Аспартам

    • Название продукта: Аспартам
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД
    имя Аспартам
    общие имена NutraSweet, Equal, Кандерель
    химическая формула C14H18N2O5
    молекулярный вес 294,30 г/моль
    Cas Регистрационный номер 22839-47-0
    Номер Einecs 245-261-3
    E номер Е951
    в номер 951
    Имя ИЮПАК N-(L-α-аспартил)-L-фенилаланин 1-метильный эстер
    Химический класс Дипептидный метильный эстер
    внешность Белый кристаллический порошок
    запах без запаха
    вкус Сладкий
    сладость потенция Примерно в 200 раз слаще сахарозы
    точка плавления 246 °C (распадается)
    растворимость в воде 10 мг/мл при 25 °C
    плотность 1,347 г /см3
    калорийность 4 ккал/г
    метаболиты Фенилаланин, аспарагиновая кислота, метанол
    Ади ФДА 50 мг/кг веса тела/сутки
    ади эфса 40 мг/кг веса тела/сутки
    безопасность предупреждение Противопоказано при фенилкетонурии (ПКУ)
    Использует Заместитель сахара в напитках, продуктах питания, жевательной резинке и подсластителях для стола
    стабильность стабильный при сухом; разрушается при длительном тепле или высоком рН

    Как аккредитованный завод по производству Аспартама, мы соблюдаем строгие протоколы качества — каждая партия проходит тщательное тестирование для обеспечения постоянных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Аспартам, вес нетто 25 кг, упакованный в влажностойкие пищевые полиэтиленовые картонные барабаны с уплотненными крышками для промышленного использования.
    Погрузка контейнера (20-футовый контейнер) Аспартам, упакованный в 25-кг барабаны на паллетах, загружается и закрепляется в контейнере 20' FCL для экспорта.
    Доставка Аспартам обычно не классифицируется как опасный товар для транспорта. Он доставляется в чистых, сухих, запечатанных контейнерах в условиях окружающей среды, защищенных от влаги, тепла, солнечного света и загрязнения. Маркировка и документация должны соответствовать применимым пищевым/химическим и местным правилам транспорта. Избегайте сильных окислителей и длительных высоких температур.
    Хранение Храните аспартам в прохладном, сухом, хорошо вентилируемом месте подальше от тепла, влаги, прямого солнечного света и сильных окисляющих агентов. Держите контейнеры плотно закрытыми, четко помеченными и вертикальными. Избегайте пыли и несовместимых материалов. Поддерживайте хорошую уборку, предотвращайте разливы и используйте вторичное содержание, когда это необходимо. Храните безопасно, вне досягаемости несанкционированного персонала и соблюдайте местные правила.
    Срок годности Срок хранения аспартама: около 2-3 лет при хранении сухой и запечатанной; Тепло, влага и кислотные условия ускоряют деградацию и потерю сладости.
    Применение Аспартама

    Carbonated soft drink bottling lines running aspartame-sweetened syrups at pH 3.2–4.0 face a narrow stability window that directly influences batch sequencing. The methyl ester of L-α-aspartyl-L-phenylalanine remains least reactive in aqueous systems at pH 4.3, but commercial beverage acidification with citric acid or phosphoric acid lowers the finished pH into the range where methyl ester hydrolysis and intramolecular cyclization to 5-benzyl-3,6-dioxo-2-piperazineacetic acid (diketopiperazine) begin to remove sweetness. Syrup hold time prior to dilution therefore becomes a control variable. On production lines where 55–65 °Brix sugar-free syrup is held in agitated tanks, residence time above 25 °C is limited to the shortest interval compatible with deaeration and flavor homogenization. Injection of the sweetener as a metered slurry or pre-dissolved 1–2 wt% stock solution prepared with warmed deionized water reduces localized concentration gradients that accelerate cyclization.

    Flash pasteurization units operating at 85–90 °C for 15–30 s impose a process risk of diketopiperazine formation when aspartame is fully dissolved before heating. For this reason, post-pasteurization dosing downstream of the plate heat exchanger is preferred in plants equipped with aseptic buffer tanks. If sodium benzoate or potassium sorbate is used as preservative, the preservative stock solution is adjusted to pH 4.0–4.5 before sweetener addition to avoid acid-catalyzed hydrolysis caused by the low pH of the acidified concentrate. Carbon dioxide partial pressure does not directly accelerate aspartame degradation, but the resulting carbonic acid equilibrium can shift pH by 0.1–0.3 units in low-buffer formulations; buffer salts such as sodium citrate at 0.1–0.2 wt% are therefore specified for products designed for long ambient distribution.

    Finished sugar-free syrups at 55–65 °Brix typically have dynamic viscosity below 100 mPa·s at 20 °C, which permits standard centrifugal pump sizing. The absence of sucrose reduces crystallization risk in transfer lines but increases sensitivity of the sweetener to acidic pH excursion. Blends of aspartame with acesulfame K at 60:40 to 70:30 sweetness equivalence ratios are used to reduce total sweetener load and to smooth sweetness onset in cola and citrus beverages. Acesulfame K shows higher thermal and pH tolerance, so partial replacement allows a lower aspartame loading in pasteurized lines. Release specifications for finished beverages include an HPLC check of aspartame and diketopiperazine after 24 h at 35 °C to confirm warm-chain compatibility.

