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@311Budz
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Sie hat sich gut gefangen! Keine Ahnung was ihr Problem gewesen ist aber der wuchs wird von Tag zu Tag schneller. Top!! Sie macht das schon das schlimmste hat sie überstanden ich tippe darauf das die Anzucht Erde zu hart gewesen ist für die frühen Wurzeln, lockere Erde wäre deutlich besser bestimmt gewesen.
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Del 20 al 26 de julio Cambio de sala y todo tira bien (un poco de calor). Ayer quitamos alguna hoja y los brotecillos bajeros más pequeños. Ahora mismo está en un armario de 0.8×0.8 m, 3 tiras led Grow the jungle de 15w, un deshumificador VDL y un ventilador. Tenemos puesto el extractor VRK para la salida y ahora mismo la intraccion es pasiva. En principio la dejaremos ahi una semana más hasta que coja más altura pero bueno, ya se verá. jejeje 21 de julio Realizamos riego en tierra con 1l. 1 vitamax + 2.5 Bud fuel pro + 2 bloom fuel + 0.16 Mammoth P + 0.3 silica power PH : 5.7 Th20 : 24.5°C Ec 1ms 22 de julio A este paso tal vez la semana que viene pasemos a flora, los brotes están entre 10 y 20 cm. Buscamos que el brote más corto este entre los 20 o 25cm para pasar a flora. Las temperaturas siguen bastante altas a pesar de que estamos a unos 28°C de media, esperemos que llueva pronto Jajajaja 23 de julio Riego foliar con tierra de diatomeas como preventivo. 24 de julio Por un lado, se nos han quedado restos blancos de la tierra de diatomeas pero nada grave, la retiramos con un pincel y dejamos que el resto haga su función. Hoy realizamos riego , probamos los pollitos azules Riego con 1,5l aprox de agua + 0,08g de vegetative growth booster de grotek. PH 5,6 EC 0,2ms Th20: 23,5°C Dicen que estos polvos tiran muy bien, veremos que tal. 26 de julio Hoy ponemos el quemador de azufre a funcionar por unas 5h como preventivo. Seguimos en las mismas de siempre, quería pasarla a florecer mañana pero visto lo visto le daremos una ulimta semana para que obtener un buen tamaño. Eliminamos algunos sumideros y hacemos un riego foliar con Delta nueve usando 4,5ml•l. Temperaturas sobre los 27°C y humedades entre 55/65% Hemos visto algunas marcas de carencia de calcio Asique esta semana iremos subiendo los nutrientes.
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@WhiteEdge
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Flowering W4 D1 Girls need defoliation and pruning, after NY as soon as possible Light intensity - 800-950 MAX PPFD , Light distance - 50/55cm, DLI - 40, Light Interval 12/12, SCL - 45% Midea 28c1% day/night, TM 68/58%RH, AC Infinity AUTO - 4/3 Day RH - 67/70%, Night RH - 57/60%, Day Temperature - 26.5/28c, Night Temperature - 22c/23c Leaf temperature 24/25, VPD Day - 1.0/1.1 , VPD Night 1.0/1.1 CO2 - 400+PPM Nutrient Tank - 2.80EC, PH-5.88 Temperature - 19/20c, ORP-500/600mV Day Misting - 30sON/20minOFF + 1 x 4min shot Night Misting - 45sON/45min OFF Runoff - 10.00h r3110/6.12PH, 19.00 r2900, Flowering W4 D2 Canopy @ 115cm , highest top is around 120cm, mauby less than 3cm from last two days, stretch slowing down! Start Bulking this girls, new irrigation program - cascading solenoid valves @ 10 minute Keeping nutrient strength and composition untouched for this week Light intensity - 800-980 MAX PPFD , Light distance - 50/55cm, DLI - 40, Light Interval 12/12, SCL - 50% Midea 28c1% day/night, TM 68/58%RH, AC Infinity AUTO - 4/3 Day RH - 67/70%, Night RH - 57/60%, Day Temperature - 26.5/28c, Night Temperature - 22c/23c Leaf temperature 24/25, VPD Day - 1.0/1.1 , VPD Night 1.0/1.1 CO2 - 400+PPM Nutrient Tank - 2.80EC, PH-5.88 Temperature - 19/20c, ORP-500/600mV Day Misting - 30sON/20minOFF-cascading's selenoid valves + 3 x (3+4+6min) shot Night Misting - 30sON/45min OFF Runoff 10.00 r3210ec, 14.00h-3030ec/6.20ph, 19.00h-r2840EC,
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@Densko
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Boy oh boy, the final day of the first Medusa F1 Hybrid 1/5. Seed to harvest in 93 days. The first medusa F1 grew super fast. Her vegetative period was very short, showing white pistils at day 18 already, but grew into a beautiful lady. The first medusa was only subjected to LST and a little defoliation. The other Medusa plants from my diary (2/5 and 4/5),were topped and this definitely increased the amount of flower sites. Nevertheless, she grew thick and fat with heavy buds smelling like a sweet petrol station. The pistils turn bright orange and many calyxes are formed with hardly any leaves in between. I noticed after week 11 she started producing new calyxis with white pistils