JP6043801B2 - 温間プレス成形用鋼板、温間プレス成形部材、及びこれらの製造方法 - Google Patents
温間プレス成形用鋼板、温間プレス成形部材、及びこれらの製造方法 Download PDFInfo
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Description
まず、本発明の温間プレス成形鋼板の組成について詳細に説明する(以下、重量%)。
上記Cは、鋼板の強度を増加させるための必須の元素であるのみならず、本発明において具現しようとする残留オーステナイトを確保するために、適正に添加する必要がある。C含有量が0.01%未満の場合は、十分な強度を得ることができない上、温間プレス成形時に部材が3体積%以上の残留オーステナイトを確保することが困難である。よって、上記のような特徴を発揮するためには、0.01%以上(好ましくは0.05%以上)添加する。また、0.5%を超過して含有すると、熱延鋼板の冷間圧延性を低下させる上、高すぎる強度が得られ、所望する延伸率を確保することが困難であり、溶接性が低下しやすいことから、0.5%以下(好ましくは0.4%以下、より好ましくは0.3%以下)添加する。
上記Siは、製鋼において脱酸剤の役割を果たすのみならず、熱処理時に炭化物の生成を抑制する元素として添加する。Si含有量が3%を超過すると、鋼板のめっき性を低下させるため、3%以下(好ましくは2.5%以下、より好ましくは2%以下)添加する。
上記Alは、製鋼において脱酸作用をして鋼の清浄性を高める上、Siと同様に熱処理時に炭化物の生成を抑制する元素として添加する。Alは、添加量の増加により、二相域が拡大して焼鈍温度の作業範囲が拡大されるという長所があるが、Al含有量が3%を超過すると、鋼板のめっき性が低下するのみならず、製造費用が上昇するため、上限を3%以下(好ましくは2.5%以下、より好ましくは2%以下)添加する。
上記Mnは、本発明において非常に重要な役割をする。Mnは、固溶強化元素である上、Ms温度(マルテンサイトの変態開始温度)を下げる役割をしてオーステナイトの常温安定性を高める。また、Mnは、Ac1及びAc3の温度を下げるため、本発明で求められる温間プレスの成形に重要な元素である。なお、Ac1〜Ac3の温度において温間プレスの成形及び熱処理時に生成されるオーステナイトにMnが拡散されてオーステナイトの常温安定性をさらに高めることができる。Mn含有量が3%未満の場合は、上記作用を十分に行うための強度が不足するため、3%以上(好ましくは4%以上、より好ましくは5%以上)添加する。また、15%を超えると、製造費用が上昇する上、あまりにも多くの残留オーステナイトが生成されて、延伸率は十分に上昇させることができるものの、十分な強度を確保することは困難であるため、15%以下(好ましくは13%以下、より好ましくは11%以下)添加する。
上記Pは、Siと同様にマルテンサイトの熱処理時に炭化物の生成を抑制させる効果があるが、過剰に含有されると、溶接性が劣化し、粒界が弱くなるため、上限を0.1%に限定する。また、Pを0.0001%未満に制御するためには、多くの製造費用がかかるため、その下限は0.0001%に限定する。
上記Sは、鋼中に不純物として存在し、鋼板の延性及び溶接性を阻害する元素である。S含量が0.03%以下の場合は、このような悪影響が大きくないため、その上限を0.03%にする。また、Sを0.0001%未満に制御するためには、多くの製造費用がかかるため、その下限を0.0001%に限定する。
上記Nは、鋼中に不純物として含まれる。鋼板においてNは、窒化物を形成させて水素による耐遅れ破壊特性を向上させるために添加される。N含量が0.03を超過すると、連鋳時にスラブクラックに対する鋭敏性が増加し、スラブ内に気孔が発生しやすいため、その上限を0.03%(好ましくは0.02%以下、より好ましくは0.01%以下)にする。
上記Cr、Mo、及びWは、硬化能及び析出強化効果があり、高強度をさらに確保することができる。Cr、Mo、またはWの含量が0.001%未満の場合は、硬化能及び析出強化の効果を十分に得ることができず、2.0%を超過すると、その効果が飽和する上、製造費用が上昇するため、その上限を2.0%に制限する。
上記Ti、Nb、Zr、及びVは、鋼板の強度上昇、結晶粒微細化及び熱処理特性を向上させる元素である。上記Ti、Nb、Zr、及びVの含量が0.001%未満の場合は、上記のような効果を期待することが困難であり、その含量が0.4%を超過すると、製造費用が過度に上昇する。よって、その含量を0.001〜0.4%に制限することが好ましい。
