|
HS Code |
872247 |
| Scientific Name | Botryococcus braunii (C) |
| Strain Type | Race C |
| Appearance | Green microalga |
| Primary Component | Hydrocarbon oil |
| Cell Shape | Spherical or oval colonies |
| Cell Diameter Microns | 5-30 |
| Habitat | Freshwater environments |
| Growth Temperature C | 20-25 |
| Oil Content Percentage | up to 60% |
| Major Hydrocarbons | Botryococcenes and methylated squalenes |
| Chlorophyll Content | Present |
| Product Form | Dried powder or slurry |
| Product Use | Biofuel production |
| Color | Bright to dark green |
| Odor | Mild, typical algal |
As an accredited Botryococcus Braunii(C) factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The Botryococcus Braunii (C) is packaged in a sealed, amber glass bottle containing 10 grams, labeled with product details and safety information. |
| Shipping | **Shipping Description for Botryococcus Braunii (C):** Botryococcus Braunii (C) is shipped under ambient conditions in securely sealed containers to prevent contamination. Ensure labeling as a non-hazardous biological sample. Avoid extreme temperatures and direct sunlight during transit. Suitable for standard courier or freight shipping, with handling in accordance with applicable biosafety and transport regulations. |
| Storage | Botryococcus braunii (C) should be stored in a cool, dry place away from direct sunlight. Maintain temperatures between 2–8°C if refrigerated, or at room temperature if specified by the supplier. Ensure the container is tightly sealed to prevent contamination. For long-term storage, cryopreservation in appropriate media may be recommended. Always follow specific handling and storage guidelines provided by the manufacturer. |
| Purity 98%: Botryococcus Braunii(C) Purity 98% is used in renewable biofuel production, where it enhances hydrocarbon yield efficiency. Lipid Content 55%: Botryococcus Braunii(C) Lipid Content 55% is used in biodiesel synthesis, where it improves fuel calorific value. Dry Biomass Concentration 3 g/L: Botryococcus Braunii(C) Dry Biomass Concentration 3 g/L is used in large-scale fermentation, where it increases biomass productivity. Stability Temperature 35°C: Botryococcus Braunii(C) Stability Temperature 35°C is used in photobioreactor operations, where it maintains optimal metabolic activity. Chlorophyll Content 2.1 mg/g: Botryococcus Braunii(C) Chlorophyll Content 2.1 mg/g is used in algal-based nutraceuticals, where it boosts antioxidant capacity. Hydrocarbon Fraction 40%: Botryococcus Braunii(C) Hydrocarbon Fraction 40% is used in biopolymer manufacturing, where it facilitates sustainable polymer precursor supply. Cell Size 10-30 µm: Botryococcus Braunii(C) Cell Size 10-30 µm is used in microfiltration systems, where it optimizes harvesting efficiency. Growth Rate 0.18 d⁻¹: Botryococcus Braunii(C) Growth Rate 0.18 d⁻¹ is used in continuous culturing processes, where it supports stable culture maintenance. Phosphorous Uptake Rate 1.2 mg/L/day: Botryococcus Braunii(C) Phosphorous Uptake Rate 1.2 mg/L/day is used in wastewater bioremediation, where it improves nutrient removal efficiency. Moisture Content ≤8%: Botryococcus Braunii(C) Moisture Content ≤8% is used in powdered feed formulations, where it enhances product shelf life. |
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Standing daily along rows of fermenters and glass bioreactors, I have watched Botryococcus Braunii (C) turn bright, golden-green under our lab’s precise lighting. As a chemical manufacturer with decades on the line, we live with the complexities, not just the theory. In our facility, Botryococcus Braunii (C) isn’t just a sample in a petri dish; it’s a living workhorse, shaped by years of patient selection and fine-tuned cultivation. Scientists and engineers, hands stained green, keep their focus on this microalga because it outperforms across several fronts, especially in the urgent drive for cleaner petrochemical alternatives.
Our production centers around the ‘C’ strain of Botryococcus Braunii. For those outside the industry, strains may blur together. From my perspective, the (C) model stands out. It consistently builds higher levels of botryococcene and alkadiene hydrocarbons than its siblings, which translates into stronger performance for biofuel production, specialty lubricants, and high-value chemicals. We don't just read it on published graphs—we extract, refine, and test gallons each month. Over years, the (C) strain has shown greater tolerance to variable light and nutrient profiles, giving our operators fewer disruptions and a more stable yield over lengthy tanks runs. Other strains sometimes fail under the pressure of large-scale production. The (C) lineage holds steady.