and therefore I waited a bit longer. I would recommend this and wait a bit longer to see if it happens for you too. Some trichomes were starting to turn amber and I maybe could have waited a little longer, also for the lower part to develop more. She was cut down on the 18th of July and was placed in my dark dry tent for 13 days at a temperature of 18 °C and a humidity of 60%. A long and slow dry is important to preserve terpenes. After 13 days, on the 31st of July, the branches were making a cracking sound when bending, so I decided to take the branches out of the drying tent and trim them. My 4 x 200W lights (on the box) only pull 50W from the wall so I think they are not super good. I made pictures with a Nikon camera and a white background. I smoked some and she tastes peppery with a sweet aftertaste. I will smoke more after a good long cure for at least 2-4 weeks in my jars. Check the progress of my other medusa F1 diaries and see the full experiment if topping is beneficial for these F1's. I would recommend trying out these amazing genetics and see for yourself. Great job Royal Queen Seeds for breeding these cultivars.
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Die Pflanzen sind buchstäblich in der Woche explodiert. Das Volumen hat sich geschätzt verdoppelt. Die Sanlights sind auf 85 Prozent. Ich werde in 2-3 Tagen die Lampen für 2 Stunden am Tag auf 100 Prozent drehen, um nächste Woche richtig Vollgas geben zu können. Die Luft ist zum Glück sehr CO2-haltig. Die Luft liegt stundenweise bei circa 1200 ppm, im Minimum sind wir da bei circa 800, was für die Pflanzen ganz gute Werte sind. Ich habe mittlerweile einen Honeywell-Lüfter auf Stufe 2 hinzugeschaltet, um Schimmel zu vermeiden. Der Lüfter läuft jetzt auch mit AKF, den ich die Wochen davor nicht benötigt habe. Die Pflanzen bekommen weiterhin 3 Mal in der Woche CalMag (1 ml auf 5 Liter Wasser). Seitdem habe ich keine Probleme mehr mit braunen Blattspitzen. Die Pflanzen haben alle die gleiche schön dunkelgrüne Blattfarbe. Die Feuchtigkeit und Hitze, die die Box produziert, ist unerträglich. Die Stoftöpfe lassen gut verdunsten, bin aber trotzdem sehr zufrieden. Ich bin der Meinung, dass die Pflanzen in den Töpfen einfacher zu groß sind. Genaue Informationen füge ich den Bildern der einzelnen Pflanzen hinzu, um das besser erkennen zu können, was was ist Stichpunktliste: - Pflanzen sind explosionsartig gewachsen - Volumen hat sich verdoppelt - Sunlights auf 85 Prozent - In 2-3 Tagen Lampen auf 100 Prozent für 2 Stunden täglich - Luft ist CO2-haltig (1200 ppm, Minimum 800 ppm) - Honeywell-Lüfter auf Stufe 2 gegen Schimmel!!!es ist kein Schimmel vorhanden es geht um Prävention!! - Genaue Informationen zu einzelnen Pflanzen werden hinzugefügt - Lüfter läuft nun mit AKF (vorher nicht benötigt) - 3 Mal wöchentlich CalMag (1 ml auf 5 Liter Wasser) - Keine Probleme mehr mit braunen Blattspitzen - Schöne dunkelgrüne Blattfarbe - Unerträgliche Feuchtigkeit und Hitze in der Box - Lüfter von 40 auf 70 Prozent um Temperatur zu senken + LF - Stoftöpfe lassen gut verdunsten
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Yellow butterfly came to see me the other day; that was nice. Starting to show signs of stress on the odd leaf, localized isolated blips, blemishes, who said growing up was going to be easy! Smaller leaves have less surface area for stomata to occupy, so the stomata are packed more densely to maintain adequate gas exchange. Smaller leaves might have higher stomatal density to compensate for their smaller size, potentially maximizing carbon uptake and minimizing water loss. Environmental conditions like light intensity and water availability can influence stomatal density, and these factors can affect leaf size as well. Leaf development involves cell division and expansion, and stomatal differentiation is sensitive to these processes. In essence, the smaller leaf size can lead to a higher stomatal density due to the constraints of available space and the need to optimize gas exchange for photosynthesis and transpiration. In the long term, UV-B radiation can lead to more complex changes in stomatal morphology, including effects on both stomatal density and size, potentially impacting carbon sequestration and water use. In essence, UV-B can be a double-edged sword for stomata: It can induce stomatal closure and potentially reduce stomatal size, but it may also trigger an increase in stomatal density as a compensatory mechanism. It is generally more efficient for gas exchange to have smaller leaves with a higher stomatal density, rather than large leaves with lower stomatal density. This is because smaller stomata can