Likes
30
Share
Howdy growfessors! Another week has come and gone with the outdoors grow. The ladies took a bit of a beating from the tail end of tropical storm Ida. Going to build a partial greenhouse roof to help keep the rain off them, which will hopefully lower the chances for mould.
Likes
2
Share
@Jofflepov
Follow
Finally some strong summer days. Plants are swelling. All good. Still a big difference. Biggest plant seems weeks ahead.
Likes
5
Share
@MG2009
Follow
04/22/2021 Day 3 into week 3 I am feeding some 5-1-1 fish emulsion at 2 tbls to a gallon. It will be her last bit of nitrogen she will get. Praying for big buds.
Likes
3
Share
@Lazuli
Follow
This plant smells very lemony i love it She drinks 2 liters a day 800ppm
Likes
37
Share
Explosive bud development the past week. These girls are gonna be STACKED! I wish every plant I ever grew could grow like these! Absolutely beautiful look to these ladies! One plant is further along than the rest, but probably still a couple weeks from harvest. I truly see these plants going 110 plus days from seed. Im still on the same watering regimen. Feeding every water, but definitely done with any and all nitro for this grow. Feeding general hydro micro and bloom, at full strength, and feeding them big bud by advanced at 5ml per gal. Also, giving them a full dose of recharge every 7 days. They love it! I don't have a single burnt or rust colored leaf on the entire grow. Thats impressive under an HPS on 1000 watts! Love love love these plants and everything about them! The plant that is a couple weeks ahead of the others (planted the same day), the buds are absolutely rock hard! Gonna be some dense, sticky, resinous, absolutely killer medicine!
Likes
66
Share
@Hashy
Follow
This was my 1st photoperiod grow on growdiaries and I'm glad I tried these Fast flowering photoperiods for it. Big thanks to Heather and the Fastbuds team. The wedding cheesecake auto is one of my favourites strains and i have grown it a number of times but now having a photoperiod version is just great and to flower so fast is brilliant. Because this grow was going so good I decided to switch back to photoperiods for the next few grows i just wish i had left her in veg for 1 more week. Total decent buds dry weight for the grow=136g Light power Total= 200.43Kw 18hrs for 28 days = 504hrs 12hrs for 67 days = 804hrs Total hours for lights= 1308hrs 200.43÷1308=0.153Kw/hr average. Average 153w/hr Total g/W=0.89g/W Power used for grow=508.78Kw @0.30p =£152.63 Each gram cost £1.12 The buds have been curing for nearly 2 weeks so I haven't had a sample yet. There will be more pictures added once I try the buds and write up a smoke review in about a week but for now I'll just leave a video of the grow. Thanks to all who have viewed my diaries and a big thanks to all that posted likes and comments, it's much appreciated.