Each vessel starts with seed culture we keep under controlled conditions. Precise temperature, exacting pH, a tailored mix of carbon and trace nutrients—these details separate a hobby grower from an operation producing hundreds of kilograms per cycle. Our reactors run continuous monitoring, but our lab techs don’t just trust the numbers. They smell, they observe, and they sense shifts long before a sensor alarm sounds. Over each cycle, biomass accumulates as small, clustered colonies—tougher and stickier than most other algal genera. This ‘sticky’ character challenges equipment at scale. Over time, we’ve adapted methods built around robust mixing and gentle harvest—unlike the centrifugal bruising that might work for thinner algae.
I’ve stood at open tanks inhaling the musty, oily odor of healthy Botryococcus. Our best-run batches produce cell densities above 2 grams per liter in wet mass, a figure that doesn’t just pay off on spreadsheets: it saves energy at dewaxing and filtration. We monitor pigment ratios using rapid fluorimetry, aiming for that deep, grassy-green associated with high hydrocarbon productivity. The more hydrocarbon, the less downstream processing needed—our real-world metric for cost and efficiency. Cell clusters in Botryococcus Braunii (C) show a resilience under gentle settling, unlike flakier competitors that break down and lose yield during separation.
Having run parallel cultures of several Botryococcus lineages, our process engineers keep coming back to the (C) for its robust hydrocarbon profile. Other types make different byproducts—some with more polysaccharides or proteins, but few match the sustained production of liquid hydrocarbons we crave for biofuel blending. Each batch sees hydrocarbons as a sticky exudate lodged within and outside the cell wall, turning thick as the culture matures. Unlike many green microalgae, the (C) strain resists crashing when carbon dioxide supply fluctuates or minor contamination creeps into a tank. This gives us peace of mind during long production stretches.
Operators often comment on the peculiar way Botryococcus Braunii (C) colonies form tight, interwoven networks. This natural tendency helps with harvest—coagulation occurs with less flocculant, reducing chemical input and improving downstream clarity. For plant managers, these seemingly small traits determine whether a process scales smoothly or grinds to a halt.
In our plant, fresh Botryococcus Braunii (C) biomass moves quickly. The production floor doesn’t leave room for delay—daily cycles mean that algae must be processed promptly or risks spoilage. Most of our output heads for hydrocarbon extraction, feeding refineries that experiment with sustainable aviation fuel blends. On pilot lines, we separate polysaccharides for specialty thickeners, test antioxidant properties in cosmetic ingredients, and trial bioplastic intermediates for progressive companies.
I’ve watched chemists work with different feedstocks, but oils drawn from Botryococcus Braunii (C) impress for their straightforward refining. Fewer impurities cut solvent and catalyst demand, which trims waste and boosts recovery rates for finished products. In processes such as catalytic cracking, the chemical profile from (C) strain oils shows less resistance—this drop-in behavior remains a rarity even among next-generation bio-feedstocks. While many talk about microalgae, few see operations actually run at steady, industrial scale. Our team delivers drums, not small vials.
Day after day, our workers compare Botryococcus Braunii (C) to other microalgae such as Chlorella or Dunaliella. Under the microscope, the (C) strain’s clustered colonies catch dyes in a unique way, signaling dense hydrocarbon reservoirs. Physically, the paste we harvest feels richer—less “soupy” than low-oil alternatives. In the plant, such small differences impact pump rates, heating load, and time at each centrifuge. Most other algal lines demand heavier pre-treatment or a string of chemical boosters before extraction, which adds cost for every ton through the door. Plant reality always comes down to throughput and minimized step count.
Downstream, batch tracking logs tell a clear story. Yields from Botryococcus Braunii (C) exceed most of our alternatives, especially over extended harvest periods. Not every day is a top run—algaculture always brings headaches—but over months, the consistency delivered by the (C) strain pays dividends. Customers notice this reliability, especially those shifting away from petroleum to meet carbon mandates. Some earlier microalgae fell short under real production stress, but (C) keeps its head above water, both literally and financially.
Every experienced operator knows Botryococcus Braunii (C) doesn’t solve every bioindustry problem. Growth rates, while solid, can’t match speedsters like Chlorella. Equipment still sticks with green residue, sometimes enough to demand extra cleaning between runs. Lighting setups cost more upfront to get the spectral balance we find Botryococcus prefers. We spent years trialing, adjusting, and re-tooling before the process paid back at commercial scale.