facilitate faster gas exchange due to shorter diffusion pathways, even though they may have the same total pore area as fewer, larger stomata. Leaf size tends to decrease in colder climates to reduce heat loss, while larger leaves are more common in warmer, humid environments. Plants in arid regions often develop smaller leaves with a thicker cuticle and/or hairs to minimize water loss through transpiration. Conversely, plants in wet environments may have larger leaves and drip tips to facilitate water runoff. Leaf size and shape can vary based on light availability. For example, leaves in shaded areas may be larger and thinner to maximize light absorption. Leaf mass per area (LMA) can be higher in stressful environments with limited nutrients, indicating a greater investment in structural components for protection and critical resource conservation. Wind speed, humidity, and soil conditions can also influence leaf morphology, leading to variations in leaf shape, size, and surface characteristics. Small leaves: Reduce water loss in arid or cold climates. Environmental conditions significantly affect gene expression in plants. Plants are sessile organisms, meaning they cannot move to escape unfavorable conditions, so they rely on gene expression to adapt to their surroundings. Environmental factors like light, temperature, water, and nutrient availability can trigger changes in gene expression, allowing plants to respond to and survive in diverse environments. Depending on the environment a young seedling encounters, the developmental program following seed germination could be skotomorphogenesis in the dark or photomorphogenesis in the light. Light signals are interpreted by a repertoire of photoreceptors followed by sophisticated gene expression networks, eventually resulting in developmental changes. The expression and functions of photoreceptors and key signaling molecules are highly coordinated and regulated at multiple levels of the central dogma in molecular biology. Light activates gene expression through the actions of positive transcriptional regulators and the relaxation of chromatin by histone acetylation. Small regulatory RNAs help attenuate the expression of light-responsive genes. Alternative splicing, protein phosphorylation/dephosphorylation, the formation of diverse transcriptional complexes, and selective protein degradation all contribute to proteome diversity and change the functions of individual proteins. Photomorphogenesis, the light-driven developmental changes in plants, significantly impacts gene expression. It involves a cascade of events where light signals, perceived by photoreceptors, trigger changes in gene expression patterns, ultimately leading to the development of a plant in response to its light environment. Genes are expressed, not dictated! While having the potential to encode proteins, genes are not automatically and constantly active. Instead, their expression (the process of turning them into proteins) is carefully regulated by the cell, responding to internal and external signals. This means that genes can be "turned on" or "turned off," and the level of expression can be adjusted, depending on the cell's needs and the surrounding environment. In plants, genes are not simply "on" or "off" but rather their expression is carefully regulated based on various factors, including the cell type, developmental stage, and environmental conditions. This means that while all cells in a plant contain the same genetic information (the same genes), different cells will express different subsets of those genes at different times. This regulation is crucial for the proper functioning and development of the plant. When a green plant is exposed to red light, much of the red light is absorbed, but some is also reflected back. The reflected red light, along with any blue light reflected from other parts of the plant, can be perceived by our eyes as purple. Carotenoids absorb light in blue-green region of the visible spectrum, complementing chlorophyll's absorption in the red region. They safeguard the photosynthetic machinery from excessive light by activating singlet oxygen, an oxidant formed during photosynthesis. Carotenoids also quench triplet chlorophyll, which can negatively affect photosynthesis, and scavenge reactive oxygen species (ROS) that can damage cellular proteins. Additionally, carotenoid derivatives signal plant development and responses to environmental cues. They serve as precursors for the biosynthesis of phytohormones such as abscisic acid () and strigolactones (SLs). These pigments are responsible for the orange, red, and yellow hues of fruits and