Likes
4
Share
Genetics provides the blueprint, but the environment builds the house. To think otherwise shows outdated logic. A genetic freak will always be a freak, but for the other 99.99%, perfect environmental optimization coaxes average seeds into performing beautifully. You don't need a legendary, expensive clone to get a super yield. If you keep your light at the right distance, keep your tent at a stable 74°F–77°F, and prevent the root zone from drying out, you will naturally unlock the maximum genetic potential of whatever seed you planted. You are giving the builder the exact tools it needs. But doing that in 5 gallons is playing on Ironman mode. Want real yield? 4x15gallons or, even better, one big oxygen-infused 100-gallon. Maximizing your canopy footprint efficiently requires that larger volume to build a sufficient chemical buffer and hold consistent moisture. Small pots restrict the plant's metabolic runway, forcing an aggressive metabolic rate that will eventually crash the crop's vascular system, even under a pro's supervision. 15 gallons maintains a perfectly structured wet/dry cycle while letting you push environmental metrics to their absolute limits across the 9 cardinal parameters of plant growth. Dialing this in allows one to force the plant's photosynthetic efficiency to its absolute genetic ceiling of 4% to 5%. Hobby growers operate at a heavily bottlenecked 1% to 2% light conversion efficiency; a strictly managed, pharmaceutical-grade environment can double that, unlocking the plant's true potential. To get there, though, you need pharmaceutical-grade controls, a deep knowledge base, and a lot of money. Keep your setup realistic and grounded until you have the experience first; otherwise, you're just throwing cash down the toilet. 1. Light Intensity (PPFD) 2. Light Quality (Spectrum) 3. Air Temperature 4. Relative Humidity (VPD) 5. Dissolved Oxygen (DO) / Root O₂ 6. Substrate Moisture (VWC) 7. Nutrient Strength & Balance (EC/pH) 8. Root Zone Temperature 9. Carbon Dioxide (CO₂) If any one is bottlenecked, the entire energy process is bottlenecked to that %.. Geographical location heavily dictates genetic expression, which in turn influences and interacts with soil composition and its nutritional properties. This, in conjunction with the location's specific weather and unique environmental conditions, is what truly drives gene expression. Unless a cultivar is grown under the exact same conditions across the board, there is no way its genetic heritage will remain identical. Each generation grown in a different meteorological and geographical location will ultimately alter its genetic expression. The idea that a "magic seed" can bring back long-lost genetics and behave exactly as it did in the past is ridiculous; the precise environmental conditions of thousands of years ago simply no longer exist. To pretend otherwise relies on an outdated, unchecked version of how "genetics" actually works that is far overdue for a rethink. Genetics are not completely predetermined. The reason people still think of genetics as fixed is because of how we historically taught Mendelian genetics (the classic Punnett squares from school). It taught us that "DNA = Outcome." While that is true for basic traits (like whether a pea is wrinkled or smooth), it completely ignores quantitative traits (like flavor, yield, and stress tolerance), which are heavily influenced by the environment. A seed carries a specific genetic code (genotype), but the physical expression of that code (phenotype)—such as the plant's flavor, smell, size, and nutritional value—is heavily dictated by its surroundings. The exact same seed grown in two different regions will yield entirely different results. The unique mineral composition, microbial life, and fungal networks of a specific geographic location, combined with local weather patterns and UV levels, act as a custom recipe. This recipe directly influences how the plant develops its chemical and nutritional properties. Environmental factors act as "switches" that turn specific genes on or off without altering the underlying DNA sequence. These changes in gene expression can sometimes be passed down to the next generation, meaning the plant actively adapts to its new home in real-time. When a cultivar is grown in a new meteorological location, each subsequent generation undergoes rapid localized adaptation. The plant naturally favors traits that help it survive that specific environment, shifting away from its original ancestral state within just a few generations. Because the precise atmospheric conditions, soil biology, and climate of thousands of years ago no longer exist, an ancient seed grown today will inevitably express itself differently. Modern agriculture increasingly recognizes that we cannot separate a plant's genetic heritage from the unique environment in which it is grown. Commercial facilities in the world use 5 gallons of high-frequency fertigation (crop