mn xa lánh em quá hic:((((((

tại mk quên kiến thức lớp  7 :>

B. WRITING

I. Circle the letter A, B, C or D under the word/ phrase that needs correcting.

B (if to tell → whether to tell)

C (didn’t have → wouldn’t have)

B (suggest → suggests)

II. Rewrite these sentences begin with the words given.

She asked me how to deal with school pressure.

He advised me to call the helpline because they could give me good advice.

III. Write an email (100 - 120 words) to a friend of yours telling him/her about one city that you would like to visit the most.

Dear [Friend's Name],

I hope you're doing well! I wanted to share with you about a city I’m really excited to visit – Paris, France. I’ve always dreamed of exploring its rich culture, stunning architecture, and delicious cuisine. The Eiffel Tower, Louvre Museum, and Notre-Dame Cathedral are some of the iconic landmarks I can’t wait to see.

What attracts me most is the city’s artistic vibe and romantic atmosphere. I plan to visit during the spring, around April, when the weather is pleasant, and the flowers are in full bloom. I’d love to stroll along the Seine River and enjoy a coffee at a charming café.

I hope to make this trip next year. Let me know if you have any tips or recommendations!

Best,
[Your Name]


=)))

a) điện trở tương đương của đoạn mạch

R_tđ = R1 + R2 =10 + 20= 30 (Ω)

Cường độ dòng điện chạy qua đoạn mạch

I = \(\dfrac{U}{Rtđ}=\dfrac{6}{30}=0,2\left(A\right)\)

b) vì R1 nối tiếp R2  nên ta có:

I= I1= I2 = I3= 0,2 (A)

-> U1= I1 . R1 = 0,2 .10 = 2 (V)

-> U2 = I2 . R2 = 0,2. 20 = 4 (V)

-Để mình suy nghĩ ngồi làm cho bạn nhé.

-Vì bài dài quá nên mình nói tóm tắt:

a) -Bạn chứng minh △ABM = △BCN (g-c-g) do có \(AB=BC\) , \(\widehat{BCN}=\widehat{ABM}=90^0\),\(\widehat{NBC}=\widehat{MAB}\) (bạn tự chứng minh).

-Suy ra: \(BM=CN\) .

-Suy ra 2 điều:

+\(QM^2-BQ^2=MN^2-MC^2\)

+\(QM+BQ=MN+MC\) (1)

\(QM^2-BQ^2=MN^2-MC^2\)

\(\Rightarrow\left(QM-BQ\right)\left(QM+BQ\right)=\left(MN-MC\right)\left(MN+MC\right)\)

\(\Rightarrow QM-BQ=MN-MC\) (2)

-Từ (1),(2) suy ra \(QM=MN\) nên △BMQ=△CNM (ch-cgv).

\(\Rightarrow\) MQ vuông góc với MN (bạn tự c/m).

\(QM=MN\) nên \(BQ=MC\) nên \(AQ=BM\Rightarrow PQ^2-AP^2=QM^2-BQ^2;QM+BQ=PQ+AP\)

Nên \(PQ=QM;\Delta APQ=\Delta BQM\) nên PQ⊥QM ; AP=BQ nên PQ=AQ

-Từ PQ=AQ bạn tự c/m PN=PQ (theo sườn mình đã cho) rồi sau đó c/m tam giác APQ=tam giác DNP rồi từ đó suy ra PQ vuông góc PN

.......

hic cíu mng oi

a: ĐKXĐ: \(x\notin\left\{10;-10;\sqrt{10};-\sqrt{10}\right\}\)

b: \(A=\dfrac{5x^3+50x+2x^2+20+5x^3-50x-2x^2+20}{\left(x^2-10\right)\left(x^2+10\right)}\cdot\dfrac{x^2-100}{x^2+4}\)

\(=\dfrac{10x^3+40}{\left(x^2-10\right)\left(x^2+10\right)}\cdot\dfrac{x^2-100}{x^2+4}\)

nên mạng tra ó có rất nhiều luôn

#tham_khảo