vegetables, while acting as free scavengers to protect plants during photosynthesis. Singlet oxygen (¹O₂) is an electronically excited state of molecular oxygen (O₂). Singlet oxygen is produced as a byproduct during photosynthesis, primarily within the photosystem II (PSII) reaction center and light-harvesting antenna complex. This occurs when excess energy from excited chlorophyll molecules is transferred to molecular oxygen. While singlet oxygen can cause oxidative damage, plants have mechanisms to manage its production and mitigate its harmful effects. Singlet oxygen (¹O₂) is considered a reactive oxygen species (ROS). It's a form of oxygen with higher energy and reactivity compared to the more common triplet oxygen found in its ground state. Singlet oxygen is generated both in biological systems, such as during photosynthesis in plants, and in cellular processes, and through chemical and photochemical reactions. While singlet oxygen is a ROS, it's important to note that it differs from other ROS like superoxide (O₂⁻), hydrogen peroxide (H₂O₂), and hydroxyl radicals (OH) in its formation, reactivity, and specific biological roles. Non-photochemical quenching (NPQ) protects plants from damage caused by reactive oxygen species (ROS) by dissipating excess light energy as heat. This process reduces the overexcitation of photosynthetic pigments, which can lead to the production of ROS, thus mitigating the potential for photodamage. Zeaxanthin, a carotenoid pigment, plays a crucial role in photoprotection in plants by both enhancing non-photochemical quenching (NPQ) and scavenging reactive oxygen species (ROS). In high-light conditions, zeaxanthin is synthesized from violaxanthin through the xanthophyll cycle, and this zeaxanthin then facilitates heat dissipation of excess light energy (NPQ) and quenches harmful ROS. The Issue of Singlet Oxygen!! ROS Formation: Blue light, with its higher energy photons, can promote the formation of reactive oxygen species (ROS), including singlet oxygen, within the plant. Potential Damage: High levels of ROS can damage cellular components, including proteins, lipids, and DNA, potentially impacting plant health and productivity. Balancing Act: A balanced spectrum of light, including both blue and red light, is crucial for mitigating the harmful effects of excessive blue light and promoting optimal plant growth and stress tolerance. The Importance of Red Light: Red light (especially far-red) can help to mitigate the negative effects of excessive blue light by: Balancing the Photoreceptor Response: Red light can influence the activity of photoreceptors like phytochrome, which are involved in regulating plant responses to different light wavelengths. Enhancing Antioxidant Production: Red and blue light can stimulate the production of antioxidants, which help to neutralize ROS and protect the plant from oxidative damage. Optimizing Photosynthesis: Red light is efficiently used in photosynthesis, and its combination with blue light can lead to increased photosynthetic efficiency and biomass production. In controlled environments like greenhouses and vertical farms, optimizing the ratio of blue and red light is a key strategy for promoting healthy plant growth and yield. Understanding the interplay between blue light signaling, ROS production, and antioxidant defense mechanisms can inform breeding programs and biotechnological interventions aimed at improving plant stress resistance. In summary, while blue light is essential for plant development and photosynthesis, it's crucial to balance it with other light wavelengths, particularly red light, to prevent excessive ROS formation and promote overall plant health. Oxidative damage in plants occurs when there's an imbalance between the production of reactive oxygen species (ROS) and the plant's ability to neutralize them, leading to cellular damage. This imbalance, known as oxidative stress, can result from various environmental stressors, affecting plant growth, development, and overall productivity. Causes of Oxidative Damage: Abiotic stresses: These include extreme temperatures (heat and cold), drought, salinity, heavy metal toxicity, and excessive light. Biotic stresses: Pathogen attacks and insect infestations can also trigger oxidative stress. Metabolic processes: Normal cellular activities, particularly in chloroplasts, mitochondria, and peroxisomes, can generate ROS as byproducts. Certain chlorophyll biosynthesis intermediates can produce singlet oxygen (1O2), a potent ROS, leading to oxidative damage. ROS can damage lipids (lipid peroxidation), proteins, carbohydrates, and nucleic acids (DNA). Oxidative stress can