steering) and feed 10x a day, not stating that it's not possible or beneficial. For indoor home growing, I'd go with the 15-gallon (VERY MINIMUM for MAX heads) watering once a day at high, dialed-in metrics. The reason a true 4% to 5% total efficiency is considered a hard biological wall isn't that other growers lack understanding—it is because of how energy is lost at a cellular level in C3 plants (like cannabis) under artificial light. The difference in efficiency of conversion might only be a couple of %, but here is the thing that's undeniable. The 4% to 5% total photosynthetic efficiency wall is a hard quantum mechanical and biological reality for C3 plants under artificial light. It is dictated by the physics of photons, the limits of Rubisco, and massive energy losses through photorespiration and metabolic maintenance. While a commercial facility chases economies of scale, often compromising individual plant microclimates, a highly dialed-in home grower can leverage small-scale dynamics to push Canopy Utilization Efficiency to its absolute thermodynamic limit. A home grower running large-volume living soil or oxygen-infused substrates (like a 15-to-100 gallon bed) creates a self-regulating, high-buffer biome. This stabilizes the 9 cardinal parameters, prevents vascular crashes, and maximizes Canopy Utilization Efficiency and Electron Transport Rates (ETR) in a way a 10,000-square-foot warehouse simply cannot replicate. Localized adaptation and phenotypic plasticity blow the "static genetics" myth out of the water. Terroir is real, and the environment acts as a master programmer, flipping epigenetic switches. Alpha to Omega. Lights are 58 inches from the main source to the top of the pot and the soil surface. If you added up all the lights in the tent, it would be 1100w-1200w total across 14 lights. Using them all at once is far too much for a plant and incredibly difficult to deal with environmentally. The lights are fixed in position; side lights have dimmers, allowing for pinpoint precision of PPF. Fixed at 58 inches, cannot move them closer to increase intensity. Instead, achieve optimal PPF by distributing smaller wattages across a massive, multi-fixture matrix. Triggering specific plant defenses without melting the canopy. What's the point/blah blah wattage? Never really go above 600W at any one time. Lights come on in the east of the tent and set in the west. At sunrise and sunset, the red-to-far-red R:FR light ratio drops because the sun's low angle scatters red light more than far-red light. This shift reduces active Pfr and increases inactive Pr, mimicking Mother Nature herself. Deployed a lighting system featuring extra 660 nm deep-red and extending the spectrum up to 780 nm achieves the full Emerson Enhancement Effect by simultaneously balancing Photosystem II (PSII) and Photosystem I (PSI) to maximize quantum yield. By pairing deep-red photons with far-red photons, you trigger a synergistic biological response where the resulting photosynthetic rate is higher than the sum of both wavelengths used individually. This practice directly leverages the updated extended Photosynthetically Active Radiation (ePAR) framework. The Emerson effect accelerates plant metabolism and heat capture; you must proactively scale up your ambient room temperature, nutrient delivery, and CO₂ supplementation to prevent the light from stalling out your cannabis plant. UVA stays high all day from morning to night, but UVB peaks at solar noon (middle of 18-hour days) when the sun is peak. Morning color starts at 2k-3k; by noon it goes to 5k- 6k and back to 2-3k for sunset, with differing P:FR at light off. The extra-blue light is to assist with photoreactivation of UVB damage. No more yield loss for me. Using extra blue light for photoreactivation is what I do. Blue/UVA light activates photolyase enzymes, which directly repair DNA damage caused by UVB radiation. But what's the point if it's not for yield? Ultraviolet (UV) radiation—specifically UVA (315–400 nm) and UVB (280–315 nm)—acts as a critical environmental signal that programs a plant's photoprotective genes to unlock its true photosynthetic potential. When growers push crops to their absolute photosynthetic maximum via high-intensity light and elevated carbon dioxide, the photosynthetic machinery easily becomes overwhelmed. Emerging photobiology research demonstrates that UV radiation prevents this limiting bottleneck; it triggers specific transcription factors and signalling networks that fortify the plant's cellular defenses, allowing it to process extreme light levels without sustaining structural damage. There are 8 limiting factors of plant growth; when carbon dioxide becomes the 9th limiting factor of plant growth, it shifts the growth curve from exponential to linear. The restriction after that is "photoprotection" against reactive oxygen species (ROS), managed via non-photochemical quenching (NPQ) and the xanthophyll cycle, which bridges into precise