上記Cuは、微細なCu析出物を生成して強度を向上させる元素である。上記Cu含量が0.005%未満の場合、所望する強度を十分に得ることができず、2.0%を超過すると、操業性を劣化させる可能性がある。よって、その含量を0.005〜2.0%に制限することが好ましい。また、上記Niは、強度上昇及び熱処理性を向上させるのに有効な元素である。しかし、0.005%未満の場合は、その効果を得ることができず、2.0%を超過すると、製造費用が上昇するため、その含量を0.005〜2.0%に限定する。
上記Bは、硬化能が大きい元素で、微量添加しても熱処理鋼において高い強度を確保することができる。また、結晶粒界を強化させて本発明の高Mn鋼における粒界脆性を抑制することができる。しかし、0.0001%未満の場合は、このような効果を得ることができず、0.01%を超過すると、その効果が飽和する上、熱間加工性の劣化をもたらすため、その上限を0.01%に制限することが好ましい。
上記Sb及びSnは、表面及び粒界濃化元素で、本発明において添加される多くのMnが焼鈍時に表面濃化されることにより、酸化物の生成によるめっき性の劣化を抑制することができる。しかし、0.0001%未満の場合は、このような効果を得ることができず、1.0%を超過すると、熱間加工性が劣化するため、その上限を1.0%に制限することが好ましい。
上記組成を有する鋼スラブを1000〜1400℃において加熱した後、熱間圧延を行う。上記加熱温度が1000℃の未満では、連鋳組織の均質化が十分に確保されず、1400℃を超過すると製造費用が上昇する。
本発明の温間プレス成形部材は、上記温間プレス成形鋼板の組成を有し、微細組織の残留オーステナイトを体積分率で3〜50%含み、残りはフェライト、マルテンサイト、焼戻マルテンサイト、及びベイナイトのうち1種以上を含むことが好ましい。
延伸率に優れた部材を製造するために、本発明では温間プレス成形方法を採用する。本発明者らは、Ac3温度の以下における熱処理時にめっき層の耐熱性を確保することができる点に着目し、温間プレス成形を用いて所望する材質を十分に確保することができる方法を研究した。その結果、上記のような鋼成分を有する鋼板を用いることにより、Ac3温度以下において熱処理して残留オーステナイトを確保することができる点を見出した。
Claims (15)
- 重量%で、C:0.01〜0.5%、Si:3.0%以下(0は除く)、Mn:5〜15%、P:0.0001〜0.1%、S:0.0001〜0.03%、Al:3.0%以下(0は除く)、N:0.03%以下(0は除く)、残りFe及び不可避な不純物からなり、微細組織は、マルテンサイト、ベイナイト、またはこれらの組み合わせが30体積%以上である、温間プレス成形用鋼板。
- 前記鋼板は、Cr、Mo及びWからなる群より選択された1種以上を0.001〜2.0%さらに含む、請求項1に記載の温間プレス成形用鋼板。
- 前記鋼板はTi、Nb、Zr及びVからなる群より選択された1種以上を0.001〜0.4%さらに含む、請求項1に記載の温間プレス成形用鋼板。
- 前記鋼板は、CuまたはNiの1種以上を0.005〜2.0%さらに含む、請求項1に記載の温間プレス成形用鋼板。
- 前記鋼板は、SbまたはSnの1種以上を0.0001〜1.0%さらに含む、請求項1に記載の温間プレス成形用鋼板。
- 前記鋼板は、B:0.0001〜0.01%をさらに含む、請求項1に記載の温間プレス成形用鋼板。
- 前記鋼板は、熱延鋼板、冷延鋼板、Zn系めっき鋼板、及びAl系めっき鋼板のうちいずれか一つである、請求項1に記載の温間プレス成形用鋼板。
- 重量%で、C:0.01〜0.5%、Si:3.0%以下(0は除く)、Mn:5〜15%、P:0.0001〜0.1%、S:0.0001〜0.03%、Al:3.0%以下(0は除く)、N:0.03%以下(0は除く)、残りFe及び不可避な不純物からなる鋼スラブを1000〜1400℃の温度において加熱する段階と、
前記加熱された鋼スラブを熱間圧延し、Ar3〜1000℃の温度において仕上げ熱間圧延する段階と、
前記熱間圧延後にMs温度超過800℃以下において巻取して熱延鋼板を製造する段階
とを含み、
微細組織は、マルテンサイト、ベイナイト、またはこれらの組み合わせが30体積%以上である、温間プレス成形用鋼板の製造方法。 - 前記熱延鋼板を箱焼鈍する段階と、
前記箱焼鈍後に冷間圧延して冷延鋼板を製造する段階
とを含む、請求項8に記載の温間プレス成形用鋼板の製造方法。 - Zn系めっきまたはAl系めっきを行ってめっき鋼板を製造する段階をさらに含む、請求項8または9に記載の温間プレス成形用鋼板の製造方法。