compromise the integrity of cell membranes, affecting their function and permeability. Oxidative damage can interfere with essential cellular functions, including photosynthesis, respiration, and signal transduction. In severe cases, oxidative stress can trigger programmed cell death (apoptosis). Oxidative damage can lead to stunted growth, reduced biomass, and lower crop yields. Plants have evolved intricate antioxidant defense systems to counteract oxidative stress. These include: Enzymes like superoxide dismutase (SOD), catalase (CAT), and various peroxidases scavenge ROS and neutralize their damaging effects. Antioxidant molecules like glutathione, ascorbic acid (vitamin C), C60 fullerene, and carotenoids directly neutralize ROS. Developing plant varieties with gene expression focused on enhanced antioxidant capacity and stress tolerance is crucial. Optimizing irrigation, fertilization, and other management practices can help minimize stress and oxidative damage. Applying antioxidant compounds or elicitors can help plants cope with oxidative stress. Introducing genes for enhanced antioxidant enzymes or stress-related proteins over generations. Phytohormones, also known as plant hormones, are a group of naturally occurring organic compounds that regulate plant growth, development, and various physiological processes. The five major classes of phytohormones are: auxins, gibberellins, cytokinins, ethylene, and abscisic acid. In addition to these, other phytohormones like brassinosteroids, jasmonates, and salicylates also play significant roles. Here's a breakdown of the key phytohormones: Auxins: Primarily involved in cell elongation, root initiation, and apical dominance. Gibberellins: Promote stem elongation, seed germination, and flowering. Cytokinins: Stimulate cell division and differentiation, and delay leaf senescence. Ethylene: Regulates fruit ripening, leaf abscission, and senescence. Abscisic acid (ABA): Plays a role in seed dormancy, stomatal closure, and stress responses. Brassinosteroids: Involved in cell elongation, division, and stress responses. Jasmonates: Regulate plant defense against pathogens and herbivores, as well as other processes. Salicylic acid: Plays a role in plant defense against pathogens. 1. Red and Far-Red Light (Phytochromes): Red light: Primarily activates the phytochrome system, converting it to its active form (Pfr), which promotes processes like stem elongation and flowering. Far-red light: Inhibits the phytochrome system by converting the active Pfr form back to the inactive Pr form. This can trigger shade avoidance responses and inhibit germination. Phytohormones: Red and far-red light regulate phytohormones like auxin and gibberellins, which are involved in stem elongation and other growth processes. 2. Blue Light (Cryptochromes and Phototropins): Blue light: Activates cryptochromes and phototropins, which are involved in various processes like stomatal opening, seedling de-etiolation, and phototropism (growth towards light). Phytohormones: Blue light affects auxin levels, influencing stem growth, and also impacts other phytohormones involved in these processes. Example: Blue light can promote vegetative growth and can interact with red light to promote flowering. 3. UV-B Light (UV-B Receptors): UV-B light: Perceived by UVR8 receptors, it can affect plant growth and development and has roles in stress responses, like UV protection. Phytohormones: UV-B light can influence phytohormones involved in stress responses, potentially affecting growth and development. 4. Other Colors: Green light: Plants are generally less sensitive to green light, as chlorophyll reflects it. Other wavelengths: While less studied, other wavelengths can also influence plant growth and development through interactions with different photoreceptors and phytohormones. Key Points: Cross-Signaling: Plants often experience a mix of light wavelengths, leading to complex interactions between different photoreceptors and phytohormones. Species Variability: The precise effects of light color on phytohormones can vary between different plant species. Hormonal Interactions: Phytohormones don't act in isolation; their interactions and interplay with other phytohormones and environmental signals are critical for plant responses. The spectral ratio of light (the composition of different colors of light) significantly influences a plant's hormonal balance. Different wavelengths of light are perceived by specific photoreceptors in plants, which in turn regulate the production and activity of various plant hormones (phytohormones). These hormones then control a wide range of developmental processes.