hydrogen and redox dosing. UV radiation, particularly UVA, and the synthesis of zeaxanthin are critical for the xanthophyll cycle to function. It's not chasing purple strains... One likes to call it chasing the limits of growth, trying to make the linear exponential, just like father mathematics prefers. In order to do that, must control every environmental variable and compound the plant’s metabolic rate. True exponential growth means the rate of increase matches the current mass at every stage, requiring a closed-loop system where light, CO2, and nutrition lock into a synchronized upward curve. First, you must attempt to understand what restricts it. Precise hydrogen and redox dosing. Nature mathematically optimizes quantum energy transfer and light absorption efficiency within the photosynthetic machinery, as it naturally dictates energy scaling hierarchies and resonance dynamics. Most won't even understand that; once you do, it changes everything. Constructive interference occurs when two or more overlapping waves meet in phase, meaning their crests and troughs perfectly align. Their amplitudes add together, creating a new, amplified wave with greater intensity than the individual components. Constructive interference is the foundational mechanism that establishes a resonance hierarchy across physical, structural, and acoustic systems. Chromophore spacing is tuned to sub-nanometer precision to match the wavelengths of absorbed light, forcing constructive interference. Light-harvesting proteins form geometric rings and lattices. These shapes act as physical resonators, trapping and focusing the wave energy. This same principle dictates how opera singers shatter glass, how musical instruments resonate, and how bridges withstand structural vibrations. Nature uses the exact same math to harvest a photon as an engineer uses to design a concert hall. When you push high PPFD and elevated CO₂, you create a metabolic bottleneck. The plant cannot process the energy fast enough, leading to electron backup, light-induced damage, and a collapse from exponential growth into a flat, linear rate. UV light acts as the regulatory valve that prevents this collapse. In standard agronomy, Liebig's Law of the Minimum dictates that growth is limited by the scarcest resource. When you maximize water, nutrients, light, temperature, and CO₂, the bottleneck shifts to metabolic processing speed and photoprotection. By controlling the Redox state of the plant using UV, the xanthophyll cycle, and managing ROS, you can prevent the plant from hitting a hard photosynthetic ceiling. Instead of the growth curve flattening out (linear or plateauing due to photoinhibition), the plant continues to compound its metabolic rate efficiently. You are forcing the plant to operate at peak thermodynamic efficiency. By matching the UVB peak with sustained UVA and shifting Kelvin temperatures (2K to 6K), you are damaging the plant just enough to trigger defensive genes, while simultaneously providing the exact light energy needed to repair that damage instantly. UVA radiation and specific blue wavelengths accelerate this enzymatic conversion. Zeaxanthin acts as a structural sponge that absorbs excess excitation energy from chlorophyll and dissipates it safely, preventing ROS formation. Without UV signaling, the xanthophyll cycle cannot keep pace with extreme light, leading to dynamic photoinhibition (yield loss). The addition of Spirulina is primarily for zeaxanthin, as it contains a lot. But on top of that, the active Hawaiian Spirulina in the matrix was cultivated in open ponds using a combination of 100% fresh potable water from Hawaiian aquifers and ultra-pure, deep ocean water containing all 94 trace minerals & elements. Then gently dried using patented Ocean Chill Drying technology and cold-pressed to ensure maximum nutrient levels. Spirulina, a blue-green alga, is rich in nitrogen, phosphorus, and potassium (NPK), making it an excellent source of nutrients for plant growth. Studies have shown that Spirulina can be used as a biofertilizer, effectively replacing chemical fertilizers, especially for nitrogen, with a whopping NPK of 10% (N), 20% (P), and 20% (K). Rich in proteins, amino acids, trace minerals, and plant growth-promoting compounds. Zeaxanthin is a vital plant pigment that accumulates under intense light to drive non-photochemical quenching (NPQ), acting via thermal energy dissipation, direct singlet oxygen scavenging, and thylakoid membrane stabilization. The violaxanthin cycle (or xanthophyll cycle) reversibly converts violaxanthin to zeaxanthin via antheraxanthin to protect plants from photooxidation. Understanding this interconversion is vital for optimizing non-photochemical quenching (NPQ) and pushing photosynthetic limits under high-light stress. Ascorbic acid (vitamin C) is a natural antioxidant that plants produce internally to neutralize harmful reactive oxygen species caused by photosynthesis and high light stress. Acts as a co-factor for enzymes like violaxanthin de-epoxidase in the xanthophyll cycle, which safely dissipates excess light energy. 