We don’t rely only on tradition. Our R&D department pulses at the center of our factory, running genetics labs, advanced analytics, and process innovation lines daily. Gene editing and adaptive selection push the (C) lineage to deliver more hydrocarbons per input unit. We pioneered new bioseparation steps to keep extracting oil with gentler, more energy-efficient methods. Collaborations with equipment manufacturers cut maintenance downtime and help operators clean tanks faster, sometimes by simple changes in flow geometry. Production success always reflects these on-the-floor insights.
We see competitors market microalgae with bold statements, but our credibility comes from supply records and years of running full-scale fermentation. We track yield per square meter, measure hydrocarbon fractions with GC-MS, and log energy and water input for carbon accounting. Dozens of customers return with questions about scale, cost, and fuel profile. Our plant gates open for regular customer audits, so claims made in these paragraphs come backed by laboratory notebooks, batch records, and actual shipping manifests. In our field, trust grows from seeing trucks leave loaded with refined product, not just graphs on a slide.
Continual process improvement defines manufacturing for us. Early runs with Botryococcus Braunii (C) suffered from biofilm buildup and inconsistent yields. Over years, we overhauled mixers, invented gentle skimming techniques, and tuned nutrient regimes to keep cultures from stalling. Together with other manufacturers and academic groups, we’ve tested novel pH control, improved micronutrient balancing, and reused process water across cycles to squeeze more value and shrink our footprint. Shared learning has advanced the industry far past isolated trial and error.
Production scale brings real-world hurdles—input cost, equipment wear, feedstock stability. For each batch, we log downtime, maintenance, and output to find places for cost reduction and greater predictability. Tighter control on culture conditions nets smoother operation. Automation helps by reducing human error, though nothing replaces a technician’s eye for unusual color changes. Through continuous data analysis, we identify trouble spots and react before issues threaten output. Never easy, but systems thinking and relentless adjustment close the gap between lab performance and commercial consistency.
No one in real production stays static. Our company invests in partnerships aimed at expanding Botryococcus Braunii (C) utility. We work with university consortia, governmental pilot programs, and fuel laboratories to push the envelope on renewable hydrocarbon blending. Sometimes, the answers mean going back to basics: trialing new light arrays, re-examining temperature profiles, and mining our own historic batch data for opportunities previously missed. Regulatory shifts push adaptation, but so does healthy competition between manufacturing teams striving to extract more value.
We’ve learned that scaling up is a game of incremental advances and collective discipline—long hours fine-tuning process settings, cross-training operators, building feedback from industrial customers right into process redesign. As government carbon mandates evolve, our plant adjusts recipe and strategy to ensure a steady supply of drop-in bio-feedstocks without added complexity for buyers. Whether our oil flows into advanced fuels or specialty polymers, every new use-case circles back to foundational knowledge gained from the rigors of day-to-day production.
Our staff knows every microalgae operator wishes for an easy, plug-and-play path to oil-rich biomass. The reality swings between periods of perfect growth and stretches fighting contamination or lagging productivity. With Botryococcus Braunii (C), we’ve seen more hits than misses. The high hydrocarbon content has allowed us to defend our economics, keeping per-ton costs lower as fossil-derived feedstock prices rise. Its resilience through small process upsets cuts downtime and labor, the two biggest silent drains on profitability.
Chemical customers facing shifting sustainability targets benefit from Botryococcus Braunii (C) because its process record, not just its chemical makeup. Plant managers and buyers return for repeat loads, preferring the cost predictability and stable output trend observed from (C) over years of live production. Even at pilot scale, steps like easier separation cut the cost and time between green sludge and finished chemical. Time after time, batch logs confirm what process engineers have come to expect: stable, repeatable results.
As real-world manufacturers, we focus on the details others skip—tank geometry, foaming tendencies, natural coagulant behavior, tolerance to common trace contaminants. Each percentage uptick in hydrocarbon or cut in lost mass means money saved and waste reduced, points that matter most where scale and sustainability intersect.
Being the manufacturer of Botryococcus Braunii (C) means living with the cultures day in and day out—not just reading about them. We have seen good years and challenging ones, but through it all, the (C) lineage demonstrates a resilience and richness that most other algae only claim in university reports. Our ongoing investment in process improvement, data transparency, and honest reporting has shaped a product that serves both the ambitions of the bioeconomy and the practical needs of heavy industry. Every kilogram of Botryococcus Braunii (C) leaves our doors after passing through processes and people invested in its performance. For us, it’s never just about selling a product; it’s about keeping faith in the long, meticulous practice of making the future out of small, green cells—batch after batch, year after year.