    Regulatory use in the United States is governed by FDA 21 CFR 172.804; EU authorization appears as E 951 in Regulation (EC) No 1333/2008 Annex II, with the ADI established at 40 mg/kg bw/day by both EFSA and JECFA. Labels must include the phenylketonuria warning statement because aspartame is a source of phenylalanine.

    Region/AuthorityStandard/CodeRelevant Parameter
    United StatesFDA 21 CFR 172.804GMP use; phenylalanine label statement
    European UnionRegulation (EC) No 1333/2008 Annex IIE 951; ADI 40 mg/kg bw/day
    JECFA/WHOJECFA MonographADI 40 mg/kg bw/day; purity limits
    FCCFood Chemicals CodexAssay 98.0–102.0% on dried basis
    USP-NFAspartame monographHPLC identity and assay; optical rotation

    How Does Dry Tabletop Sweetener Formulation Manage Bulk Density and Dissolution Rate?

    A dry tabletop sweetener formulation uses aspartame at very low mass fractions because the sweetness potency relative to a 10 wt% sucrose reference is between 180 and 200 times at typical use concentration. To provide a single-serve sachet that delivers sweetness equivalent to two teaspoons of sucrose, the formulation is diluted with a carbohydrate carrier such as maltodextrin DE 10–15 or anhydrous dextrose. The carrier governs bulk density, moisture uptake, and flowability through the form-fill-seal line. A target bulk density of 0.45–0.60 g/cm³ is specified for vibratory screw fillers; addition of silicon dioxide at 0.5–1.0 wt% improves flow by reducing interparticle cohesion. Aspartame particle size is not the primary flow-limiting variable at these dilution ratios, but dry grades are generally milled to pass a 100-mesh screen to avoid visible white specks after reconstitution in cold water.

    Binary sweetener blends with acesulfame K are common in tabletop formulation because acesulfame K has a rapid onset while aspartame has a later, more persistent response. At sweetness equivalence ratios of 60:40 to 70:30 aspartame:acesulfame K, the resulting temporal profile is closer to sucrose and the total sweetener mass per sachet is reduced. Dry blending is performed in ribbon blenders or V-shell tumble blenders with intensifier bars; blending time is limited to 10–15 min to minimize dust generation and preferential segregation. Filling operations should maintain relative humidity below 55% because thin-walled sachet material does not provide an absolute moisture barrier.

    Raw material acceptance for tabletop sweetener plants verifies Food Chemicals Codex assay 98.0–102.0% on a dried basis and passes the solubility test at 25 °C using the monograph method. Because aspartame has a solubility limit of approximately 10 g/L at 25 °C, the carrier system rather than the sweetener controls dissolution time in cold water; carrier-based formulations typically disperse within 30 s under gentle stirring.

    Chewing Gum Sweetness Temporal Control via Encapsulation Systems

    In chewing gum manufacture, aspartame is introduced after the gum base has been softened in a sigma-blade or Z-blade mixer and the mass has cooled below 55 °C. This sequencing prevents early thermal degradation of the methyl ester while ensuring that the sweetener is dispersed rather than trapped inside the continuous polyvinyl acetate phase. Finished gum formulations typically contain 0.2–0.5 wt% free aspartame or a corresponding sweetness equivalent supplied by an encapsulated grade; the free form dissolves in saliva during mastication and produces an intense initial sweetness release, whereas lipid-coated particles delay release and extend sweetness duration. Coating systems based on hydrogenated vegetable oil or ethyl cellulose provide release times of 10–30 min depending on coating thickness and chewing shear.

    For stick gum and pellet gum produced on high-speed rolling-scoring lines, the sweetener blend must not alter gum base cohesion or stickiness. Addition of aspartame particle size fractions below 75 µm is preferred to prevent mouthfeel grittiness and to ensure homogeneous distribution in the final rolling thickness. When acesulfame K is included in a 70:30 aspartame:acesulfame K sweetness ratio, the rapid dissolution of acesulfame K masks the initial delay of aspartame; the latter then sustains sweetness after the acesulfame K response decays. Quality control sampling of finished gum includes extraction and HPLC quantification of both aspartame and diketopiperazine, because cyclization during mixing at jacket temperatures above 60 °C is the primary route for sweetener loss.

    Sugar-free pharmaceutical dosage forms incorporate aspartame at concentrations between 0.1 and 1.0 wt% of the final solid dosage form mass to mask bitterness in chewable tablets, orodispersible tablets, and dry syrups. The formulation route determines the most critical physical parameter: direct compression requires a fine particle size with low segregation potential, while wet granulation exposes aspartame to water and elevated drying temperatures that can initiate hydrolysis. When wet granulation is unavoidable, the granulation solvent is cooled to 20–25 °C and the wet mass is dried at tray temperatures not exceeding 40 °C. In effervescent granule systems, aspartame is blended in a separate acidic component fraction to avoid prolonged contact with citric or tartaric acid in the presence of residual moisture. Successful chewable formulations normally combine aspartame with mannitol or sorbitol as a non-hygroscopic bulking agent; sorbitol-based formulations require colloidal silicon dioxide because sorbitol hygroscopicity can increase local water activity and accelerate aspartame degradation.