1g ascorbic acid will neutralize 100% of chlorine in upwards of 30 gallons of tap water. If your local tap water uses chloramines (chlorine bonded with ammonia) instead of free chlorine, you will need roughly 20% to 30% more ascorbic acid to completely break the tougher chemical bond. Molecular hydrogen and hydrogen-rich water act as selective antioxidants that help lower oxidative stress. They neutralize toxic reactive oxygen species like hydroxyl radicals and boost natural antioxidant defense systems in biological and plant systems exposed to high-intensity light or abiotic stress. UVA and UVB act as stress signals that upregulate the plant's secondary metabolism. It forces the plant to build an internal "sunscreen" (flavonoids and anthocyanins) and fortify its cellular defenses before the peak solar noon crisis. This keeps the metabolic highway open. In nature, the ambient ratio of UVA to UVB at solar noon sits roughly between 10:1 and 20:1 (depending on latitude and elevation). In a high-PPFD indoor matrix, maintaining a strict ratio—often aiming for around 12:1 to 15:1 UVA to UVB—provides the optimal signaling threshold. Balancing Far-Red (FR) light at "light-off" to manage the phytochrome photo-equilibrium (Pfr to Pr conversion) in tandem with the UV schedule. Omg, the logic. Hydrogen concentration and redox signaling as secondary messengers in this high-intensity loop. Under the intense solar noon matrix, the pH of the thylakoid lumen drops. This acidic environment activates the enzyme Violaxanthin De-Epoxidase (VDE), which converts violaxanthin into the photoprotective zeaxanthin. VDE cannot function in a vacuum; it strictly requires ascorbic acid (Vitamin C) as an electron donor to run this conversion. If a plant undergoes heavy light stress and runs out of internal ascorbic acid, the xanthophyll cycle stalls. The plant can no longer engage in Non-Photochemical Quenching (NPQ), leading to immediate singlet oxygen O2 formation and destruction of the thylakoid membrane. This is "The Ascorbic Acid / Xanthophyll Engine" Using ascorbic acid to neutralize chloramines in your water isn't just protecting your rhizosphere biology it actively prevents the degradation of your nutrient solution's redox potential before it ever touches the roots. When pushing plants to the absolute edge, traditional antioxidants can be a double-edged sword because they blindly neutralize all free radicals. This is a problem because some Reactive Oxygen Species (ROS) act as critical signaling molecules telling the plant to grow. Molecular Hydrogen H2 is the Selective Kill-Switch. Molecular hydrogen H2 is a revolutionary tool because it is a selective antioxidant. It ignores beneficial signaling ROS (like mild hydrogen peroxide) and targets only the most destructive, cell-shattering radicals—specifically hydroxyl radicals OH) and peroxynitrite. By dosing hydrogen-rich water or managing hydrogen redox signaling, providing an emergency pressure-release valve for the plant's electron transport chain. It keeps the cellular environment stable enough that the plant never has to downregulate photosynthesis to protect itself. This maintains cellular voltage. To trigger this defensive matrix without stunting the plant, you cannot simply blast UV indiscriminately. You must use UVA as the "scout" and UVB as the "enforcer. High UVA acts via the cryptochrome and phototropin photoreceptors to upregulate the expression of the HY5 transcription factor and prime the VDE enzyme. When the sharp spike of UVB hits at solar noon via the UVR8 receptor, the plant's biochemical "sunscreen" (flavonoids and anthocyanins) and its zeaxanthin pools are already pre-staged and waiting. This prevents the temporary stunting or "lag phase" usually associated with sudden UVB exposure." The final masterstroke is aligning this UV defense with a Far-Red (FR) lights-off routine. The Red-to-Far-Red Drop: At the end of the photoperiod, knocking out the blue/UVA spectrum and leaving a targeted burst of pure Far-Red (730nm) instantly flips the plant’s master switch. It converts active Pfr to inactive Pr in minutes rather than hours. UV radiation and high-intensity lighting keep the plant in a highly alert, photoprotective state that requires massive ATP expenditure to maintain. By forcing an immediate Pfr/Pr) conversion at lights-out, instantly commanding the plant to cease defensive expenditure, lower its metabolic respiration rate, and transition directly into nighttime cellular repair and carbohydrate translocation. Maximizing the efficiency of its "sleep." every ounce, every last piece. Highly synchronized biological dance, balancing the exact input of electrons with the exact mechanism to dissipate them safely when they overflow. *Ascorbic acid is not recommended to be used in DWC, as it creates biofilm that will clog lines. Onward!