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@Lazuli
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Trichomes are cloudy, i give only rainwater now the past 5 days the runoff stays around 1000ppm so shes done eating for sure, i think this will be her final week. Buds are rockhard and smell amazing
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@Tommy716
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The buds are really packing in the weight and resins. There so heavy the head buds are starting to drop. Switched to overdrive and cut all other nutes in half. They are holding up well. No stress signs at all. It's looking like they want a few more weeks of flowering. I'm watching them and listening to the signs they show.Everything is going great. Can't wait to taste these lovely ladies.
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Just popped the seeds 10 of each of the strains will keep you guys updated
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Day 100 | 03/04/2022:💧 I am back from my holiday today but I will only be able to harvest them at the end of the week, so I watered them today. but with a reduced 1L each because I still want them to be more on the dry side when I am taking them off Day 105 | 08/04/2022: Today was harvest day and the girls look sooooo dry and yellow omg.. 😅 Maybe that 1L was not enough, but still it's better that they are on the dry side. They just all went so yellow in the last few weeks, obviously they werent getting any nutrients but also I harvested them a bit late
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@Salokin
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Hello Growmies, As we step into the eighth week of our Watermelon Candy F1 Hybrids' flowering stage, the dance of growth and aroma continues to enchant our senses. These delightful plants, sharing their space with Epic Buzz and Red Banana Pudding varieties, inch ever closer to the pinnacle of their bloom. The Watermelon Candy cultivars are flourishing with an undeniable zest, their foliar tapestry thick with the potential of what's to come. The air is thick with their intoxicatingly sweet scent, a testament to their namesake, and their buds are expanding with satisfying robustness. Plant #1 is maintaining its lead with a striking bud formation, clearly thriving in the consistent environment of the Tent-X system. Plant #2 and Plant #3 are not far behind, with each showing a wealth of budding sites and a sprawling canopy that speaks to a bountiful harvest ahead. Despite being under a 12/12 light cycle along with the photoperiod plants, which may limit their yield compared to a 20/4 cycle, these plants are putting on a splendid show. They continue to swell, their trichome-frosted buds promising a powerful and flavorful finale. Nutrition continues on a carefully scheduled five-day rotation, our blend of Alga Bloom, Sugar Royal, Power Roots, and Orca nurturing these beauties into their late flowering phase. The TrolMaster system diligently logs every parameter, ensuring our VPD and PPFD values are consistently optimized for peak performance. As the eighth week unfolds, we see the evidence of our meticulous care in the uniform health and structure of the plants. The internodal spaces remain tight, the stems sturdy, and the flowering sites increasingly impressive. With anticipation building for the harvest that lies ahead, we reflect on the journey so far. It's a path marked by shared knowledge and collective experience, all leading us toward what promises to be a remarkable culmination of our efforts. Stay lifted, Salokin
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@RBK2023
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Very happy so far. I've grown this pheno before and it reminds me of last time very much
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So think by far the best of the bunch is one pheno of b-45. Insane structure, just the right amount of internodal spacing, huge nugs definitely bigger than golf balls. Tons of frost and very nice kush/citrus terps. Not to mention deep purple colours on the buds and the leaves despite not lowering the temps. Very curious to see what she will bring to the scales but I’m pretty sure she’s above 120g. True winner. Got her clones going and hope the clones will maintain the quality despite stress. Had some quality deterioration happen for some clones, but did my share of mistakes and learned some lessons. I am disappointed sa far in blue Zushi form Dutch passion, very different plants. One pheno is completely like purple lemonade form fastbuds. Terps are 1:1. I like the green leaves, purple buds combo. But it’s definitely not a skittles smell. Have a great Easter everyone. Cheers
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@MS2845
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Start of week 7 and they looking great I think 🙃 had a problem with spiders but it's controlled now. That product "Anti-Sniper X" did worked very well. What you guys think? Out of 10?
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Day 66 : These lady is exploding day each day. From each cola started new growth. And all this pistils are still white, any brown pistils. So imagine the crystals, all cloudy.!!! She likes food and its obvious. I found a spider in the room but let her become part of the ecosystem. These spiders eats all king of predators like white flies, tetranychus, thripe etc. If you are in flower stage and you have bugs , you cant spray nothing, because of moisture. You can add ladybugs (Coccinella) and they will destroy all the insects. Edit (Day 70) : Small buds explode from buds. I watered with juice on this lady because her trichomes are still developing. If you notice some stems inflect , because of the weight of buds. Gains are noticeable when i lift the pot. 2 weeks for sure for BC.