- 重量%で、C:0.01〜0.5%、Si:3.0%以下(0は除く)、Mn:3〜15%、P:0.0001〜0.1%、S:0.0001〜0.03%、Al:3.0%以下(0は除く)、N:0.03%以下(0は除く)、残りFe及び不可避な不純物からなり、
温間プレス成形及び冷却後の微細組織は、残留オーステナイトを体積分率で5〜50%含み、残りはフェライト、マルテンサイト、焼戻マルテンサイト及びベイナイトのうち1種以上である、温間プレス成形部材。 - 前記温間プレス成形部材の引張強度は1000MPa以上、延伸率は10%以上である、請求項11に記載の温間プレス成形部材。
- 重量%で、C:0.01〜0.5%、Si:3.0%以下(0は除く)、Mn:5〜15%、P:0.0001〜0.1%、S:0.0001〜0.03%、Al:3.0%以下(0は除く)、N:0.03%以下(0は除く)、残りFe及び不可避な不純物からなる鋼板に温間プレス成形を行う段階と、
前記温間プレス成形後に冷却する段階
とを含み、
前記温間プレス成形は、1〜1000℃/秒の昇温速度でAc1〜Ac3の温度範囲まで加熱し、前記加熱後に1〜10000秒間温度を維持する熱処理を含み、
微細組織は、残留オーステナイトを体積分率で5〜50%含み、残りはフェライト、マルテンサイト、焼戻マルテンサイト及びベイナイトのうち1種以上である、温間プレス成形部材の製造方法。 - 前記温間プレス成形は、前記熱処理後に成形するか、成形後に前記熱処理して行われる、請求項13に記載の温間プレス成形部材の製造方法。
- 前記冷却は、1〜1000℃/秒の冷却速度で行われる、請求項13または14に記載の温間プレス成形部材の製造方法。
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| CN102127675B (zh) * | 2011-02-21 | 2012-11-14 | 钢铁研究总院 | 高效率低能耗高质量的钢板温成形零件的生产方法 |
-
2011
- 2011-11-07 KR KR1020110115331A patent/KR101382981B1/ko active Active
-
2012
- 2012-11-05 JP JP2014539881A patent/JP6043801B2/ja active Active
- 2012-11-05 EP EP12847953.2A patent/EP2778247A4/en not_active Withdrawn
- 2012-11-05 US US14/356,300 patent/US20140308156A1/en not_active Abandoned
- 2012-11-05 CN CN201280054436.8A patent/CN103917681B/zh active Active
- 2012-11-05 WO PCT/KR2012/009244 patent/WO2013069937A1/ko not_active Ceased
-
2017
- 2017-09-29 US US15/720,168 patent/US20180023171A1/en not_active Abandoned
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0669570B2 (ja) | 1985-12-29 | 1994-09-07 | 大同特殊鋼株式会社 | 金属薄板の製造方法 |
| JP3108199B2 (ja) | 1992-06-25 | 2000-11-13 | 川崎製鉄株式会社 | 厚板圧延における平面形状制御方法 |
Also Published As
| Publication number | Publication date |
|---|---|
| CN103917681B (zh) | 2016-07-06 |
| CN103917681A (zh) | 2014-07-09 |
| US20180023171A1 (en) | 2018-01-25 |
| JP2015503023A (ja) | 2015-01-29 |
| EP2778247A4 (en) | 2015-08-12 |
| US20140308156A1 (en) | 2014-10-16 |
| KR101382981B1 (ko) | 2014-04-09 |
| EP2778247A1 (en) | 2014-09-17 |
| WO2013069937A1 (ko) | 2013-05-16 |
| KR20130050138A (ko) | 2013-05-15 |
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