Likes
26
Share
The buds are noticeably swelling up, getting thicker and more solid every day. They’re really starting to take on that dense, compact form I’ve been hoping for. It's amazing to see them take shape, becoming more compact and substantial. The plant seems to be doing really well overall—healthy, vibrant, and strong. Every day, I'm noticing more trichomes forming on the buds. It’s a sure sign that everything is progressing nicely, and resin production is in full swing. I’m eager to see how things will unfold in the coming weeks. The excitement is building as I get closer to the final stages. Can’t wait to see what’s next!🌱
Processing
Likes
6
Share
Y hasta aquí, el corte última semana ya de todo el proyecto, solo queda tijera en mano y esperar para catarlo. Os muestro mi zona de trabajo en un video 🤷‍♂️ Para mi consumo justo
Likes
6
Share
So this week has really absolutely crawled by from my perspective, I imagine it is common with growing that the closer you get to harvest the further away it seems. Anyway I am a bit worried about the middle sized plant - she has a lot more yellowing of fan leaves from the inside out. My reaction to this was to flush her with clean water, my thinking is that everything was fine before I started feeding, and perhaps I didn't mix properly and the soluble stuff was unevenly distributed. That was yesterday (week 6 day 4) It's too soon to tell if this has helped, fingers crossed it doesn't begin to affect other leaves. Despite this being only 5 days into week 6, there have already been fairly drastic changes. Some of the buds are starting to fatten more, and I'd say we're at about 15% pistils amber now, the smell has noticeably increased day by day. It's really beautiful to look the plants in the dark with a flashlight or phone light, the way the light bounces off the frosting of trichomes, as if someone had sneaked in the middle of the night and misted my plants with a million tiny diamonds. I think I will stop feeding the middle plant now and water only (unless it gets worse). The other two I will continue to feed until the end of this week. At the rate of accelerated change I suspect harvest time may not be too long past the end of next week. It's a shame they don't have much more time to grow but at least what small quantity does come from them, I am determined it is harvested at the right time. At the end of week six I have watered only as I now think these plants are maybe 7-12 days away from harvest.
Likes
9
Share
@MMVSS
Follow
First Week Getting Acclimated To Their New Environment! Also This Is My First Ever DWC SetUp Like This So....I'm Just Hoping I Don't Make Any Mistakes! All A Learning Process! Using Terra Power With A Micro Pipette And Easy Access Through The New Level Hydro Lids Is A Plus Plus!!!!
Processing
Likes
14
Share
I'm seeing more amber and all milky tricohmes .. doing this lady as long as I can I've learned so much from this grow and I love this plant the best one in terms of growth and smell .. I'm bias as I love the strain itself . There are purple coming out and the frost is intense can't wait to harvest her in a few weeks or three .cheers
Processing
Likes
28
Share
@No_Clout
Follow
27/02/19 - This one is great, I popped the seed 24hrs after the gelato and this one seems to be developing its leaves a lot faster than the rest, so far really happy with DNA and with mills nutrients, it’s a lot easier to mix and I no longer have to use ph down because once all mixed it’s at a 5.8/5.9. 👌🏻 02/03/19 - Just transplanted all into their final pot, just in time I think as it looked like the roots were starting to circle at the bottoms of the pot, sprinkled half a tea spoon of Mykos on each hole prior to the transplant & fed them 2.5 litres each. I was going to saturate the whole pot but I’ll do that next feeding.