    Pharmacopoeial acceptance is governed by the USP-NF and Ph. Eur. monographs for aspartame. Excipient compatibility screening includes binary storage at 40 °C/75% RH for 4 weeks with HPLC assay; incompatibility with lactose-based formulations under ICH condition 40 °C/75% RH is reported because reducing sugars can participate in Maillard-type reactions with the free amino group of aspartame. Orodispersible tablets prepared by direct compression specify a median particle size of 20–50 µm for palatability; disintegration time remains governed by the superdisintegrant system rather than by the sweetener.

    When Fermented Dairy Products Exceed pH 4.6 During Shelf Life

    For fermented dairy applications, aspartame is used at rates sufficient to replace sucrose in stirred fruit yogurt and flavored milk drinks, but the addition point after fermentation is mandatory because starter cultures do not ferment aspartame as a carbon source and because extended residence during fermentation would expose the sweetener to temperatures above 37 °C at pH values that are not yet at the stability optimum. In stirred yogurt processing, the sweetener is added as a pre-dissolved solution with the fruit preparation after the coagulum has cooled to 15–20 °C. The final product pH is typically adjusted to 4.0–4.5, close to aspartame’s maximum stability, but shelf life at 4–8 °C can still produce measurable diketopiperazine after 30–45 days. This loss pathway is more pronounced when fruit preparations contain ascorbic acid or when the matrix pH drifts above 4.6 due to buffering from added milk protein concentrate.

    Formulators using aspartame in dairy drinks specify buffer systems such as citrate or phosphate to hold the product pH between 4.0 and 4.5 throughout the declared shelf life. Drinks processed by UHT at 135–140 °C for 3–5 s require post-UHT aseptic dosing of the sweetener; if this is impossible, the initial overage is determined by pilot-scale thermal death-time studies rather than by a fixed percentage because the degradation is first-order with respect to dissolved aspartame and temperature-dependent. Labeling for finished dairy products in the EU includes the statement “contains a source of phenylalanine” when aspartame is declared as E 951.

    Oven conditions above 150 °C impose the main operational boundary for aspartame in bakery and snack applications because the methyl ester linkage undergoes rapid hydrolysis and cyclization at biscuit and bread baking temperatures. In conventional bread baking, core temperatures reach 95–98 °C while the surface temperature exceeds 150 °C; unencapsulated aspartame exposed to the crust is almost completely converted to non-sweet diketopiperazine. For this reason aspartame is not used as the primary sweetener in baked goods that require oven residence times above 10 min. It is instead limited to post-bake topical applications, no-bake fillings, icings, and glazes where the thermal load after sweetener dispersion remains below 50 °C.

    Published data for encapsulated aspartame in bakery matrices are limited; available technical literature indicates that lipid-coated grades partially retain sweetness at internal crumb temperatures but release characteristics depend on coating melt point and shear during dough mixing. Processors evaluating such grades run differential scanning calorimetry on the coating and request coating integrity data from the supplier before full-scale production. In all high-temperature applications, the destination market’s food additive regulations determine the maximum permitted use level, and the actual overage required to compensate for thermal loss must be verified on the production line.

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    Более подробное введение
    Аспартам (E 951, INS 951, CAS 22839-47-0, молекулярная формула C14H18N2O5, молекулярная масса 294,30 г/моль) является метильным эстером дипептида L-аспартил-L-фенилаланина. Материал разрешен в качестве подсластителя общего назначения в Соединенных Штатах в соответствии с 21 CFR 172.804 и в Европейском союзе в соответствии с приложением II к Регламенту (ЕС) № 1333/2008, с критериями чистоты в Регламенте Комиссии (ЕС) № 231/2012. Допустимое суточное потребление JECFA и EFSA составляет 0-40 мг/кг веса тела/день; приемлемое суточное потребление FDA США составляет 50 мг/кг веса тела/день. Аспартам примерно в 180-200 раз сладче сахарозы по весу. Он имеет ту же валовую энергетическую ценность, что и белок в 4 ккал/г, но его высокая мощность означает, что типичные уровни использования вносят незначительную энергию. Поскольку соединение содержит L-фенилаланин, готовые продукты должны иметь заявление «ФЕНИЛКЕТОНУРИКИ: СОДОРЖАЕТ ФЕНИЛАЛАНИН», когда это требуется в соответствии с 21 CFR 172.804 и правилами маркировки ЕС. Коммерческие формы продукта определяются монографическим классом, а не одной торговой моделью: тонкие порошковые, гранулированные и агломерированные классы прямого сжатия являются основными физическими моделями, поставляемыми для производства напитков, сухой смеси и настольных подсластителей.

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