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@Ferenc
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Hi! In this diary I will grow 5 Sativa and Indica dominant Auto Feminized Strains: Sour Orange Auto Feminized Seeds (2 seeds.) By The Bakery Seed Co. Sour Orange Auto Feminized Seeds are a cross of the famous Sour Tangie and the Bakery’s in house Ruderalis. Also a 80% sativa dominant strain with 56 to 70 day flower period. Tested at 17% THC this genetic is highly stable and the Bakery are very happy with the results. This Auto Feminized seed can be cultivated indoors as well as outdoors but definitely prefers a slightly warmer climate to gain the best terpene profile possible. An uplifting effect with a sweet and sour aroma of tangerines. This auto flower seed is another great addition to the Bakery Seed Co’s Automatic Range Auto Critical Orange Punch Seeds By Dutch Passion. Auto Critical Orange Punch Seeds are Dutch Passions first Critical Autoflower. A cross of (Grandaddy Purps x Orange Bud) x XXL Auto Kritical Bilbo, creating an easy strain to cultivate. Expect a full life cycle of 75 days from sprout to harvest with impressive XXL yields. She thrives with 20 hours of light and can grow up to 70-100cm indoors. Certain phenotypes can flower for an extra week or so to gain the XXL yields! Sweet skunk aromas with a hint of rich Afghan hash. Sour Stomper Auto Feminized Seeds are an example of what careful selection can achieve with breeding. A fruity style pheno of the Sour Crack female crossed with the Grapestomper OG male from Gage Green then crossed with ruderalis by Mephisto. This 50/50 Indica Sativa hybrid has a great stretch contributing to large yields. Due to cooler conditions late in flower, this dense canopy can produce beautiful blues and purples. A great genetic for indoor and outdoor cultivation and all finished and ready to harvest in just 65 to 70 days. This hybrid is popular with extracts and has Grape aroma in bloom. Auto Lemon Zkittle Feminized Seeds are made from quality USA genetics. It is an Overall Highlife Cup Winner 2018!!! It has won 1st prize in Sativa category and also was awarded the Overall Highlife Winner Trophy. Lemon Zkittle Auto retains its high THC and yields even in automatic form. Due to the lineage, this hybrid is very simple to cultivate and a great choice for beginners. Fruit and skunk aromas combined with citrus flavors and long-lasting effects. 20 Hour light cycle is recommended as well as a minimum of 75 days from seed. Some phenos can take a week longer to produce the massive yields. Outdoors this variety can take up to 100 days from seed to harvest. With THC levels tested 21% as well as minimum yields of 400g/m2, this automatic hybrid is a great addition to Dutch Passion Automatic range. 24 hours light schedule, 90 percent humidity, trigger spray, no fertilization. 15th of August: Girls are ready for germination, tonight I will place the seeds to be in water at least for 12 hours :) 15th of August: I put the seeds in the water. 16 of August 2019: Seeds are placed between damp paper towel :) 17th of Augsut 2019: All good so far, They are ready to be planted tomorrow;) Day 1: They are in the soil. Hopefully they will come out soon :) 60W LED for 5 plants and the humidity is very high 98 percent. I give 5 ml water a day per plant and plus triggering to keep the humidity very high. All the holes are closed. Day 2: Non of them are out yet but I think by tomorrow it will happen:). Day 3: All out :) Day 5: Sour Stomper and Lemon Zkittle a bit slower but all of them grow nicely. Babies ❤️ Day 6: They are coming! Critical Orange Punch is growing very quick she is already 10 cm but the rest of them are 6-7 cm.
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@GrowGuy97
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Day 14, Two of the Orange Sherbets are a little behind & the one I’m trying to pull back from nutrient burn.. So far the White Widow Autos by Seedsman have been doing the best! Day 17 two of the Orange sherbet are a little behind the rest of the plants but overall I would say everything is going good! Seems like the orange sherbet that had the nutrient burn is starting to bounce back! Day 19 They are all really starting to take off! Probably gonna do some LST tonight or tomorrow!