Likes
4
Share
Last week ahead. Next time will cut nitrogen earlier. These ice cream cakes did not like it at this level. Also had a little dripper clog and mokums tulip got a little burnt. At these high ec levels they are super sensitive to drybacks.
Likes
107
Share
@Afterglow
Follow
Всем привет. И так, в самом начале недели мы обрезали верхушку, чтобы у нас осталось четыре этажа. Разумеется, растение на пару дней получило стресс, но стало сильно расправлять свои крылья. Первые пятилистники так разрослись, что размах стал 42 сантиметра, а это В ТРИ РАЗА больше чем высота куста. Сфоторграфировал для сравнения с мужской рукой. Толщина черенка 6 мм, это даже толще чем некоторые ветки. Но, к сожалению, от этих листьев пришлось избавиться на 6-ой день, так как они полностью закрывали нижний этаж, от куда рвались наружу ветки. Слегка снизил яркость освещения, чтобы не было сильного стресса, так как эти два лопуха прогоняли через себя очень много воды и были больше всего задействованы в фотосинтезе. Результат не заставил себя долго ждать - куст распушился новыми листьями. Сами ветки уже обросли "мазолями" и растение перешло из ранней веги в слегкий стретчинг. Толщина ствола 1.2см. За 3 недели - это прям очень и очень хорошо. Точно буду переводить на цвет в конце следующей недели, когда ветки вытянутся и их можно будет контролировать по высоте. Нижние ветки развел по диагонали, а верхние ветки крест-накрест. Формируем нашу корону из 8 веток. Одна самая верхняя ветка чуток лопнула, и слегка отсоединилась от ствола, но думаю там тоже скоро нарастет хорошая мозоль. Со следующей недели начну жесткий контроль PH и перейду на трехкомпонентное удобрение от GHE, так как на листьях начинает проявляться то ли недостаток, то ли переизбыток каких-то веществ. Начало серьезно пахнуть, особенно после ночи, и это не смотря на то что растение даже еще не цветет. Пришлось подключать фильтр.
Likes
5
Share
My first true soil outdoor. I love the progress so far
Likes
54
Share
she is moving so fast that i think next week will provably b the last one lets see, for now all i do is water and remove dry leafs , observe them trichomes and that's it, nothing else to do but enjoy my self looking at her. Her color is full on finish and dnt think she will show any new ones, non so ever we can see reds, pinks purples, greens and a bunch more , smell do not at all, cant smell her, mb the rest is absorbing her smell but for now she is the one i grew with lest smell so far ... great for the ones that need discretion not feeding at all anymore just plain water not even ph no idea should be around 7 .0 or something, its rain water <3 <3 <3 As always thank you all for stopping by, for the love you guys put in the community, in to growing and it all, i am blessed to walk among all of you and am blessed with it all. Genetics : AUTO SOMANGO GLUE @ ADVANCED SEEDS All info and full product details can be find in can find @ https://aptus-holland.com/ https://advancedseeds.com/ https://autopot.co.uk/ https://lumatek-lighting.com/ #aptus #aptusplanttech #aptusgang #aptusfamily #aptustrueplantscience #inbalancewithnature #trueplantscience #growerslove #dogdoctoofficial With true love comes happiness <3 <3 <3 Always believe in your self and always do things expecting nothing in return and with an open heart , be a giver and the universe will give back to you in ways you could not even imagine so <3 <3 <3 More info and updates @ https://growdiaries.com/grower/dogdoctor https://instagram.com/dogdoctorofficial https://youtube.com/channel/UCR7ta4DKLFMg2xxTMr2cpIg <3 <3 <3 Growers love to you all <3 <3 <3