flush** (3 derniers jours Ă  EC trĂšs bas) : Permet d’éliminer les sels accumulĂ©s et amĂ©liore nettement le goĂ»t final (moins de chimie, plus de terpĂšnes purs). - **48h de blackout** : Technique simple mais efficace qui stress lĂ©gĂšrement la plante de maniĂšre positive, augmentant la production de rĂ©sine et la clartĂ© des trichomes juste avant la coupe. Ce fut un trĂšs beau cycle, propre et instructif malgrĂ© l’interruption due au botrytis. La qualitĂ© rĂ©sineuse et l’odeur compensent largement. Merci Ă  Zamnesia et Plagron pour le matos ! **#GrowLegendary #Zamnesia #Plagron #EternityGrowCup2 #StickyBroccoli** Dans 2 semaines je mettrai Ă  jour avec le poids sec et les premiĂšres impressions aprĂšs curing. **Estimation du poids sec final** Avec **780 grammes de poids frais** (buds humides, aprĂšs trim initial mais avant sĂ©chage complet), voici une estimation rĂ©aliste pour cette Sticky Broccoli : ### Estimation raisonnable - **Poids sec attendu** : **180 Ă  230 grammes** (environ **23-30 %** du poids frais). **Pourquoi cette fourchette ?** - Les buds frais contiennent typiquement 70-80 % d’eau. - AprĂšs un bon sĂ©chage (jusqu’à 10-12 % d’humiditĂ© rĂ©siduelle) + curing, il reste gĂ©nĂ©ralement **20-30 %** du poids humide initial. - 20 % → **156 g** (estimation basse, si buds trĂšs denses ou sĂ©chage poussĂ©) - 25 % → **195 g** (estimation moyenne, la plus courante pour des buds compacts comme les tiens) - 30 % → **234 g** (estimation haute, si les buds retiennent un peu plus d’humiditĂ© ou sont particuliĂšrement rĂ©sineux) Tes buds Ă©tant dĂ©crits comme **denses, trĂšs collants et frosty**, je pencherais plutĂŽt vers le **milieu/haut de la fourchette** : **190-220 grammes** une fois bien secs et cured. ### Facteurs qui influenceront le rĂ©sultat final - **QualitĂ© du sĂ©chage** : TempĂ©rature 18-20 °C, humiditĂ© 50-60 %, bonne circulation d’air sans vent direct → perte d’eau progressive et uniforme. - **Trim** : Si tu as fait un wet trim assez serrĂ©, le poids sec sera un peu plus bas que si tu as laissĂ© plus de sugar leaves. - **DensitĂ© des buds** : Plus ils sont compacts et rĂ©sineux, moins ils perdent de poids relatif (mais ils sĂšchent parfois un peu plus lentement). - **Curing** : Pendant les 2-4 semaines en bocaux, tu perdras encore un peu d’humiditĂ©, mais le poids se stabilisera. ### Prochaines Ă©tapes 1. **SĂ©chage** : 7-10 jours jusqu’à ce que les tiges cassent net (pas pliables). 2. **Curing** : Minimum 2 semaines (idĂ©alement 4+) avec burping quotidien au dĂ©but. 3. **PesĂ©e finale** : Une fois le poids stabilisĂ© (aprĂšs 2 semaines de curing),